\r\n\tAssisted Reproductive Technologies (ART) is a key technology for treating infertility, which occurs in 10-15% of the general population in reproductive age. This has been one of the most tumultuously developing interdisciplinary technologies in medicine in recent decades. Thanks to in vitro methods, more than 5 million children were born in the whole world. For 40 years, the success rates of this treatment have increased many times, respectively in the first years from less than 10% to more than 50% in present days (in some groups of patients). The reason for this rapid increase is the introduction of new drugs and stimulation protocols, improvement of embryo culture media, and the use of new types of laboratory equipment that improve the conditions for embryo development. Last but not least, the introduction of modern genetic methods, as well as new gamete and tissue freezing techniques, has improved the methods' diagnostic and therapeutic capabilities.
",isbn:"978-1-80356-720-4",printIsbn:"978-1-80356-719-8",pdfIsbn:"978-1-80356-721-1",doi:null,price:0,priceEur:0,priceUsd:0,slug:null,numberOfPages:0,isOpenForSubmission:!0,isSalesforceBook:!1,isNomenclature:!1,hash:"4a171468ca00ae2c47f7f5cd0f3b90a4",bookSignature:"Dr. Iavor K. Vladimirov",publishedDate:null,coverURL:"https://cdn.intechopen.com/books/images_new/11839.jpg",keywords:"Ovarian Reserve, Indication of ART Treatment, Stimulation Protocols, Monitoring of Ovarian Stimulation, Oocytes and Sperm Preparation, Manipulation Techniques, Surrogacy, Cross Border IVF Treatment, Preimplantation Genetic Testing, Endometrial Receptivity, Ethical aspects of ART, Ovarian Rejuvenation",numberOfDownloads:null,numberOfWosCitations:0,numberOfCrossrefCitations:null,numberOfDimensionsCitations:null,numberOfTotalCitations:null,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"March 24th 2022",dateEndSecondStepPublish:"June 7th 2022",dateEndThirdStepPublish:"August 6th 2022",dateEndFourthStepPublish:"October 25th 2022",dateEndFifthStepPublish:"December 24th 2022",dateConfirmationOfParticipation:null,remainingDaysToSecondStep:"a month",secondStepPassed:!0,areRegistrationsClosed:!1,currentStepOfPublishingProcess:3,editedByType:null,kuFlag:!1,biosketch:'Dr. Vladimirov is the founder and medical director of the Sofia IVF Clinic. He is also one of the authors of the book "Theory about the Embryo Cryo-Treatment", the first theory that provides a scientific explanation for the high success rate in the use of frozen embryos.\r\nDr. Vladimirov introduces for the first time in Bulgaria the methods for Ovarian Reserve Assessment, In Vitro Maturation method,Determination of “implantation window” in the endometrium, using\r\nEndometrial Receptivity Analysis (ERA) test.',coeditorOneBiosketch:null,coeditorTwoBiosketch:null,coeditorThreeBiosketch:null,coeditorFourBiosketch:null,coeditorFiveBiosketch:null,editors:[{id:"253947",title:"Dr.",name:"Iavor K.",middleName:null,surname:"Vladimirov",slug:"iavor-k.-vladimirov",fullName:"Iavor K. Vladimirov",profilePictureURL:"https://mts.intechopen.com/storage/users/253947/images/system/253947.jpg",biography:"Dr. Iavor K. Vladimirov graduated in Medicine at the Sofia Medical University in 1990. In 1997 he became an Obstetrics and Gynaecology specialist. In 2003, he wrote a doctoral thesis on 'Diagnostic Testing to Assess the Ovarian Reserve of Infertile Women”, and obtained a Ph.D.\nDr. Vladimirov was, in the period between 2008 and 2010, a secretary of the Bulgarian Association of Sterility and Reproductive Health. \nHe hаѕ оvеr 25 уеаrѕ’ of ехреrіеnсе іn the аѕѕіѕtеd rерrоduсtіоn and іntrоduсеd the method of 'іn vіtrо mаturаtіоn” tо Вulgаrіа. Dr. Iavor Vladimirov іѕ thе fіrѕt Вulgаrіаn rерrоduсtіvе mеdісіnе ѕресіаlіѕt whо wоn оnе оf thе mоѕt рrеѕtіgіоuѕ аwаrd оf 'Тhе Society for Reproductive Endocrinology and Infertility” оf Тhе Аmеrісаn Ѕосіеtу fоr Rерrоduсtіvе Меdісіnе (АЅRМ) fоr уеаr 2016 and won the prestigious \\'Daniela Seizova - In the Name of Life\\' award in the category \\'Physician of 2016.\\' \nSince 2004 he is the Medical Director of the IVF unit in SBALAGRM – Sofia, Bulgaria.\nSince 2008 he is a Lector of the Faculty of Biology, Sofia University 'St. Kliment Ohridski”, Sofia, Bulgaria.",institutionString:"Sofia IVF clinic",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"1",totalChapterViews:"0",totalEditedBooks:"0",institution:null}],coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"16",title:"Medicine",slug:"medicine"}],chapters:null,productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},personalPublishingAssistant:{id:"453622",firstName:"Tea",lastName:"Jurcic",middleName:null,title:"Ms.",imageUrl:"//cdnintech.com/web/frontend/www/assets/author.svg",email:"tea@intechopen.com",biography:null}},relatedBooks:[{type:"book",id:"6550",title:"Cohort Studies in Health Sciences",subtitle:null,isOpenForSubmission:!1,hash:"01df5aba4fff1a84b37a2fdafa809660",slug:"cohort-studies-in-health-sciences",bookSignature:"R. 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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"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"72",title:"Ionic Liquids",subtitle:"Theory, Properties, New Approaches",isOpenForSubmission:!1,hash:"d94ffa3cfa10505e3b1d676d46fcd3f5",slug:"ionic-liquids-theory-properties-new-approaches",bookSignature:"Alexander Kokorin",coverURL:"https://cdn.intechopen.com/books/images_new/72.jpg",editedByType:"Edited by",editors:[{id:"19816",title:"Prof.",name:"Alexander",surname:"Kokorin",slug:"alexander-kokorin",fullName:"Alexander Kokorin"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"314",title:"Regenerative Medicine and Tissue Engineering",subtitle:"Cells and Biomaterials",isOpenForSubmission:!1,hash:"bb67e80e480c86bb8315458012d65686",slug:"regenerative-medicine-and-tissue-engineering-cells-and-biomaterials",bookSignature:"Daniel Eberli",coverURL:"https://cdn.intechopen.com/books/images_new/314.jpg",editedByType:"Edited by",editors:[{id:"6495",title:"Dr.",name:"Daniel",surname:"Eberli",slug:"daniel-eberli",fullName:"Daniel Eberli"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"57",title:"Physics and Applications of Graphene",subtitle:"Experiments",isOpenForSubmission:!1,hash:"0e6622a71cf4f02f45bfdd5691e1189a",slug:"physics-and-applications-of-graphene-experiments",bookSignature:"Sergey Mikhailov",coverURL:"https://cdn.intechopen.com/books/images_new/57.jpg",editedByType:"Edited by",editors:[{id:"16042",title:"Dr.",name:"Sergey",surname:"Mikhailov",slug:"sergey-mikhailov",fullName:"Sergey Mikhailov"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"1373",title:"Ionic Liquids",subtitle:"Applications and Perspectives",isOpenForSubmission:!1,hash:"5e9ae5ae9167cde4b344e499a792c41c",slug:"ionic-liquids-applications-and-perspectives",bookSignature:"Alexander Kokorin",coverURL:"https://cdn.intechopen.com/books/images_new/1373.jpg",editedByType:"Edited by",editors:[{id:"19816",title:"Prof.",name:"Alexander",surname:"Kokorin",slug:"alexander-kokorin",fullName:"Alexander Kokorin"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}}]},chapter:{item:{type:"chapter",id:"80560",title:"A Review on the Contact Mechanics Modeling of Rough Surfaces in the Elastic Regime: Fundamentals, Theories, and Numerical Implementations",doi:"10.5772/intechopen.102358",slug:"a-review-on-the-contact-mechanics-modeling-of-rough-surfaces-in-the-elastic-regime-fundamentals-theo",body:'Among the most complicated problems in mechanics, there is the contact modeling of rough surfaces where one seeks to predict the stresses, strains, and true contact area. These predictions play a very important role in studying many phenomena such as friction [1], wear [2], thermal [3] and electrical conductivity [4], sealing [5], squeal [6, 7], etc. Understanding the micromechanical characteristics of these phenomena leads to a robust design of mechanical systems by increasing their performances. For example, in micro-systems with brittle behavior such as (i) radio frequency micro-electro-mechanical-systems (RF MEMS) with silicon-to-Silicon (Si-to-Si) contacts [8], (ii) micro-turbines using Si or Polydimethylsiloxane (PDMS)-based micro-valve and [9] (iii) Si-to-Si wafer bonding [10, 11, 12], the performances and the reliability of the device rely on the quality of the contact [13, 14, 15, 16, 17]. An accurate prediction of the pressure and the true contact area leads to a good dimensioning of the adhesion forces and thus, to an increase in the reliability of components.
As part of the design process of these systems, the contact problem is addressed by assuming that the contact interfaces are perfectly flat. This assumption neglects the notion of roughness, which often leads to an overestimation of the contact surface and an underestimation of the contact pressure. In reality, every surface, even mirror polished, still exhibits roughness at the micro- and nano-scales. A rough surface can be seen as the superposition of several wavelengths, forming hills (asperities or local maxima) and valleys (local minima), and it is fully described by two statistical functions: (i) the height probability density function (HPDF) and (ii) the power spectral density function (PSDF). The former describes the randomness of the rough surface, while the latter quantifies the contribution of the different wavelengths to the surface topography. Both HPDF and PSDF are widely used to characterize engineering surfaces [18, 19, 20] as well as to generate numerically artificial surfaces [21, 22].
When two rough surfaces come in contact, the mechanical load is borne by the top of the highest asperities. Thus, the real contact area is only a small fraction of the nominal area. The first and most popular theory that elucidated this point was made in the 1960s by the pioneers’ Greenwood and Williamson (GW) [23]. In such theory, the rough surface is represented by a set of spherically shaped asperities, with the same radius of curvature and whose height varies randomly following a given probability density function. Then, the Hertz theory of one elastic sphere contacting a rigid flat plane is extended to the entire surface. In the same period, Bush et al. [24] proposed a refined model approximately equivalent to its counterpart (i.e. GW theory). The special point with respect to GW theory is that Bush et al. assumed that asperities have a paraboloidal shape. Then, they used the random process theory [25] to describe the statistics of the rough surface. Other models quite similar to those described above can be found in Refs. [26, 27, 28]. Using the above theories, it has been found that, at a low squeezing load, the predicted true contact area
The aforementioned contact models assume that all the contacting asperities behave independently. Thus, the interaction between the different contact region are neglected (i.e. each asperity is locally deformed without inducing a displacement of the neighboring asperity). This last assumption is not met for medium to high loading cases (i.e. nearly full contact case) since the contacting asperities become tighter and hence, the contribution of the surface deflections produced by each of them, at the level of the neighboring micro-contacts, becomes significant [29, 30]. On the other hand, O’Callaghan et al. [31] and Hendriks et al. [32] demonstrated experimentally that asperities can interact strongly and even coalesce at low loads questioning the reliability of the classic asperity-based models. To consider the interaction between asperities, authors in the literature have proposed several models based on GW theory. For instance, Paggi and Ciavarella [33, 34] included interaction between asperities by means of semi-analytical modeling to simulate the effect of the bulk. In the same context, Afferrante et al. [35] have introduced a multi-asperity model that takes into account the coalescence between two contacting asperities. Despite all these advanced models, the semi-analytical approach remains very approximate compared to numerical methods such as the finite or the boundary element method [36].
The original GW theory has also been criticized since it deals with special cases where the height distribution follows a Gaussian or exponential distribution. Especially, it is well admitted by the scientific community that the roughness can appear at many scales exactly like the fractal patterns, but down to a wavelength that corresponds to, perhaps, some lattice constant. The use of GW theory with the “fractal” characteristic has been questioned by many authors, in particular Persson [37]. The latter comes out with an ingenious idea, completely different from the asperity-based model, to tackle the scaling effect on realistic rough surfaces [37, 38, 39]. In contrast to asperity-based models, Persson’s theory considers the stress probability distribution as a function of the surface resolution. The idea is to determine the evolution of the contact stress density function when the PSDF is extended to cover a wide frequency range. Initially, the problem is solved by assuming a full-contact assumption (i.e. smooth surfaces assumption) under initial uniform pressure
In parallel with analytical models, several research groups have proposed numerical simulations reproducing the behavior of rough surfaces in contact. Among these methods, there is the finite element method (FEM) introduced for the first time by Hyun et al. [41]. This category of method is free of any assumption. The only disadvantage it presents is the convergence which is related to (i) the numerical treatement (the penalty method for instance) and (ii) the discretization error. Indeed, to have significant results it is necessary that the size of the discretization is much smaller than the shortest wavelength of the rough surface [5]. However, the finest mesh leads to a prohibitive computational cost. The latest point was clearly demonstrated by Yastrebov et al. [36]. It was shown that the numerical error of the discretization depends on two ratios; (i)
This review paper provides a comprehensive comparison of the above-mentioned models with particular attention to the standard Boundary Element Method (BEM), which is based on the Green functions. The concern of the present study is limited to solve the frictionless rough contact problem of micro-systems with purely brittle behavior (i.e. in the elastic regime). Thus, the chapter is organized as follows. First, we start to recall and describe 4 theories, namely (i) the original GW model in its continuous and discrete form, (ii) the modified GW to take into account interaction between the contacting asperities, (iii) Persson theory, and (iv) the BEM. Then, the methods will be applied to a 1 μm-thick gold rough surfaces. The first one is measured by the atomic force microscopy (AFM) technique while the others are numerically generated using a suitable algorithm taking as an input the statistical functions of the measured Au rough surface (i.e. HDF and PSDF). Finally, the chapter will be closed with an analysis and discussion of the predicted contact area and pressure.
Consider a rigid perfectly smooth plane moving towards a rough surface of an elastic body with a motion
The Greenwood and Williamson theory. The rough surface is described by several spherical asperities of radius
where
For a rigid plan,
Following the configuration in Figure 1, there will be contact between the rigid plane and the rough surface if and only if, the height
Now, if the rough surface has
The total number of asperities
If we define the displacement of the asperities as
and
Note that one needs to know
where
the second and fourth spectral moments can be calculated as,
with
GW theory can be rewritten in a discrete form. To do so, let us assume now that each asperity is characterized by its own radius
where
The true contact area
Note that, in the discrete GW formulation, the gap function is given by
The original GW model has been criticized for various reasons. First, in terms of the shape of the asperities, several authors have argued that in reality the asperity has a shape that tends towards a sinusoidal curve. In fact, experimental investigations has clearly shown that a sinusoidal description is more realistic than a circular one [57]. Second, in terms of computational point of view, sinusoidal asperities have interesting mathematical properties such as continuity and differentiability, which is not the case for the circular ones where stress concentrations occur and therefore, become problematic to tackle the plasticity behavior [58]. Third, with respect to asperities interaction, the GW theory assumes that each asperity deforms in an independent manner leading to an underestimation of the predicted contact pressure.
The main idea of this contribution is take into account the interaction between the asperities. All these developments will be with an asperity of sinusoidal form (see Figure 2).
The modified Greenwood and Williamson theory. The rough surface is described by several sinusoidal asperities of a height
First, let us recall some basic results within the Hertz theory framework of two contacting bodies: flat surface and a sinusoidal body. The Young and the Poisson ratio for the deformable sinusoidal body are denoted
In Eq. (15), the
where
Following Johnson work [60], the contact load,
where
If we confine ourselves to the second order, the contact load and the compression of the asperity will be written as follows,
Note that when only the first order of the Taylor expansion is considered, Eq. (19) is simplified to Hertz formula given by Eq. (2).
To account for the interactions, the Boussinesq solution will be added to Eq. (15). We write,
The additional term,
where
Therefore, the resolution of the contact problem with interaction is to find a set of contact spots radii
Since the problem in Eq. (23) is non linear, Levenberg-Marquardt (LM) algorithm is used to find the contact radii. In fact, the resolution of the contact problem consists in minimizing the objective function
For each contact step do,
where
Since the contact problem is formulated as a nonlinear least-squares (NLS) problem, the gradient of the objective function can be written as,
where
The Hessian matrix is the square matrix of second-order partial derivatives of
For this case, the Hessian matrix can be rewritten as follows,
LM algorithm differs from Newton’s or Gauss-Newton’s (GN) method by using a damped approximation of the Hessian matrix. In fact, in LM method GN approximation is damped using a suitable controlling strategy to avoid the weakness of the GN method when the Jacobian matrix is rank-deficient. We write,
where
4.
Note that Eq. (30) is the normal equations for the following linear least-squares problem,
Note also that the damping factor
5.
6.
If
7.
Overall, the resolution of the contact problem with interaction falls into two loops. The first one handles the contact steps defined for each far field displacement
In 2001, Persson [39] came out with an ingenious idea, completely different compared the asperity-based models, to tackle the micro-mechanic contact problem of rough surfaces. The Persson theory starts by considering the contact of the two rough bodies to be initially perfect (i.e. smooth contacting surfaces see Figure 3). For the full contact set up, the contact pressure
Two elastic bodies in contact. Illustration of the scaling theory. Both bodies has roughness on many different length scales.
where,
from which its follows,
It is important to note that Eq. (33) is supposed to hold for the full contact condition (first configuration of the Figure 3). For the partial contact, the 3-
The Boundary Element Method (BEM) belongs to the most efficient numerical methods for solving normal contact problems between two linear elastic bodies with rough boundaries. Unlike asperity-based models, the BEM is free of any kind of assumption. Its only restriction is in the discretization of the rough surface. Indeed, an adequate mesh is required to guarantee the convergence of the predicted results. However, with the development of computer tools, the restriction of discretization is easily overcome.
The relevance of BEM is based on the treatment of the problem of contact of rough surfaces without the need to discretize the bulk. The fundamental BEM formulation deals with the frictionless contact of homogeneous and linear elastic bodies with rough boundaries. Several developments have been proposed to extend the BEM to address the contact problem of heterogeneous bodies with rough boundaries [61] including severe nonlinearities such as adhesion [50, 51], friction [52] or plasticity [53]. The purpose of this section is to present the basic BEM formulation to solve frictionless contact problem of rough surfaces.
Let us assume a system defined in Figure 4 which is equivalent of two bodies with two rough boundaries. The Young modulus
Contact problem configuration: rigid rough surface and an elastic half-plane. The latter moves normally towards the rigid rough surface according to a far field displacement
In the fundamental BEM, the normal displacement field,
where
where
Therefore, the frictionless contact problem of the rough surfaces is solved by the following optimization problem,
The discretized form of the above formulation can be given if we consider the following set of the discretized parameters,
the barycentric coordinate:
the average height:
the resultant contact load:
the displacement:
Note that
Hence, the discretized form of Eq. (38) can be written as follows,
where
and
To solve numerically the frictionless contact problem, it is convenient to recall some definitions introduced for the first time by Paggi et al. [44, 52]. First, let us define the set
which can be read as the set of the elements
It should be noted that the condition,
must hold in the last case implying non contact between the boundaries and thus, a zero contact pressure. In the opposite case, where the contact occurs, the contact pressure is strictly positive and hence,
If we denote
Thus, for all elements
Using the matrix form, the frictionless contact problem can be expressed following the classic Linear Complementarity Problem (LCP) as follows,
where
where its solution
Solving the discretized form of LCP is not trivial since neither the contact pressure nor the displacement are known in priory. In the literature, authors developed several numerical schemes such as (i) pivoting methods (known also as Lemke’s algorithm), (ii) Non-Negative Least Squares (NNLS) solver and (iii) the FFT-based algorithm to solve efficiently the contact problem. The pivoting-based method reaches the exact solution after a finite number of pivoting. However, when the matrix
where
In the previous section, several theories have been reviewed with details and comments on the possible algorithmic implementation to tackle the frictionnless contact problem of two elastic bodies with rough boundaries. We have, however, not yet discussed the roughness from an experimental and numerical point of view. In this section, we thus present an AFM measurement of Au surface. Special attention will be given to the characterization of the Au measured surface following the PSDF in order to generate numerically rough surfaces similar to what has been observed experimentally. For this, we introduce first basic concepts to characterize the measured rough surface by the means of the PSDF. Then, a brief comment will be given on the comparison between the measured and the generated Au rough surface.
Every surface exhibits roughness at the micro- or nano-scales. The surface variations can be fully characterized by their height probability density and power spectral density functions (i.e. HPDF and PSDF). The former holds the out-of-plane information while the latter describes the spatial arrangement. The HPDF can take various forms (i.e. exponential, Gaussian, Weibull…) depending on the fabrication and the post-processing techniques. Surfaces fabricated using a random deposition process, such as evaporation and magnetron sputtering in the microelectronics industry, generally lead to surface heights with near-Gaussian distribution.
The relevant statistical quantities that characterize the HPDF are: (i) the mean
On the other hand, the PSDF quantifies the contribution of the different wavelengths to the surface topography. It is directly calculated from the Fast Fourier Transform (FFT) of measurement data
where
According to Persson’s work on the nature of rough surfaces [63], the PSDF follows a power law for
where the exponent
This section presents the characterization of a real rough surface through its HPDF and PSDF. The surface of a 1 μm-thick Au film deposited on a silicon wafer using radio frequency magnetron sputtering technique is considered for the study of a real surface topography. The AFM measurements are performed under Veeco Dimension 3100 instrument using a super sharp silicon (SSS) probe from NANOSENSORS, the scanned area is
Figure 5a presents the 3D view of the measured surface. The standard deviation of surface heights
3D view of (a) Au micro-surface measured using AFM and (b) numerically generated rough surface. The resolution of the real and artificial rough surface is
Normalized HDFs of AFM and artificial surfaces.
The 2D PSDF computed from the AFM data using Eq. (55) shows that the surface is highly isotropic (see Figure 7a). It can be seen from Figure 8 that the radially averaged 2D PSDF increases with the increase of
2D PSDFs of (a) Au micro-surface measured using AFM and (b) numerically generated rough surface.
Radially averaged PSDF of from AFM measurements on Au surface and the corresponding fit.
The artificial surface is aimed to mimic the behavior of Au surface. Thus, a Gaussian surface is generated using an implementation inspired by the Wu method [21] and based on the fitted PSDF of the measured Au surface (see Figure 8—red dashed line). The artificial surface is characterized by geometric and statistical quantities similar to those of Au surface, specifically (i) the standard deviation of surface heights
The accuracy of the estimated contact area through the BEM is highly linked to the discretized rough surfaces and thus, strongly depends on the number of cells chosen to model the roughness. To highlight this problem, also known as the mesh-convergence in the literature, several computations were carried out on the
Effect of the mesh discretization on the true contact area—contact pressure law for a generated rough surface. (a) FFT solver. (b) NNLS solver.
One can observe from Figure 9 that the contact law,
In the following, the predicted results using
Let us consider a generated rough surface in Figure 5b which is in contact with a flat plane. The latter moves normally towards the rough surface according to a far field displacement
The Boundary Element Method on the generated rough surface. The resolution is performed on the finest discredited rough surface which contains
The Discrete Greenwood and Williamson model using spherical asperities without interaction. It is denoted by GW theory;
The modified Greenwood and Williamson model using sinusoidal asperities with interaction. It is denoted by GW-interaction;
The analytic solution of Persson Theory which is denoted by Persson theory;
The Bush-Gibson-Thomas asperity contact theory, known as BGT theory.
The predicted results are presented in Figure 10. Overall, the above theories predict the same behavior for a small pressure margin. The normalized contact area—normalized contact pressure relationship is almost linear whether the interaction is taken into account or not. For an accurate modeling, the contact area vs. contact pressure may be approximated by a power law function rather than a linear function. This first results is well known in the literature [65]. However, the coefficient of the proportionality (i.e. the slop of Figure 10) varies from one theory to another. For instance, the BGT’s slope is quite different from that predicted by the reference solution and the Persson theory. With regards to the asperity based models, the coefficient of proportionality of GW theory with or without interaction are quite similar. They vary from
The comparison between the BGT, GW model with and without interaction, Persson theory and BEM. Observe that the predicted laws area-contact pressure are power law function except BGT prediction which involves linear approximation. The inset show the evolution of the slop, for each prediction, as a function of the dimensionless contact pressure.
Given that all contact models presented above, the pioneering theory of GW [23] gives an accurate results for a fraction of contact area lower than 20%. The predicted true contact area are very similar to the other enhanced models. With regards to the literature, the obtained results can be analyzed using Nayak’s parameter
In the previous sections, all the above methods were successfully applied on numerically generated rough surfaces. Recall that these were generated using Wu’s algorithm [21]. It takes as input the fitted PSDF based on the measured one. Let us, however, consider the case of a measured Au rough surface. The objective of this section is to conduct a BEM simulation on the measured Au rough surface and compare the results with those obtained on randomly generated rough surfaces using Monte-Carlo simulation on 1000 realizations.
The results for the evolution of the real contact area in dimensionless form for Au measured rough surface are depicted in Figure 11. They are compared to BEM solution over 1000 equivalent rough surfaces in order to obtain statistical relevant results. The average prediction over 1000 realizations is also computed (see Figure 11 red dashed line). The obtained predictions of Au measured rough surface are a little bit higher than the average BEM predictions on randomly generated rough surfaces. The maximum error does not exceed 9% for the considered contact pressure margin. Note that this difference is observed despite the fact that the PSDFs of the measured and generated rough surfaces are equivalent (see Figures 6 and 8). The observed discrepancy can be attributed to (i) the measured HDF of Au surface which not a perfect Gaussian (i.e the measured kurtosis is 2.7 instead of 3), (ii) the fluctuations on the Au PSDF due to local irregularities and (iii) the AFM white noise that causes the Au PSDF to flatten at high spatial frequencies
True contact area vs. contact pressure in dimensionless form: comparison between BEM solution on 1000 realizations (e.g. 1000 randomly generated rough surfaces—gray dashed lines), average curve over the 1000 realization (red dashed line) and BEM solution on the measured
The aim of this contribution is to present the basic guidelines to tackle the problem of contacting rough surfaces accounting for the real surface topography. For this purpose, the authors presented different theories of contact mechanics and introduced the procedure to characterize the surface topography from AFM measurements by the mean of the height distribution and power spectral density functions (HDF and PSDF).
First, a brief description has been devoted to synthesize the fundamentals of Greenwood’s theory with and without interaction, Persson’s theory and the Boundary Element Method. Next, a rough surface of length 1.5 μm, which is comparable to the contact electrode surfaces for ohmic contact micro-switches, was fabricated by sputtering 1 μm thick gold over silicon wafer and measured by AFM technique with 512 heights per side.
The measured HDF and PSDF was approximated and then, used to generate several artificial surfaces to study the mesh effect of the BEM, considered as the reference solution, by means of two solvers (i.e. FFT and NNLS). The convergence study showed that the predicted results using NNLS solver converge from an approximation of
The Greenwood and Williamson’s theory, with and without interaction, and Persson’s theory were applied to the generated rough surface and compared to the BEM. All these models predict approximately a power-law evolution of the contact surface as a function of dimensionless pressure. A notable difference was observed in the slope of each prediction, and the proportionality coefficients found are consistent with the literature. It is worth mentioning that the pioneering theory of GW gives accurate results for small contact area fraction and is in a good agreement with GW-interaction model and BEM-FFT predictions. However, GW results start to deviate when the pressure load increases since the interactions between asperities have a larger effect.
Finally, the Au rough surface was studied using the BEM and the results were successfully compared with intensive Monte-Carlo simulations on 1000 generated rough surface populations. The generation of artificial surfaces from the approximated HDF and PSDF succeed to catch the real surface topography and allows to estimate the mechanical behavior of contacting rough surfaces with a high level of confidence.
The first author would like to warmly thank Prof. Vladislav Yastrebov and Prof. Marco Paggi for their immense help and extremely relevant explanations during the workshops organized at Mines-Paristech France and IMT-Lucca Italy, respectively. This research work could not have been done without their help.
The authors declare no conflict of interest.
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Likewise, the adoption of artificial intelligence (AI) in healthcare is growing while radically changing the face of healthcare delivery. AI is being employed in a myriad of settings including hospitals, clinical laboratories, and research facilities. AI approaches employing machines to sense and comprehend data like humans has opened up previously unavailable or unrecognised opportunities for clinical practitioners and health service organisations. Some examples include utilising AI approaches to analyse unstructured data such as photos, videos, physician notes to enable clinical decision making; use of intelligence interfaces to enhance patient engagement and compliance with treatment; and predictive modelling to manage patient flow and hospital capacity/resource allocation. Yet, there is an incomplete understanding of AI and even confusion as to what it is? Also, it is not completely clear what the implications are in using AI generally and in particular for clinicians? This chapter aims to cover these topics and also introduce the reader to the concept of AI, the theories behind AI programming and the various applications of AI in the medical domain.",book:{id:"6653",slug:"ehealth-making-health-care-smarter",title:"eHealth",fullTitle:"eHealth - Making Health Care Smarter"},signatures:"Sandeep Reddy",authors:[{id:"230704",title:"Associate Prof.",name:"Sandeep",middleName:null,surname:"Reddy",slug:"sandeep-reddy",fullName:"Sandeep Reddy"}]},{id:"56615",doi:"10.5772/intechopen.69792",title:"Computer Aided Diagnosis - Medical Image Analysis Techniques",slug:"computer-aided-diagnosis-medical-image-analysis-techniques",totalDownloads:3105,totalCrossrefCites:13,totalDimensionsCites:21,abstract:"Breast cancer is the second leading cause of death among women worldwide. Mammography is the basic tool available for screening to find the abnormality at the earliest. It is shown to be effective in reducing mortality rates caused by breast cancer. Mammograms produced by low radiation X-ray are difficult to interpret, especially in screening context. The sensitivity of screening depends on image quality and unclear evidence available in the image. The radiologists find it difficult to interpret the digital mammography; hence, computer-aided diagnosis (CAD) technology helps to improve the performance of radiologists by increasing sensitivity rate in a cost-effective way. Current research is focused toward the designing and development of medical imaging and analysis system by using digital image processing tools and the techniques of artificial intelligence, which can detect the abnormality features, classify them, and provide visual proofs to the radiologists. The computer-based techniques are more suitable for detection of mass in mammography, feature extraction, and classification. The proposed CAD system addresses the several steps such as preprocessing, segmentation, feature extraction, and classification. Though commercial CAD systems are available, identification of subtle signs for breast cancer detection and classification remains difficult. The proposed system presents some advanced techniques in medical imaging to overcome these difficulties.",book:{id:"5926",slug:"breast-imaging",title:"Breast Imaging",fullTitle:"Breast Imaging"},signatures:"Bhagirathi Halalli and Aziz Makandar",authors:[{id:"202101",title:"Mrs.",name:"Bhagirathi",middleName:null,surname:"Halalli",slug:"bhagirathi-halalli",fullName:"Bhagirathi Halalli"},{id:"202105",title:"Prof.",name:"Aziz",middleName:null,surname:"Makandar",slug:"aziz-makandar",fullName:"Aziz Makandar"}]},{id:"72859",doi:"10.5772/intechopen.93228",title:"Machine Learning in Wearable Biomedical Systems",slug:"machine-learning-in-wearable-biomedical-systems",totalDownloads:717,totalCrossrefCites:6,totalDimensionsCites:10,abstract:"Wearable technology has added a whole new dimension in the healthcare system by real-time continuous monitoring of human body physiology. They are used in daily activities and fitness monitoring and have even penetrated in monitoring the health condition of patients suffering from chronic illnesses. There are a lot of research and development activities being pursued to develop more innovative and reliable wearable. This chapter will cover discussions on the design and implementation of wearable devices for different applications such as real-time detection of heart attack, abnormal heart sound, blood pressure monitoring, gait analysis for diabetic foot monitoring. This chapter will also cover how the signals acquired from these prototypes can be used for training machine learning (ML) algorithm to diagnose the condition of the person wearing the device. This chapter discusses the steps involved in (i) hardware design including sensors selection, characterization, signal acquisition, and communication to decision-making subsystem and (ii) the ML algorithm design including feature extraction, feature reduction, training, and testing. This chapter will use the case study of the design of smart insole for diabetic foot monitoring, wearable real-time heart attack detection, and smart-digital stethoscope system to show the steps involved in the development of wearable biomedical systems.",book:{id:"9158",slug:"sports-science-and-human-health-different-approaches",title:"Sports Science and Human Health",fullTitle:"Sports Science and Human Health - Different Approaches"},signatures:"Muhammad E.H. Chowdhury, Amith Khandakar, Yazan Qiblawey, Mamun Bin Ibne Reaz, Mohammad Tariqul Islam and Farid Touati",authors:[{id:"129681",title:"Dr.",name:"Mamun Bin Ibne",middleName:null,surname:"Reaz",slug:"mamun-bin-ibne-reaz",fullName:"Mamun Bin Ibne Reaz"},{id:"244639",title:"Dr.",name:"Muhammad E.H.",middleName:null,surname:"Chowdhury",slug:"muhammad-e.h.-chowdhury",fullName:"Muhammad E.H. Chowdhury"},{id:"245398",title:"MSc.",name:"Amith M. A.",middleName:null,surname:"Khandakar",slug:"amith-m.-a.-khandakar",fullName:"Amith M. A. Khandakar"},{id:"279345",title:"Prof.",name:"Mohammad Tariqul",middleName:null,surname:"Islam",slug:"mohammad-tariqul-islam",fullName:"Mohammad Tariqul Islam"},{id:"312319",title:"Prof.",name:"Farid",middleName:null,surname:"Touati",slug:"farid-touati",fullName:"Farid Touati"},{id:"321692",title:"M.Sc.",name:"Yazan",middleName:null,surname:"Qiblawey",slug:"yazan-qiblawey",fullName:"Yazan Qiblawey"}]},{id:"56617",doi:"10.5772/intechopen.69794",title:"Breast Ultrasound Tomography",slug:"breast-ultrasound-tomography",totalDownloads:1479,totalCrossrefCites:6,totalDimensionsCites:10,abstract:"Both mammography and standard ultrasound (US) rely upon subjective criteria within the breast imaging reporting and data system (BI-RADS) to provide more uniform interpretation outcomes, as well as differentiation and risk stratification of associated abnormalities. In addition, the technical performance and professional interpretation of both tests suffer from machine and operator dependence. We have been developing a new technique for breast imaging that is based on ultrasound tomography which quantifies tissue characteristics while also producing 3-D images of breast anatomy. Results are presented from clinical studies that utilize this method. In the first phase of the study, ultrasound tomography (UST) images were compared to multi-modal imaging to determine the appearance of lesions and breast parenchyma. In the second phase, correlative comparisons with MR breast imaging were used to establish basic operational capabilities of the UST system. The third phase of the study focused on lesion characterization. Region of interest (ROI) analysis was used to characterize masses. Our study demonstrated a high degree of correlation of breast tissue structures relative to fat subtracted contrast-enhanced MRI and the ability to scan ~90% of the volume of the breast at a resolution of 0.7 mm in the coronal plane.",book:{id:"5926",slug:"breast-imaging",title:"Breast Imaging",fullTitle:"Breast Imaging"},signatures:"Nebojsa Duric and Peter Littrup",authors:[{id:"202080",title:"Dr.",name:"Nebojsa",middleName:null,surname:"Duric",slug:"nebojsa-duric",fullName:"Nebojsa Duric"},{id:"202081",title:"Dr.",name:"Peter",middleName:null,surname:"Littrup",slug:"peter-littrup",fullName:"Peter Littrup"}]},{id:"51702",doi:"10.5772/64620",title:"Empowering Diabetes Patient with Mobile Health Technologies",slug:"empowering-diabetes-patient-with-mobile-health-technologies",totalDownloads:2502,totalCrossrefCites:3,totalDimensionsCites:6,abstract:"Chronic diseases, especially diabetes mellitus, are huge public health burden. Therefore, new health care models for sharing the responsibility for care among health care providers and patients themselves are needed. The concept of empowerment promotes patient’s active involvement and control over their own health. It can be achieved through education, self-management, and shared decision making. All these aspects can be covered by mobile health technologies, the so-called mHealth. This term comprises mobile phones, patient monitoring devices, tablets, personal digital assistants, other wireless devices, and numerous apps. Many challenges of diabetics can be addressed by mHealth, including glycemic control, nutrition control, physical activity, high blood pressure, medication adherence, obesity, education, diabetic retinopathy screening, diabetic foot screening, and psychosocial care. However, mHealth plays only minor role in diabetes management, despite numerous apps on the market. Namely, these apps have many shortcomings and the majority of them does not include important functions. Moreover, these apps lack the perceived additional benefit by the user and the ease of use, important factors for acceptance of mHealth. Studies of diabetes apps regarding usability and accessibility have shown moderate results. Beside improvements of apps usability, the future of diabetes mHealth lies probably in personalized education and self-management with the help of decision support systems. At the same time, work on artificial pancreas is in progress and smartphone could be used as user interface.",book:{id:"5172",slug:"mobile-health-technologies-theories-and-applications",title:"Mobile Health Technologies",fullTitle:"Mobile Health Technologies - Theories and Applications"},signatures:"Matjaž Krošel, Lana Švegl, Luka Vidmar and Dejan Dinevski",authors:[{id:"15129",title:"Prof.",name:"Dejan",middleName:null,surname:"Dinevski",slug:"dejan-dinevski",fullName:"Dejan Dinevski"},{id:"186406",title:"M.D.",name:"Matjaž",middleName:null,surname:"Krošel",slug:"matjaz-krosel",fullName:"Matjaž Krošel"},{id:"186407",title:"Mrs.",name:"Lana",middleName:null,surname:"Švegl",slug:"lana-svegl",fullName:"Lana Švegl"},{id:"186408",title:"Dr.",name:"Luka",middleName:null,surname:"Vidmar",slug:"luka-vidmar",fullName:"Luka Vidmar"}]}],mostDownloadedChaptersLast30Days:[{id:"63955",title:"Creative Haptic Interface Design for the Aging Population",slug:"creative-haptic-interface-design-for-the-aging-population",totalDownloads:1166,totalCrossrefCites:0,totalDimensionsCites:0,abstract:"Audiovisual human-computer-interfaces still make up the majority of content to the public; however, haptic interfaces offer unique advantage over the dominant information infrastructure, particularly for users with a disability or diminishing cognitive and physical skills like the elderly. The tactile sense allows users to integrate new, unobstructive channels for digital information into their sensorium, one that is less likely to be overwhelmed compared to vision and audition. Haptics research focus on the development of hardware, improving resolution, modality, and fidelity of the actuators. Despite the technological limitations, haptic interfaces are shown to reinforce physical skill acquisition, therapy, and communication. This chapter will present key characteristics intuitive tactile interfaces should capture for elderly end-users; sample projects will showcase unique applications and designs that identify the limitations of the UI.",book:{id:"6714",slug:"assistive-technologies-in-smart-cities",title:"Assistive Technologies in Smart Cities",fullTitle:"Assistive Technologies in Smart Cities"},signatures:"Eric Heng Gu",authors:[{id:"237761",title:"M.Sc.",name:"Eric Heng",middleName:null,surname:"Gu",slug:"eric-heng-gu",fullName:"Eric Heng Gu"}]},{id:"56615",title:"Computer Aided Diagnosis - Medical Image Analysis Techniques",slug:"computer-aided-diagnosis-medical-image-analysis-techniques",totalDownloads:3101,totalCrossrefCites:12,totalDimensionsCites:20,abstract:"Breast cancer is the second leading cause of death among women worldwide. Mammography is the basic tool available for screening to find the abnormality at the earliest. It is shown to be effective in reducing mortality rates caused by breast cancer. Mammograms produced by low radiation X-ray are difficult to interpret, especially in screening context. The sensitivity of screening depends on image quality and unclear evidence available in the image. The radiologists find it difficult to interpret the digital mammography; hence, computer-aided diagnosis (CAD) technology helps to improve the performance of radiologists by increasing sensitivity rate in a cost-effective way. Current research is focused toward the designing and development of medical imaging and analysis system by using digital image processing tools and the techniques of artificial intelligence, which can detect the abnormality features, classify them, and provide visual proofs to the radiologists. The computer-based techniques are more suitable for detection of mass in mammography, feature extraction, and classification. The proposed CAD system addresses the several steps such as preprocessing, segmentation, feature extraction, and classification. Though commercial CAD systems are available, identification of subtle signs for breast cancer detection and classification remains difficult. The proposed system presents some advanced techniques in medical imaging to overcome these difficulties.",book:{id:"5926",slug:"breast-imaging",title:"Breast Imaging",fullTitle:"Breast Imaging"},signatures:"Bhagirathi Halalli and Aziz Makandar",authors:[{id:"202101",title:"Mrs.",name:"Bhagirathi",middleName:null,surname:"Halalli",slug:"bhagirathi-halalli",fullName:"Bhagirathi Halalli"},{id:"202105",title:"Prof.",name:"Aziz",middleName:null,surname:"Makandar",slug:"aziz-makandar",fullName:"Aziz Makandar"}]},{id:"60562",title:"Use of Artificial Intelligence in Healthcare Delivery",slug:"use-of-artificial-intelligence-in-healthcare-delivery",totalDownloads:2889,totalCrossrefCites:23,totalDimensionsCites:27,abstract:"In recent years, there has been an amplified focus on the use of artificial intelligence (AI) in various domains to resolve complex issues. Likewise, the adoption of artificial intelligence (AI) in healthcare is growing while radically changing the face of healthcare delivery. AI is being employed in a myriad of settings including hospitals, clinical laboratories, and research facilities. AI approaches employing machines to sense and comprehend data like humans has opened up previously unavailable or unrecognised opportunities for clinical practitioners and health service organisations. Some examples include utilising AI approaches to analyse unstructured data such as photos, videos, physician notes to enable clinical decision making; use of intelligence interfaces to enhance patient engagement and compliance with treatment; and predictive modelling to manage patient flow and hospital capacity/resource allocation. Yet, there is an incomplete understanding of AI and even confusion as to what it is? Also, it is not completely clear what the implications are in using AI generally and in particular for clinicians? This chapter aims to cover these topics and also introduce the reader to the concept of AI, the theories behind AI programming and the various applications of AI in the medical domain.",book:{id:"6653",slug:"ehealth-making-health-care-smarter",title:"eHealth",fullTitle:"eHealth - Making Health Care Smarter"},signatures:"Sandeep Reddy",authors:[{id:"230704",title:"Associate Prof.",name:"Sandeep",middleName:null,surname:"Reddy",slug:"sandeep-reddy",fullName:"Sandeep Reddy"}]},{id:"60985",title:"Terminology Services: Standard Terminologies to Control Medical Vocabulary. “Words are Not What they Say but What they Mean”",slug:"terminology-services-standard-terminologies-to-control-medical-vocabulary-words-are-not-what-they-sa",totalDownloads:1346,totalCrossrefCites:0,totalDimensionsCites:2,abstract:"Data entry is an obstacle for the usability of electronic health records (EHR) applications and the acceptance of physicians, who prefer to document using “free text”. Natural language is huge and very rich in details but at the same time is ambiguous; it has great dependence on context and uses jargon and acronyms. Healthcare Information Systems should capture clinical data in a structured and preferably coded format. This is crucial for data exchange between health information systems, epidemiological analysis, quality and research, clinical decision support systems, administrative functions, etc. In order to address this point, numerous terminological systems for the systematic recording of clinical data have been developed. These systems interrelate concepts of a particular domain and provide reference to related terms and possible definitions and codes. The purpose of terminology services consists of representing facts that happen in the real world through database management. This process is named Semantic Interoperability. It implies that different systems understand the information they are processing through the use of codes of clinical terminologies. Standard terminologies allow controlling medical vocabulary. But how do we do this? What do we need? Terminology services are a fundamental piece for health data management in health environment.",book:{id:"6653",slug:"ehealth-making-health-care-smarter",title:"eHealth",fullTitle:"eHealth - Making Health Care Smarter"},signatures:"Daniel Luna, Carlos Otero, María L. Gambarte and Julia Frangella",authors:null},{id:"66085",title:"Connected Insurance Reshaping the Health Insurance Industry",slug:"connected-insurance-reshaping-the-health-insurance-industry",totalDownloads:1193,totalCrossrefCites:1,totalDimensionsCites:1,abstract:"The role of today’s insurer is changing toward a more preventive and digital or connected approach. In this context, connected health insurance has the potential to contribute toward the health and the general well-being of the population. New technologies like e-health and wearables employed by the insurance industry might even help deal with major issues related to the rising number of people, of chronic disease patients, and of elders while keeping them healthier and at the same time protected by insurance. The aim of this chapter is to briefly illustrate the concept of “connected insurance” with specific focus on “connected health” and “wearables” and to present two case studies: Discovery’s Vitality program which aims to create healthier lifestyles for its customers through the use of wearables and rewards and ICS Maugeri’s MOSAIC project based on AI and predictive models aimed at helping with the management of treatment and quality of life in type 2 diabetes patients.",book:{id:"7952",slug:"smart-healthcare",title:"Smart Healthcare",fullTitle:"Smart Healthcare"},signatures:"Andrea Silvello and Alessandro Procaccini",authors:[{id:"288367",title:"Mr.",name:"Andrea",middleName:null,surname:"Silvello",slug:"andrea-silvello",fullName:"Andrea Silvello"},{id:"294610",title:"MSc.",name:"Alessandro",middleName:null,surname:"Procaccini",slug:"alessandro-procaccini",fullName:"Alessandro Procaccini"}]}],onlineFirstChaptersFilter:{topicId:"1015",limit:6,offset:0},onlineFirstChaptersCollection:[],onlineFirstChaptersTotal:0},preDownload:{success:null,errors:{}},subscriptionForm:{success:null,errors:{}},aboutIntechopen:{},privacyPolicy:{},peerReviewing:{},howOpenAccessPublishingWithIntechopenWorks:{},sponsorshipBooks:{sponsorshipBooks:[],offset:8,limit:8,total:0},allSeries:{pteSeriesList:[{id:"14",title:"Artificial Intelligence",numberOfPublishedBooks:9,numberOfPublishedChapters:89,numberOfOpenTopics:6,numberOfUpcomingTopics:0,issn:"2633-1403",doi:"10.5772/intechopen.79920",isOpenForSubmission:!0},{id:"7",title:"Biomedical Engineering",numberOfPublishedBooks:12,numberOfPublishedChapters:104,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2631-5343",doi:"10.5772/intechopen.71985",isOpenForSubmission:!0}],lsSeriesList:[{id:"11",title:"Biochemistry",numberOfPublishedBooks:32,numberOfPublishedChapters:318,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2632-0983",doi:"10.5772/intechopen.72877",isOpenForSubmission:!0},{id:"25",title:"Environmental Sciences",numberOfPublishedBooks:1,numberOfPublishedChapters:12,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2754-6713",doi:"10.5772/intechopen.100362",isOpenForSubmission:!0},{id:"10",title:"Physiology",numberOfPublishedBooks:11,numberOfPublishedChapters:141,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-8261",doi:"10.5772/intechopen.72796",isOpenForSubmission:!0}],hsSeriesList:[{id:"3",title:"Dentistry",numberOfPublishedBooks:8,numberOfPublishedChapters:133,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!0},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:113,numberOfOpenTopics:3,numberOfUpcomingTopics:1,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:11,numberOfPublishedChapters:107,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2632-0517",doi:"10.5772/intechopen.73681",isOpenForSubmission:!0}],sshSeriesList:[{id:"22",title:"Business, Management and Economics",numberOfPublishedBooks:1,numberOfPublishedChapters:19,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2753-894X",doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:5,numberOfOpenTopics:1,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100360",isOpenForSubmission:!0},{id:"24",title:"Sustainable Development",numberOfPublishedBooks:0,numberOfPublishedChapters:15,numberOfOpenTopics:5,numberOfUpcomingTopics:0,issn:null,doi:"10.5772/intechopen.100361",isOpenForSubmission:!0}],testimonialsList:[{id:"13",text:"The collaboration with and support of the technical staff of IntechOpen is fantastic. 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He is currently a rated researcher by the National Research Foundation of South Africa at category C2. He has published widely in the field of infectious diseases and has overseen several MSc’s and PhDs. His research activities mostly cover topics on infectious diseases from epidemiology to control. His particular interest lies in the study of intestinal protozoan parasites and opportunistic infections among HIV patients as well as the potential impact of childhood diarrhoea on growth and child development. He also conducts research on water-borne diseases and water quality and is involved in the evaluation of point-of-use water treatment technologies using silver and copper nanoparticles in collaboration with the University of Virginia, USA. 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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. 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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",institutionURL:null,country:{name:"India"}}}]},{type:"book",id:"7123",title:"Current Topics in Neglected Tropical Diseases",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/7123.jpg",slug:"current-topics-in-neglected-tropical-diseases",publishedDate:"December 4th 2019",editedByType:"Edited by",bookSignature:"Alfonso J. 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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. 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He obtained a Master’s degree in Public Health and PhD in Public Health and Epidemiology. He has a background in Clinical Medicine and has taken courses at higher diploma levels in public health from University of Transkei, Republic of South Africa, and African Medical and Research Foundation (AMREF) in Nairobi, Kenya. Dr. Kasenga worked in different places in and outside Malawi, and has held various positions, such as Licensed Medical Officer, HIV/AIDS Programme Officer, HIV/AIDS resource person in the International Department of Diakonhjemet College, Oslo, Norway. He also managed an Integrated HIV/AIDS Prevention programme for over 5 years. He is currently working as a Director for the Health Ministries Department of Malawi Union of the Seventh Day Adventist Church. Dr. Kasenga has published over 5 articles on HIV/AIDS issues focusing on Prevention of Mother to Child Transmission of HIV (PMTCT), including a book chapter on HIV testing counseling (currently in press). 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My method of translating this into day to day in clinical practice is non-exhaustible and my habit of exchanging knowledge and expertise with others in those fields is the code and secret of success.",institutionString:null,institution:{name:"Majmaah University",country:{name:"Saudi Arabia"}}},{id:"313277",title:"Dr.",name:"Bartłomiej",middleName:null,surname:"Płaczek",slug:"bartlomiej-placzek",fullName:"Bartłomiej Płaczek",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/313277/images/system/313277.jpg",biography:"Bartłomiej Płaczek, MSc (2002), Ph.D. (2005), Habilitation (2016), is a professor at the University of Silesia, Institute of Computer Science, Poland, and an expert from the National Centre for Research and Development. His research interests include sensor networks, smart sensors, intelligent systems, and image processing with applications in healthcare and medicine. 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Several international research projects has been performed with European partners from France, Netherlands, Norway and the UK. He is currently Professor of Communications Systems at the Harz University of Applied Sciences, Germany.\n\nPublications and Publishing\nHe has edited one book, a special interest book about ‘Optoelectronic Packaging’ (VDE, Berlin, Germany), and has published over 100 papers and is owner of several international patents for WDM over POF key elements.\n\nKey Research and Consulting Interests\nUlrich’s research activity has always been related to Spectroscopy and Optical Communications Technology. Specific current interests include the validation of complex instruments, and the application of VR technology to the development and testing of measurement systems. He has been reviewer for several publications of the Optical Society of America\\'s including Photonics Technology Letters and Applied Optics.\n\nPersonal Interests\nThese include motor cycling in a very relaxed manner and performing martial arts.",institutionString:null,institution:{name:"Charité",country:{name:"Germany"}}},{id:"341622",title:"Ph.D.",name:"Eduardo",middleName:null,surname:"Rojas Alvarez",slug:"eduardo-rojas-alvarez",fullName:"Eduardo Rojas Alvarez",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/341622/images/15892_n.jpg",biography:null,institutionString:null,institution:{name:"University of Cuenca",country:{name:"Ecuador"}}},{id:"215610",title:"Prof.",name:"Muhammad",middleName:null,surname:"Sarfraz",slug:"muhammad-sarfraz",fullName:"Muhammad Sarfraz",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/215610/images/system/215610.jpeg",biography:"Muhammad Sarfraz is a professor in the Department of Information Science, Kuwait University. 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In subsequent years, the concept of 'telematic education” subsequently becomes well established in academic circles in South Africa, grew in popularity, and is adopted by many universities and colleges throughout South Africa as a medium of enhancing education and training, as a method to reaching out to far out communities, and as a means to enhance study from the home environment.\r\n\r\nProfessor Snyman in subsequent years pursued research in semiconductor physics, semiconductor devices, microelectronics, and optoelectronics.\r\n\r\nIn 2000 he joined the TUT as a full professor. Here served for a period as head of the Department of Electronic Engineering. Here he makes contributions to solar energy development, microwave and optoelectronic device development, silicon photonics, as well as contributions to new mobile telecommunication systems and network planning in SA.\r\n\r\nCurrently, he teaches electronics and telecommunications at the TUT to audiences ranging from first-year students to Ph.D. level.\r\n\r\nFor his research in the field of 'Silicon Photonics” since 1990, he has published (as author and co-author) about thirty internationally reviewed articles in scientific journals, contributed to more than forty international conferences, about 25 South African provisional patents (as inventor and co-inventor), 8 PCT international patent applications until now. Of these, two USA patents applications, two European Patents, two Korean patents, and ten SA patents have been granted. A further 4 USA patents, 5 European patents, 3 Korean patents, 3 Chinese patents, and 3 Japanese patents are currently under consideration.\r\n\r\nRecently he has also published an extensive scholarly chapter in an internet open access book on 'Integrating Microphotonic Systems and MOEMS into standard Silicon CMOS Integrated circuitry”.\r\n\r\nFurthermore, Professor Snyman recently steered a new initiative at the TUT by introducing a 'Laboratory for Innovative Electronic Systems ' at the Department of Electrical Engineering. The model of this laboratory or center is to primarily combine outputs as achieved by high-level research with lower-level system development and entrepreneurship in a technical university environment. Students are allocated to projects at different levels with PhDs and Master students allocated to the generation of new knowledge and new technologies, while students at the diploma and Baccalaureus level are allocated to electronic systems development with a direct and a near application for application in industry or the commercial and public sectors in South Africa.\r\n\r\nProfessor Snyman received the WIRSAM Award of 1983 and the WIRSAM Award in 1985 in South Africa for best research papers by a young scientist at two international conferences on electron microscopy in South Africa. He subsequently received the SA Microelectronics Award for the best dissertation emanating from studies executed at a South African university in the field of Physics and Microelectronics in South Africa in 1987. In October of 2011, Professor Snyman received the prestigious Institutional Award for 'Innovator of the Year” for 2010 at the Tshwane University of Technology, South Africa. This award was based on the number of patents recognized and granted by local and international institutions as well as for his contributions concerning innovation at the TUT.",institutionString:null,institution:{name:"University of South Africa",country:{name:"South Africa"}}},{id:"317279",title:"Mr.",name:"Ali",middleName:"Usama",surname:"Syed",slug:"ali-syed",fullName:"Ali Syed",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/317279/images/16024_n.png",biography:"A creative, talented, and innovative young professional who is dedicated, well organized, and capable research fellow with two years of experience in graduate-level research, published in engineering journals and book, with related expertise in Bio-robotics, equally passionate about the aesthetics of the mechanical and electronic system, obtained expertise in the use of MS Office, MATLAB, SolidWorks, LabVIEW, Proteus, Fusion 360, having a grasp on python, C++ and assembly language, possess proven ability in acquiring research grants, previous appointments with social and educational societies with experience in administration, current affiliations with IEEE and Web of Science, a confident presenter at conferences and teacher in classrooms, able to explain complex information to audiences of all levels.",institutionString:null,institution:{name:"Air University",country:{name:"Pakistan"}}},{id:"75526",title:"Ph.D.",name:"Zihni Onur",middleName:null,surname:"Uygun",slug:"zihni-onur-uygun",fullName:"Zihni Onur Uygun",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/75526/images/12_n.jpg",biography:"My undergraduate education and my Master of Science educations at Ege University and at Çanakkale Onsekiz Mart University have given me a firm foundation in Biochemistry, Analytical Chemistry, Biosensors, Bioelectronics, Physical Chemistry and Medicine. After obtaining my degree as a MSc in analytical chemistry, I started working as a research assistant in Ege University Medical Faculty in 2014. In parallel, I enrolled to the MSc program at the Department of Medical Biochemistry at Ege University to gain deeper knowledge on medical and biochemical sciences as well as clinical chemistry in 2014. In my PhD I deeply researched on biosensors and bioelectronics and finished in 2020. Now I have eleven SCI-Expanded Index published papers, 6 international book chapters, referee assignments for different SCIE journals, one international patent pending, several international awards, projects and bursaries. In parallel to my research assistant position at Ege University Medical Faculty, Department of Medical Biochemistry, in April 2016, I also founded a Start-Up Company (Denosens Biotechnology LTD) by the support of The Scientific and Technological Research Council of Turkey. Currently, I am also working as a CEO in Denosens Biotechnology. The main purposes of the company, which carries out R&D as a research center, are to develop new generation biosensors and sensors for both point-of-care diagnostics; such as glucose, lactate, cholesterol and cancer biomarker detections. My specific experimental and instrumental skills are Biochemistry, Biosensor, Analytical Chemistry, Electrochemistry, Mobile phone based point-of-care diagnostic device, POCTs and Patient interface designs, HPLC, Tandem Mass Spectrometry, Spectrophotometry, ELISA.",institutionString:null,institution:{name:"Ege University",country:{name:"Turkey"}}},{id:"267434",title:"Dr.",name:"Rohit",middleName:null,surname:"Raja",slug:"rohit-raja",fullName:"Rohit Raja",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/267434/images/system/267434.jpg",biography:"Dr. Rohit Raja received Ph.D. in Computer Science and Engineering from Dr. CVRAMAN University in 2016. His main research interest includes Face recognition and Identification, Digital Image Processing, Signal Processing, and Networking. Presently he is working as Associate Professor in IT Department, Guru Ghasidas Vishwavidyalaya (A Central University), Bilaspur (CG), India. He has authored several Journal and Conference Papers. He has good Academics & Research experience in various areas of CSE and IT. He has filed and successfully published 27 Patents. He has received many time invitations to be a Guest at IEEE Conferences. He has published 100 research papers in various International/National Journals (including IEEE, Springer, etc.) and Proceedings of the reputed International/ National Conferences (including Springer and IEEE). He has been nominated to the board of editors/reviewers of many peer-reviewed and refereed Journals (including IEEE, Springer).",institutionString:"Guru Ghasidas Vishwavidyalaya",institution:{name:"Guru Ghasidas Vishwavidyalaya",country:{name:"India"}}},{id:"246502",title:"Dr.",name:"Jaya T.",middleName:"T",surname:"Varkey",slug:"jaya-t.-varkey",fullName:"Jaya T. Varkey",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/246502/images/11160_n.jpg",biography:"Jaya T. Varkey, PhD, graduated with a degree in Chemistry from Cochin University of Science and Technology, Kerala, India. She obtained a PhD in Chemistry from the School of Chemical Sciences, Mahatma Gandhi University, Kerala, India, and completed a post-doctoral fellowship at the University of Minnesota, USA. She is a research guide at Mahatma Gandhi University and Associate Professor in Chemistry, St. Teresa’s College, Kochi, Kerala, India.\nDr. Varkey received a National Young Scientist award from the Indian Science Congress (1995), a UGC Research award (2016–2018), an Indian National Science Academy (INSA) Visiting Scientist award (2018–2019), and a Best Innovative Faculty award from the All India Association for Christian Higher Education (AIACHE) (2019). She Hashas received the Sr. Mary Cecil prize for best research paper three times. She was also awarded a start-up to develop a tea bag water filter. \nDr. Varkey has published two international books and twenty-seven international journal publications. She is an editorial board member for five international journals.",institutionString:"St. Teresa’s College",institution:null},{id:"250668",title:"Dr.",name:"Ali",middleName:null,surname:"Nabipour Chakoli",slug:"ali-nabipour-chakoli",fullName:"Ali Nabipour Chakoli",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/250668/images/system/250668.jpg",biography:"Academic Qualification:\r\n•\tPhD in Materials Physics and Chemistry, From: Sep. 2006, to: Sep. 2010, School of Materials Science and Engineering, Harbin Institute of Technology, Thesis: Structure and Shape Memory Effect of Functionalized MWCNTs/poly (L-lactide-co-ε-caprolactone) Nanocomposites. Supervisor: Prof. Wei Cai,\r\n•\tM.Sc in Applied Physics, From: 1996, to: 1998, Faculty of Physics & Nuclear Science, Amirkabir Uni. of Technology, Tehran, Iran, Thesis: Determination of Boron in Micro alloy Steels with solid state nuclear track detectors by neutron induced auto radiography, Supervisors: Dr. M. Hosseini Ashrafi and Dr. A. Hosseini.\r\n•\tB.Sc. in Applied Physics, From: 1991, to: 1996, Faculty of Physics & Nuclear Science, Amirkabir Uni. of Technology, Tehran, Iran, Thesis: Design of shielding for Am-Be neutron sources for In Vivo neutron activation analysis, Supervisor: Dr. M. Hosseini Ashrafi.\r\n\r\nResearch Experiences:\r\n1.\tNanomaterials, Carbon Nanotubes, Graphene: Synthesis, Functionalization and Characterization,\r\n2.\tMWCNTs/Polymer Composites: Fabrication and Characterization, \r\n3.\tShape Memory Polymers, Biodegradable Polymers, ORC, Collagen,\r\n4.\tMaterials Analysis and Characterizations: TEM, SEM, XPS, FT-IR, Raman, DSC, DMA, TGA, XRD, GPC, Fluoroscopy, \r\n5.\tInteraction of Radiation with Mater, Nuclear Safety and Security, NDT(RT),\r\n6.\tRadiation Detectors, Calibration (SSDL),\r\n7.\tCompleted IAEA e-learning Courses:\r\nNuclear Security (15 Modules),\r\nNuclear Safety:\r\nTSA 2: Regulatory Protection in Occupational Exposure,\r\nTips & Tricks: Radiation Protection in Radiography,\r\nSafety and Quality in Radiotherapy,\r\nCourse on Sealed Radioactive Sources,\r\nCourse on Fundamentals of Environmental Remediation,\r\nCourse on Planning for Environmental Remediation,\r\nKnowledge Management Orientation Course,\r\nFood Irradiation - Technology, Applications and Good Practices,\r\nEmployment:\r\nFrom 2010 to now: Academic staff, Nuclear Science and Technology Research Institute, Kargar Shomali, Tehran, Iran, P.O. Box: 14395-836.\r\nFrom 1997 to 2006: Expert of Materials Analysis and Characterization. Research Center of Agriculture and Medicine. Rajaeeshahr, Karaj, Iran, P. O. Box: 31585-498.",institutionString:"Atomic Energy Organization of Iran",institution:{name:"Atomic Energy Organization of Iran",country:{name:"Iran"}}},{id:"248279",title:"Dr.",name:"Monika",middleName:"Elzbieta",surname:"Machoy",slug:"monika-machoy",fullName:"Monika Machoy",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/248279/images/system/248279.jpeg",biography:"Monika Elżbieta Machoy, MD, graduated with distinction from the Faculty of Medicine and Dentistry at the Pomeranian Medical University in 2009, defended her PhD thesis with summa cum laude in 2016 and is currently employed as a researcher at the Department of Orthodontics of the Pomeranian Medical University. She expanded her professional knowledge during a one-year scholarship program at the Ernst Moritz Arndt University in Greifswald, Germany and during a three-year internship at the Technical University in Dresden, Germany. She has been a speaker at numerous orthodontic conferences, among others, American Association of Orthodontics, European Orthodontic Symposium and numerous conferences of the Polish Orthodontic Society. She conducts research focusing on the effect of orthodontic treatment on dental and periodontal tissues and the causes of pain in orthodontic patients.",institutionString:"Pomeranian Medical University",institution:{name:"Pomeranian Medical University",country:{name:"Poland"}}},{id:"252743",title:"Prof.",name:"Aswini",middleName:"Kumar",surname:"Kar",slug:"aswini-kar",fullName:"Aswini Kar",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/252743/images/10381_n.jpg",biography:"uploaded in cv",institutionString:null,institution:{name:"KIIT University",country:{name:"India"}}},{id:"204256",title:"Dr.",name:"Anil",middleName:"Kumar",surname:"Kumar Sahu",slug:"anil-kumar-sahu",fullName:"Anil Kumar Sahu",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/204256/images/14201_n.jpg",biography:"I have nearly 11 years of research and teaching experience. I have done my master degree from University Institute of Pharmacy, Pt. Ravi Shankar Shukla University, Raipur, Chhattisgarh India. I have published 16 review and research articles in international and national journals and published 4 chapters in IntechOpen, the world’s leading publisher of Open access books. I have presented many papers at national and international conferences. I have received research award from Indian Drug Manufacturers Association in year 2015. My research interest extends from novel lymphatic drug delivery systems, oral delivery system for herbal bioactive to formulation optimization.",institutionString:null,institution:{name:"Chhattisgarh Swami Vivekanand Technical University",country:{name:"India"}}},{id:"253468",title:"Dr.",name:"Mariusz",middleName:null,surname:"Marzec",slug:"mariusz-marzec",fullName:"Mariusz Marzec",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/253468/images/system/253468.png",biography:"An assistant professor at Department of Biomedical Computer Systems, at Institute of Computer Science, Silesian University in Katowice. Scientific interests: computer analysis and processing of images, biomedical images, databases and programming languages. He is an author and co-author of scientific publications covering analysis and processing of biomedical images and development of database systems.",institutionString:"University of Silesia",institution:null},{id:"212432",title:"Prof.",name:"Hadi",middleName:null,surname:"Mohammadi",slug:"hadi-mohammadi",fullName:"Hadi Mohammadi",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/212432/images/system/212432.jpeg",biography:"Dr. Hadi Mohammadi is a biomedical engineer with hands-on experience in the design and development of many engineering structures and medical devices through various projects that he has been involved in over the past twenty years. Dr. Mohammadi received his BSc. and MSc. degrees in Mechanical Engineering from Sharif University of Technology, Tehran, Iran, and his PhD. degree in Biomedical Engineering (biomaterials) from the University of Western Ontario. He was a postdoctoral trainee for almost four years at University of Calgary and Harvard Medical School. He is an industry innovator having created the technology to produce lifelike synthetic platforms that can be used for the simulation of almost all cardiovascular reconstructive surgeries. He’s been heavily involved in the design and development of cardiovascular devices and technology for the past 10 years. He is currently an Assistant Professor with the University of British Colombia, Canada.",institutionString:"University of British Columbia",institution:{name:"University of British Columbia",country:{name:"Canada"}}},{id:"254463",title:"Prof.",name:"Haisheng",middleName:null,surname:"Yang",slug:"haisheng-yang",fullName:"Haisheng Yang",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/254463/images/system/254463.jpeg",biography:"Haisheng Yang, Ph.D., Professor and Director of the Department of Biomedical Engineering, College of Life Science and Bioengineering, Beijing University of Technology. He received his Ph.D. degree in Mechanics/Biomechanics from Harbin Institute of Technology (jointly with University of California, Berkeley). Afterwards, he worked as a Postdoctoral Research Associate in the Purdue Musculoskeletal Biology and Mechanics Lab at the Department of Basic Medical Sciences, Purdue University, USA. He also conducted research in the Research Centre of Shriners Hospitals for Children-Canada at McGill University, Canada. Dr. Yang has over 10 years research experience in orthopaedic biomechanics and mechanobiology of bone adaptation and regeneration. He earned an award from Beijing Overseas Talents Aggregation program in 2017 and serves as Beijing Distinguished Professor.",institutionString:null,institution:{name:"Beijing University of Technology",country:{name:"China"}}},{id:"89721",title:"Dr.",name:"Mehmet",middleName:"Cuneyt",surname:"Ozmen",slug:"mehmet-ozmen",fullName:"Mehmet Ozmen",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/89721/images/7289_n.jpg",biography:null,institutionString:null,institution:{name:"Gazi University",country:{name:"Turkey"}}},{id:"242893",title:"Ph.D. Student",name:"Joaquim",middleName:null,surname:"De Moura",slug:"joaquim-de-moura",fullName:"Joaquim De Moura",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/242893/images/7133_n.jpg",biography:"Joaquim de Moura received his degree in Computer Engineering in 2014 from the University of A Coruña (Spain). In 2016, he received his M.Sc degree in Computer Engineering from the same university. He is currently pursuing his Ph.D degree in Computer Science in a collaborative project between ophthalmology centers in Galicia and the University of A Coruña. His research interests include computer vision, machine learning algorithms and analysis and medical imaging processing of various kinds.",institutionString:null,institution:{name:"University of A Coruña",country:{name:"Spain"}}},{id:"294334",title:"B.Sc.",name:"Marc",middleName:null,surname:"Bruggeman",slug:"marc-bruggeman",fullName:"Marc Bruggeman",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/294334/images/8242_n.jpg",biography:"Chemical engineer graduate, with a passion for material science and specific interest in polymers - their near infinite applications intrigue me. \n\nI plan to continue my scientific career in the field of polymeric biomaterials as I am fascinated by intelligent, bioactive and biomimetic materials for use in both consumer and medical applications.",institutionString:null,institution:null},{id:"255757",title:"Dr.",name:"Igor",middleName:"Victorovich",surname:"Lakhno",slug:"igor-lakhno",fullName:"Igor Lakhno",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/255757/images/system/255757.jpg",biography:"Igor Victorovich Lakhno was born in 1971 in Kharkiv (Ukraine). \nMD – 1994, Kharkiv National Medical Univesity.\nOb&Gyn; – 1997, master courses in Kharkiv Medical Academy of Postgraduate Education.\nPh.D. – 1999, Kharkiv National Medical Univesity.\nDSC – 2019, PL Shupik National Academy of Postgraduate Education \nProfessor – 2021, Department of Obstetrics and Gynecology of VN Karazin Kharkiv National University\nHead of Department – 2021, Department of Perinatology, Obstetrics and gynecology of Kharkiv Medical Academy of Postgraduate Education\nIgor Lakhno has been graduated from international training courses on reproductive medicine and family planning held at Debrecen University (Hungary) in 1997. Since 1998 Lakhno Igor has worked as an associate professor in the department of obstetrics and gynecology of VN Karazin National University and an associate professor of the perinatology, obstetrics, and gynecology department of Kharkiv Medical Academy of Postgraduate Education. Since June 2019 he’s been a professor in the department of obstetrics and gynecology of VN Karazin National University and a professor of the perinatology, obstetrics, and gynecology department. He’s affiliated with Kharkiv Medical Academy of Postgraduate Education as a Head of Department from November 2021. Igor Lakhno has participated in several international projects on fetal non-invasive electrocardiography (with Dr. J. A. Behar (Technion), Prof. D. Hoyer (Jena University), and José Alejandro Díaz Méndez (National Institute of Astrophysics, Optics, and Electronics, Mexico). He’s an author of about 200 printed works and there are 31 of them in Scopus or Web of Science databases. Igor Lakhno is a member of the Editorial Board of Reproductive Health of Woman, Emergency Medicine, and Technology Transfer Innovative Solutions in Medicine (Estonia). He is a medical Editor of “Z turbotoyu pro zhinku”. Igor Lakhno is a reviewer of the Journal of Obstetrics and Gynaecology (Taylor and Francis), British Journal of Obstetrics and Gynecology (Wiley), Informatics in Medicine Unlocked (Elsevier), The Journal of Obstetrics and Gynecology Research (Wiley), Endocrine, Metabolic & Immune Disorders-Drug Targets (Bentham Open), The Open Biomedical Engineering Journal (Bentham Open), etc. He’s defended a dissertation for a DSc degree “Pre-eclampsia: prediction, prevention, and treatment”. Three years ago Igor Lakhno has participated in a training course on innovative technologies in medical education at Lublin Medical University (Poland). Lakhno Igor has participated as a speaker in several international conferences and congresses (International Conference on Biological Oscillations April 10th-14th 2016, Lancaster, UK, The 9th conference of the European Study Group on Cardiovascular Oscillations). His main scientific interests: are obstetrics, women’s health, fetal medicine, and cardiovascular medicine. \nIgor Lakhno is a consultant at Kharkiv municipal perinatal center. He’s graduated from training courses on endoscopy in gynecology. He has 28 years of practical experience in the field.",institutionString:null,institution:null},{id:"244950",title:"Dr.",name:"Salvatore",middleName:null,surname:"Di Lauro",slug:"salvatore-di-lauro",fullName:"Salvatore Di Lauro",position:null,profilePictureURL:"https://intech-files.s3.amazonaws.com/0030O00002bSF1HQAW/ProfilePicture%202021-12-20%2014%3A54%3A14.482",biography:"Name:\n\tSALVATORE DI LAURO\nAddress:\n\tHospital Clínico Universitario Valladolid\nAvda Ramón y Cajal 3\n47005, Valladolid\nSpain\nPhone number: \nFax\nE-mail:\n\t+34 983420000 ext 292\n+34 983420084\nsadilauro@live.it\nDate and place of Birth:\nID Number\nMedical Licence \nLanguages\t09-05-1985. Villaricca (Italy)\n\nY1281863H\n474707061\nItalian (native language)\nSpanish (read, written, spoken)\nEnglish (read, written, spoken)\nPortuguese (read, spoken)\nFrench (read)\n\t\t\nCurrent position (title and company)\tDate (Year)\nVitreo-Retinal consultant in ophthalmology. Hospital Clinico Universitario Valladolid. Sacyl. National Health System.\nVitreo-Retinal consultant in ophthalmology. Instituto Oftalmologico Recoletas. Red Hospitalaria Recoletas. Private practise.\t2017-today\n\n2019-today\n\t\n\t\nEducation (High school, university and postgraduate training > 3 months)\tDate (Year)\nDegree in Medicine and Surgery. University of Neaples 'Federico II”\nResident in Opthalmology. Hospital Clinico Universitario Valladolid\nMaster in Vitreo-Retina. IOBA. University of Valladolid\nFellow of the European Board of Ophthalmology. Paris\nMaster in Research in Ophthalmology. University of Valladolid\t2003-2009\n2012-2016\n2016-2017\n2016\n2012-2013\n\t\nEmployments (company and positions)\tDate (Year)\nResident in Ophthalmology. Hospital Clinico Universitario Valladolid. Sacyl.\nFellow in Vitreo-Retina. IOBA. University of Valladolid\nVitreo-Retinal consultant in ophthalmology. Hospital Clinico Universitario Valladolid. Sacyl. National Health System.\nVitreo-Retinal consultant in ophthalmology. Instituto Oftalmologico Recoletas. Red Hospitalaria Recoletas. \n\t2012-2016\n2016-2017\n2017-today\n\n2019-Today\n\n\n\t\nClinical Research Experience (tasks and role)\tDate (Year)\nAssociated investigator\n\n' FIS PI20/00740: DESARROLLO DE UNA CALCULADORA DE RIESGO DE\nAPARICION DE RETINOPATIA DIABETICA BASADA EN TECNICAS DE IMAGEN MULTIMODAL EN PACIENTES DIABETICOS TIPO 1. Grant by: Ministerio de Ciencia e Innovacion \n\n' (BIO/VA23/14) Estudio clínico multicéntrico y prospectivo para validar dos\nbiomarcadores ubicados en los genes p53 y MDM2 en la predicción de los resultados funcionales de la cirugía del desprendimiento de retina regmatógeno. Grant by: Gerencia Regional de Salud de la Junta de Castilla y León.\n' Estudio multicéntrico, aleatorizado, con enmascaramiento doble, en 2 grupos\nparalelos y de 52 semanas de duración para comparar la eficacia, seguridad e inmunogenicidad de SOK583A1 respecto a Eylea® en pacientes con degeneración macular neovascular asociada a la edad' (CSOK583A12301; N.EUDRA: 2019-004838-41; FASE III). Grant by Hexal AG\n\n' Estudio de fase III, aleatorizado, doble ciego, con grupos paralelos, multicéntrico para comparar la eficacia y la seguridad de QL1205 frente a Lucentis® en pacientes con degeneración macular neovascular asociada a la edad. (EUDRACT: 2018-004486-13). Grant by Qilu Pharmaceutical Co\n\n' Estudio NEUTON: Ensayo clinico en fase IV para evaluar la eficacia de aflibercept en pacientes Naive con Edema MacUlar secundario a Oclusion de Vena CenTral de la Retina (OVCR) en regimen de tratamientO iNdividualizado Treat and Extend (TAE)”, (2014-000975-21). Grant by Fundacion Retinaplus\n\n' Evaluación de la seguridad y bioactividad de anillos de tensión capsular en conejo. Proyecto Procusens. Grant by AJL, S.A.\n\n'Estudio epidemiológico, prospectivo, multicéntrico y abierto\\npara valorar la frecuencia de la conjuntivitis adenovírica diagnosticada mediante el test AdenoPlus®\\nTest en pacientes enfermos de conjuntivitis aguda”\\n. National, multicenter study. Grant by: NICOX.\n\nEuropean multicentric trial: 'Evaluation of clinical outcomes following the use of Systane Hydration in patients with dry eye”. Study Phase 4. Grant by: Alcon Labs'\n\nVLPs Injection and Activation in a Rabbit Model of Uveal Melanoma. Grant by Aura Bioscience\n\nUpdating and characterization of a rabbit model of uveal melanoma. Grant by Aura Bioscience\n\nEnsayo clínico en fase IV para evaluar las variantes genéticas de la vía del VEGF como biomarcadores de eficacia del tratamiento con aflibercept en pacientes con degeneración macular asociada a la edad (DMAE) neovascular. Estudio BIOIMAGE. IMO-AFLI-2013-01\n\nEstudio In-Eye:Ensayo clínico en fase IV, abierto, aleatorizado, de 2 brazos,\nmulticçentrico y de 12 meses de duración, para evaluar la eficacia y seguridad de un régimen de PRN flexible individualizado de 'esperar y extender' versus un régimen PRN según criterios de estabilización mediante evaluaciones mensuales de inyecciones intravítreas de ranibizumab 0,5 mg en pacientes naive con neovascularización coriodea secunaria a la degeneración macular relacionada con la edad. CP: CRFB002AES03T\n\nTREND: Estudio Fase IIIb multicéntrico, randomizado, de 12 meses de\nseguimiento con evaluador de la agudeza visual enmascarado, para evaluar la eficacia y la seguridad de ranibizumab 0.5mg en un régimen de tratar y extender comparado con un régimen mensual, en pacientes con degeneración macular neovascular asociada a la edad. CP: CRFB002A2411 Código Eudra CT:\n2013-002626-23\n\n\n\nPublications\t\n\n2021\n\n\n\n\n2015\n\n\n\n\n2021\n\n\n\n\n\n2021\n\n\n\n\n2015\n\n\n\n\n2015\n\n\n2014\n\n\n\n\n2015-16\n\n\n\n2015\n\n\n2014\n\n\n2014\n\n\n\n\n2014\n\n\n\n\n\n\n\n2014\n\nJose Carlos Pastor; Jimena Rojas; Salvador Pastor-Idoate; Salvatore Di Lauro; Lucia Gonzalez-Buendia; Santiago Delgado-Tirado. Proliferative vitreoretinopathy: A new concept of disease pathogenesis and practical\nconsequences. Progress in Retinal and Eye Research. 51, pp. 125 - 155. 03/2016. DOI: 10.1016/j.preteyeres.2015.07.005\n\n\nLabrador-Velandia S; Alonso-Alonso ML; Di Lauro S; García-Gutierrez MT; Srivastava GK; Pastor JC; Fernandez-Bueno I. Mesenchymal stem cells provide paracrine neuroprotective resources that delay degeneration of co-cultured organotypic neuroretinal cultures.Experimental Eye Research. 185, 17/05/2019. DOI: 10.1016/j.exer.2019.05.011\n\nSalvatore Di Lauro; Maria Teresa Garcia Gutierrez; Ivan Fernandez Bueno. Quantification of pigment epithelium-derived factor (PEDF) in an ex vivo coculture of retinal pigment epithelium cells and neuroretina.\nJournal of Allbiosolution. 2019. ISSN 2605-3535\n\nSonia Labrador Velandia; Salvatore Di Lauro; Alonso-Alonso ML; Tabera Bartolomé S; Srivastava GK; Pastor JC; Fernandez-Bueno I. Biocompatibility of intravitreal injection of human mesenchymal stem cells in immunocompetent rabbits. Graefe's archive for clinical and experimental ophthalmology. 256 - 1, pp. 125 - 134. 01/2018. DOI: 10.1007/s00417-017-3842-3\n\n\nSalvatore Di Lauro, David Rodriguez-Crespo, Manuel J Gayoso, Maria T Garcia-Gutierrez, J Carlos Pastor, Girish K Srivastava, Ivan Fernandez-Bueno. A novel coculture model of porcine central neuroretina explants and retinal pigment epithelium cells. Molecular Vision. 2016 - 22, pp. 243 - 253. 01/2016.\n\nSalvatore Di Lauro. Classifications for Proliferative Vitreoretinopathy ({PVR}): An Analysis of Their Use in Publications over the Last 15 Years. Journal of Ophthalmology. 2016, pp. 1 - 6. 01/2016. DOI: 10.1155/2016/7807596\n\nSalvatore Di Lauro; Rosa Maria Coco; Rosa Maria Sanabria; Enrique Rodriguez de la Rua; Jose Carlos Pastor. Loss of Visual Acuity after Successful Surgery for Macula-On Rhegmatogenous Retinal Detachment in a Prospective Multicentre Study. Journal of Ophthalmology. 2015:821864, 2015. DOI: 10.1155/2015/821864\n\nIvan Fernandez-Bueno; Salvatore Di Lauro; Ivan Alvarez; Jose Carlos Lopez; Maria Teresa Garcia-Gutierrez; Itziar Fernandez; Eva Larra; Jose Carlos Pastor. Safety and Biocompatibility of a New High-Density Polyethylene-Based\nSpherical Integrated Porous Orbital Implant: An Experimental Study in Rabbits. Journal of Ophthalmology. 2015:904096, 2015. DOI: 10.1155/2015/904096\n\nPastor JC; Pastor-Idoate S; Rodríguez-Hernandez I; Rojas J; Fernandez I; Gonzalez-Buendia L; Di Lauro S; Gonzalez-Sarmiento R. Genetics of PVR and RD. Ophthalmologica. 232 - Suppl 1, pp. 28 - 29. 2014\n\nRodriguez-Crespo D; Di Lauro S; Singh AK; Garcia-Gutierrez MT; Garrosa M; Pastor JC; Fernandez-Bueno I; Srivastava GK. Triple-layered mixed co-culture model of RPE cells with neuroretina for evaluating the neuroprotective effects of adipose-MSCs. Cell Tissue Res. 358 - 3, pp. 705 - 716. 2014.\nDOI: 10.1007/s00441-014-1987-5\n\nCarlo De Werra; Salvatore Condurro; Salvatore Tramontano; Mario Perone; Ivana Donzelli; Salvatore Di Lauro; Massimo Di Giuseppe; Rosa Di Micco; Annalisa Pascariello; Antonio Pastore; Giorgio Diamantis; Giuseppe Galloro. Hydatid disease of the liver: thirty years of surgical experience.Chirurgia italiana. 59 - 5, pp. 611 - 636.\n(Italia): 2007. ISSN 0009-4773\n\nChapters in books\n\t\n' Salvador Pastor Idoate; Salvatore Di Lauro; Jose Carlos Pastor Jimeno. PVR: Pathogenesis, Histopathology and Classification. Proliferative Vitreoretinopathy with Small Gauge Vitrectomy. Springer, 2018. ISBN 978-3-319-78445-8\nDOI: 10.1007/978-3-319-78446-5_2. \n\n' Salvatore Di Lauro; Maria Isabel Lopez Galvez. Quistes vítreos en una mujer joven. Problemas diagnósticos en patología retinocoroidea. Sociedad Española de Retina-Vitreo. 2018.\n\n' Salvatore Di Lauro; Salvador Pastor Idoate; Jose Carlos Pastor Jimeno. iOCT in PVR management. OCT Applications in Opthalmology. pp. 1 - 8. INTECH, 2018. DOI: 10.5772/intechopen.78774.\n\n' Rosa Coco Martin; Salvatore Di Lauro; Salvador Pastor Idoate; Jose Carlos Pastor. amponadores, manipuladores y tinciones en la cirugía del traumatismo ocular.Trauma Ocular. Ponencia de la SEO 2018..\n\n' LOPEZ GALVEZ; DI LAURO; CRESPO. OCT angiografia y complicaciones retinianas de la diabetes. PONENCIA SEO 2021, CAPITULO 20. (España): 2021.\n\n' Múltiples desprendimientos neurosensoriales bilaterales en paciente joven. Enfermedades Degenerativas De Retina Y Coroides. SERV 04/2016. \n' González-Buendía L; Di Lauro S; Pastor-Idoate S; Pastor Jimeno JC. Vitreorretinopatía proliferante (VRP) e inflamación: LA INFLAMACIÓN in «INMUNOMODULADORES Y ANTIINFLAMATORIOS: MÁS ALLÁ DE LOS CORTICOIDES. 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