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Venkateswarlu",coverURL:"https://cdn.intechopen.com/books/images_new/371.jpg",editedByType:"Edited by",editors:[{id:"58592",title:"Dr.",name:"Arun",surname:"Shanker",slug:"arun-shanker",fullName:"Arun Shanker"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"},chapters:[{id:"18395",title:"Imaging of Chlorophyll a Fluorescence: A Tool to Study Abiotic Stress in Plants",slug:"imaging-of-chlorophyll-a-fluorescence-a-tool-to-study-abiotic-stress-in-plants",signatures:"Lucia Guidi and Elena Degl’Innocenti",authors:[{id:"47052",title:"Dr.",name:"Lucia",middleName:null,surname:"Guidi",fullName:"Lucia Guidi",slug:"lucia-guidi"},{id:"59510",title:"Dr.",name:"Elena",middleName:null,surname:"Degl'Innocenti",fullName:"Elena Degl'Innocenti",slug:"elena-degl'innocenti"}]},{id:"18396",title:"Salinity Stress and Salt Tolerance",slug:"salinity-stress-and-salt-tolerance",signatures:"Petronia Carillo, Maria Grazia Annunziata, Giovanni Pontecorvo, Amodio Fuggi and Pasqualina Woodrow",authors:[{id:"47290",title:"Prof.",name:"Giovanni",middleName:null,surname:"Pontecorvo",fullName:"Giovanni Pontecorvo",slug:"giovanni-pontecorvo"},{id:"47803",title:"Dr.",name:"Pasqualina",middleName:null,surname:"Woodrow",fullName:"Pasqualina Woodrow",slug:"pasqualina-woodrow"},{id:"47804",title:"Prof.",name:"Petronia",middleName:null,surname:"Carillo",fullName:"Petronia Carillo",slug:"petronia-carillo"},{id:"47808",title:"Prof.",name:"Amodio",middleName:null,surname:"Fuggi",fullName:"Amodio Fuggi",slug:"amodio-fuggi"},{id:"47809",title:"Dr.",name:"Maria Grazia",middleName:null,surname:"Annunziata",fullName:"Maria Grazia Annunziata",slug:"maria-grazia-annunziata"}]},{id:"18397",title:"Abiotic Stress in Harvested Fruits and Vegetables",slug:"abiotic-stress-in-harvested-fruits-and-vegetables",signatures:"Peter M.A. Toivonen and D. Mark Hodges",authors:[{id:"48052",title:"Dr.",name:"Mark",middleName:null,surname:"Hodges",fullName:"Mark Hodges",slug:"mark-hodges"},{id:"51845",title:"Dr.",name:"Peter",middleName:"M.A.",surname:"Toivonen",fullName:"Peter Toivonen",slug:"peter-toivonen"}]},{id:"18398",title:"Towards Understanding Plant Response to Heavy Metal Stress",slug:"towards-understanding-plant-response-to-heavy-metal-stress",signatures:"Zhao Yang and Chengcai Chu",authors:[{id:"56133",title:"Prof.",name:"Chengcai",middleName:null,surname:"Chu",fullName:"Chengcai Chu",slug:"chengcai-chu"},{id:"56235",title:"Dr.",name:"Zhao",middleName:null,surname:"Yang",fullName:"Zhao Yang",slug:"zhao-yang"}]},{id:"18399",title:"Plant N Fluxes and Modulation by Nitrogen, Heat and Water Stresses: A Review Based on Comparison of Legumes and Non Legume Plants",slug:"plant-n-fluxes-and-modulation-by-nitrogen-heat-and-water-stresses-a-review-based-on-comparison-of-le",signatures:"Salon Christophe, Avice Jean-Christophe, Larmure 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Regions",slug:"current-knowledge-in-physiological-and-genetic-mechanisms-underpinning-tolerances-to-alkaline-and-sa",signatures:"Muhammad Javid, Marc Nicolas and Rebecca Ford",authors:[{id:"51256",title:"Dr.",name:"Rebecca",middleName:null,surname:"Ford",fullName:"Rebecca Ford",slug:"rebecca-ford"},{id:"58523",title:"Mr",name:"Muhammad",middleName:null,surname:"Javid",fullName:"Muhammad Javid",slug:"muhammad-javid"},{id:"58524",title:"Dr.",name:"Marc",middleName:null,surname:"Nicolas",fullName:"Marc Nicolas",slug:"marc-nicolas"}]},{id:"18404",title:"Trehalose and Abiotic Stress in Biological Systems",slug:"trehalose-and-abiotic-stress-in-biological-systems",signatures:"Mihaela Iordachescu and Ryozo Imai",authors:[{id:"46784",title:"Prof.",name:"Ryozo",middleName:null,surname:"Imai",fullName:"Ryozo Imai",slug:"ryozo-imai"},{id:"60152",title:"Dr",name:"Mihaela",middleName:null,surname:"Iordachescu",fullName:"Mihaela Iordachescu",slug:"mihaela-iordachescu"}]},{id:"18405",title:"Glyoxalase System and Reactive Oxygen Species Detoxification System in Plant Abiotic Stress Response and Tolerance: An Intimate Relationship",slug:"glyoxalase-system-and-reactive-oxygen-species-detoxification-system-in-plant-abiotic-stress-response",signatures:"Mohammad Anwar Hossain, Jaime A. Teixeira da Silva and Masayuki Fujita",authors:[{id:"47687",title:"Prof.",name:"Masayuki",middleName:null,surname:"Fujita",fullName:"Masayuki Fujita",slug:"masayuki-fujita"},{id:"57620",title:"Dr.",name:"Mohammad",middleName:"Anwar",surname:"Hossain",fullName:"Mohammad Hossain",slug:"mohammad-hossain"},{id:"94545",title:"Dr.",name:"Jaime A.",middleName:null,surname:"Teixeira Da Silva",fullName:"Jaime A. Teixeira Da Silva",slug:"jaime-a.-teixeira-da-silva"}]},{id:"18406",title:"Stomatal Responses to Drought Stress and Air Humidity",slug:"stomatal-responses-to-drought-stress-and-air-humidity",signatures:"Arve LE, Torre S, Olsen JE and Tanino KK",authors:[{id:"58772",title:"Ms.",name:"Louise",middleName:null,surname:"Arve",fullName:"Louise Arve",slug:"louise-arve"},{id:"59624",title:"Dr.",name:"Sissel",middleName:null,surname:"Torre",fullName:"Sissel Torre",slug:"sissel-torre"},{id:"59625",title:"Prof.",name:"Jorunn",middleName:"Elisabeth",surname:"Olsen",fullName:"Jorunn Olsen",slug:"jorunn-olsen"},{id:"59626",title:"Dr.",name:"Karen",middleName:null,surname:"Tanino",fullName:"Karen Tanino",slug:"karen-tanino"}]},{id:"18407",title:"Plant Genes for Abiotic Stress",slug:"plant-genes-for-abiotic-stress",signatures:"Loredana F. Ciarmiello, Pasqualina Woodrow, Amodio Fuggi, Giovanni Pontecorvo and Petronia Carillo",authors:[{id:"47290",title:"Prof.",name:"Giovanni",middleName:null,surname:"Pontecorvo",fullName:"Giovanni Pontecorvo",slug:"giovanni-pontecorvo"},{id:"47803",title:"Dr.",name:"Pasqualina",middleName:null,surname:"Woodrow",fullName:"Pasqualina Woodrow",slug:"pasqualina-woodrow"},{id:"47804",title:"Prof.",name:"Petronia",middleName:null,surname:"Carillo",fullName:"Petronia Carillo",slug:"petronia-carillo"},{id:"47808",title:"Prof.",name:"Amodio",middleName:null,surname:"Fuggi",fullName:"Amodio Fuggi",slug:"amodio-fuggi"},{id:"47816",title:"Dr.",name:"Loredana F.",middleName:null,surname:"Ciarmiello",fullName:"Loredana F. Ciarmiello",slug:"loredana-f.-ciarmiello"}]},{id:"18408",title:"Plant Metabolomics: A Characterisation of Plant Responses to Abiotic Stresses",slug:"plant-metabolomics-a-characterisation-of-plant-responses-to-abiotic-stresses",signatures:"Annamaria Genga, Monica Mattana, Immacolata Coraggio, Franca Locatelli, Pietro Piffanelli and Roberto Consonni",authors:[{id:"54024",title:"Dr.",name:"Roberto",middleName:null,surname:"Consonni",fullName:"Roberto Consonni",slug:"roberto-consonni"},{id:"59992",title:"Dr.",name:"Annamaria",middleName:null,surname:"Genga",fullName:"Annamaria Genga",slug:"annamaria-genga"},{id:"59994",title:"Dr.",name:"Franca",middleName:null,surname:"Locatelli",fullName:"Franca Locatelli",slug:"franca-locatelli"},{id:"59995",title:"Dr.",name:"Monica",middleName:null,surname:"Mattana",fullName:"Monica Mattana",slug:"monica-mattana"},{id:"59996",title:"Dr.",name:"Pietro",middleName:null,surname:"Piffanelli",fullName:"Pietro Piffanelli",slug:"pietro-piffanelli"},{id:"59997",title:"Prof.",name:"Immacolata",middleName:null,surname:"Coraggio",fullName:"Immacolata Coraggio",slug:"immacolata-coraggio"}]},{id:"18409",title:"The Importance of Genetic Diversity to Manage Abiotic Stress",slug:"the-importance-of-genetic-diversity-to-manage-abiotic-stress",signatures:"Geraldo Magela de Almeida Cançado",authors:[{id:"47603",title:"Dr.",name:"Sandra",middleName:null,surname:"Camargo",fullName:"Sandra Camargo",slug:"sandra-camargo"},{id:"53576",title:"Dr.",name:"Geraldo",middleName:"Magela De Almeida",surname:"Cançado",fullName:"Geraldo Cançado",slug:"geraldo-cancado"}]},{id:"18410",title:"Emission and Function of Volatile Organic Compounds in Response to Abiotic Stress",slug:"emission-and-function-of-volatile-organic-compounds-in-response-to-abiotic-stress",signatures:"Francesco Spinelli, Antonio Cellini, Livia Marchetti, Karthik Mudigere Nagesh and Chiara Piovene",authors:[{id:"55786",title:"Dr.",name:"Francesco",middleName:null,surname:"Spinelli",fullName:"Francesco Spinelli",slug:"francesco-spinelli"}]},{id:"18411",title:"Epigenetic Chromatin Regulators as Mediators of Abiotic Stress Responses in Cereals",slug:"epigenetic-chromatin-regulators-as-mediators-of-abiotic-stress-responses-in-cereals",signatures:"Aliki Kapazoglou and Athanasios Tsaftaris",authors:[{id:"106803",title:"Dr.",name:"Athanasios",middleName:null,surname:"Tsaftaris",fullName:"Athanasios Tsaftaris",slug:"athanasios-tsaftaris"},{id:"106808",title:"Dr.",name:"Aliki",middleName:null,surname:"Kapazoglou",fullName:"Aliki Kapazoglou",slug:"aliki-kapazoglou"}]},{id:"18412",title:"C4 Plants Adaptation to High Levels of CO2 and to Drought Environments",slug:"c4-plants-adaptation-to-high-levels-of-co2-and-to-drought-environments",signatures:"María Valeria Lara and Carlos Santiago Andreo",authors:[{id:"60504",title:"Dr.",name:null,middleName:null,surname:"Andreo",fullName:"Andreo",slug:"andreo"},{id:"62008",title:"Dr.",name:"María",middleName:"Valeria",surname:"Lara",fullName:"María Lara",slug:"maria-lara"}]}]}],publishedBooks:[{type:"book",id:"1292",title:"Abiotic Stress Response in Plants",subtitle:"Physiological, Biochemical and Genetic Perspectives",isOpenForSubmission:!1,hash:"413adc817779da2de38e680658caa45b",slug:"abiotic-stress-response-in-plants-physiological-biochemical-and-genetic-perspectives",bookSignature:"Arun Shanker and B. Venkateswarlu",coverURL:"https://cdn.intechopen.com/books/images_new/1292.jpg",editedByType:"Edited by",editors:[{id:"58592",title:"Dr.",name:"Arun",surname:"Shanker",slug:"arun-shanker",fullName:"Arun Shanker"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"10290",title:"Bioactive Compounds",subtitle:"Biosynthesis, Characterization and Applications",isOpenForSubmission:!1,hash:"3038c0754a98f17e043af911c375ec08",slug:"bioactive-compounds-biosynthesis-characterization-and-applications",bookSignature:"Leila Queiroz Zepka, Tatiele Casagrande do Nascimento and Eduardo Jacob-Lopes",coverURL:"https://cdn.intechopen.com/books/images_new/10290.jpg",editedByType:"Edited by",editors:[{id:"261969",title:"Dr.",name:"Leila",surname:"Queiroz Zepka",slug:"leila-queiroz-zepka",fullName:"Leila Queiroz Zepka"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}}],publishedBooksByAuthor:[{type:"book",id:"1292",title:"Abiotic Stress Response in Plants",subtitle:"Physiological, Biochemical and Genetic Perspectives",isOpenForSubmission:!1,hash:"413adc817779da2de38e680658caa45b",slug:"abiotic-stress-response-in-plants-physiological-biochemical-and-genetic-perspectives",bookSignature:"Arun Shanker and B. Venkateswarlu",coverURL:"https://cdn.intechopen.com/books/images_new/1292.jpg",editedByType:"Edited by",editors:[{id:"58592",title:"Dr.",name:"Arun",surname:"Shanker",slug:"arun-shanker",fullName:"Arun Shanker"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}}]},onlineFirst:{chapter:{type:"chapter",id:"72417",title:"Energy Storage in PCM Wall Used in Buildings’ Application: Opportunity and Perspective",doi:"10.5772/intechopen.92557",slug:"energy-storage-in-pcm-wall-used-in-buildings-application-opportunity-and-perspective",body:'Nowadays, the building sector has become the main consumer of energy in the developed countries. Taking the EU as an example, the building sector accounts for around 40% of the total CO2 emissions. In Tunisia, the building sector consumes about 30% of the total final energy and is consumed by domestic water heating systems and air conditioning equipments (Figure 1) [1]. In order to reduce the energy consumption in buildings and to improve the thermal comfort of occupants, many researchers are focusing on storing of the thermal energy excess as latent heat by using specific phase change material (PCM). PCM may be integrated into the construction material in three ways: by direct incorporation, impregnation or encapsulation. It has been shown that the incorporation of the microencapsulated PCM into the building material is a particularly attractive technology. Recently, many experimental investigations have been conducted about the incorporation of the microencapsulated PCMs into different building elements, such as into plaster, cement, concrete walls or concrete floors. These investigations were aimed to assess the potential of PCM integration in walls and/or building envelopes to increase their thermal inertia to improve their energy performance [2, 3, 4, 5, 6, 7]. In this context, Soares et al. [8] proposed the study of the incorporation of PCM drywalls in lightweight steel-framed building envelop. The authors evaluated the impact of PCM drywalls in the annual and monthly heating and cooling thermal performances and energy savings. It was seen that the energy savings due to PCM drywall incorporation range from 46 to 62%. Navarro et al. [9] studied the incorporation of the PCM inside the concrete core slab for cooling purposes. In this context, a prefabricated concrete slab incorporating PCM was used as internal separation inside the building. The results show that the energy savings in building were registered between 30 and 55%. Solgi et al. [2] presented that PCMs have a great influence on enhancing the performance of night purge ventilation and cooling load reduction of buildings in hot-arid climate. It was found that paraffin with 27°C melting point permits the reduction of about 47% in cooling energy. A performance of a collector storage wall system using PCMs was investigated by Zhou et al. [10]. PCM slabs were integrated in the gap-side wall surface to enhance the heat storage. The test was carried out for a whole day with charging period of 6.5 h and discharging period of 17.5 h. They investigated the variations of surface temperature as well as the indoor temperatures. It was found that the indoor temperature was about 22°C during the whole discharging period under given conditions. Barzin et al. [11] presented an experimental study dealing with the building’s space cooling by using PCM energy storage in combination with night ventilation. Hence, two experimental tests were achieved: one with PCM-impregnated gypsum boards and the other with normal gypsum board. The result of the experimental investigation shows that substantial electricity saving is about to 73%. Sajjadian et al. [12] presented the study of the potential of using PCMs to reduce domestic cooling energy loads for current and future UK climates. The study used simulations of a high performance detached house model with a near Passivhaus Standard in London, where the impact of climate change effect is predicted to be significant. It was shown that appropriate levels of PCM, with a suitable incorporation mechanism into the building construction, have significant advantages for residential buildings in terms of reducing total discomfort hours. In this context, Royon et al. [13] studied the optimization of PCM implanted in a floor panel envelope of buildings. The study is mainly based on numerical investigation. The numerical results were confronted to experimental ones with the same boundary conditions in order to validate the model. Łukasz et al. [14] presented a parametric study of the thermal performance characteristics of thermal energy storage unit based on PCM integrated in building structure. In order to perform the analysis of the storage unit, a simulation program was developed. Using the program, many computer simulations were performed. In their work, Łukasz et al. presented important conclusions regarding the selection of PCM, and mainly its melting temperature range was formulated. Xiaoming et al. [15] studied the potential of exploiting ventilation systems with thermal energy storage (TES) and by using phase change materials (PCMs) for space cooling in air conditioned buildings during the summer. A dynamic computational model was achieved in order to simulate the indoor thermal environment and energy consumption of the room. The results showed that the electricity energy saving ratio (ESR) by using the TES system over the base case ranges between 16.9 and 50.8%, while considering the conventional NV system, the ESR ranges between 9.2 and 33.6%. Stropnik et al. [16] presented a study a system assuring self-sufficient heating and cooling of building from solar energy and interconnection between PV, electrical storage, heat pump, thermal energy storage and building energy management system. They showed that with such a smart energy system the almost zero-energy buildings can be reached in residential sector. The results show that thermal energy storage unit with integrated PCM modules supplies desired quantity of water temperature for longer period of time. Pushpendra et al. [17] presented a detailed review of various approaches to integrate the PCM in the building envelope. They showed that this method not only improves the indoor thermal behavior of the buildings but also reduces the cooling load without or little compromise with the mechanical strength of the building structure. They studied also the effect of the PCM integration on indoor thermal behavior and reduction in cooling load. They presented also an investigation of various materials used for making containers for encapsulation and it was also investigated. From the studied technologies, a great attention was given to investigate the effects of design parameters on thermal performances of PCM radiant floor heating system integrated in buildings. In this context, Li [18] proposed a numerical investigation aiming at the evaluation of the thermal performance of different kinds of roofs with and without PCM installed in Northeast China. They showed that the effect of transition temperature and latent heat of PCM on the thermal performance of roofs is relatively weak, compared with the roof slope, PCM layer thickness and absorption coefficients of external roof surface. In 2015, Joulin et al. [19] proposed an experimental and a numerical investigation of a PCM-27 conditioned in a rectangular container located between two heat exchangers. It was found that the PCM needs about 1.48 h to melt during the charging process. The evaluation of the effect of the integration of PCM inside a building was also studied with experimental and simulation methods by Huang et al. [20]. They showed that the PCM floor is able to supply about 37.7 MJ heat for 16 h in a building. In the same context, Prieto et al. [21] concluded that the integration of solar collectors holding PCM as storage material provided about 18–23% of total daily thermal energy needs of the building. Krese et al. [22] present also an experimental study of a small-scale wall composite containing PCM-27. The result of the investigation indicates that the heat recovery throughout the night is about 25 W/m2.
The rates of energy expenditure in Tunisia (Mehdaoui et al. [
The aim of the research presented in this chapter is to evaluate the effectiveness of a PCM wall used as a storage medium in reducing the building’s air temperature and in improving the occupant’s thermal comfort in a Tunisian real house. A specific experimental framework was presented to characterize the PCM wall behavior during the storage and the discharging process (Figure 2). In this experimental investigation, a PCM wall was installed in a test cell (Figure 3). A framework was installed to follow the indoor air temperatures of the various rooms of the house (with and without PCM). Thirteen T-type copper-constantan thermocouples firstly calibrated with a measurement inaccuracy of ±0.2°C were incorporated to PCM wall at the front surface, inside PCM, the back surface and inside the test cell as shown in Figure 4. Between the exchanging plates, T-type thermocouples are inserted in both sides of the Plexiglas container to measure the temperature fields on each side of the PCM wall. T-type thermocouples were previously calibrated by using the comparative method. Figure 4 shows the positions of all thermocouples inside the test cell.
PCM wall filled with Paraffin-27.
The test cell.
The position of the 13 thermocouples inside the test cell.
The measurement test was continued for 14 consecutive days during February and March 2016 (from 25/02/2016 to 13/03/2016) to evaluate PCM wall performance. The temperature was measured at front surfaces of PCM wall, at back surfaces of PCM wall, inside the PCM and inside the test cell. The method adopted in the investigation consisted of imposing heating flux (lamp of 120 W) on the exposed PCM wall of the test cell. The simultaneous measurements of the temperature evolution and the heat flux exchanged during charging and the discharging process were accomplished to evaluate the PCM wall thermal performances. A primary experimental test was conducted in the laboratory to determine the characteristics of the phase change material (PCM) during the melting phase. PCM is initially in the solid state at the ambient temperature of the room, 22°C. Then, the right side of the PCM wall was heated by using a special lamp of 120 W held at a distance of 10 cm to ensure the uniformity of heat over the PCM wall surface. By using the data acquisition system, the temperature change at the interior of PCM wall during the charging process is followed. In the second test, the lamp was extinguished and then the PCM temperature fields were followed to evaluate the heat exchanged through the PCM wall during the discharge process.
A numerical investigation by using specific FORTRAN program was achieved to solve the energy and the exergy mathematic relations to evaluate the PCM wall performances by determining the melting phase proprieties (velocity, isotherm, melting front evolution, etc.).
The proposed numeric investigations describe the heat transfer phenomena inside the PCM wall and evaluate its thermal behavior and effects on test cell ambiance. It allows also the appraisal of the energy and exergy stored during the charging process and to evaluate the thermal characteristics. The considered assumptions are the flow is two-dimensional and laminar, the expansion of the PCM is negligible and the phase change is isothermal. The PCM wall is subjected to an imposed temperature superior to the melting temperature of PCM-27 (Figure 5).
Boundary conditions through the PCM wall.
The other walls are maintained adiabatic (Figure 5). Considering the mentioned assumptions:
In the Boussinesq approximation, the source terms
The constant C is chosen so that it is high enough to cancel the velocities in the solid region and a low number b is introduced to avoid a division by zero in the case of a zero liquid fraction: where b = 0.001 is a small computational constant used to avoid division by zero, and C is a constant reflecting the morphology of the melting front. A value of C = 105 has been used in the literature [1]. The liquid fraction (
The energy equation is written as [25, 26].
The term
In order to account for the phase change process happening when the PCM is melting, the energy balance was applied at the interface as follows [27, 28]:
Since the phase change of pure substances occur at a single temperature, the temperatures of liquid and solid at the interface is given by [1]:
where the subscripts s and l stand for the solid and liquid phase,
The Plexiglas cavity was partially filled with PCM-27 heated by a lamp placed at 0.1 m. The lamp imposes the uniformity of heat and temperature,
The left vertical side of area (
The right vertical side of the PCM wall (
The horizontal walls of the domain are maintained adiabatic (
The energy stored,
where
Energy input during charging is given by:
where
The energy efficiency of the PCM wall during the charging and the discharging processes are given by:
where E0 is the energy transferred to the PCM wall.
where
Exergy input during the thermal storage is given by [30]:
Exergy efficiency of the PCM wall during the thermal storage and the thermal discharging are respectively given by:
This section is devoted to the obtained experimental results and their comparison with experimental data. The validation of the numerical model used in this study was performed by following the temperature changes inside the PCM wall and the melting front states during the charging process. The numerical results were compared with the experimental temperature data recorded in the laboratory during the same period between February 25 and March 13, 2016. Figure 6 shows the temperature evolution in the vertical plane x = L/2 vs. local time for the low position (a) (y = 1 cm) and the high position (b) (y = 7.5 cm) of the PCM wall. Figure 6a shows that the numerical results are quite similar to the experimental measurement. Indeed, the difference between the simulated and the measured values of the temperature at the bottom of PCM is about 0–4°C. It is also seen that in a higher position of PCM wall (Figure 6b) the experimental and numerical results of temperature obtained show an acceptable agreement, of about 0–5°C. It is concluded that the numerical model permits the simulation of the PCM wall thermal behavior with an acceptable accuracy.
The simulated and the experimental temperature profile inside the PCM wall for two different times: (a) 4000 and (b) 6000 s.
Figure 7 shows the variation of the energy and the exergy stored in the PCM wall during storage process. It is found that the recovered energy incessantly increases vs. charging time. It ranges between 95 and 780 W. This variation takes roughly 130 min and then the energy stored reaches a maximum, which value is due to the fact that the test cell temperature also fluctuates that is in the range of 22–24°C (Figure 7). On the other hand, it is found that the exergy stored grows with the charging time. However, it is seen that the exergy is lesser than the stored energy. It varies between 50 and 460 W.
Thermal energy and exergy changes during the charging process.
Figure 8 shows the variation of the energy and exergy efficiencies of PCM wall during the charging process. It is seen that the PCM wall performance increases gradually from 10 to 95%. Figure 9 shows the variation of the energy and exergy efficiencies of PCM wall during the discharging process. It is seen that the PCM wall performance decreases regularly from 100 to 10%. It is found that the energy and exergy efficiencies are more important than the charging process. It is also seen that the exergy efficiency is always found to be lower than the energy efficiency, which is due to the consideration of the losses/irreversibility during exergy analysis, which ultimately gives the information about the quality of energy or available energy. On the other hand, the energy efficiency is all about the quantity of energy rather than quality as it does not consider the losses/irreversibility in the analysis. Both the efficiencies are found to be decreasing with increasing loads. This is due to the fact that backup time is inversely proportional to the increase of the heating load.
Thermal energy and exergy efficiency changes during the storage stage.
Thermal energy and exergy efficiency changes during the discharging phase.
In Figure 10, the evolution of the melting front inside the vertical enclosure for two different instances (4000 and 6000 s) is represented. At the beginning of the heating process, the PCM-27 inside the vertical enclosure was in solid phase. Then, we detected the presence of two distinct phases: a liquid phase and a solid phase separated by melting front. It was seen that the ending of the melting process was observed after 6000 s. It is also seen that the liquid in the vicinity of the directly heated side of the PCM wall acquires heat, causing the temperature increases of the PCM-27. Consequently, a decrease of PCM-27 density was noted, which ascends along the heated PCM wall. At the top of the test cell, the velocity of the fluid is very important, so the liquid descends along the solid-liquid interface. During its descent, it loses its heat to the cold interface. At the bottom of the interface, the fluid is cold, and the temperature of the melting rate gradients is low. A blocking of the thermal transfers leading to the slowdown of the interface movement occurs in the latter region. In the liquid phase, PCM-27, which is at the top of the field, has a slightly higher temperature than the bottom of the cavity temperature. It is noted that the interface movement forms a contour from the bottom of the cavity, along the heated side to descend on the other side of the PCM wall. It is seen that as convection increases, the melting rate increases in the upper part of the PCM wall. This is explained by the fact that the paraffin in the vicinity of the PCM wall heated side acquires heat, which causes the climb of the upper part with a high speed and then the liquid paraffin descends along the solid-liquid interface.
Evolution of the melting front and the velocity fields inside the PCM wall for two different instances ((a) 4000 and (b) 6000 s).
Figure 11 shows the thermal and the dynamic behavior of the PCM-27 for two different instances (4000 and 6000 s). It was seen that at the beginning of the melting process, the interface is almost vertical, indicating the predominance of heat transfer by conduction mode. Isotherms remain vertical and parallel. Gradually as the convection increases, the melting rate increases in the upper portion of the interface. Therefore, the PCM-27 in the upper area has a higher temperature than the bottom of the cavity and the isotherms do not remain parallel. It is noted also that these movements are not made of the plate toward the solid–liquid interface. They form an outline by gravity from the bottom of the cavity, along the plate to descend on the other side on the solid-liquid interface.
Isothermal and current lines inside the PCM wall for two different instances ((a) 4000 and (b) 6000 s).
An experimental framework and procedure were accomplished in the laboratory in order to evaluate the PCM wall thermal performances, in particular its capacity to store the heat and to moderate internal test cell temperature. The experimental framework considered for the investigation of the thermal performances of the PCM wall comprises essentially a test cell with the dimensions 0.5 × 0.5 × 0.5 m3 and managed to imitate a test room. Each sides of the test cell have the dimensions: 0.22 m length, 0.22 m width and 0.026 m thickness. One side of the conceived test cell is fixed with a Plexiglas parallelepiped-shaped container with a size of 22 × 22 × 2.6 mm3. The sides of the PCM wall are fixed with the epoxy resin to form a strong bond. Then, the Plexiglas container was field with paraffin-27, which melts at 27°C with a high latent heat storage capacity (about 110 J/g). Upon PCM solidification, a 7 10−2 m free space was left from the top of Plexiglas container to accommodate volume changes and release trapped air during successive melting and solidification phases. A 120-W incandescent lamp is used for heating the exposed side of the PCM wall. The thermophysical properties of the PCM-27 are given in Table 1.
Thermal conductivity (W/m·K) | Heat capacity (kJ/kg·K) | Density (kg/m3) | Enthalpy of fusion (kJ/kg) | Melting temperature (K) | |||
---|---|---|---|---|---|---|---|
Solid | Liquid | Solid | Liquid | Solid | Liquid | ||
1.05 | 0.58 | 1.42 | 2.22 | 1530 | 1710 | 172.42 | 300.15 |
Thermophysical properties PCM-27 [30].
Data acquisition is achieved by an autonomous acquisition device controlled by a Lab VIEW program adapted to measure temperature fluctuations during melting processes. It acquires the output signals from the thermocouples, digitizes, treats them and then saves the results. Data are directly collected with the help of an interface network between the measurement station and a computer equipped with application software. Storing data is performed with a regular pitch, equal to 60 s, in the form of text file. Figure 12 shows the entire device and framework. Thirteen T-type copper-constantan thermocouples firstly calibrated with a measurement inaccuracy of ±0.2°C were incorporated to PCM wall at the front surface, inside PCM, the back surface and inside the test chamber as shown in Figure 10. Between the exchanging plates, thermocouples (T-type) are inserted on both sides of the sample to measure the temperature fields on each side of the PCM wall. The thermocouples were fixed at the front and back surface with strong white tape and were shielded from direct irradiation.
Experimental device and framework.
The experimental investigation was conducted for 14 consecutive days in September 2015 (from 23/09/2015 to 07/10/2015) to evaluate PCM wall performance. The temperature was measured at front surfaces of PCM wall, at back surfaces of PCM wall, inside the PCM and inside the test cell. The method adopted in the investigation consisted of imposing heating flux (lamp of 120 W) on the exposed PCM wall of the test cell. Simultaneous measurements of the temperature variations and heat flux exchanged during charging and discharging processes were accomplished to evaluate the PCM wall thermophysical properties [29, 30]. The experimental test conducted in the laboratory aims to determine the PCM characteristics during the storage phase. The test starts at 9:00 am and continues until the total melting of PCM-27. PCM is initially in the solid state at the ambient temperature of the room, which is about 22°C. Then, the right side of the PCM wall was heated by using a special lamp with a thermal power of about 120 W. The lamp was held at a distance of 10 10−2 m to guarantee the uniformity of heat over the entire PCM wall area. By using the data acquisition system, the temperature variation at the interior of PCM wall during the storage stage was followed. To evaluate the heat exchanged through the PCM wall during the discharge process, the lamp was omitted and then the PCM temperature fields were tracked.
The result of the experimental tests permits the characterization of the PCM wall and the description of the test cell thermal behavior. Figure 13 shows the temperature evolution of PCM-27 inside the wall during the charging and discharging processes along the vertical axis (x = 10−2 m) (T1, T2, T3 and T4) and along the horizontal axis (y = 7.5 10−2 m) (T5, T6, T7, T8 and T9). It is found that the PCM solidification process during the discharging phase takes more time than the storage stage. This is explained by the formation of a solid layer of paraffin in contact with the PCM wall sides, which make a thermal isolation and consequently slow down the crystallization in the other parts of the wall. It is seen that by the launch of the melting process all temperature profiles grow linearly up to 27°C. This phase corresponds to sensible heat storage in the solid PCM. Then, it is noted that during about 20 min of heating process with the lamp of 120 W all positions confess symmetrical temperature profiles, around 27°C. It is noted that PCM-27 temperature rises rapidly especially in the first 20 min of the melting process, which corresponds to the sensible storage process inside the PCM wall. Then, the PCM-27 temperature varies slowly between 27 and 29°C during the latent heat storage process. After about 40 min of heating by the lamp, the PCM-27 temperature increases to reach 50°C. Figure 13 shows also that the temperature of thermocouples that are close to the heated side increases rapidly than those of the other sides. During this phase, the storage of heat is achieved by sensible process inside the melt PCM. After the melting process, it is noted that the different vertical positions inside the PCM wall (y = 2, 8, 12 and 18 10−3 m) presented a dissimilarity in the measured temperature. This delay is explained by the trajectory of the melting front of the solid–liquid interface, which merges firstly from the positions located above the PCM wall to the bottom. The duration of this phase varies between 110 and 40 minutes from one position to another according to the thermocouple on-axis position (x = 10−2 m).
Evolution of PCM temperature during charging and discharging phases.
Figure 14 shows the variation of test cell air temperatures with and without PCM-27. The test was accomplished by exposing the PCM wall to the lamp of 120 W used as a heating load source. It is seen that during the charging phase the temperature profile inside the test cell with PCM wall is almost stable at 29°C. Indeed, the PCM wall permits the storage of the excess of heat supplied by the lamp. It is also found that once the PCM wall is replaced by simple wooden wall the internal temperature of the test cell grows seriously from 29 to 40°C.
Evolution of the temperature inside the test cell during the storage phase.
Figure 15 shows the temperature variation of the air inside the test cell with and without PCM wall during the discharging phase (cooling). As can be seen, the air temperature inside the test cell is stabilized around 21°C, which represents the ambient temperature, whereas with PCM wall, the air temperature inside the test cell decreases continuously with respect to time from 27 to 22°C. It is also noted that the temperature of the test cell with PCM is always higher than the temperature of the test cell without PCM. This shows the significance of using PCM inside the room and the temperature in the thermal comfort range can be maintained for a long time even with the heating load. Consequently, intruding of the PCM wall in the test cell presents a good potential to be applied for space conditioning.
Evolution of the temperature inside the test cell during the discharging phase.
To generalize the investigation, a simple room (kid’s room) inside a typical modern house (Figure 16) in Tunis, Tunisia, is considered. The building is composed of five rooms with a floor area of 128 m2. The technical specifications of the selected room are presented in Table 2. This scenario is archived by considering a TRNSYS program. The component of the TRNSYS model is the flat-plate solar collector (type73) used as a heat source, storage tank (type4c) and the building (type 56a). In this section, the integration of the PCM wall in the envelope of a typical Tunisian building is simulated by using TRNSYS. The main TRNSYS component used is Type 399, which models a PCM wall. Type 399 is designed to interact with Type 56a and can simulate a PCM wall located in any position within the tested room. It should be also noted that a new Type 399 models a pure PCM-27 that is assumed to go through its freeze/thaw process at constant temperature, to have a constant specific heat in the liquid phase and to have a constant specific heat in the solid phase. The basic architectural specification of the selected room used in Tunisian scenario is given in Table 2.
The typical house plan used in this study.
Type | Layer | Thickness (m) | Conductivity (kJ/(h m K)) | Density (kg/m3) | Specific heat (kJ/kg K) |
---|---|---|---|---|---|
Wall | Brick Concrete Gypsum | 0.15 0.15 0.05 | 3.2 7.56 0.75 | 1800 2400 1200 | 1 0.8 1 |
Ground | Concretes Insulation | 0.06 0.05 | 4.06 0.15 | 1400 40 | 1 0.8 |
Roof | Concrete | 0.24 | 7.56 | 2400 | 0.8 |
Structure and physical properties of the building structure.
Figure 17 illustrates the evolution of the energy stored and destocked during four days, from January 1 to 4, 2015. During the day, the PCM wall stores a rate of heat brought by the solar collector, and this phase of storage is characterized by positive values of the energy. The latter forms a peak dependent on the period of sunshine and that can reach 1200 kJ m−2. The heat accumulated during the day by the PCM wall will be restored to be used at the end of the day and during the night.
Evolution of the energy stored in the PCM wall during the discharging phase.
Figure 18 illustrates the variation of the temperature inside the selected room with and without integration of PCM wall during the period from January 1 to 4, 2015. The outside temperature and the solar irradiation were also evaluated during the same period. During the hottest period of the day, the temperature of the tested room with PCM wall achieves 25°C, while that without PCM wall exceeds 27°C. During the night, the temperature of the tested room, with PCM wall, decreases in the value of 20°C. During the night, the temperatures for the system using the PCM wall become more marked, more of 1°C compared with that of the system without PCM wall. It is seen that the PCM wall performs its function of thermal shock absorber.
Evolution of the ambient temperature inside the kid’s room with and without PCM wall application.
The objective of this chapter is to show the importance of using PCM as storage material in buildings and to study the thermal potential offered by the integration of a PCM wall to enhance the thermal comfort of the occupant by reducing the thermal fluctuation and by improving the thermal inertia of the buildings’ envelop. Accordingly, an experimental prototype represented by a small-scale home (0.5 × 0.5 × 0.5 m3) was conceived in our laboratory. The test cell was equipped with a PCM-27 vertical enclosure placed at one side of the test cell. Several tests were carried out with an experimental setup designed for testing the viability of using PCM wall integrated in building structure. The experimental study was carried out by measuring temperature through the PCM wall. The test cell indoor temperature was also evaluated to appraise the thermal inertia of the wall envelope. During the heating 22 phase, the temperature inside PCM shelter appears constant at about 28°C. But it varied between 29 and 40°C inside the test room without PCM wall.
A numerical simulation based on FORTRAN program was also carried out to interpret the experimental data. The numerical simulation was achieved to solve the energy and the exergy mathematic relations to evaluate the PCM wall performances by determining the melting phase proprieties during the charging and the discharging processes. The numerical study constitutes a preliminary step before construction of cells equipped with such wallboards in order to obtain a certain indoor passive air conditioning and especially to avoid overheating of buildings during summer. The test of the numerical model shows that there is a good agreement between experimental and numerical results. The numerical model was then exploited to evaluate the PCM wall thermal behavior. It was found that the following of the evolution of the melting front, the velocity fields, the isothermal and the current lines shows that the paraffin-27 melting process is more significant in the upper part of the PCM wall.
To generalize the investigation for a typical modern house composed of five rooms with a floor area of 128 m2, a TRNSYS program simulation was proposed by considering the Tunisian scenario. The results were presented for a single room equipped with PCM wall. It was seen that during the day, the PCM wall stores a rate of heat that can reach 1200 kJ m−2. It was found that during the hottest period of the day the temperature of the tested room with PCM wall achieves 25°C, while that without PCM wall exceeds 27°C. During the night, the temperature of the tested room, with PCM wall, is about 20°C. It is seen that the PCM wall performs its function of thermal shock absorber. The investigation showed that the efficiency of PCM wall is remarkable in the control and the reduction of the indoor temperature amplitude in the building.
The results obtained by this investigation are exploited in another new experimental work, which is in progress to optimize the geometric and the physical parameters of the PCM wall according to Tunisian buildings’ specificity.
The authors would like to thank the Laboratoire des Procédés Thermiques (LPT) and the Centre de Recherches et des Technologies de l’Energie (CRTEn), Tunis, Tunisia, for financially supporting the project and for supplying useful data.
PCM wall area (m2) heat capacity (kJ/kg·K) thermal conductivity (W/m·K) Gravitational acceleration (m/s2) Liquid fraction enthalpy of fusion (kJ/kg) pressure (Pa) temperature (K) inside air temperature (K) outside air temperature (K) inside wall temperature (K) outside wall temperature (K) Enthalpy Time (s) Cartesian coordinates (m) cavity width velocity components (m/s coefficient of thermal expansion dynamic viscosity (kg/m s Thermal diffusivity coefficient density (kg/m3) kinematic viscosity (m2/s) Solid Liquid Fusion Equivalent
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\n\nLast updated: 2020-11-27
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This has compromised the ability of the environment to foster life and render its intrinsic values. Heavy metals are known to be naturally occurring compounds, but anthropogenic activities introduce them in large quantities in different environmental compartments. This leads to the environment’s ability to foster life being reduced as human, animal, and plant health become threatened. This occurs due to bioaccumulation in the food chains as a result of the nondegradable state of the heavy metals. Remediation of heavy metals requires special attention to protect soil quality, air quality, water quality, human health, animal health, and all spheres as a collection. Developed physical and chemical heavy metal remediation technologies are demanding costs which are not feasible, time-consuming, and release additional waste to the environment. This chapter summarises the problems related to heavy metal pollution and various remediation technologies. A case study in South Africa mines were also used.",book:{id:"6534",slug:"heavy-metals",title:"Heavy Metals",fullTitle:"Heavy Metals"},signatures:"Vhahangwele Masindi and Khathutshelo L. Muedi",authors:[{id:"225304",title:"Dr.",name:"Vhahangwele",middleName:null,surname:"Masindi",slug:"vhahangwele-masindi",fullName:"Vhahangwele Masindi"},{id:"241403",title:"M.Sc.",name:"Khathutshelo",middleName:"Lilith",surname:"Muedi",slug:"khathutshelo-muedi",fullName:"Khathutshelo Muedi"}]},{id:"42566",doi:"10.5772/53706",title:"Challenges and Opportunities for Spark Plasma Sintering: A Key Technology for a New Generation of Materials",slug:"challenges-and-opportunities-for-spark-plasma-sintering-a-key-technology-for-a-new-generation-of-mat",totalDownloads:9109,totalCrossrefCites:97,totalDimensionsCites:207,abstract:null,book:{id:"3478",slug:"sintering-applications",title:"Sintering Applications",fullTitle:"Sintering Applications"},signatures:"M. Suárez, A. Fernández, J.L. Menéndez, R. 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Kessel",authors:[{id:"102383",title:"Dr.",name:"Marta",middleName:null,surname:"Suárez",slug:"marta-suarez",fullName:"Marta Suárez"},{id:"103822",title:"Dr.",name:"J.L",middleName:null,surname:"Menendez",slug:"j.l-menendez",fullName:"J.L Menendez"},{id:"103833",title:"Prof.",name:"Ramón",middleName:null,surname:"Torrecillas",slug:"ramon-torrecillas",fullName:"Ramón Torrecillas"},{id:"162633",title:"Dr.",name:"Adolfo",middleName:null,surname:"Fernández",slug:"adolfo-fernandez",fullName:"Adolfo Fernández"}]},{id:"23617",doi:"10.5772/24118",title:"Collagen- vs. Gelatine-Based Biomaterials and Their Biocompatibility: Review and Perspectives",slug:"collagen-vs-gelatine-based-biomaterials-and-their-biocompatibility-review-and-perspectives",totalDownloads:9373,totalCrossrefCites:60,totalDimensionsCites:196,abstract:null,book:{id:"1487",slug:"biomaterials-applications-for-nanomedicine",title:"Biomaterials",fullTitle:"Biomaterials Applications for Nanomedicine"},signatures:"Selestina Gorgieva and Vanja Kokol",authors:[{id:"55577",title:"Prof.",name:"Vanja",middleName:null,surname:"Kokol",slug:"vanja-kokol",fullName:"Vanja Kokol"},{id:"61285",title:"BSc",name:"Selestina",middleName:null,surname:"Gorgieva",slug:"selestina-gorgieva",fullName:"Selestina Gorgieva"}]},{id:"46243",doi:"10.5772/57255",title:"Corrosion Inhibitors – Principles, Mechanisms and Applications",slug:"corrosion-inhibitors-principles-mechanisms-and-applications",totalDownloads:13621,totalCrossrefCites:40,totalDimensionsCites:156,abstract:null,book:{id:"3817",slug:"developments-in-corrosion-protection",title:"Developments in Corrosion Protection",fullTitle:"Developments in Corrosion Protection"},signatures:"Camila G. 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They are known as hydrous phyllosilicate having silica, alumina and water with variable amount of inorganic ions like Mg2+, Na+, Ca2+ which are found either in interlayer space or on the planetary surface. Clay minerals are described by presence of two-dimensional sheets, tetrahedral (SiO4) and octahedral (Al2O3). There are different clay minerals which are categorized based on presence of tetrahedral and octahedral layer in their structure like kaolinite (1:1 of tetrahedral and octahedral layers), smectite group of clay minerals (2:1 of tetrahedral and octahedral layers) and chlorite (2:1:1 of tetrahedral, octahedral and octahedral layers). The particle size of clay minerals is <2microns which can be present in form of plastic in presence of water and solidified when dried. The small size and their distinctive crystal structure make clay minerals very special with their unique properties including high cation exchange capacity, swelling behavior, specific surface area, adsorption capacity, etc. which are described in this chapter. Due to all these unique properties, clay minerals are gaining interest in different fields.",book:{id:"10949",slug:"clay-and-clay-minerals",title:"Clay and Clay Minerals",fullTitle:"Clay and Clay Minerals"},signatures:"Neeraj Kumari and Chandra Mohan",authors:[{id:"258132",title:"Dr.",name:"Chandra",middleName:null,surname:"Mohan",slug:"chandra-mohan",fullName:"Chandra Mohan"},{id:"352399",title:"Dr.",name:"Neeraj",middleName:null,surname:"Kumari",slug:"neeraj-kumari",fullName:"Neeraj Kumari"}]},{id:"51535",title:"An Introduction to Hydrogels and Some Recent Applications",slug:"an-introduction-to-hydrogels-and-some-recent-applications",totalDownloads:11460,totalCrossrefCites:61,totalDimensionsCites:125,abstract:"Hydrogels have existed for more than half a century, and today they have many applications in various processes ranging from industrial to biological. There are numerous original papers, reviews, and monographs focused on the synthesis, properties, and applications of hydrogels. 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Bioremediation is the most effective, economical, eco-friendly management tool to manage the polluted environment. All bioremediation techniques have its own advantage and disadvantage because it has its own specific applications.",book:{id:"9343",slug:"trace-metals-in-the-environment-new-approaches-and-recent-advances",title:"Trace Metals in the Environment",fullTitle:"Trace Metals in the Environment - New Approaches and Recent Advances"},signatures:"Indu Sharma",authors:[{id:"301262",title:"Associate Prof.",name:"Indu",middleName:null,surname:"Sharma",slug:"indu-sharma",fullName:"Indu Sharma"}]},{id:"18275",title:"Modeling and Identification of Parameters the Piezoelectric Transducers in Ultrasonic Systems",slug:"modeling-and-identification-of-parameters-the-piezoelectric-transducers-in-ultrasonic-systems",totalDownloads:9936,totalCrossrefCites:3,totalDimensionsCites:5,abstract:null,book:{id:"201",slug:"advances-in-ceramics-electric-and-magnetic-ceramics-bioceramics-ceramics-and-environment",title:"Advances in Ceramics",fullTitle:"Advances in Ceramics - Electric and Magnetic Ceramics, Bioceramics, Ceramics and Environment"},signatures:"Pawel Fabijanski and Ryszard Lagoda",authors:[{id:"13086",title:"Dr.",name:"Pawel",middleName:null,surname:"Fabijański",slug:"pawel-fabijanski",fullName:"Pawel Fabijański"}]},{id:"60680",title:"Environmental Contamination by Heavy Metals",slug:"environmental-contamination-by-heavy-metals",totalDownloads:15997,totalCrossrefCites:164,totalDimensionsCites:356,abstract:"The environment and its compartments have been severely polluted by heavy metals. This has compromised the ability of the environment to foster life and render its intrinsic values. Heavy metals are known to be naturally occurring compounds, but anthropogenic activities introduce them in large quantities in different environmental compartments. This leads to the environment’s ability to foster life being reduced as human, animal, and plant health become threatened. This occurs due to bioaccumulation in the food chains as a result of the nondegradable state of the heavy metals. Remediation of heavy metals requires special attention to protect soil quality, air quality, water quality, human health, animal health, and all spheres as a collection. Developed physical and chemical heavy metal remediation technologies are demanding costs which are not feasible, time-consuming, and release additional waste to the environment. This chapter summarises the problems related to heavy metal pollution and various remediation technologies. A case study in South Africa mines were also used.",book:{id:"6534",slug:"heavy-metals",title:"Heavy Metals",fullTitle:"Heavy Metals"},signatures:"Vhahangwele Masindi and Khathutshelo L. Muedi",authors:[{id:"225304",title:"Dr.",name:"Vhahangwele",middleName:null,surname:"Masindi",slug:"vhahangwele-masindi",fullName:"Vhahangwele Masindi"},{id:"241403",title:"M.Sc.",name:"Khathutshelo",middleName:"Lilith",surname:"Muedi",slug:"khathutshelo-muedi",fullName:"Khathutshelo Muedi"}]}],onlineFirstChaptersFilter:{topicId:"14",limit:6,offset:0},onlineFirstChaptersCollection:[{id:"81825",title:"Quantification of Heavy Metal Levels in Sediments of the “Palizada” River in a Protected Natural Area of Southeastern Mexico",slug:"quantification-of-heavy-metal-levels-in-sediments-of-the-palizada-river-in-a-protected-natural-area-",totalDownloads:1,totalDimensionsCites:null,doi:"10.5772/intechopen.104657",abstract:"This chapter shows the results of the determination of the levels of Copper (Cu), Iron (Fe), Magnesium (Mg), Manganese (Mn), and Cadmium (Cd) in sediments of the “Palizada River”; evaluated by atomic absorption. The results show high levels of Fe, Mg, and Mn concerning previous studies and are directly related to agricultural and livestock activities in the area. The metal-metal correlation analysis show significant values, suggesting that the generation source is the same. Some of the pollutants produced by industrial or population centers; end up in natural water bodies; by different physical processes, such as precipitation, complex formation, and others. These contaminants can bioaccumulate in aquatic organisms and reach humans through the food chain. Certain heavy metals such as cadmium (Cd) produced by human activities have been found in the oceans and the tissues of different organisms; which constitutes a risk for consumption; Cd is classified as an element that predisposes to the presence of Cancer. Therefore, the study of sediments is fundamental for determining the degree of contamination of an ecosystem.",book:{id:"11120",title:"Environmental Impact and Remediation of Heavy Metals",coverURL:"https://cdn.intechopen.com/books/images_new/11120.jpg"},signatures:"Carlos Montalvo, Claudia A. Aguilar, Yunuen Canedo, Alejandro Ruiz, Brenda Zermeño, Ruby S. Gines and Rosa M. Cerón"},{id:"81461",title:"Fiber Inclusions-Based Epoxy Composites and Their Applications",slug:"fiber-inclusions-based-epoxy-composites-and-their-applications",totalDownloads:3,totalDimensionsCites:0,doi:"10.5772/intechopen.104118",abstract:"Because of their low cost, lightweight, easy production methods, and design flexibility, polymer-based composites are widely employed in a wide range of applications. Because of its high specific strength, superior mechanical characteristics, super adhesiveness, heat and solvent resistance, and so on, epoxy polymer or polyepoxide represent a significant majority of matrix composites. As a result, fiber fillers-reinforced epoxy resin composites have been investigated for a variety of applications, including high-tech in the ballistic, aircraft, automobile, construction, and sports sectors. In this chapter, the manufacturing procedures of fiber-reinforced epoxy composites have been described. Different categories of fiber are used as fillers in an epoxy matrix and their morphology is discussed as a function of the obtained properties.",book:{id:"11123",title:"Epoxy-Based Composites",coverURL:"https://cdn.intechopen.com/books/images_new/11123.jpg"},signatures:"Nassima Radouane and Abdelkrim Maaroufi"},{id:"81727",title:"Nanoparticle Based Collagen Biomaterials for Wound Healing",slug:"nanoparticle-based-collagen-biomaterials-for-wound-healing",totalDownloads:4,totalDimensionsCites:0,doi:"10.5772/intechopen.104851",abstract:"Wounds and infections are extremely common cases that are dealt with in the medical field. Their effective and timely treatment ensures the overall well-being of patients in general. Current treatments include the use of collagen scaffolds and other biomaterials for tissue regeneration. Although the use of collagenous biomaterials has been tested, the incorporation of nanoparticles into these collagenous biomaterials is a fairly new field, whose possibilities are yet to be explored and discovered. The current chapter explores the applications of the amalgamation of collagenous biomaterials with nanoparticles, which themselves are known to be effective in the treatment and prevention of infections.",book:{id:"10945",title:"Collagen Biomaterial",coverURL:"https://cdn.intechopen.com/books/images_new/10945.jpg"},signatures:"Kausalya Neelavara Makkithaya, Sharmila Nadumane, Guan-Yu Zhuo, Sanjiban Chakrabarty and Nirmal Mazumder"},{id:"81726",title:"Design and Fabrication of Microencapsulated Phase Change Materials for Energy/Thermal Energy Storage and Other Versatile Applications",slug:"design-and-fabrication-of-microencapsulated-phase-change-materials-for-energy-thermal-energy-storage",totalDownloads:3,totalDimensionsCites:0,doi:"10.5772/intechopen.102806",abstract:"Microencapsulated phase change materials have been considered as potential candidates to overcome the global energy shortage, as these materials can provide a viable method for storing thermal energy and offering consistent energy management by controllable heat release in desirable environments. Microencapsulation technology offers a method for overcoming the trouble associated with the handling of solid–liquid phase change materials (PCMs) via encapsulating PCMs with thin or tiny shells which are known as ‘microcapsules’. Microcapsule shells not only keep PCMs isolated from the surrounding materials but also provide a stable structure and sufficient surface for PCMs to enhance heat transfer. Thus microencapsulation technology received remarkable attention from fundamental studies to industrial growth in recent years. In order to provide a reliable source of information on recent progress and development in microencapsulated PCMs, this chapter emphases on methods and techniques for the encapsulation of PCMs with a diversity of shell materials from traditional organic polymers to novel inorganic materials to pursue high encapsulation efficiency, excellent thermal energy-storage performance and long-term operation durability. The chapter also highlights the design of bi- and multi-functional PCM-based microcapsules by fabricating various functional shells in a multilayered structure to meet the growing demand for versatile applications.",book:{id:"11077",title:"Microencapsulation - Recent Advances, New Perspectives and Applications of Smart Microcapsules",coverURL:"https://cdn.intechopen.com/books/images_new/11077.jpg"},signatures:"Tahira Mahmood, Rahmat Ali and Abdul Naeem"},{id:"81709",title:"New-Age Al-Cu-Mn-Zr (ACMZ) Alloy for High Temperature-High Strength Applications: A Review",slug:"new-age-al-cu-mn-zr-acmz-alloy-for-high-temperature-high-strength-applications-a-review",totalDownloads:8,totalDimensionsCites:0,doi:"10.5772/intechopen.104533",abstract:"One of the prime challenges with age hardened Al-Cu alloys is the strength degradation at high temperatures (above ∼250°C) due to the coarsening of strengthening θ′ precipitates and associated metastable θ′ → stable θ phase transformation. A recent discovery suggests that micro-alloying with Manganese (Mn) and Zirconium (Zr) can synergistically restrict θ′ precipitate coarsening, thereby rendering an excellent high temperature stability for Al-Cu-Mn-Zr (ACMZ) alloys. The θ′ precipitates are stabilized primarily from the reduction of interfacial energy by preferential solute segregation (Mn & Zr) at θ′ precipitate/α-Al matrix interfaces. The Al-Cu-Mn-Zr alloys thereby exhibit excellent high temperature hardness and tensile properties (yield and ultimate tensile strength) in addition to superior fatigue life and creep resistance. This newly developed Al-Cu-Mn-Zr alloys also showed excellent hot tearing resistance compared to the conventional cast Al-Cu alloys so much so that it meets the industrial standards as well. These alloys also have promising manufacturing possibility by additive route. Overall, Al-Cu-Mn-Zr alloys offer great potential for the automotive industry because of their unprecedented high temperature performance which should enable engineers to build light weight passenger vehicles leading to a safer and greener environment.",book:{id:"10847",title:"Aluminium Alloys - Design and Development of Innovative Alloys, Manufacturing Processes and Applications",coverURL:"https://cdn.intechopen.com/books/images_new/10847.jpg"},signatures:"Samarendra Roy and Shibayan Roy"},{id:"81716",title:"Groove Shape Optimization on Dry Gas Seals",slug:"groove-shape-optimization-on-dry-gas-seals",totalDownloads:7,totalDimensionsCites:0,doi:"10.5772/intechopen.103088",abstract:"In this paper, a topological optimum design for the shape of a groove in a dry gas seal is described. Dry gas seals are widely used in high speed and high pressure rotating machinery such as gas turbines, compressors, and so on because of their high reliability compared to other types of seals. However, recent requirements for reducing emission with further control of leakage are in order. With this background, we propose applying topological optimization to the groove shape in a dry gas seal to reduce its leakage while keeping its stiffness for safe operation. First, the method of topological optimum design as applied to the groove of a dry gas seal is explained via numerical analysis. Next, results of the topological optimization are shown via categorizing an optimum shape map. 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He is a full professor of signal processing and pattern recognition and is head of the Signals and Communications Department at ULPGC, teaching from 2001 on subjects on signal processing and learning theory. His research lines are biometrics, biomedical signals and images, data mining, classification system, signal and image processing, machine learning, and environmental intelligence. He has researched in 52 international and Spanish research projects, some of them as head researcher. He is co-author of 4 books, co-editor of 27 proceedings books, guest editor for 8 JCR-ISI international journals, and up to 24 book chapters. He has over 450 papers published in international journals and conferences (81 of them indexed on JCR – ISI - Web of Science). He has published seven patents in the Spanish Patent and Trademark Office. He has been a supervisor on 8 Ph.D. theses (11 more are under supervision), and 130 master theses. 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He is currently a principal researcher in data analytics and optimisation at TECNALIA (Spain), a visiting fellow at the Basque Center for Applied Mathematics (BCAM) and a part-time lecturer at the University of the Basque Country (UPV/EHU). His research interests gravitate on the use of descriptive, prescriptive and predictive algorithms for data mining and optimization in a diverse range of application fields such as Energy, Transport, Telecommunications, Health and Industry, among others. In these fields he has published more than 240 articles, co-supervised 8 Ph.D. theses, edited 6 books, coauthored 7 patents and participated/led more than 40 research projects. 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He is currently a full professor in\nthe Department of Automation and Applied Informatics at the\nsame university. Dr. Voloşencu is the author of ten books, seven\nbook chapters, and more than 160 papers published in journals\nand conference proceedings. He has also edited twelve books and\nhas twenty-seven patents to his name. He is a manager of research grants, editor in\nchief and member of international journal editorial boards, a former plenary speaker, a member of scientific committees, and chair at international conferences. His\nresearch is in the fields of control systems, control of electric drives, fuzzy control\nsystems, neural network applications, fault detection and diagnosis, sensor network\napplications, monitoring of distributed parameter systems, and power ultrasound\napplications. 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He is the president of the Travel Medicine Committee of the Pan-American Infectious Diseases Association (API), as well as the president of the Colombian Association of Infectious Diseases (ACIN). He is a member of the Committee on Tropical Medicine, Zoonoses, and Travel Medicine of ACIN. He is a vice-president of the Latin American Society for Travel Medicine (SLAMVI) and a Member of the Council of the International Society for Infectious Diseases (ISID). Since 2014, he has been recognized as a Senior Researcher, at the Ministry of Science of Colombia. He is a professor at the Faculty of Medicine of the Fundacion Universitaria Autonoma de las Americas, in Pereira, Risaralda, Colombia. He is an External Professor, Master in Research on Tropical Medicine and International Health, Universitat de Barcelona, Spain. He is also a professor at the Master in Clinical Epidemiology and Biostatistics, Universidad Científica del Sur, Lima, Peru. In 2021 he has been awarded the “Raul Isturiz Award” Medal of the API. Also, in 2021, he was awarded with the “Jose Felix Patiño” Asclepius Staff Medal of the Colombian Medical College, due to his scientific contributions to COVID-19 during the pandemic. He is currently the Editor in Chief of the journal Travel Medicine and Infectious Diseases. His Scopus H index is 47 (Google Scholar H index, 68).",institutionString:"Institución Universitaria Visión de las Américas, Colombia",institution:null},{id:"332819",title:"Dr.",name:"Chukwudi Michael",middleName:"Michael",surname:"Egbuche",slug:"chukwudi-michael-egbuche",fullName:"Chukwudi Michael Egbuche",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/332819/images/14624_n.jpg",biography:"I an Dr. Chukwudi Michael Egbuche. I am a Senior Lecturer in the Department of Parasitology and Entomology, Nnamdi Azikiwe University, Awka.",institutionString:null,institution:{name:"Nnamdi Azikiwe University",country:{name:"Nigeria"}}},{id:"284232",title:"Mr.",name:"Nikunj",middleName:"U",surname:"Tandel",slug:"nikunj-tandel",fullName:"Nikunj Tandel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/284232/images/8275_n.jpg",biography:'Mr. Nikunj Tandel has completed his Master\'s degree in Biotechnology from VIT University, India in the year of 2012. He is having 8 years of research experience especially in the field of malaria epidemiology, immunology, and nanoparticle-based drug delivery system against the infectious diseases, autoimmune disorders and cancer. He has worked for the NIH funded-International Center of Excellence in Malaria Research project "Center for the study of complex malaria in India (CSCMi)" in collaboration with New York University. 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. Voyich",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"Montana State University",country:{name:"United States of America"}}},{id:"330412",title:"Dr.",name:"Muhammad",middleName:null,surname:"Farhab",slug:"muhammad-farhab",fullName:"Muhammad Farhab",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"University of Agriculture Faisalabad",country:{name:"Pakistan"}}},{id:"349495",title:"Dr.",name:"Muhammad",middleName:null,surname:"Ijaz",slug:"muhammad-ijaz",fullName:"Muhammad Ijaz",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"University of Veterinary and Animal Sciences",country:{name:"Pakistan"}}}]}},subseries:{item:{id:"26",type:"subseries",title:"Machine Learning and Data Mining",keywords:"Intelligent Systems, Machine Learning, Data Science, Data Mining, Artificial Intelligence",scope:"The scope of machine learning and data mining is immense and is growing every day. It has become a massive part of our daily lives, making predictions based on experience, making this a fascinating area that solves problems that otherwise would not be possible or easy to solve. This topic aims to encompass algorithms that learn from experience (supervised and unsupervised), improve their performance over time and enable machines to make data-driven decisions. It is not limited to any particular applications, but contributions are encouraged from all disciplines.",coverUrl:"https://cdn.intechopen.com/series_topics/covers/26.jpg",hasOnlineFirst:!0,hasPublishedBooks:!0,annualVolume:11422,editor:{id:"24555",title:"Dr.",name:"Marco Antonio",middleName:null,surname:"Aceves Fernandez",slug:"marco-antonio-aceves-fernandez",fullName:"Marco Antonio Aceves Fernandez",profilePictureURL:"https://mts.intechopen.com/storage/users/24555/images/system/24555.jpg",biography:"Dr. Marco Antonio Aceves Fernandez obtained his B.Sc. (Eng.) in Telematics from the Universidad de Colima, Mexico. He obtained both his M.Sc. and Ph.D. from the University of Liverpool, England, in the field of Intelligent Systems. He is a full professor at the Universidad Autonoma de Queretaro, Mexico, and a member of the National System of Researchers (SNI) since 2009. Dr. Aceves Fernandez has published more than 80 research papers as well as a number of book chapters and congress papers. He has contributed in more than 20 funded research projects, both academic and industrial, in the area of artificial intelligence, ranging from environmental, biomedical, automotive, aviation, consumer, and robotics to other applications. He is also a honorary president at the National Association of Embedded Systems (AMESE), a senior member of the IEEE, and a board member of many institutions. His research interests include intelligent and embedded systems.",institutionString:"Universidad Autonoma de Queretaro",institution:{name:"Autonomous University of Queretaro",institutionURL:null,country:{name:"Mexico"}}},editorTwo:null,editorThree:null,series:{id:"14",title:"Artificial Intelligence",doi:"10.5772/intechopen.79920",issn:"2633-1403"},editorialBoard:[{id:"43680",title:"Prof.",name:"Ciza",middleName:null,surname:"Thomas",slug:"ciza-thomas",fullName:"Ciza Thomas",profilePictureURL:"https://mts.intechopen.com/storage/users/43680/images/system/43680.jpeg",institutionString:null,institution:{name:"Government of Kerala",institutionURL:null,country:{name:"India"}}},{id:"16614",title:"Prof.",name:"Juan Ignacio",middleName:null,surname:"Guerrero Alonso",slug:"juan-ignacio-guerrero-alonso",fullName:"Juan Ignacio Guerrero Alonso",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002g6HB8QAM/Profile_Picture_1627901127555",institutionString:null,institution:{name:"University of Seville",institutionURL:null,country:{name:"Spain"}}},{id:"3095",title:"Prof.",name:"Kenji",middleName:null,surname:"Suzuki",slug:"kenji-suzuki",fullName:"Kenji Suzuki",profilePictureURL:"https://mts.intechopen.com/storage/users/3095/images/1592_n.jpg",institutionString:null,institution:{name:"University of Chicago",institutionURL:null,country:{name:"United States of America"}}},{id:"214067",title:"Dr.",name:"W. 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The applications of this research cover many related fields, such as biotechnology and medicine, where, for example, Bioinformatics contributes to faster drug design, DNA analysis in forensics, and DNA sequence analysis in the field of personalized medicine. Personalized medicine is a type of medical care in which treatment is customized individually for each patient. Personalized medicine enables more effective therapy, reduces the costs of therapy and clinical trials, and also minimizes the risk of side effects. Nevertheless, advances in personalized medicine would not have been possible without bioinformatics, which can analyze the human genome and other vast amounts of biomedical data, especially in genetics. The rapid growth of information technology enabled the development of new tools to decode human genomes, large-scale studies of genetic variations and medical informatics. 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