Circuit parameters and specifications.
\\n\\n
Released this past November, the list is based on data collected from the Web of Science and highlights some of the world’s most influential scientific minds by naming the researchers whose publications over the previous decade have included a high number of Highly Cited Papers placing them among the top 1% most-cited.
\\n\\nWe wish to congratulate all of the researchers named and especially our authors on this amazing accomplishment! We are happy and proud to share in their success!
Note: Edited in March 2021
\\n"}]',published:!0,mainMedia:{caption:"Highly Cited",originalUrl:"/media/original/117"}},components:[{type:"htmlEditorComponent",content:'IntechOpen is proud to announce that 191 of our authors have made the Clarivate™ Highly Cited Researchers List for 2020, ranking them among the top 1% most-cited.
\n\nThroughout the years, the list has named a total of 261 IntechOpen authors as Highly Cited. Of those researchers, 69 have been featured on the list multiple times.
\n\n\n\nReleased this past November, the list is based on data collected from the Web of Science and highlights some of the world’s most influential scientific minds by naming the researchers whose publications over the previous decade have included a high number of Highly Cited Papers placing them among the top 1% most-cited.
\n\nWe wish to congratulate all of the researchers named and especially our authors on this amazing accomplishment! We are happy and proud to share in their success!
Note: Edited in March 2021
\n'}],latestNews:[{slug:"webinar-introduction-to-open-science-wednesday-18-may-1-pm-cest-20220518",title:"Webinar: Introduction to Open Science | Wednesday 18 May, 1 PM CEST"},{slug:"step-in-the-right-direction-intechopen-launches-a-portfolio-of-open-science-journals-20220414",title:"Step in the Right Direction: IntechOpen Launches a Portfolio of Open Science Journals"},{slug:"let-s-meet-at-london-book-fair-5-7-april-2022-olympia-london-20220321",title:"Let’s meet at London Book Fair, 5-7 April 2022, Olympia London"},{slug:"50-books-published-as-part-of-intechopen-and-knowledge-unlatched-ku-collaboration-20220316",title:"50 Books published as part of IntechOpen and Knowledge Unlatched (KU) Collaboration"},{slug:"intechopen-joins-the-united-nations-sustainable-development-goals-publishers-compact-20221702",title:"IntechOpen joins the United Nations Sustainable Development Goals Publishers Compact"},{slug:"intechopen-signs-exclusive-representation-agreement-with-lsr-libros-servicios-y-representaciones-s-a-de-c-v-20211123",title:"IntechOpen Signs Exclusive Representation Agreement with LSR Libros Servicios y Representaciones S.A. de C.V"},{slug:"intechopen-expands-partnership-with-research4life-20211110",title:"IntechOpen Expands Partnership with Research4Life"},{slug:"introducing-intechopen-book-series-a-new-publishing-format-for-oa-books-20210915",title:"Introducing IntechOpen Book Series - A New Publishing Format for OA Books"}]},book:{item:{type:"book",id:"8291",leadTitle:null,fullTitle:"Technological Innovation in the Olive Oil Production Chain",title:"Technological Innovation in the Olive Oil Production Chain",subtitle:null,reviewType:"peer-reviewed",abstract:'Technological innovation has undergone unprecedented development; this evolution can offer extraordinary opportunities for product qualification, which today has not been adequately exploited due to a lack of vision. It took a disaster such as "mad cow" disease to accelerate the traceability plan; today, 36% of the analyzed agri-food companies, thanks to digital solutions, achieved a reduction in the times and costs connected with harvest processes, data management, and transmission. Digital solutions permit interventions aimed at food safety along the food chain, thus avoiding financial damage. But they can also be used to combat counterfeiting to protect the Protected Designation of Origin (PDO) and Protected Geographical Indication (PGI) systems for greater information for the consumer.',isbn:"978-1-83962-236-6",printIsbn:"978-1-83962-645-6",pdfIsbn:"978-1-83962-237-3",doi:"10.5772/intechopen.78420",price:100,priceEur:109,priceUsd:129,slug:"technological-innovation-in-the-olive-oil-production-chain",numberOfPages:78,isOpenForSubmission:!1,isInWos:null,isInBkci:!1,hash:"6604d6cd5f4995f6ab303e82ddd5fcd9",bookSignature:"Innocenzo Muzzalupo",publishedDate:"October 2nd 2019",coverURL:"https://cdn.intechopen.com/books/images_new/8291.jpg",numberOfDownloads:4978,numberOfWosCitations:1,numberOfCrossrefCitations:9,numberOfCrossrefCitationsByBook:0,numberOfDimensionsCitations:16,numberOfDimensionsCitationsByBook:1,hasAltmetrics:1,numberOfTotalCitations:26,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"May 28th 2018",dateEndSecondStepPublish:"June 18th 2018",dateEndThirdStepPublish:"August 17th 2018",dateEndFourthStepPublish:"November 5th 2018",dateEndFifthStepPublish:"January 4th 2019",currentStepOfPublishingProcess:5,indexedIn:"1,2,3,4,5,6",editedByType:"Edited by",kuFlag:!1,featuredMarkup:null,editors:[{id:"93139",title:"Dr.",name:"Innocenzo",middleName:null,surname:"Muzzalupo",slug:"innocenzo-muzzalupo",fullName:"Innocenzo Muzzalupo",profilePictureURL:"https://mts.intechopen.com/storage/users/93139/images/system/93139.png",biography:"Doctor Innocenzo Muzzalupo has received degree in “Biology” from the University of Calabria in 1993 and received his Ph.D. degree (1997) in “Chemistry” from the University of “La Sapienza” Rome. Currently, he is working as a member of Council for Agricultural Research and Economics, Research Centre for Olive, Citrus and Tree Fruit in Italy. After receiving his Ph.D. degree, he was appointed as post-doctoral researcher (1999) in “Food Science” at the University of Calabria. Between 1999 and 2008 he had a contract as professor of “Botany” at the University of Calabria. Following eight years of extensive research on olive characterization and on olive oil quality. His research areas include olive germplasm characterization, olive genes characterization, and analytical methods for olive oil traceability, olive oil quality. He has authored numerous research articles (orcid id 0000-0002-0264-1392).",institutionString:"Council for Agricultural Research and Economics, Research Centre for Olive, Citrus and Tree Fruit",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"6",totalChapterViews:"0",totalEditedBooks:"4",institution:{name:"Agricultural Research Council",institutionURL:null,country:{name:"Italy"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"374",title:"Plant Engineering",slug:"plant-engineering"}],chapters:[{id:"67386",title:"Introductory Chapter: Technological Innovation as Tool for Products Qualification",doi:"10.5772/intechopen.86084",slug:"introductory-chapter-technological-innovation-as-tool-for-products-qualification",totalDownloads:746,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:null,signatures:"Innocenzo Muzzalupo",downloadPdfUrl:"/chapter/pdf-download/67386",previewPdfUrl:"/chapter/pdf-preview/67386",authors:[{id:"93139",title:"Dr.",name:"Innocenzo",surname:"Muzzalupo",slug:"innocenzo-muzzalupo",fullName:"Innocenzo Muzzalupo"}],corrections:null},{id:"64271",title:"Emerging Extraction Technologies in Olive Oil Production",doi:"10.5772/intechopen.81390",slug:"emerging-extraction-technologies-in-olive-oil-production",totalDownloads:1309,totalCrossrefCites:5,totalDimensionsCites:9,hasAltmetrics:0,abstract:"In the field of olive oil extraction, current scientific research has focused on improving quality, paying particular attention to optimizing the efficiency of extraction and reducing the duration of the process. Recently, studies have been conducted to improve the traditional malaxation process and obtain positive effects on both oil production and consumption. With these aims, emerging technologies including microwave (MW), pulsed electric field (PEF), and ultrasound (US) have been applied to conventional virgin olive oil extraction process. In this chapter, most recent studies that focused on adaptation of emerging technologies to traditional extraction to increase the yield of olive oil or some minor compounds and bioactive components present in olive oil including tocopherols, chlorophyll, carotenoids, and phenolic compounds have been compiled.",signatures:"Alev Yüksel Aydar",downloadPdfUrl:"/chapter/pdf-download/64271",previewPdfUrl:"/chapter/pdf-preview/64271",authors:[{id:"218870",title:"Dr.",name:"Alev Yüksel",surname:"Aydar",slug:"alev-yuksel-aydar",fullName:"Alev Yüksel Aydar"}],corrections:null},{id:"64315",title:"Does the Introduction of Ultrasound in Extra-Virgin Olive Oil Extraction Process Improve the Income of the Olive Millers? The First Technology for the Simultaneous Increment of Yield and Quality of the Product",doi:"10.5772/intechopen.81666",slug:"does-the-introduction-of-ultrasound-in-extra-virgin-olive-oil-extraction-process-improve-the-income-",totalDownloads:1051,totalCrossrefCites:4,totalDimensionsCites:6,hasAltmetrics:0,abstract:"Olive oil is an important product of the European agro-alimentary sector. The current olive oil extraction process can be further improved in order to overcome the weaknesses of the actual system in terms of non-continuity, reduction of oil in waste, sustainability, and improvement of quality both in the healthy and sensory perspective. Many innovative approaches have been developed to improve the olive oil extraction process. However, not all the proposed innovations have the opportunity to effectively reach a technological level of readiness close to “ready for the market.” An innovator should simultaneously evaluate the aptitude of its invention to turn into a widely used commercial product both under the technological and the marketing perspectives. Under the technological point of view, an innovation should be effective, so, adequate to accomplish a purpose, and efficient, so, able to perform or functioning in the best possible manner with the least waste of time and effort. Under the marketing point of view, an innovation should be able to develop products that accurately and timely respond to customer needs, offering a valuable experience to the customer, exceeding his expectations. The innovative EVOO process based on ultrasound extraction has several advantages useful to improve olive miller income: higher yield extraction, higher polyphenols, and lower bitter and pungent taste than traditional EVOO samples.",signatures:"Maria Lisa Clodoveo, Filomena Corbo and Riccardo Amirante",downloadPdfUrl:"/chapter/pdf-download/64315",previewPdfUrl:"/chapter/pdf-preview/64315",authors:[{id:"199763",title:"Dr.",name:"Maria",surname:"Clodoveo",slug:"maria-clodoveo",fullName:"Maria Clodoveo"}],corrections:null},{id:"66915",title:"Antioxidants in Olive Oil",doi:"10.5772/intechopen.84540",slug:"antioxidants-in-olive-oil",totalDownloads:804,totalCrossrefCites:0,totalDimensionsCites:1,hasAltmetrics:1,abstract:"Olive oil contains polyphenols, vitamin E, and other natural antioxidants that are the oil’s own natural preservatives. Antioxidants dampen the autogeneration of peroxides, delaying the onset of oxidation and rancidity. As a result, antioxidants increase the oil’s shelf life. Among the antioxidants, there are compounds that have been associated with human health benefits. They absorb free radicals and appear to have a positive impact on cardiovascular and cancer ailments, as attributed to the Mediterranean diet. The main objectives of this chapter were to investigate the phytochemical profile such as phenolic compounds and tocopherols, and in vitro, to study the biological potential (antioxidant capacity) of the olive oil. Furthermore, the relationship and correlations between phytochemical and antioxidant capacity have been highlighted. The investigation of these compounds supported by verifiable evidence may explain their role in the quality and authenticity of olive oil as well as their contribution to human health.",signatures:"Amany M. Basuny",downloadPdfUrl:"/chapter/pdf-download/66915",previewPdfUrl:"/chapter/pdf-preview/66915",authors:[{id:"139477",title:"Prof.",name:"Amany",surname:"Basuny",slug:"amany-basuny",fullName:"Amany Basuny"}],corrections:null},{id:"66111",title:"Regulation of Immune and Nonimmune Mast Cell Activation by Phenols from Olive Oil",doi:"10.5772/intechopen.84595",slug:"regulation-of-immune-and-nonimmune-mast-cell-activation-by-phenols-from-olive-oil",totalDownloads:1068,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:1,abstract:"The purpose of this study is to establish if hydroxytyrosol and oleuropein, the most significant phenols found in olive oil and olives, can inhibit the activation of mast cells induced by immune and nonimmune pathways. Preincubation of purified peritoneal mast cells was carried out in the presence of hydroxytyrosol or oleuropein compounds and, prior to incubation, with concanavalin A, compound 48/80, or calcium ionophore A23187. Dose-response and time-dependence were studied. Comparative studies were performed using sodium cromoglycate, a well-known mast cell stabilizer. The supernatants and pellets were analyzed for β-hexosaminidase content via colorimetric reaction after incubation. The percentage of β-hexosaminidase obtained in each tube was measured and taken as a referent mast cell activation indicator. Other cell pellet samples were studied for cell viability, by means of the trypan blue exclusion method, or analyzed with light and electron microscopy. For the first time, biochemical and morphological results have shown that hydroxytyrosol and oleuropein inhibit degranulation of mast cells triggered by both immune and nonimmune causes. These findings suggest that olive phenols, specifically hydroxytyrosol and oleuropein, may be set the bases for developing practical tools not only to prevent and treat mast cell-mediated disorders but also to improve olive oil industrialization.",signatures:"Alicia Beatriz Penissi",downloadPdfUrl:"/chapter/pdf-download/66111",previewPdfUrl:"/chapter/pdf-preview/66111",authors:[{id:"262694",title:"Dr.",name:"Alicia",surname:"Penissi",slug:"alicia-penissi",fullName:"Alicia Penissi"}],corrections:null}],productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},subseries:null,tags:null},relatedBooks:[{type:"book",id:"3424",title:"Food Industry",subtitle:null,isOpenForSubmission:!1,hash:"26d230385a4b7a517b44d60bf75e83de",slug:"food-industry",bookSignature:"Innocenzo Muzzalupo",coverURL:"https://cdn.intechopen.com/books/images_new/3424.jpg",editedByType:"Edited 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Special attention will be paid to methods of waters treatment (industrial and natural) and soil remediation to improve its state.
\r\n\tThe description of possible chemical or physical techniques available nowadays will be enriched by biological methods. Methods with a high potential for commercialization are of particular importance, that is why some of the material presented in this book will relate to this aspect.
Atmospheric pressure dielectric barrier discharges (DBD) has many industrial applications, due to its inherent simplicity and moderate operating conditions, and remains a focus of academic research. A schematic of a DBD is shown in Figure 1, along with a depiction of current and voltage characteristics over time. Upon breakdown of the gas in the gap, the dielectric prevents transition to a high current arc-like discharge, which would otherwise occur between two uncovered metal electrodes. Though spatially uniform discharging in DBDs can be achieved under certain conditions [1, 2, 3, 4, 5, 6, 7], under most circumstances a filamentary discharge will develop [8]. Since filaments are characterised by high local electron densities of up to 1015 cm−3 and strong electric fields of up to 105 V/cm, it is these filaments that determine the plasma chemistry [9, 10, 11]. The filaments are self-limiting, because they charge the dielectric surface and locally negate the gap voltage until extinction occurs within 10−7 s. Not only are the filaments spread out over the surface, they also occur over a wide timeframe. If, for example, the DBD is driven by a sinusoidal external voltage at a frequency of 100 kHz, filaments will ignite over a period of ≈3 μs in each half-cycle, at many different stages of the external voltage [12].
\nSchematic of a DBD with one electrode covered by a dielectric. Current and voltage characteristics are given on the right-hand-side. While the plasma can be electrically modelled as having a continuous current and a constant gap voltage
For many applications of DBD it is highly desirable to know the power dissipated in the discharge, e.g. for gas conversion or plasma actuators. The so called ‘capacitor method’ is generally the most accurate means of measuring plasma power, as well as allowing for more in-depth electrical characterisation of the reactor properties. For instance, the average gas gap voltage at which filaments (or any DBD plasmas in general) ignite can be determined with great accuracy using electrical diagnostics, combined with a suitable equivalent circuit model. This ignition voltage tends to be constant and is here referred to as the ‘burning voltage’
This chapter provides an overview of electrical diagnostics for DBD, with a focus on charge-voltage (Q-V) measurement techniques. Particular attention is paid to setting up Q-V measurements, identifying systematic errors, and performing in-depth analysis of the results to obtain reactor properties. Additionally, Q-V techniques for studying individual filaments and filament distributions are presented.
\nA charge-voltage (Q-V) diagram, or Lissajous figure, is obtained by making an X-Y plot of the voltage
Basic experimental schematic of a system used to generate a Q-V diagram using a dielectric barrier discharge (DBD) or packed bed reactor (PBR).
An ideal Q-V diagram can be defined as having a parallelogram shape, as shown in Figure 3. In a real DBD, there may be some deviations from this ideal shape, for which several cases are discussed in Section 3. The general principles behind analysis, however are the same for all Q-V diagrams. Parallelogram-shaped Q-V diagrams are the simplest case, where the discharging phases of the plasma reactor are clearly distinguishable by various line segments (AB, BC, CD and DA in Figure 3). Understanding the shape of the Q-V diagram, and deriving discharge properties from it, requires an equivalent electrical circuit, for which the simplest case is depicted in Figure 4. If we consider a parallel plate DBD during a full cycle of the applied voltage, there are two ‘plasma off’ phases (AB and CD in Figure 3) and two ‘plasma on’ phases (BC and DA in Figure 3). During the ‘plasma off’, or capacitive phase, the reactor behaves as two capacitors in series. These capacitances are due to the dielectric layer,
The simplest equivalent electrical circuit corresponding to an ideal DBD. Note that the monitor capacitor with capacitance
Note that if both metal electrodes are covered with dielectrics, or if multiple gas gaps are found in series in the DBD reactor, the equivalent circuit of the reactor can be reduced to that depicted in Figure 4, where equivalent capacitances for both
The capacitances
Conversely, the gradient of the lines BC and DA corresponding to the discharging phase (i.e. ‘plasma on’) are usually identified as
Note that if no discharging would occur at all during a full cycle of the applied voltage
During the ‘plasma on’ phase, the gas gap in the reactor contains a variable, conducting medium, which is often represented by a time-dependent resistor
Eqs. (3) and (4) show how both current and voltage for the ‘black box’ element can be obtained from the measurable quantities
The equivalent circuit model implicitly assumes a spatially uniform discharge, so that gap voltage
Eq. (5) is always valid for the equivalent circuit in Figure 4 (also during ‘plasma off’ phases), irrespective of the shape of the Q-V diagram it is assumed to describe. For a parallelogram-shaped Q-V diagram, however, the term between brackets must be a constant, or AB and CD, or BC and DA, would not form straight lines. Identification of the gradients of BC and DA with
Eq. (5) is applicable to both ‘plasma on’ and ‘plasma off’ phases. The straight lines AB and CD during ‘plasma off’ imply that Eq. (5) must equal
where the time-dependence in d
The most common usage of a Q-V diagram is to determine the
where the last equality is due to continuity of current through the series circuit of DBD + monitor capacitor in Figure 2. The instantaneous power
The time-averaged power \n
In order to apply the Q-V method, a suitable capacitor must be selected. The required monitor capacitor is dependent upon the capacitance of the reactor
Taking into account the common 10:1 attenuation for an oscilloscope probe, Eq. (10) divided by a further factor 10 provides a lower limit on the signals to be detected by the oscilloscope. As a rule-of-thumb, the peak signal to be detected
Eq. (2) also shows that when
Provided
The voltage across a shunt resistor, or an inductive Rogowski coil, can also be used in place of a monitor capacitor in Figure 2. This method relies on direct measurement of current
As a final note, certain reactor geometries have a poorly defined ground electrode, making it difficult to attach a monitor capacitor, shunt resistor, or coil. The ‘ground’ electrode can be electrically floating, for instance, or multiple potential pathways can exist for current to reach ground, such as with plasma jets impinging on a surface. In these cases, it may be beneficial to use a Rogowski coil after all, and measure current directly on the high voltage line between voltage source and reactor. This poses additional engineering and safety challenges, however, since unwanted discharging, or accidental application of high voltages to measurement devices must be prevented. While caution is advised, these problems can be overcome. Care must be taken to prevent sharp metallic edges from forming corona discharges, and air-gaps between high voltage line and coil from forming arc discharges. This can be achieved by covering and filling in all sharp edges and air gaps with a higher breakdown strength material, such as e.g. paraffin. as was done in [24].
\nThere are a number of scenarios in which Q-V diagrams do not display a parallelogram shape. This can be due to the real, physical characteristics of the reactor, or experimental error. In this section, various shapes of Q-V diagrams will be discussed, along with the possible implications regarding the characterisation of the reactor.
\nThe following deviations from ideal behaviour will be addressed:
Q-V diagrams with gradients less than
Almond shaped Q-V diagrams, with rounded corners at the transition from non-discharging to discharging regions
Elliptical Q-V diagrams, with no straight lines at all
Noisy Q-V diagrams, particularly during ‘plasma on’ phases
Stepped Q-V diagrams
This list is not exhaustive, but should provide a troubleshooting guide for any problems that arise, both experimentally and in interpretation of data. The fundamentals for the analysis of these plots are all based on the equivalent circuit of Figure 4, combined with the theory provided in the previous sections.
\nA common irregularity observed in Q-V diagrams for DBDs and PBRs is a gradient during discharging changes depending on experimental conditions, despite the geometry of the reactor remaining the same. This is caused by partial discharging of the available (dielectric) area in the gas gap. Partial discharging is commonly observed when the voltage applied to the discharge gap is not far in excess of the reactor breakdown voltage [21, 25, 26]. It is also a common feature when dielectric packing materials are introduced into the gas gap, as is the case in PBRs, which lead to a complicated (electrical) geometry with a range of gap widths and breakdown voltages [13, 27, 28, 29, 30]. The latter case will be treated in the next section, while this section focuses on parallelogram-like Q-V diagrams resulting from plane-parallel reactor geometries.
\nExample Q-V diagrams where changing the applied voltage amplitude leads to different gradients in the discharging phase are shown in Figure 5. Aside from applied voltage amplitude, changing the fractional composition of the gas in the discharge, or changing the frequency of the applied voltage, can have similar effects [31]. In these cases, the gradient of the ‘plasma on’ phase is termed the effective dielectric capacitance
Example Q-V diagrams where increasing the applied voltage amplitudes leads to steeper gradients during ‘plasma on’ phases. The 55 kHz plane-parallel DBD in this example uses N2 gas and has a high
Effective capacitance during ‘plasma on’ phases
This data demonstrates that the higher the
Almond shaped Q-V diagrams, an example of which is depicted Figure 7, can be observed in PBRs, particularly with high dielectric constant materials [31], and with surface discharge DBDs such as plasma actuators [32]. In both cases, the almond shape is caused by the gradual expansion of the plasma across the available dielectric area during the discharge phase. In a plane-parallel DBD configuration, the gas gap is uniformly spaced and the plasma ignition voltage across the gap, the burning voltage
‘Almond’-shaped Q-V diagram generated using a BaTiO3 packed bed DBD discharging in 90% Ar–10% CO2. The reactor is the same as that used in [
In PBRs, the electric field strength prior to discharging is highest at certain localised points in the gap, either in the small gas gaps between, or near sharp features of, packing particles [33, 34]. In a plasma actuator, see Figure 8, the electric field is initially strongest at the minimum distance between the two electrodes. In both cases, as the applied voltage increases during the AC cycle, discharging will commence at the point where the electric field strength is highest (and the breakdown criterion is met first) and then gradually expand across the surface of the electrode, as the breakdown criterion is met for wider and wider gaps. Whilst this plasma expansion occurs, the fractional surface area of the gap capacitance
Plasma expansion across (a) a single pellet PBR and (b) a DBD plasma actuator, and (c) its influence on the shape of the Q-V diagram.
Regarding the analysis of almond shaped Q-V diagrams, the theory is the same as for Q-V diagrams with gradients less than
Seen from the perspective of the equivalent circuit of Figure 4, what needs to be kept in mind is that the entire area of the reactor that can potentially discharge is treated as a single point. This means that
Elliptical Q-V diagrams have been observed in a number of scenarios [35, 36]. For elliptical Q-V diagrams to be physical, there would have to be a continuous plasma current
Referring once more to the equivalent circuit in Figure 4, the typical capacitive behaviour during a ‘plasma off’ period would cease if the ‘black box’ element representing the plasma maintains an effective residual impedance
where
This result indicates that the minimum required residual electron density does not depend on DBD geometry, only on the driving frequency of the applied voltage
The next question is what residual electron density can be sustained between discharge half-cycles. To estimate this, the approximate recombination time of residual electron-ion pairs
where a typical value for the electron-ion recombination rate
Truly elliptical Q-V diagrams can be expected if ionisation (and increased electron densities) can be sustained over full periods of the AC voltage, but this is only expected for capacitive discharges at gas pressures well below 1 bar [46]. If elliptical Q-V diagrams are observed at atmospheric pressure, it could (a) be the result of a relatively unstable discharge combined with averaging Q-V data over a large number of applied voltage cycles, or (b) an error in the measurement setup.
\nA good way to check the measurement setup is to run it at low voltages, when no plasma is present in the reactor. If an elliptical Q-V diagram emerges, it can be indicative of a parasitic capacitance or inductance. A common source of parasitic components to the measurement circuit is poor connections between monitor capacitor, probe and/or oscilloscope. This can have an impact on the measurement of plasma power and the characterisation of the reactor when it is in operation, since the Q-V diagram may already have a non-zero area in the absence of plasma. This is especially important with small reactors, or applications where a high sensitivity power measurement is required [28]. The phase angle of an inductive circuit is different to a capacitive circuit, so that the phase shift between the voltage across the monitor capacitor
Elliptical Q-V diagram where stray inductance and capacitance are the dominating influence of the plot shape. Data is obtained using an unpublished coaxial PBR. The steps in the discharging line show the presence of streamer discharges, however, the curved capacitive line indicates that stray capacitance is influencing the Q-V diagram shape.
It is a common, and almost unavoidable, occurrence for Q-V diagrams to show noise during the discharging phase of the DBD cycle. The noise is caused by interference from the plasma microdischarges themselves, hence the reason that they only occur during the discharging phases. An example of noise experienced in Q-V diagrams is shown in Figure 10, as well as Refs. [47, 48]. The unfiltered plot in Figure 10 shows background noise during the capacitive phase, but larger spikes during the discharging phase of the DBD cycle.
\nQ-V diagram of unfiltered, noisy data, alongside the same data that has had the noise removed using a 2nd order, 20 point Savitzky-Golay filter. The original data is obtained using a small electrode area DBD with a dielectric packing material.
The background noise is usually broadband in nature and, provided it is not due to measuring near the noise floor of the oscilloscope (see Section 2.4), can be attributed to RF pickup. To mitigate this type of noise it is essential to ensure the shielding on both ends of a coaxial line is connected to the same ground. Moreover, when using low voltage oscilloscope probes, it is good practice not to use the alligator clip ground wire supplied with the probe, but to solder one end of a short wire directly between the ground side of the monitor capacitor and wrapping the other end tightly around the grounded barrel of the probe. The grounded barrel of the probe may be covered by a plastic sheath, but this can usually be removed with ease. The concept behind this approach is to remove any undesirable ‘loop antennas’ from the circuit, which would otherwise pick up any radiated electromagnetic noise from both the DBD reactor and other nearby sources.
\nThe large spikes are a direct consequence of the rapid increase in current (and correspondingly rapid shifts in charge) in the reactor + measurement system due to the ignition of individual filaments. With current rise times of < 1 ns, the individual discharges introduce high frequency harmonics into the measurement circuit. This becomes visible on the oscilloscope as ‘ringing’ signals, such as depicted in Figure 11. Generally, this ‘ringing’ is caused by impedance discontinuities in the measurement circuit. In any coaxial transmission line, transmitted voltage waves will reflect to some degree at points where the impedance is discontinuous. These impedance discontinuities tend to occur where the coaxial line is attached to the monitor capacitor, or where the line is attached to the scope, and will introduce at least some parasitic inductance. Since the value of this parasitic inductance
Close-up of a ringing signal in
Note that parasitic inductance, and subsequent ringing, is always introduced wherever a coaxial transmission line is interrupted, irrespective of whether the connections are mechanical or soldered. A standard method of removing the ringing is by including a low pass filter in the circuit. It is desirable to do this in the measurement circuit itself and not in post-processing, since ringing can introduce significant overshoots in the (apparent) measured voltage
The stepped Q-V diagram typically occurs when a small electrode area is used, making the number of individual streamers that can be formed per AC half-cycle low enough for individual filaments to be observed. In this case each ‘step’ in the Q-V diagram corresponds to an individual filamentary streamer transferring charge between the electrodes, see Figure 12 for an example. Stepped Q-V diagrams cause difficulty in trying to determine certain reactor operating characteristics from the geometry of the Q-V diagram, particularly burning voltage
Stepped Q-V diagram from a single AC cycle in a 100 kHz asymmetric planar DBD with a 3 mm2 electrode area discharging in air. The steps of the plot indicate there are 8 streamers in the rising voltage part of the discharge cycle. Details of the reactor design can be found in [
Applied voltage
To utilise the equivalent circuit of Figure 4 to determine (reactor-averaged) discharge properties from Q-V diagrams, as was done in Figure 13, the average gradient of the BC line segment can be used, as indicated in Figure 12. Due to variations in ignition voltage and amounts of charge transferred per filament, as well as variations in the number of streamers per discharge cycle, it is advised to average over a large number of applied voltage cycles when determining both
Since reactors for study of individual discharges are necessarily small, there is likely to be a large parasitic reactor capacitance, which enlarges the gradient
If the DBD features only one electrode covered with a dielectric, as is the case in Figure 12, only one half of the discharge cycle may be stepped, while the other shows a continuous discharge during at least part of the discharging slope. The purely filamentary discharge occurs when the dielectric side acts as cathode, with filaments propagating towards the dielectric in the same direction as the current, while a Townsend-like discharge can occur when the metal electrode serves as cathode [5, 12, 52, 53]. In asymmetric cases in general (whether due to geometry or driving voltage), the average gradients of BC and DA may be somewhat different and it may be required to use a value for
As we saw in the previous section, it is possible to discern individual filaments in Q-V diagrams. The existence of these individual filaments in DBDs was first discovered by Buss in 1932 [54]. In his work, he used photographic glass plates as dielectrics from which a number density of 15 filaments/cycle/cm2 could be determined. Similar photographic methods have resulted in number densities between 3 and 40 filaments/cycle/cm2 for DBDs in air at atmospheric pressure [55, 56, 57, 58]. However, filament footprints tend to overlap during a half-cycle and only a very limited number of cycles can be studied in one exposure, making accurate counting difficult. Monitoring the current through the DBD is, therefore, the preferred method for filament counting. Moreover, this allows the transferred charge/filament to be derived as well.
\nFor filament counting to work, filaments need to be sufficiently spread out over time. Since this is not necessarily the case, studies of filamentary current are often restricted to geometries favouring a single filament per voltage cycle [55, 59]. A small diameter current probe embedded in a larger planar DBD has also been used, but only to obtain data on individual current pulses [57, 60, 61]. Many literature sources use relatively large electrode surface areas >1 cm2, combined with direct digital post-processing on the DBD current
Schematic representation of a pulse measurement circuit. (a) the DBD with R-C circuit, from which the voltage on a 750 pF capacitor is measured. (b) the measured voltage signal (black line) is duplicated and delayed (grey line), and (c) the two signals subtracted from one another provide a measure of the voltage step during each pulse.
Figure 15 shows results obtained by applying this method to a multitude of DBD configurations. Figure 15(a) shows the average (or mean) charge transferred per filament, while Figure 15(b) shows the number density of filaments occurring during a half-cycle. Several scaling laws are revealed in this data, which are irrespective of the type of dielectric used: average charge/filament increases with increasing gap width
(a) Average transferred charge per filament and (b) the filament density during the positive half-cycle (
Aside from the behaviour of an average filament, the variation from filament to filament can be studied in detail using the same electrical measurements. Figure 16 shows histograms of the charge/filament obtained for two different systems: in both configurations the same alumina dielectric with
Normalised charge per filament distributions per applied voltage cycle for (a) a single filament in a pin-to-plane DBD and (b) approximately 9 interacting filaments in a plane-parallel DBD with
In this chapter, a thorough description of charge-voltage (
The work of Floran Peeters is part of project ‘EnOp’ of the Interreg V programme Flanders, Netherlands, with financial support from the European Union. This chapter is dedicated to the memory of Rein Rumphorst (1925-2018), without whom our measurements would have worked out only as well as we deserved.
\nThe demand for switching converters has been steadily increasing. The desired converters should be small and have high power density, high efficiency, good responsiveness, and good robustness. High responsiveness and high robustness are required for the control systems of switching converters. Voltage mode control (VMC) is the most basic control system of switching converters [1, 2]. Since the voltage mode control uses only one voltage sensor, it can be constructed at very low cost. However, since the stability of the control system is low, current mode control (CMC) is used for a general switching converter [3, 4]. Some studies suggest that responsiveness and robustness can be significantly improved using the current mode control (CMC) approach [1, 2, 3, 4]. However, it is difficult to improve the performance of boost-type DC-DC converters significantly using only this technology. Although buck-type DC-DC converters can be regarded as approximately linear circuits (regardless of the time-varying circuit), this is not so for boost-type DC-DC converters. This is because in boost-type DC-DC converters, the ON and OFF circuit states are different. As a result, the transfer function of any boost-type DC-DC converter includes an unstable zero (right half plane zero (
On the other hand, control of switching converter using sliding mode control (SMC) has been studied [5, 6, 7, 8, 9]. Sliding mode control has high robustness and is resistant to influences by plant fluctuations. However, the control system has a problem that it is very complicated compared with VMC and CMC.
In this research, we developed power balance mode control (PBMC), which is a new control method that incorporates SMC concept into CMC [10]. In the PBMC approach, the input voltage and the output current are incorporated into the control system as in the conventional control method, and new control items are added by calculation. As a result, the performance of the control system can be greatly improved, when compared with the conventional control method. Furthermore, since the added control items are constituted by four arithmetic operations, implementation is also very easy.
In this study, a single-phase boost-type DC-DC converter was used as a plant. Figure 1 shows the circuit diagram of the plant. To obtain the transfer function of this plant, a modeling method called the state-space averaging method was used. In this section, various transfer functions used for designing the control system of the DC-DC converter are described.
Single-phase boost-type DC-DC converter.
The switching converter is a time-varying circuit in which the state of the circuit can be set to either ON or OFF. Therefore, the state-space averaging method [11, 12, 13], which averages the circuit by a duty ratio, was used. The derivation for obtaining the transfer function of the switching converter using the state-space averaging method is shown below.
For circuit averaging, it is necessary to determine the circuit’s ON/OFF states. When mathematically modeling the state of a circuit, the state equation and the following output equation are used:
where
With respect to the circuit shown in Figure 2, the state equation and the output equation are expressed using the following equations:
Equivalent circuits for the ON and OFF states. (a) Switch Q1: ON; (b) switch Q1: OFF.
In Eq. (2), the inductor current and capacitor voltage comprise the state vector, while the input voltage and the output current comprise the input vector. Figure 2 shows the equivalent circuit for the ON and OFF states of the switch Q1.
When the state of a circuit is averaged over one switching period using the duty ratio, the state equation and the output equation are given as follows:
Here
where
Because the switching converter is controlled by the pulse width modulation (PWM) signal corresponding to the duty ratio, it is necessary to modulate the control signal from the compensator to the PWM signal. Figure 3 shows the correspondence between the control signal and the PWM signal. In an analog circuit, a comparator is used for comparing the control signal
PWM modulation
From Eq. (5), when the amplitude of the sawtooth wave is
When current and voltage are used for feedback directly, the sensor gain can be neglected. However, when the voltage is high, it is necessary to lower it to the voltage value that can be provided to the controller. In addition, when inputting the current value to the controller, it is necessary to convert it into voltage. Therefore, when designing a control system, it is necessary to consider various sensor gains. In this chapter, the voltage gain is denoted by
In this section, voltage mode control (VMC) and current mode control (CMC) are compared to the power balance mode control (PBMC).
Figure 4 shows the block diagram of the VMC. As shown, the control loop is configured to maintain a constant output voltage. The loop transfer function
Voltage mode control.
However, there is a long phase lag due to the second-order lag system 1/
In addition, there is a gain peak owing to the LC resonance. As a result, large overshoots or undershoots can occur in the inductor current and the output voltage following sudden changes such as load changes. In particular, the peak inductor current is remarkable, and when the overcurrent protection (OCP) operates, the DC-DC converter halts. For these reasons, VMC is typically not used in DC-DC converters.
Figure 5 shows the block diagram of the CMC. In the CMC, a control loop is added to the voltage control loop. The loop transfer function
Current mode control.
From Eq. (7), the second-order lag system 1/
In this section, the sliding mode control (SMC) of the buck-type DC-DC converter and the power balance mode control (PBMC) applied to the boost-type DC-DC converter are explained.
The SMC in the buck-type DC-DC converter, which is the foundation of the PBMC, is described here. Figure 6 shows the block diagram of the SMC. One of the SMCs in the buck-type DC-DC converter is the feedforward input of the charge/discharge current of the output capacitor to the output signal of the voltage compensator. For this reason, the voltage compensator adjusts the duty ratio and finely adjusts it with the charge/discharge current of the output capacitor.
Buck-type DC-DC converter using sliding mode control.
In the steady state, the amounts of charge and discharge are equivalent, and the feedforward input can be neglected. In the transient state, the amounts of charge and discharge are different, and the feedforward input directly adjusts the duty ratio.
Because the CMC also feeds back the inductor current, the duty ratio is finely adjusted. However, in the transient state, the inductor suppresses sudden changes in the current, and the system’s responsiveness worsens.
On the other hand, when the charge/discharge current of the output capacitor is used as the feedforward input, the charge/discharge current in the transient state rapidly changes depending on the capacitor. As a result, the duty ratio can be changed faster than for the CMC. Furthermore, when shifting from the transient state to the steady state, the average charge/discharge current becomes zero, and the influence of the feedforward input automatically decreases. Therefore, the feedforward input gain automatically becomes minimal during the transient and in the steady state.
In addition, by appropriately designing the various sensor gains and compensators of this control system, it is possible to set an operation state called the sliding mode. It is known that the control system operating in this sliding mode is not affected by disturbances or plant fluctuations. Therefore, responsiveness and robustness can be improved by operating in sliding mode.
Although this output capacitor current can be detected directly, equivalent series resistance (ESR) and equivalent series inductance (ESL) increase owing to the addition of a shunt resistance and a current transformer, which affects the control system and output voltage. In addition, in digital control systems, analog-to-digital conversion cannot be performed precisely owing to an increase in the noise associated with charging/discharging. On the other hand, it is possible to derive the charge/discharge current of the output capacitor without directly detecting it, by appropriately detecting the output current and the inductor current and performing the calculation. However, as the inductor current of the boost-type DC-DC converter flows only to the output side during the OFF period, the output current differs from the inductor current.
Therefore, it is necessary to consider the control system corresponding to the step-up-type DC-DC converter considering output capacitor current detection and digital control. In the next section, we describe the PBMC with improved responsiveness and robustness for boost-type DC-DC converters.
Figure 7 shows the block diagram of the PBMC. First, various blocks are described.
Power balance mode control.
In addition,
As a result, all output signals of the correction coefficients’ block can be considered as the values for the power stage.
First, when the detected output voltage and output current are fed into the multiplier, the output is expressed by Eq. (9).
Thus, the output power can be calculated. Next, when the calculated output power and the detected input voltage are provided to the divider, the output is expressed by Eq. (10).
Thus, the input current can be calculated. Because the input current of the boost-type DC-DC converter is equivalent to the inductor current, it is denoted by
The flowchart of the control methods.
In this mode, the calculated inductor current
As a result, the signal to be added to the output signal of the voltage compensator becomes positive and the duty ratio increases.
In this mode, the calculated inductor current
As a result, the signal to be added to the output signal of the voltage compensator becomes negative and the duty ratio decreases.
In this mode, the calculated inductor current is equal to the detected inductor current. This corresponds to a steady state, and because the input and output powers are ideally equal, the following relation holds:
As a result, as the signal to be added to the output signal of the voltage compensator becomes zero, the duty ratio does not fluctuate.
These conditions are summarized in Eq. (14).
To sum up, the PBMC is a control method that always compares the input power and the output power and compensates for the difference if there is one. In the next sections, operation verification studies for the different control methods are reported.
In this study, a comparative verification of the different control systems was performed using circuit simulations. Table 1 shows the circuit constants of the single-phase boost-type DC-DC converter, which is the analysis circuit. The control systems were constructed using these circuit parameters.
Description | Symbol | Value |
---|---|---|
Inductor current (100 W design) | 8.33 A | |
Output voltage | 48 V | |
Output power | 100/200 W | |
Switching frequency | 100 kHz | |
Inductance (100 W design) | 36 μH | |
Output capacitance (100 W design) | 500 μH | |
Equivalent series resistance (ESR) of | 58.5 mΩ | |
DC resistance of | 20 mΩ | |
Resistance of drain to source (ON) of Q1 | 58 mΩ | |
Forward resistance of Q1 (diode: D) | 130 mΩ |
Circuit parameters and specifications.
To provide a reference for the responses of these control systems, the gain crossover frequencies of the loop transfer functions for the different control methods were designed to be equal. In addition, the voltage compensator for the PBMC used the same 2-pole-1-zero (type-2) compensator as the current mode control.
The transfer function of the VMC includes second-order lag systems, as expressed by Eq. (4). In addition, the phase lags by 180° or more, owing to the RHP-zero. To improve the phase delay and to stabilize the operation of the control system, a 3-pole-2-zero (type-3) compensator was used. The transfer function of this 3-pole-2-zero compensator is given in Eq. (15).
A secondary delay system was included in both
where
In the PBMC, the difference between the calculated inductor current
Therefore, the voltage compensator used a 2-pole-1-zero compensator similar to the CMC. In our simulations, for simplicity, the values of the correction coefficients
Various parameters represented by capital letters on the right side of Eq. (17) are design values. As a result, the input/output voltage/current/power parameters were all 1 by design.
In this section, a comparative verification of each control system using circuit simulation is described. For the simulation, a circuit simulator PSIM manufactured by Powersim Corporation is used. Configure the configuration of the power stage and control stage using PSIM. The circuit constants of the power stage are shown in Table 1, and the parameters of the voltage compensator of the control stage are shown in Table 2 described later. In addition, each sensor gain and correction constants are as in Section 5.1.3.
Table 2 shows the compensators’ parameters for the different control methods. In addition, the gain crossover frequency of the loop transfer function was
Figure 9 shows the output voltage during load transient in each control method. Compared with CMC, over/undershoot of output voltage is small and settling time is short in PBMC. In particular, the settling time of the output voltage of the PBMC is very short compared with other control methods. Therefore, the PBMC can instantaneously respond to load fluctuations.
Output voltage responses for load transients. (a) Step-up load transient and (b) step-down load transient.
Figure 10 shows the inductor current during the load transient, for the different control methods. From Figure 10, the rise/fall time of the inductor current of the PBMC is very short compared with that of the other control methods. Because the rise/fall time of the inductor current of the PBMC is very short, the settling time of the output voltage becomes short. Although over/undershoots of the inductor current also appear in the PBMC, the outcome can be improved by appropriately setting the correction coefficient
Inductor current responses for load transients. (a) Step-up load transient and (b) step-down load transient.
Figure 11 shows the output voltage during the input voltage transient, for the different control methods. Compared with the other control methods, the over/undershoot of output voltage is smaller and the settling time is shorter for the PBMC method. Therefore, a system with PBMC can instantaneously respond to input voltage fluctuations.
Inductor current responses for input voltage transients. (a) Step-up input voltage transient and (b) step-down input voltage transient.
Figure 12 shows the inductor current during the input voltage transient, for the different control methods. From Figure 12, the rise/fall time of the inductor current for the PBMC method is much shorter compared with that of the other control methods. Because the rise/fall time of the inductor current for the PBMC method is very short, the settling time of the output voltage is short.
Inductor current responses for input voltage transients. (a) Step-up input voltage transient and (b) step-down input voltage transient.
The simulation results for the different control methods are compared below. Table 3 lists the simulation results for the load transient response, and Table 4 shows the simulation results for the input voltage transient response. The most efficient results are shown by *, while the least efficient ones are shown by **. From these tables, it is evident that the PBMC method yields the most efficient results in terms of almost all metrics, when compared with the other control systems. The effectiveness of the PBMC method is confirmed across all simulation results.
VMC | 35.3 | 1.86 × 103 | 1.86 × 103 | 4.00 × 104 | 3.42 × 104 |
CMC | 105.0 | 86.8 | – | 3.42 × 104 | – |
PBMC |
Compensator
Target value | Step-up transient | Step-down transient | ||
---|---|---|---|---|
Undershoot (mV) | Settling time (ms) | Overshoot (mV) | Settling time (ms) | |
VMC | 0.77 | 0.78 | ||
CMC | 735.2 | |||
PBMC | 667.1 |
Simulation results for the load transient response.
Target value | Step-up transient | Step-down transient | ||
---|---|---|---|---|
Overshoot (mV) | Settling time (ms) | Undershoot (mV) | Settling time (ms) | |
VMC | 3.86 | 3.96 | ||
CMC | 498.7 | 484.9 | ||
PBMC |
Simulation results for the input voltage transient response.
VMC method has only output components. Therefore, it is impossible to promptly respond to input fluctuations. Therefore, the overshoot and undershoot in the input voltage fluctuation are much larger than the other two control methods.
CMC method has input and output components one by one. However, even during transient, the settling time is long because it is always approximated to the first-order lag system.
PBMC method has all components of input and output. Therefore, it is thought that it be able to respond quickly to input/output fluctuations.
This chapter described fast-response and highly robust PBMC for boost-type DC-DC converters. PBMC uses control to compensate for the difference between input power and output power for the inner loop. Performances of the PBMC method and conventional control methods were compared and verified using circuit simulations. As a result, the PBMC method yielded the best results on all performance metrics. This confirms the effectiveness of PBMC.
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Then, the generic framework for particle filter algorithm is presented, followed by two important use cases regarding indoor positioning and multitarget tracking; for both problems, modified particle filter algorithms are presented followed by experimental results, implementation remarks, and a discussion. 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These heuristics are essentially based on a commonly used scheduling theory in Jackson’s extended heuristic. We present basic structural properties of the solutions delivered by Jackson’s heuristic and then illustrate how one can exploit them to build efficient heuristics.",book:{id:"5966",slug:"heuristics-and-hyper-heuristics-principles-and-applications",title:"Heuristics and Hyper-Heuristics",fullTitle:"Heuristics and Hyper-Heuristics - Principles and Applications"},signatures:"Nodari Vakhania",authors:[{id:"202585",title:"Prof.",name:"Nodari",middleName:null,surname:"Vakhania",slug:"nodari-vakhania",fullName:"Nodari Vakhania"}]}],mostDownloadedChaptersLast30Days:[{id:"56264",title:"Heuristics Techniques for Scheduling Problems with Reducing Waiting Time Variance",slug:"heuristics-techniques-for-scheduling-problems-with-reducing-waiting-time-variance",totalDownloads:1709,totalCrossrefCites:0,totalDimensionsCites:1,abstract:"In real computational world, scheduling is a decision making process. 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The paper will describe both approaches in different domain problems.",book:{id:"5966",slug:"heuristics-and-hyper-heuristics-principles-and-applications",title:"Heuristics and Hyper-Heuristics",fullTitle:"Heuristics and Hyper-Heuristics - Principles and Applications"},signatures:"Aleksandra Swiercz",authors:[{id:"203032",title:"Ph.D.",name:"Aleksandra",middleName:null,surname:"Swiercz",slug:"aleksandra-swiercz",fullName:"Aleksandra Swiercz"}]},{id:"55594",title:"Multi‐Objective Hyper‐Heuristics",slug:"multi-objective-hyper-heuristics",totalDownloads:1470,totalCrossrefCites:1,totalDimensionsCites:0,abstract:"Multi‐objective hyper‐heuristics is a search method or learning mechanism that operates over a fixed set of low‐level heuristics to solve multi‐objective optimization problems by controlling and combining the strengths of those heuristics. Although numerous papers on hyper‐heuristics have been published and several studies are still underway, most research has focused on single‐objective optimization. Work on hyper‐heuristics for multi‐objective optimization remains limited. This chapter draws attention to this area of research to help researchers and PhD students understand and reuse these methods. It also provides the basic concepts of multi‐objective optimization and hyper‐heuristics to facilitate a better understanding of the related research areas, in addition to exploring hyper‐heuristic methodologies that address multi‐objective optimization. Some design issues related to the development of hyper‐heuristic framework for multi‐objective optimization are discussed. 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Moreover, the emergence of new tools for information dissemination, such as interactive digital TV, makes the selection of access technology, factor of fundamental importance. One of the greatest advantages of using digital TV as means to disseminate information is the installation of applications. In this chapter, a load characterization of a typical application embedded in a digital TV is performed to determine its behavior. However, it is important to note that applications send information through an access technology. Therefore, this chapter, based on the study on load characterization, developed a methodology combining Bayesian networks and technique for order preference by similarity to ideal solution (TOPSIS) analytical approach to provide support to service providers to opt for a technology (power line communication, PLC, wireless, wired, etc.) for the return channel.",book:{id:"5966",slug:"heuristics-and-hyper-heuristics-principles-and-applications",title:"Heuristics and Hyper-Heuristics",fullTitle:"Heuristics and Hyper-Heuristics - Principles and Applications"},signatures:"Marcos César da Rocha Seruffo, Ádamo Lima de Santana, Carlos\nRenato Lisboa Francês and Nandamudi Lankalapalli Vijaykumar",authors:[{id:"10493",title:"Dr.",name:"Adamo",middleName:null,surname:"Lima De Santana",slug:"adamo-lima-de-santana",fullName:"Adamo Lima De Santana"},{id:"202549",title:"Dr.",name:"Marcos",middleName:null,surname:"Seruffo",slug:"marcos-seruffo",fullName:"Marcos Seruffo"},{id:"202551",title:"Dr.",name:"Nadamundi",middleName:null,surname:"Vijaykumar",slug:"nadamundi-vijaykumar",fullName:"Nadamundi Vijaykumar"},{id:"202552",title:"Dr.",name:"Carlos Renato",middleName:null,surname:"Francês",slug:"carlos-renato-frances",fullName:"Carlos Renato Francês"}]},{id:"55704",title:"Advanced Particle Filter Methods",slug:"advanced-particle-filter-methods",totalDownloads:1565,totalCrossrefCites:2,totalDimensionsCites:6,abstract:"This chapter presents a set of algorithmic methods based on particle filter heuristics. We start with an introduction to particle filters, which covers the main motivation and related works. Then, the generic framework for particle filter algorithm is presented, followed by two important use cases regarding indoor positioning and multitarget tracking; for both problems, modified particle filter algorithms are presented followed by experimental results, implementation remarks, and a discussion. 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The whole process of submitting an article and editing of the submitted article goes extremely smooth and fast, the number of reads and downloads of chapters is high, and the contributions are also frequently cited.",author:{id:"55578",name:"Antonio",surname:"Jurado-Navas",institutionString:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRisIQAS/Profile_Picture_1626166543950",slug:"antonio-jurado-navas",institution:{id:"720",name:"University of Malaga",country:{id:null,name:"Spain"}}}}]},series:{item:{id:"11",title:"Biochemistry",doi:"10.5772/intechopen.72877",issn:"2632-0983",scope:"Biochemistry, the study of chemical transformations occurring within living organisms, impacts all areas of life sciences, from molecular crystallography and genetics to ecology, medicine, and population biology. Biochemistry examines macromolecules - proteins, nucleic acids, carbohydrates, and lipids – and their building blocks, structures, functions, and interactions. Much of biochemistry is devoted to enzymes, proteins that catalyze chemical reactions, enzyme structures, mechanisms of action and their roles within cells. Biochemistry also studies small signaling molecules, coenzymes, inhibitors, vitamins, and hormones, which play roles in life processes. Biochemical experimentation, besides coopting classical chemistry methods, e.g., chromatography, adopted new techniques, e.g., X-ray diffraction, electron microscopy, NMR, radioisotopes, and developed sophisticated microbial genetic tools, e.g., auxotroph mutants and their revertants, fermentation, etc. More recently, biochemistry embraced the ‘big data’ omics systems. Initial biochemical studies have been exclusively analytic: dissecting, purifying, and examining individual components of a biological system; in the apt words of Efraim Racker (1913 –1991), “Don’t waste clean thinking on dirty enzymes.” Today, however, biochemistry is becoming more agglomerative and comprehensive, setting out to integrate and describe entirely particular biological systems. The ‘big data’ metabolomics can define the complement of small molecules, e.g., in a soil or biofilm sample; proteomics can distinguish all the comprising proteins, e.g., serum; metagenomics can identify all the genes in a complex environment, e.g., the bovine rumen. 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Dr. Blumenberg’s research is focused on the epidermis, expression of keratin genes, transcription profiling, keratinocyte differentiation, inflammatory diseases and cancers, and most recently the effects of the microbiome on the skin. He has published more than 100 peer-reviewed research articles and graduated numerous Ph.D. and postdoctoral students.",institutionString:null,institution:{name:"New York University Langone Medical Center",institutionURL:null,country:{name:"United States of America"}}},editorTwo:null,editorThree:null},subseries:{paginationCount:4,paginationItems:[{id:"14",title:"Cell and Molecular Biology",coverUrl:"https://cdn.intechopen.com/series_topics/covers/14.jpg",isOpenForSubmission:!0,editor:{id:"165627",title:"Dr.",name:"Rosa María",middleName:null,surname:"Martínez-Espinosa",slug:"rosa-maria-martinez-espinosa",fullName:"Rosa María Martínez-Espinosa",profilePictureURL:"https://mts.intechopen.com/storage/users/165627/images/system/165627.jpeg",biography:"Dr. Rosa María Martínez-Espinosa has been a Spanish Full Professor since 2020 (Biochemistry and Molecular Biology) and is currently Vice-President of International Relations and Cooperation development and leader of the research group 'Applied Biochemistry” (University of Alicante, Spain). Other positions she has held at the university include Vice-Dean of Master Programs, Vice-Dean of the Degree in Biology and Vice-Dean for Mobility and Enterprise and Engagement at the Faculty of Science (University of Alicante). She received her Bachelor in Biology in 1998 (University of Alicante) and her PhD in 2003 (Biochemistry, University of Alicante). She undertook post-doctoral research at the University of East Anglia (Norwich, U.K. 2004-2005; 2007-2008).\nHer multidisciplinary research focuses on investigating archaea and their potential applications in biotechnology. She has an H-index of 21. She has authored one patent and has published more than 70 indexed papers and around 60 book chapters.\nShe has contributed to more than 150 national and international meetings during the last 15 years. Her research interests include archaea metabolism, enzymes purification and characterization, gene regulation, carotenoids and bioplastics production, antioxidant\ncompounds, waste water treatments, and brines bioremediation.\nRosa María’s other roles include editorial board member for several journals related\nto biochemistry, reviewer for more than 60 journals (biochemistry, molecular biology, biotechnology, chemistry and microbiology) and president of several organizing committees in international meetings related to the N-cycle or respiratory processes.",institutionString:null,institution:{name:"University of Alicante",institutionURL:null,country:{name:"Spain"}}},editorTwo:null,editorThree:null},{id:"15",title:"Chemical Biology",coverUrl:"https://cdn.intechopen.com/series_topics/covers/15.jpg",isOpenForSubmission:!0,editor:{id:"441442",title:"Dr.",name:"Şükrü",middleName:null,surname:"Beydemir",slug:"sukru-beydemir",fullName:"Şükrü Beydemir",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y00003GsUoIQAV/Profile_Picture_1634557147521",biography:"Dr. Şükrü Beydemir obtained a BSc in Chemistry in 1995 from Yüzüncü Yıl University, MSc in Biochemistry in 1998, and PhD in Biochemistry in 2002 from Atatürk University, Turkey. He performed post-doctoral studies at Max-Planck Institute, Germany, and University of Florence, Italy in addition to making several scientific visits abroad. He currently works as a Full Professor of Biochemistry in the Faculty of Pharmacy, Anadolu University, Turkey. Dr. Beydemir has published over a hundred scientific papers spanning protein biochemistry, enzymology and medicinal chemistry, reviews, book chapters and presented several conferences to scientists worldwide. He has received numerous publication awards from various international scientific councils. He serves in the Editorial Board of several international journals. Dr. Beydemir is also Rector of Bilecik Şeyh Edebali University, Turkey.",institutionString:null,institution:{name:"Anadolu University",institutionURL:null,country:{name:"Turkey"}}},editorTwo:{id:"13652",title:"Prof.",name:"Deniz",middleName:null,surname:"Ekinci",slug:"deniz-ekinci",fullName:"Deniz Ekinci",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002aYLT1QAO/Profile_Picture_1634557223079",biography:"Dr. Deniz Ekinci obtained a BSc in Chemistry in 2004, MSc in Biochemistry in 2006, and PhD in Biochemistry in 2009 from Atatürk University, Turkey. He studied at Stetson University, USA, in 2007-2008 and at the Max Planck Institute of Molecular Cell Biology and Genetics, Germany, in 2009-2010. Dr. Ekinci currently works as a Full Professor of Biochemistry in the Faculty of Agriculture and is the Head of the Enzyme and Microbial Biotechnology Division, Ondokuz Mayıs University, Turkey. He is a member of the Turkish Biochemical Society, American Chemical Society, and German Genetics society. Dr. Ekinci published around ninety scientific papers, reviews and book chapters, and presented several conferences to scientists. He has received numerous publication awards from several scientific councils. 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He worked on the structure-function relationships of glycoconjugates and his main project was the investigations on the biological roles of the de-N-glycosylation enzymes (Endo-N-acetyl-β-D-glucosaminidase and peptide-N4-(N-acetyl-β-glucosaminyl) asparagine amidase). From 2002 he contributes to the understanding of the Blood-brain barrier functioning using proteomics approaches. He has published more than 70 papers. His teaching areas are energy metabolism and regulation, integration and organ specialization and metabolic adaptation.",institutionString:null,institution:{name:"Artois University",institutionURL:null,country:{name:"France"}}},editorTwo:null,editorThree:null},{id:"18",title:"Proteomics",coverUrl:"https://cdn.intechopen.com/series_topics/covers/18.jpg",isOpenForSubmission:!0,editor:{id:"200689",title:"Prof.",name:"Paolo",middleName:null,surname:"Iadarola",slug:"paolo-iadarola",fullName:"Paolo Iadarola",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bSCl8QAG/Profile_Picture_1623568118342",biography:"Paolo Iadarola graduated with a degree in Chemistry from the University of Pavia (Italy) in July 1972. He then worked as an Assistant Professor at the Faculty of Science of the same University until 1984. In 1985, Prof. Iadarola became Associate Professor at the Department of Biology and Biotechnologies of the University of Pavia and retired in October 2017. Since then, he has been working as an Adjunct Professor in the same Department at the University of Pavia. His research activity during the first years was primarily focused on the purification and structural characterization of enzymes from animal and plant sources. During this period, Prof. Iadarola familiarized himself with the conventional techniques used in column chromatography, spectrophotometry, manual Edman degradation, and electrophoresis). Since 1995, he has been working on: i) the determination in biological fluids (serum, urine, bronchoalveolar lavage, sputum) of proteolytic activities involved in the degradation processes of connective tissue matrix, and ii) on the identification of biological markers of lung diseases. In this context, he has developed and validated new methodologies (e.g., Capillary Electrophoresis coupled to Laser-Induced Fluorescence, CE-LIF) whose application enabled him to determine both the amounts of biochemical markers (Desmosines) in urine/serum of patients affected by Chronic Obstructive Pulmonary Disease (COPD) and the activity of proteolytic enzymes (Human Neutrophil Elastase, Cathepsin G, Pseudomonas aeruginosa elastase) in sputa of these patients. More recently, Prof. Iadarola was involved in developing techniques such as two-dimensional electrophoresis coupled to liquid chromatography/mass spectrometry (2DE-LC/MS) for the proteomic analysis of biological fluids aimed at the identification of potential biomarkers of different lung diseases. He is the author of about 150 publications (According to Scopus: H-Index: 23; Total citations: 1568- According to WOS: H-Index: 20; Total Citations: 1296) of peer-reviewed international journals. 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She gained considerable experience in developing and validating new methodologies whose applications allowed her to determine both the amount of biomarkers (Desmosine and Isodesmosine) in the urine of patients affected by COPD, and the activity of proteolytic enzymes (HNE, Cathepsin G, Pseudomonas aeruginosa elastase) in the sputa of these patients. Simona Viglio was also involved in research dealing with the supplementation of amino acids in patients with brain injury and chronic heart failure. She is presently engaged in the development of 2-DE and LC-MS techniques for the study of proteomics in biological fluids. The aim of this research is the identification of potential biomarkers of lung diseases. She is an author of about 90 publications (According to Scopus: H-Index: 23; According to WOS: H-Index: 20) on peer-reviewed journals, a member of the “Società Italiana di Biochimica e Biologia Molecolare,“ and a Consultant Reviewer for International Journal of Molecular Science, Journal of Chromatography A, COPD, Plos ONE and Nutritional Neuroscience.",institutionString:null,institution:{name:"University of Pavia",institutionURL:null,country:{name:"Italy"}}},editorThree:null}]},overviewPageOFChapters:{paginationCount:36,paginationItems:[{id:"82195",title:"Endoplasmic Reticulum: A Hub in Lipid Homeostasis",doi:"10.5772/intechopen.105450",signatures:"Raúl Ventura and María Isabel Hernández-Alvarez",slug:"endoplasmic-reticulum-a-hub-in-lipid-homeostasis",totalDownloads:4,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Updates on Endoplasmic Reticulum",coverURL:"https://cdn.intechopen.com/books/images_new/11674.jpg",subseries:{id:"14",title:"Cell and Molecular Biology"}}},{id:"82409",title:"Purinergic Signaling in Covid-19 Disease",doi:"10.5772/intechopen.105008",signatures:"Hailian Shen",slug:"purinergic-signaling-in-covid-19-disease",totalDownloads:5,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Purinergic System",coverURL:"https://cdn.intechopen.com/books/images_new/10801.jpg",subseries:{id:"17",title:"Metabolism"}}},{id:"82374",title:"The Potential of the Purinergic System as a Therapeutic Target of Natural Compounds in Cutaneous Melanoma",doi:"10.5772/intechopen.105457",signatures:"Gilnei Bruno da Silva, Daiane Manica, Marcelo Moreno and Margarete Dulce Bagatini",slug:"the-potential-of-the-purinergic-system-as-a-therapeutic-target-of-natural-compounds-in-cutaneous-mel",totalDownloads:10,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Purinergic System",coverURL:"https://cdn.intechopen.com/books/images_new/10801.jpg",subseries:{id:"17",title:"Metabolism"}}},{id:"82103",title:"The Role of Endoplasmic Reticulum Stress and Its Regulation in the Progression of Neurological and Infectious Diseases",doi:"10.5772/intechopen.105543",signatures:"Mary Dover, Michael Kishek, Miranda Eddins, Naneeta Desar, Ketema Paul and Milan Fiala",slug:"the-role-of-endoplasmic-reticulum-stress-and-its-regulation-in-the-progression-of-neurological-and-i",totalDownloads:6,totalCrossrefCites:0,totalDimensionsCites:0,authors:null,book:{title:"Updates on Endoplasmic Reticulum",coverURL:"https://cdn.intechopen.com/books/images_new/11674.jpg",subseries:{id:"14",title:"Cell and Molecular Biology"}}}]},overviewPagePublishedBooks:{paginationCount:32,paginationItems:[{type:"book",id:"7006",title:"Biochemistry and Health Benefits of Fatty Acids",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/7006.jpg",slug:"biochemistry-and-health-benefits-of-fatty-acids",publishedDate:"December 19th 2018",editedByType:"Edited by",bookSignature:"Viduranga Waisundara",hash:"c93a00abd68b5eba67e5e719f67fd20b",volumeInSeries:1,fullTitle:"Biochemistry and Health Benefits of Fatty Acids",editors:[{id:"194281",title:"Dr.",name:"Viduranga Y.",middleName:null,surname:"Waisundara",slug:"viduranga-y.-waisundara",fullName:"Viduranga Y. Waisundara",profilePictureURL:"https://mts.intechopen.com/storage/users/194281/images/system/194281.jpg",biography:"Dr. Viduranga Waisundara obtained her Ph.D. in Food Science\nand Technology from the Department of Chemistry, National\nUniversity of Singapore, in 2010. She was a lecturer at Temasek Polytechnic, Singapore from July 2009 to March 2013.\nShe relocated to her motherland of Sri Lanka and spearheaded the Functional Food Product Development Project at the\nNational Institute of Fundamental Studies from April 2013 to\nOctober 2016. She was a senior lecturer on a temporary basis at the Department of\nFood Technology, Faculty of Technology, Rajarata University of Sri Lanka. She is\ncurrently Deputy Principal of the Australian College of Business and Technology –\nKandy Campus, Sri Lanka. She is also the Global Harmonization Initiative (GHI)",institutionString:"Australian College of Business & Technology",institution:null}]},{type:"book",id:"6820",title:"Keratin",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/6820.jpg",slug:"keratin",publishedDate:"December 19th 2018",editedByType:"Edited by",bookSignature:"Miroslav Blumenberg",hash:"6def75cd4b6b5324a02b6dc0359896d0",volumeInSeries:2,fullTitle:"Keratin",editors:[{id:"31610",title:"Dr.",name:"Miroslav",middleName:null,surname:"Blumenberg",slug:"miroslav-blumenberg",fullName:"Miroslav Blumenberg",profilePictureURL:"https://mts.intechopen.com/storage/users/31610/images/system/31610.jpg",biography:"Miroslav Blumenberg, Ph.D., was born in Subotica and received his BSc in Belgrade, Yugoslavia. He completed his Ph.D. at MIT in Organic Chemistry; he followed up his Ph.D. with two postdoctoral study periods at Stanford University. Since 1983, he has been a faculty member of the RO Perelman Department of Dermatology, NYU School of Medicine, where he is codirector of a training grant in cutaneous biology. Dr. Blumenberg’s research is focused on the epidermis, expression of keratin genes, transcription profiling, keratinocyte differentiation, inflammatory diseases and cancers, and most recently the effects of the microbiome on the skin. He has published more than 100 peer-reviewed research articles and graduated numerous Ph.D. and postdoctoral students.",institutionString:null,institution:{name:"New York University Langone Medical Center",institutionURL:null,country:{name:"United States of America"}}}]},{type:"book",id:"7978",title:"Vitamin A",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/7978.jpg",slug:"vitamin-a",publishedDate:"May 15th 2019",editedByType:"Edited by",bookSignature:"Leila Queiroz Zepka, Veridiana Vera de Rosso and Eduardo Jacob-Lopes",hash:"dad04a658ab9e3d851d23705980a688b",volumeInSeries:3,fullTitle:"Vitamin A",editors:[{id:"261969",title:"Dr.",name:"Leila",middleName:null,surname:"Queiroz Zepka",slug:"leila-queiroz-zepka",fullName:"Leila Queiroz Zepka",profilePictureURL:"https://mts.intechopen.com/storage/users/261969/images/system/261969.png",biography:"Prof. Dr. Leila Queiroz Zepka is currently an associate professor in the Department of Food Technology and Science, Federal University of Santa Maria, Brazil. She has more than fifteen years of teaching and research experience. She has published more than 550 scientific publications/communications, including 15 books, 50 book chapters, 100 original research papers, 380 research communications in national and international conferences, and 12 patents. She is a member of the editorial board of five journals and acts as a reviewer for several national and international journals. 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The preliminary objectives of the study are to understand and develop the evidence-based tools and interventions for the control and prevention of malaria in different sites of the INDIA. Alongside, with the help of next-generation genomics study, the team has studied the antimalarial drug resistance in India. Further, he has extended his research in the development of Humanized mice for the study of liver-stage malaria and identification of molecular marker(s) for the Artemisinin resistance. At present, his research focuses on understanding the role of B cells in the activation of CD8+ T cells in malaria. Received the CSIR-SRF (Senior Research Fellow) award-2018, FIMSA (Federation of Immunological Societies of Asia-Oceania) Travel Bursary award to attend the IUIS-IIS-FIMSA Immunology course-2019',institutionString:"Nirma University",institution:{name:"Nirma University",country:{name:"India"}}},{id:"334383",title:"Ph.D.",name:"Simone",middleName:"Ulrich",surname:"Ulrich Picoli",slug:"simone-ulrich-picoli",fullName:"Simone Ulrich Picoli",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/334383/images/15919_n.jpg",biography:"Graduated in Pharmacy from Universidade Luterana do Brasil (1999), Master in Agricultural and Environmental Microbiology from Federal University of Rio Grande do Sul (2002), Specialization in Clinical Microbiology from Universidade de São Paulo, USP (2007) and PhD in Sciences in Gastroenterology and Hepatology (2012). She is currently an Adjunct Professor at Feevale University in Medicine and Biomedicine courses and a permanent professor of the Academic Master\\'s Degree in Virology. She has experience in the field of Microbiology, with an emphasis on Bacteriology, working mainly on the following topics: bacteriophages, bacterial resistance, clinical microbiology and food microbiology.",institutionString:null,institution:{name:"Universidade Feevale",country:{name:"Brazil"}}},{id:"229220",title:"Dr.",name:"Amjad",middleName:"Islam",surname:"Aqib",slug:"amjad-aqib",fullName:"Amjad Aqib",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/229220/images/system/229220.png",biography:"Dr. Amjad Islam Aqib obtained a DVM and MSc (Hons) from University of Agriculture Faisalabad (UAF), Pakistan, and a PhD from the University of Veterinary and Animal Sciences Lahore, Pakistan. Dr. Aqib joined the Department of Clinical Medicine and Surgery at UAF for one year as an assistant professor where he developed a research laboratory designated for pathogenic bacteria. Since 2018, he has been Assistant Professor/Officer in-charge, Department of Medicine, Manager Research Operations and Development-ORIC, and President One Health Club at Cholistan University of Veterinary and Animal Sciences, Bahawalpur, Pakistan. He has nearly 100 publications to his credit. His research interests include epidemiological patterns and molecular analysis of antimicrobial resistance and modulation and vaccine development against animal pathogens of public health concern.",institutionString:"Cholistan University of Veterinary and Animal Sciences",institution:null},{id:"62900",title:"Prof.",name:"Fethi",middleName:null,surname:"Derbel",slug:"fethi-derbel",fullName:"Fethi Derbel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/62900/images/system/62900.jpeg",biography:"Professor Fethi Derbel was born in 1960 in Tunisia. He received his medical degree from the Sousse Faculty of Medicine at Sousse, University of Sousse, Tunisia. He completed his surgical residency in General Surgery at the University Hospital Farhat Hached of Sousse and was a member of the Unit of Liver Transplantation in the University of Rennes, France. He then worked in the Department of Surgery at the Sahloul University Hospital in Sousse. Professor Derbel is presently working at the Clinique les Oliviers, Sousse, Tunisia. His hospital activities are mostly concerned with laparoscopic, colorectal, pancreatic, hepatobiliary, and gastric surgery. He is also very interested in hernia surgery and performs ventral hernia repairs and inguinal hernia repairs. He has been a member of the GREPA and Tunisian Hernia Society (THS). During his residency, he managed patients suffering from diabetic foot, and he was very interested in this pathology. For this reason, he decided to coordinate a book project dealing with the diabetic foot. Professor Derbel has published many articles in journals and collaborates intensively with IntechOpen Access Publisher as an editor.",institutionString:"Clinique les Oliviers",institution:null},{id:"300144",title:"Dr.",name:"Meriem",middleName:null,surname:"Braiki",slug:"meriem-braiki",fullName:"Meriem Braiki",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/300144/images/system/300144.jpg",biography:"Dr. Meriem Braiki is a specialist in pediatric surgeon from Tunisia. She was born in 1985. She received her medical degree from the University of Medicine at Sousse, Tunisia. She achieved her surgical residency training periods in Pediatric Surgery departments at University Hospitals in Monastir, Tunis and France.\r\nShe is currently working at the Pediatric surgery department, Sidi Bouzid Hospital, Tunisia. Her hospital activities are mostly concerned with laparoscopic, parietal, urological and digestive surgery. She has published several articles in diffrent journals.",institutionString:"Sidi Bouzid Regional Hospital",institution:null},{id:"229481",title:"Dr.",name:"Erika M.",middleName:"Martins",surname:"de Carvalho",slug:"erika-m.-de-carvalho",fullName:"Erika M. de Carvalho",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/229481/images/6397_n.jpg",biography:null,institutionString:null,institution:{name:"Oswaldo Cruz Foundation",country:{name:"Brazil"}}},{id:"186537",title:"Prof.",name:"Tonay",middleName:null,surname:"Inceboz",slug:"tonay-inceboz",fullName:"Tonay Inceboz",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/186537/images/system/186537.jfif",biography:"I was graduated from Ege University of Medical Faculty (Turkey) in 1988 and completed his Med. PhD degree in Medical Parasitology at the same university. I became an Associate Professor in 2008 and Professor in 2014. I am currently working as a Professor at the Department of Medical Parasitology at Dokuz Eylul University, Izmir, Turkey.\n\nI have given many lectures, presentations in different academic meetings. I have more than 60 articles in peer-reviewed journals, 18 book chapters, 1 book editorship.\n\nMy research interests are Echinococcus granulosus, Echinococcus multilocularis (diagnosis, life cycle, in vitro and in vivo cultivation), and Trichomonas vaginalis (diagnosis, PCR, and in vitro cultivation).",institutionString:"Dokuz Eylül University",institution:{name:"Dokuz Eylül University",country:{name:"Turkey"}}},{id:"71812",title:"Prof.",name:"Hanem Fathy",middleName:"Fathy",surname:"Khater",slug:"hanem-fathy-khater",fullName:"Hanem Fathy Khater",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/71812/images/1167_n.jpg",biography:"Prof. Khater is a Professor of Parasitology at Benha University, Egypt. She studied for her doctoral degree, at the Department of Entomology, College of Agriculture, Food and Natural Resources, University of Missouri, Columbia, USA. She has completed her Ph.D. degrees in Parasitology in Egypt, from where she got the award for “the best scientific Ph.D. dissertation”. She worked at the School of Biological Sciences, Bristol, England, the UK in controlling insects of medical and veterinary importance as a grant from Newton Mosharafa, the British Council. Her research is focused on searching of pesticides against mosquitoes, house flies, lice, green bottle fly, camel nasal botfly, soft and hard ticks, mites, and the diamondback moth as well as control of several parasites using safe and natural materials to avoid drug resistances and environmental contamination.",institutionString:null,institution:{name:"Banha University",country:{name:"Egypt"}}},{id:"99780",title:"Prof.",name:"Omolade",middleName:"Olayinka",surname:"Okwa",slug:"omolade-okwa",fullName:"Omolade Okwa",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/99780/images/system/99780.jpg",biography:"Omolade Olayinka Okwa is presently a Professor of Parasitology at Lagos State University, Nigeria. She has a PhD in Parasitology (1997), an MSc in Cellular Parasitology (1992), and a BSc (Hons) Zoology (1990) all from the University of Ibadan, Nigeria. She teaches parasitology at the undergraduate and postgraduate levels. She was a recipient of a Commonwealth fellowship supported by British Council tenable at the Centre for Entomology and Parasitology (CAEP), Keele University, United Kingdom between 2004 and 2005. She was awarded an Honorary Visiting Research Fellow at the same university from 2005 to 2007. \nShe has been an external examiner to the Department of Veterinary Microbiology and Parasitology, University of Ibadan, MSc programme between 2010 and 2012. She is a member of the Nigerian Society of Experimental Biology (NISEB), Parasitology and Public Health Society of Nigeria (PPSN), Science Association of Nigeria (SAN), Zoological Society of Nigeria (ZSN), and is Vice Chairperson of the Organisation of Women in Science (OWSG), LASU chapter. She served as Head of Department of Zoology and Environmental Biology, Lagos State University from 2007 to 2010 and 2014 to 2016. She is a reviewer for several local and international journals such as Unilag Journal of Science, Libyan Journal of Medicine, Journal of Medicine and Medical Sciences, and Annual Research and Review in Science. \nShe has authored 45 scientific research publications in local and international journals, 8 scientific reviews, 4 books, and 3 book chapters, which includes the books “Malaria Parasites” and “Malaria” which are IntechOpen access publications.",institutionString:"Lagos State University",institution:{name:"Lagos State University",country:{name:"Nigeria"}}},{id:"273100",title:"Dr.",name:"Vijay",middleName:null,surname:"Gayam",slug:"vijay-gayam",fullName:"Vijay Gayam",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/273100/images/system/273100.jpeg",biography:"Dr. Vijay Bhaskar Reddy Gayam is currently practicing as an internist at Interfaith Medical Center in Brooklyn, New York, USA. He is also a Clinical Assistant Professor at the SUNY Downstate University Hospital and Adjunct Professor of Medicine at the American University of Antigua. He is a holder of an M.B.B.S. degree bestowed to him by Osmania Medical College and received his M.D. at Interfaith Medical Center. His career goals thus far have heavily focused on direct patient care, medical education, and clinical research. He currently serves in two leadership capacities; Assistant Program Director of Medicine at Interfaith Medical Center and as a Councilor for the American\r\nFederation for Medical Research. As a true academician and researcher, he has more than 50 papers indexed in international peer-reviewed journals. He has also presented numerous papers in multiple national and international scientific conferences. His areas of research interest include general internal medicine, gastroenterology and hepatology. He serves as an editor, editorial board member and reviewer for multiple international journals. His research on Hepatitis C has been very successful and has led to multiple research awards, including the 'Equity in Prevention and Treatment Award” from the New York Department of Health Viral Hepatitis Symposium (2018) and the 'Presidential Poster Award” awarded to him by the American College of Gastroenterology (2018). He was also awarded 'Outstanding Clinician in General Medicine” by Venus International Foundation for his extensive research expertise and services, perform over and above the standard expected in the advancement of healthcare, patient safety and quality of care.",institutionString:"Interfaith Medical Center",institution:{name:"Interfaith Medical Center",country:{name:"United States of America"}}},{id:"93517",title:"Dr.",name:"Clement",middleName:"Adebajo",surname:"Meseko",slug:"clement-meseko",fullName:"Clement Meseko",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/93517/images/system/93517.jpg",biography:"Dr. Clement Meseko obtained DVM and PhD degree in Veterinary Medicine and Virology respectively. He has worked for over 20 years in both private and public sectors including the academia, contributing to knowledge and control of infectious disease. Through the application of epidemiological skill, classical and molecular virological skills, he investigates viruses of economic and public health importance for the mitigation of the negative impact on people, animal and the environment in the context of Onehealth. \r\nDr. Meseko’s field experience on animal and zoonotic diseases and pathogen dynamics at the human-animal interface over the years shaped his carrier in research and scientific inquiries. He has been part of the investigation of Highly Pathogenic Avian Influenza incursions in sub Saharan Africa and monitors swine Influenza (Pandemic influenza Virus) agro-ecology and potential for interspecies transmission. He has authored and reviewed a number of journal articles and book chapters.",institutionString:"National Veterinary Research Institute",institution:{name:"National Veterinary Research Institute",country:{name:"Nigeria"}}},{id:"158026",title:"Prof.",name:"Shailendra K.",middleName:null,surname:"Saxena",slug:"shailendra-k.-saxena",fullName:"Shailendra K. Saxena",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRET3QAO/Profile_Picture_2022-05-10T10:10:26.jpeg",biography:"Professor Dr. Shailendra K. Saxena is a vice dean and professor at King George's Medical University, Lucknow, India. His research interests involve understanding the molecular mechanisms of host defense during human viral infections and developing new predictive, preventive, and therapeutic strategies for them using Japanese encephalitis virus (JEV), HIV, and emerging viruses as a model via stem cell and cell culture technologies. His research work has been published in various high-impact factor journals (Science, PNAS, Nature Medicine) with a high number of citations. He has received many awards and honors in India and abroad including various Young Scientist Awards, BBSRC India Partnering Award, and Dr. JC Bose National Award of Department of Biotechnology, Min. of Science and Technology, Govt. of India. Dr. Saxena is a fellow of various international societies/academies including the Royal College of Pathologists, United Kingdom; Royal Society of Medicine, London; Royal Society of Biology, United Kingdom; Royal Society of Chemistry, London; and Academy of Translational Medicine Professionals, Austria. He was named a Global Leader in Science by The Scientist. He is also an international opinion leader/expert in vaccination for Japanese encephalitis by IPIC (UK).",institutionString:"King George's Medical University",institution:{name:"King George's Medical University",country:{name:"India"}}},{id:"94928",title:"Dr.",name:"Takuo",middleName:null,surname:"Mizukami",slug:"takuo-mizukami",fullName:"Takuo Mizukami",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/94928/images/6402_n.jpg",biography:null,institutionString:null,institution:{name:"National Institute of Infectious Diseases",country:{name:"Japan"}}},{id:"233433",title:"Dr.",name:"Yulia",middleName:null,surname:"Desheva",slug:"yulia-desheva",fullName:"Yulia Desheva",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/233433/images/system/233433.png",biography:"Dr. Yulia Desheva is a leading researcher at the Institute of Experimental Medicine, St. Petersburg, Russia. She is a professor in the Stomatology Faculty, St. Petersburg State University. She has expertise in the development and evaluation of a wide range of live mucosal vaccines against influenza and bacterial complications. Her research interests include immunity against influenza and COVID-19 and the development of immunization schemes for high-risk individuals.",institutionString:'Federal State Budgetary Scientific Institution "Institute of Experimental Medicine"',institution:null},{id:"238958",title:"Mr.",name:"Atamjit",middleName:null,surname:"Singh",slug:"atamjit-singh",fullName:"Atamjit Singh",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/238958/images/6575_n.jpg",biography:null,institutionString:null,institution:null},{id:"333753",title:"Dr.",name:"Rais",middleName:null,surname:"Ahmed",slug:"rais-ahmed",fullName:"Rais Ahmed",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/333753/images/20168_n.jpg",biography:null,institutionString:null,institution:null},{id:"252058",title:"M.Sc.",name:"Juan",middleName:null,surname:"Sulca",slug:"juan-sulca",fullName:"Juan Sulca",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/252058/images/12834_n.jpg",biography:null,institutionString:null,institution:null},{id:"191392",title:"Dr.",name:"Marimuthu",middleName:null,surname:"Govindarajan",slug:"marimuthu-govindarajan",fullName:"Marimuthu Govindarajan",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/191392/images/5828_n.jpg",biography:"Dr. M. Govindarajan completed his BSc degree in Zoology at Government Arts College (Autonomous), Kumbakonam, and MSc, MPhil, and PhD degrees at Annamalai University, Annamalai Nagar, Tamil Nadu, India. He is serving as an assistant professor at the Department of Zoology, Annamalai University. His research interests include isolation, identification, and characterization of biologically active molecules from plants and microbes. He has identified more than 20 pure compounds with high mosquitocidal activity and also conducted high-quality research on photochemistry and nanosynthesis. He has published more than 150 studies in journals with impact factor and 2 books in Lambert Academic Publishing, Germany. He serves as an editorial board member in various national and international scientific journals.",institutionString:null,institution:null},{id:"274660",title:"Dr.",name:"Damodar",middleName:null,surname:"Paudel",slug:"damodar-paudel",fullName:"Damodar Paudel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/274660/images/8176_n.jpg",biography:"I am DrDamodar Paudel,currently working as consultant Physician in Nepal police Hospital.",institutionString:null,institution:null},{id:"241562",title:"Dr.",name:"Melvin",middleName:null,surname:"Sanicas",slug:"melvin-sanicas",fullName:"Melvin Sanicas",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/241562/images/6699_n.jpg",biography:null,institutionString:null,institution:null},{id:"337446",title:"Dr.",name:"Maria",middleName:null,surname:"Zavala-Colon",slug:"maria-zavala-colon",fullName:"Maria Zavala-Colon",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"University of Puerto Rico, Medical Sciences Campus",country:{name:"United States of America"}}},{id:"338856",title:"Mrs.",name:"Nur Alvira",middleName:null,surname:"Pascawati",slug:"nur-alvira-pascawati",fullName:"Nur Alvira Pascawati",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"Universitas Respati Yogyakarta",country:{name:"Indonesia"}}},{id:"441116",title:"Dr.",name:"Jovanka M.",middleName:null,surname:"Voyich",slug:"jovanka-m.-voyich",fullName:"Jovanka M. 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Animals need to receive a properly balanced diet. One of the new challenges we are now faced with is sustainable animal diets (STAND) that involve the 3 P’s (People, Planet, and Profitability). We must develop animal feed that does not compete with human food, use antibiotics, and explore new growth promoters options, such as plant extracts or compounds that promote feed efficiency (e.g., monensin, oils, enzymes, probiotics). These new feed options must also be environmentally friendly, reducing the Carbon footprint, CH4, N, and P emissions to the environment, with an adequate formulation of nutrients.",coverUrl:"https://cdn.intechopen.com/series_topics/covers/20.jpg",hasOnlineFirst:!0,hasPublishedBooks:!0,annualVolume:11416,editor:{id:"175967",title:"Dr.",name:"Manuel",middleName:null,surname:"Gonzalez Ronquillo",slug:"manuel-gonzalez-ronquillo",fullName:"Manuel Gonzalez Ronquillo",profilePictureURL:"https://mts.intechopen.com/storage/users/175967/images/system/175967.png",biography:"Dr. Manuel González Ronquillo obtained his doctorate degree from the University of Zaragoza, Spain, in 2001. He is a research professor at the Faculty of Veterinary Medicine and Animal Husbandry, Autonomous University of the State of Mexico. He is also a level-2 researcher. He received a Fulbright-Garcia Robles fellowship for a postdoctoral stay at the US Dairy Forage Research Center, Madison, Wisconsin, USA in 2008–2009. He received grants from Alianza del Pacifico for a stay at the University of Magallanes, Chile, in 2014, and from Consejo Nacional de Ciencia y Tecnología (CONACyT) to work in the Food and Agriculture Organization’s Animal Production and Health Division (AGA), Rome, Italy, in 2014–2015. He has collaborated with researchers from different countries and published ninety-eight journal articles. He teaches various degree courses in zootechnics, sheep production, and agricultural sciences and natural resources.\n\nDr. Ronquillo’s research focuses on the evaluation of sustainable animal diets (StAnD), using native resources of the region, decreasing carbon footprint, and applying meta-analysis and mathematical models for a better understanding of animal production.",institutionString:null,institution:{name:"Universidad Autónoma del Estado de México",institutionURL:null,country:{name:"Mexico"}}},editorTwo:null,editorThree:null,series:{id:"13",title:"Veterinary Medicine and Science",doi:"10.5772/intechopen.73681",issn:"2632-0517"},editorialBoard:[{id:"175762",title:"Dr.",name:"Alfredo J.",middleName:null,surname:"Escribano",slug:"alfredo-j.-escribano",fullName:"Alfredo J. 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