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                <text>A study on heat transfer in three-dimensional nonlinear convective boundary layer flow of nanomaterial considering the aggregation of nanoparticles</text>
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                <text>boundary layer flow; nanoliquid; nanoparticle aggregation; quadratic Boussinesq approximation; quadratic thermal radiation; Richardson extrapolation method</text>
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                <text>Thermal systems of solar collectors, electronic cooling, nuclear reactors, and combustion operate at high thermal conditions, and in such circumstances, the density relation of the working fluids with the thermal field may not be linear. The working fluid features are significantly affected by nonlinear density temperature fluctuations. Therefore, a theoretical study of the quadratic Boussinesq approximation (with quadratic density temperature [QDT] variation) and quadratic Rosseland radiation on the three-dimensional boundary layer dynamics and heat transport of ethylene glycol-based titania nanomaterial is carried out. The phenomenon of the kinematics of nanoparticle aggregation is also analyzed by considering modified models proposed by MaxwellBruggeman and KriegerDougherty for thermal conductivity and dynamic viscosity. The flow is induced by the elongation of a flexible flat plate in two directions. A comparison of heat transfer features of linear elongation of the plate and nonlinear elongation of the plate is conducted. The Rosseland radiative heat flux is studied in three different forms. The governing nonlinear equations are treated using apt nondimensionalization, stretching transformation, and then by using the Richardson extrapolation method. The results are presented via plots to analyze the impact of key parameters involved in the model. The magnitude of the nanomaterial temperature is enhanced due to the kinematics of nanoparticle aggregation. Among linear, quadratic, and nonlinear forms of Rosseland radiative heat flux, the quadratic radiative heat is more suitable when QDT is considered. A positive relationship is found between heat transfer and volume fraction and a positive relationship is observed between heat transfer and the QDT factor. The magnitude of the velocities and thermal field is higher for flow driven due to the linear elongation of the plate than the nonlinear case.  2021 Wiley Periodicals LLC</text>
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                <text>Mahanthesh B.; Srikantha N.; Mackolil J.</text>
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                <text>Heat Transfer, Vol-51, No. 1, pp. 891-908.</text>
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                <text>John Wiley and Sons Inc</text>
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                <text>2022-01-01</text>
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                <text>&lt;a href="https://doi.org/10.1002/htj.22334" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1002/htj.22334&lt;/a&gt;
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                <text>ISSN: 26884534</text>
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                <text>Mahanthesh B., Centre for Mathematical Needs, Department of Mathematics, CHRIST (Deemed to be University), Bengaluru, Karnataka, India; Srikantha N., Department of Mathematics, MS Ramaiah Institute of Technology, Bengaluru, Karnataka, India; Mackolil J., Centre for Mathematical Needs, Department of Mathematics, CHRIST (Deemed to be University), Bengaluru, Karnataka, India</text>
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                <text>Entropy generation analysis of radiative heat transfer in Williamson fluid flowing in a microchannel with nonlinear mixed convection and Joule heating</text>
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                <text>irreversibility analysis; microchannel flow; nonlinear boussinesq approximation; spectral quasi-linearization method; thermal radiation; williamson fluid</text>
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                <text>In this article, the spectral quasi-linearization (SQLM) method is implemented to solve the complicated differential equations governing the nonlinear mixed convective heat transfer of a Williamson fluid through a vertical microchannel. Unlike the conventional Boussinesq approximation, the quadratic Boussinesq approximation is taken into account in the formulation. The effects of Rosseland thermal radiation, Joule heating, and viscous dissipation are described in the thermal analysis subjected to the boundary conditions of convective thermal heating. The analysis of entropy production is also performed. The importance of various parameters governing velocity, Bejan number, temperature, and entropy generation was explored using graphic illustrations. It was found that the nonlinear density change with a temperature significantly affects the heat transport in the microchannel and thus increases the magnitude of the Bejan number and the production of entropy. Entropy production occurs maximum due to the boundary conditions of convection heating at the walls of the microchannel. Furthermore, due to a stronger viscous heating mechanism, the magnitude of the Bejan number is reduced, while the production of entropy increases significantly. As a limiting case of the problem, a comparison was made with results previously published in the literature and excellent agreement was established. The calculations provide a solid reference point for future CFD models and are relevant to the dynamics of polymers in microfluidic devices and the polymer industries.  IMechE 2022.</text>
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                <text>Mahanthesh B.; Srinivas Reddy C.; Srikantha N.; Lorenzini G.</text>
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              <elementText elementTextId="113292">
                <text>Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering</text>
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                <text>SAGE Publications Ltd</text>
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                <text>&lt;a href="https://doi.org/10.1177/09544089221074846" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1177/09544089221074846&lt;/a&gt;
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                <text>ISSN: 9544089; CODEN: PMEEE</text>
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                <text>Mahanthesh B., Centre of Mathematical Needs, Department of Mathematics, CHRIST (Deemed to be University), Karnataka, Bangalore, 560029, India; Srinivas Reddy C., Department of Mathematics, Government Degree College, Telangana, Jangaon, India; Srikantha N., Department of Mathematics, MS Ramaiah Institute of Technology, Bengaluru, 560054, India; Lorenzini G., Department of Engineering and Architecture, University of Parma, Parco Area Delle Scienze 181/A, Parma, 43124, Italy</text>
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                <text>Effects of aggregation on TiO2ethylene glycol nanoliquid over an inclined cylinder with exponential space-based heat source: sensitivity analysis</text>
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                <text>Exponential space-based heat source; Inclined cylinder; Nanoliquid; Nanoparticle aggregation; Response surface methodology; Sensitivity analysis</text>
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                <text>The current study investigates the impact of nanoparticle (NP) aggregation on nanoliquid flow over an inclined elongating cylinder with an exponential space-related heat source. The dynamic viscosity and thermal conductivity for aggregation structure are modeled by utilizing the Modified Krieger-Dougherty Model and Bruggeman Model correspondingly. The governing equations are solved numerically. Further, the regression model for friction coefficient and heat transport rate is obtained by utilizing the Response Surface Methodology for various space-based heat source parameter (0.5 ? QE? 1.5), mixed convection parameter (1 ? ?? 3) and NPs volume fraction (0.01 ? ?? 0.05). The velocity profile exhibited dual features for different values of curvature parameter and NPs volume fraction. The space-based exponential heat source and mixed convection have an enhancing impact on the skin friction coefficient. It is noticed that the heat transport augments with the addition of nanoparticles. The coefficient of friction is found to be more sensitive to the NPs volume fraction. Further, the heat transport rate is more sensitive toward exponential heat source than NPs volume fraction and mixed convection.  2021, Akadiai Kiad Budapest, Hungary.</text>
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                <text>Mahanthesh B.; Thriveni K.</text>
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                <text>Journal of Thermal Analysis and Calorimetry, Vol-147, No. 2, pp. 1835-1848.</text>
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                <text>Springer Science and Business Media B.V.</text>
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                <text>&lt;a href="https://doi.org/10.1007/s10973-020-10516-1" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1007/s10973-020-10516-1&lt;/a&gt;
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                <text>ISSN: 13886150; CODEN: JTACF</text>
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                <text>Mahanthesh B., Department of Mathematics, CHRIST (Deemed to be University), Karnataka, Bangalore, 560029, India; Thriveni K., Department of Mathematics, CHRIST (Deemed to be University), Karnataka, Bangalore, 560029, India</text>
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                <text>Significance of inclined magnetic field on nano-bioconvection with nonlinear thermal radiation and exponential space based heat source: a sensitivity analysis</text>
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                <text>The characteristics of heat transport in nanoliquids under the influence of bio-convection (motile microorganism) have significant applications, since nanoliquids have greater capacity to improve heat transport properties than conventional liquids. With these incredible nanoliquid characteristics, the main objective of current research is to examine the impact of the exponential heat source linked to space and the inclined magnetic force on the nano-bioconvective flow between two turntables. The effect of nonlinear thermal radiation, variable thermal conductivity and viscosity aspects are also considered. The complicated nonlinear problem is treated numerically by using Finite difference method. Optimization procedure implemented via Response surface Methodology for the effective parameters thermophoresis parameter, Hartmann number and radiation parameter on the heat transfer rate. The axial velocity is a dwelling function of the inclined angle of the magnetic field, and the variable viscosity parameter. The temperature profile hikes with an exponential space-related heat source and thermal radiation aspects. Also, the heat transport rate is highly sensitive towards nonlinear thermal radiation parameter compared to the thermophoresis effect and Hartmann number.  2021, The Author(s), under exclusive licence to EDP Sciences, SocietItaliana di Fisica and Springer-Verlag GmbH Germany, part of Springer Nature.</text>
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                <text>Mahanthesh B.; Thriveni K.</text>
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                <text>European Physical Journal: Special Topics, Vol-230, No. 5, pp. 1487-1501.</text>
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                <text>&lt;a href="https://doi.org/10.1140/epjs/s11734-021-00045-9" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1140/epjs/s11734-021-00045-9&lt;/a&gt;
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                <text>ISSN: 19516355</text>
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                <text>Mahanthesh B., Department of Mathematics, CHRIST (Deemed to be University), Bangalore, 560029, Karnataka, India; Thriveni K., Department of Mathematics, CHRIST (Deemed to be University), Bangalore, 560029, Karnataka, India</text>
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                <text>Sensitivity analysis of heat transfer in nanoliquid with inclined magnetic field, exponential space-based heat source, convective heating, and slip effects</text>
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                <text>exponential space-related heat source parameter (ESHS); inclined magnetic field; nanofluid; nanoliquid; sensitivity analysis; slip effects</text>
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                <text>Sensitivity analysis of the rate of heat transport in the flow of nanoliquids over an elongated sheet using the response surface methodology (RSM) in combination with the face-centered central composite design. The flow is driven due to the velocity slip and the inclined magnetic field effects. Thermal analysis includes aspects of convective heating, Joule heating, viscous heating, and a space-dependent exponential heat source. The nanoliquid model consists of thermophoresis and random motion mechanisms. A set of coupled partial differential governance equations is rehabilitated into a set of ordinary differential equations using the appropriate transformation. Subsequent nonlinear problem is tackled numerically by utilizing finite difference code that employs the formula of four-stage Lobatto IIIa. The rate of heat transport is scrutinized by adopting RSM for three effectual parameters, namely magnetic field parameter ((Formula presented.)), angle of inclination ((Formula presented.)), and suction parameter (Formula presented.)). The velocity and temperature fields were found to be a decreasing function of an angle of inclination of the magnetic field. The velocity range is inversely related to the suction and flow aspects of velocity. Furthermore, the rate of heat transport is more sensitive to the suction parameter than to the magnetic field and to the angle of inclination of the magnetic field.  2020 Wiley Periodicals LLC</text>
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                <text>Mahanthesh B.; Thriveni K.</text>
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                <text>Heat Transfer, Vol-50, No. 3, pp. 2362-2379.</text>
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                <text>John Wiley and Sons Inc</text>
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                <text>&lt;a href="https://doi.org/10.1002/htj.21982" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1002/htj.21982&lt;/a&gt;
&lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092647375&amp;amp;doi=10.1002%2Fhtj.21982&amp;amp;partnerID=40&amp;amp;md5=0935e8a5128113851d9c69c242643bf3" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092647375&amp;amp;doi=10.1002%2fhtj.21982&amp;amp;partnerID=40&amp;amp;md5=0935e8a5128113851d9c69c242643bf3&lt;/a&gt;</text>
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                <text>ISSN: 26884534</text>
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                <text>Mahanthesh B., Department of Mathematics, CHRIST (Deemed to be University), Bangalore, Karnataka, India; Thriveni K., Department of Mathematics, CHRIST (Deemed to be University), Bangalore, Karnataka, India</text>
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                <text>Nanoparticle aggregation effects on radiative heat transport of nanoliquid over a vertical cylinder with sensitivity analysis</text>
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          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
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              <elementText elementTextId="119524">
                <text>nanoliquid; nanoparticle (NP) aggregation; O302; response surface methodology (RSM); sensitivity analysis; surface heat flux</text>
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                <text>A sensitivity analysis is performed to analyze the effects of the nanoparticle (NP) aggregation and thermal radiation on heat transport of the nanoliquids (titania based on ethylene glycol) over a vertical cylinder. The optimization of heat transfer rate and friction factor is performed for NP volume fraction (1% ? ? ? 3%), radiation parameter (1 ? Rt ? 3), and mixed convection parameter (1.5 ? ? ? 2.5) via the face-centered central composite design (CCD) and the response surface methodology (RSM). The modified Krieger and Dougherty model (MKDM) for dynamic viscosity and the Bruggeman model (BM) for thermal conductivity are utilized to simulate nanoliquids with the NP aggregation aspect. The complicated nonlinear problem is treated numerically. It is found that the temperature of nanoliquid is enhanced due to the aggregation of NPs. The friction factor is more sensitive to the volume fraction of NPs than the thermal radiation and the mixed convection parameter. Furthermore, the heat transport rate is more sensitive to the effect of radiative heat compared with the NP volume fraction and mixed convection parameter.  2021, Shanghai University and Springer-Verlag GmbH Germany, part of Springer Nature.</text>
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              <elementText elementTextId="119526">
                <text>Mahanthesh B.; Thriveni K.</text>
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                <text>Applied Mathematics and Mechanics (English Edition), Vol-42, No. 3, pp. 331-346.</text>
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                <text>Springer Science and Business Media B.V.</text>
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                <text>&lt;a href="https://doi.org/10.1007/s10483-021-2687-7" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1007/s10483-021-2687-7&lt;/a&gt;
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                <text>ISSN: 2534827; CODEN: AMMEE</text>
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                <text>Mahanthesh B., Department of Mathematics, CHRIST (Deemed to be University), Bangalore, 560029, Karnataka, India; Thriveni K., Department of Mathematics, CHRIST (Deemed to be University), Bangalore, 560029, Karnataka, India</text>
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                <text>Significance of nonlinear Boussinesq approximation and non-uniform heat source/sink on nanoliquid flow with convective heat condition: sensitivity analysis</text>
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                <text>The quadratic convective flow of nanoliquid over an elongating plate subjected to non-uniform heat source/sink, partial slip, and Newton boundary conditions is studied by using the modified Buongiorno model. The correlation for effective thermal conductivity and viscosity of nanoliquid are taken from the experimental work of Corcione. The dimensionless velocity, temperature, rate of heat transport, and mass transport distributions are simulated by solving the nonlinear boundary value problem using the finite difference method. The additional novelty of the present study is an application of response surface methodology to scrutinize the interactive impact of key parameters on the rate of heat transfer. Further, the influence of key parameters is deliberated on various flow fields using the surface and streamline plots. The higher velocities are noticed for the case of nonlinear Boussinesq approximation as compared with the usual Boussinesq approximation. The temperature enhances with a non-uniform heat source/sink aspect. The sensitivity of the heat transfer to the nanoparticle volume fraction remains positive.  2021, The Author(s), under exclusive licence to SocietItaliana di Fisica and Springer-Verlag GmbH Germany, part of Springer Nature.</text>
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                <text>Mahanthesh B.; Thriveni K.; Lorenzini G.</text>
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              <elementText elementTextId="117971">
                <text>European Physical Journal Plus, Vol-136, No. 4</text>
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                <text>Springer Science and Business Media Deutschland GmbH</text>
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                <text>&lt;a href="https://doi.org/10.1140/epjp/s13360-021-01416-w" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1140/epjp/s13360-021-01416-w&lt;/a&gt;
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                <text>The improvement of the thermal conductivity of the nanoliquid due to the inclusion of a certain amount of nanoparticles is well known. However, the cause of the observed abnormal improvement remains unclear. For this reason, the aggregation kinematics of nanoparticles is significant for evaluating the appropriate thermal effect of particles at the nanoscale. The scope of nanomaterials can be seen in various engineering and industrial fields such as nuclear reactor coolants, heat exchangers, aircraft coolants, microreactor coolants, automobile radiators, solar collectors, etc. Therefore, this study investigates the effects of the aggregation of nanoparticles on radiative nanoliquid flow with activation energy over a horizontal tube subjected to the convective thermal boundary conditions. Experimentally verified correlations of multiwall carbon nanotube aggregation are utilized. The response surface methodology (RSM) is used to determine the optimum levels of the physical parameters to maximize the mass transfer rate of the nanoliquid. The magnitude of the volume fraction and velocity are superior in the absence of aggregation kinematics than in the presence of nanoparticles aggregation mechanism. From the RSM analysis, the maximum Sherwood number obtained is 1.1384 with desirability d = 0.9993. The present results may have applications in nanoliquid-dependent structures, heating/cooling processes, and thermal systems.  2021 Elsevier Ltd</text>
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                <text>Theoretical and analytical analysis of convective heat transport of radiated micropolar fluid over a vertical plate under nonlinear Boussinesq approximation</text>
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          <element elementId="49">
            <name>Subject</name>
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            <elementTextContainer>
              <elementText elementTextId="123191">
                <text>Heat and mass flux condition; Magnetohydrodynamics; Micropolar fluid; Perturbation method; Quadratic convection; Thermal radiation</text>
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                <text>Purpose: In heat transfer problems, if the temperature difference is not sufficiently so small then the linear Boussinesq approximation is not adequate to describe thermal analysis. Also, nonlinear density variation with respect to temperature/concentration has a significant impact on heat and fluid flow characteristics. Because of this reason, the impact of nonlinear density variation in the buoyancy force term cannot be neglected. Therefore in this paper, the unsteady flow and heat transfer of radiating magneto-micropolar fluid by considering nonlinear Boussinesq approximation is investigated analytically. Design/methodology/approach: The flow is fully developed and time-dependent. Heat and mass flux boundary conditions are also accounted in the analysis. The governing equations of transport phenomena are treated analytically using regular perturbation method. To analyze the tendency of the obtained solutions, a parametric study is performed. Findings: It is established that the velocity field is directly proportional to the nonlinear convection parameter and the same trend is observed with the increase of the value of Grashof number. The micro-rotational velocity profile decreases with increase in the nonlinear convection parameter. Further, the temperature profile increases due to the presence of radiative heat aspect. Originality/value: The effectiveness of nonlinear Boussinesq approximation in the flow of micropolar fluid past a vertical plate in the presence of thermal radiation and magnetic dipole is investigated for the first time.  2019, Emerald Publishing Limited.</text>
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            <description>An entity primarily responsible for making the resource</description>
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              <elementText elementTextId="123193">
                <text>Mahanty D.; Babu R.; Mahanthesh B.</text>
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              <elementText elementTextId="123194">
                <text>Multidiscipline Modeling in Materials and Structures, Vol-16, No. 5, pp. 915-936.</text>
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              <elementText elementTextId="123195">
                <text>Emerald Group Holdings Ltd.</text>
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                <text>2020-01-01</text>
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                <text>&lt;a href="https://doi.org/10.1108/MMMS-05-2019-0099" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1108/MMMS-05-2019-0099&lt;/a&gt;
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                <text>Restricted Access</text>
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                <text>ISSN: 15736105</text>
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              <elementText elementTextId="123201">
                <text>English</text>
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              <elementText elementTextId="123203">
                <text>Mahanty D., Department of Mathematics, CHRIST(Deemed to be University), Bangalore, India; Babu R., Department of Mathematics, CHRIST(Deemed to be University), Bangalore, India; Mahanthesh B., Department of Mathematics, CHRIST(Deemed to be University), Bangalore, India</text>
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            <description>A name given to the resource</description>
            <elementTextContainer>
              <elementText elementTextId="168286">
                <text>LBP-GLZM Based Hybrid Model for Classification of Breast Cancer</text>
              </elementText>
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          </element>
          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="168287">
                <text>Augmentation; Breast Cancer; CNN; DDSM; GLZM; LBP</text>
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            </elementTextContainer>
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            <name>Description</name>
            <description>An account of the resource</description>
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              <elementText elementTextId="168288">
                <text>Classifying mammogram images is difficult because of their complex backgrounds and the differences in resolutions across the images. One of the toughest parts is telling the difference between harmless (benign) and harmful (malignant) tissue. This is hard because the differences between them are incredibly subtle. As a consequence, the distinctive features embedded within tissue patches become not just relevant but critical for the accurate and automatic classification of these images. Traditionally, efforts to automate this classification process have encountered limitations when relying on a singular feature or a restricted set of characteristics. The subtle variations in texture within these images often render such approaches insufficient in achieving high-quality categorization results. Recognizing this, the present investigation undertakes a more comprehensive approach by incorporating distinct feature extraction techniques - specifically, the utilization of Local Binary Pattern (LBP) and Gray Level Zone Matrix (GLZM). These techniques are adept at capturing and delineating the nuanced texture features inherent in mammogram images. By extracting and analyzing these textural nuances, the aim is to construct a hybrid model capable of classifying mammograms into three distinct categories: malignant, benign, and without the necessity for further examination or follow-up. This proposed hybrid model holds significant promise in the field of mammography classification by leveraging the strengths and complementary attributes of multiple feature extraction methods. The integration of LBP and GLZM aims not only to enhance the accuracy of classification but also to improve the robustness of the system in identifying subtle yet crucial differences in tissue textures. Ultimately, the goal is to create a hybrid feature extraction framework that augments the diagnostic capabilities of mammography, providing more precise and reliable categorization of breast tissue for effective medical decision-making and patient care.   2024 IEEE.</text>
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            <elementTextContainer>
              <elementText elementTextId="168289">
                <text>Mahapatra D.; Umme Salma M.</text>
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            </elementTextContainer>
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            <description>A related resource from which the described resource is derived</description>
            <elementTextContainer>
              <elementText elementTextId="168290">
                <text>Proceedings of ICWITE 2024: IEEE International Conference for Women in Innovation, Technology and Entrepreneurship, pp. 305-310.</text>
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            </elementTextContainer>
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          <element elementId="45">
            <name>Publisher</name>
            <description>An entity responsible for making the resource available</description>
            <elementTextContainer>
              <elementText elementTextId="168291">
                <text>Institute of Electrical and Electronics Engineers Inc.</text>
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            <name>Date</name>
            <description>A point or period of time associated with an event in the lifecycle of the resource</description>
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              <elementText elementTextId="168292">
                <text>2024-01-01</text>
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                <text>&lt;a href="https://doi.org/10.1109/ICWITE59797.2024.10503412" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1109/ICWITE59797.2024.10503412&lt;/a&gt;
&lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/inward/record.uri?eid=2-s2.0-85192560889&amp;amp;doi=10.1109%2FICWITE59797.2024.10503412&amp;amp;partnerID=40&amp;amp;md5=4ef67843eb115bce4bb66789fa35b195" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/inward/record.uri?eid=2-s2.0-85192560889&amp;amp;doi=10.1109%2fICWITE59797.2024.10503412&amp;amp;partnerID=40&amp;amp;md5=4ef67843eb115bce4bb66789fa35b195&lt;/a&gt;</text>
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            <description>Information about rights held in and over the resource</description>
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              <elementText elementTextId="168294">
                <text>Restricted Access</text>
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              <elementText elementTextId="168295">
                <text>ISBN: 979-835038328-7</text>
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            </elementTextContainer>
          </element>
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            <name>Format</name>
            <description>The file format, physical medium, or dimensions of the resource</description>
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                <text>Online</text>
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            <description>A language of the resource</description>
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                <text>English</text>
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              <elementText elementTextId="168299">
                <text>Mahapatra D., Christ (Deemed to Be University), Department of Statistics and Data Science, Karnataka, Bengaluru, India; Umme Salma M., Christ (Deemed to Be University), Department of Statistics and Data Science, Karnataka, Bengaluru, India</text>
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      <name>Article</name>
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            <description>A name given to the resource</description>
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              <elementText elementTextId="94463">
                <text>Energy harvesting using two-dimensional magnesiochromite (MgCr2O4)</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="94464">
                <text>Device; DFT; Flexoelectricity; MgCr&lt;sub&gt;2&lt;/sub&gt;O&lt;sub&gt;4&lt;/sub&gt;; Two-dimensional material</text>
              </elementText>
            </elementTextContainer>
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            <elementTextContainer>
              <elementText elementTextId="94465">
                <text>Two-dimensional (2D) materials with high surface activity can be utilized for harvesting energy from small mechanical sources using flexoelectricity. In the present work, we have synthesized an atomically thin 2D spinel MgCr2O4 by a liquid-phase exfoliation process, and characterization shows the preferential exfoliation along the (111) plane with low formation energy. The fabricated flexoelectric device produces an electrical response up to ?3 V (peak-to-peak voltage) upon pressing and releasing the cell with ?0.98 N force. Furthermore, the energy harvesting properties of 2D MgCr2O4 are explored by combining bending with other sources of external energy, with applied varying magnetic flux (Vmax = ?2.6 V) and temperature with 0.9 N force (Vmax = ?18 V). Our calculations determine that 2D MgCr2O4 has a flexoelectric coefficient of approximately ?XZXZ = 0.005 nC/m. Overall, the results indicate that 2D MgCr2O4 is a very promising material for the next generation of self-powered wearable electronics and energy harvesting.  2023 Elsevier Ltd</text>
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                <text>Mahapatra P.L.; Singh A.K.; Tromer R.; Kumbhakar P.; Sinha S.K.; Lahiri B.; Kundu T.K.; Galvao D.S.; Tiwary C.S.</text>
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            <description>A related resource from which the described resource is derived</description>
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              <elementText elementTextId="94467">
                <text>Materials Today Nano, Vol-23</text>
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            <name>Publisher</name>
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                <text>Elsevier Ltd</text>
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                <text>2023-01-01</text>
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                <text>&lt;a href="https://doi.org/10.1016/j.mtnano.2023.100374" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1016/j.mtnano.2023.100374&lt;/a&gt;
&lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/inward/record.uri?eid=2-s2.0-85165357418&amp;amp;doi=10.1016%2Fj.mtnano.2023.100374&amp;amp;partnerID=40&amp;amp;md5=15fa984054593ab753085885c0c54ffa" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/inward/record.uri?eid=2-s2.0-85165357418&amp;amp;doi=10.1016%2fj.mtnano.2023.100374&amp;amp;partnerID=40&amp;amp;md5=15fa984054593ab753085885c0c54ffa&lt;/a&gt;</text>
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            <description>Information about rights held in and over the resource</description>
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              <elementText elementTextId="94471">
                <text>Restricted Access</text>
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                <text>ISSN: 25888420</text>
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              <elementText elementTextId="94476">
                <text>Mahapatra P.L., School of Nano Science and Technology, Indian Institute of Technology, West Bengal, Kharagpur, 721302, India; Singh A.K., Metallurgical and Materials Engineering, Indian Institute of Technology, Kharagpur, 721302, India; Tromer R., Applied Physics Department and Center for Computing in Engineering and Sciences, University of Campinas, Campinas, S Paulo, Brazil; Kumbhakar P., Metallurgical and Materials Engineering, Indian Institute of Technology, Kharagpur, 721302, India, Department of Physics and Electronics, CHRIST (Deemed to be University), Bangalore, 560029, India; Sinha S.K., Department of Materials Engineering, Indian Institute of Science, Bangalore, 560012, India; Lahiri B., Department of Electronics and Electrical Communication Engineering, Indian Institute of Technology, Kharagpur, 721302, India; Kundu T.K., Metallurgical and Materials Engineering, Indian Institute of Technology, Kharagpur, 721302, India; Galvao D.S., Applied Physics Department and Center for Computing in Engineering and Sciences, University of Campinas, Campinas, S Paulo, Brazil; Tiwary C.S., Metallurgical and Materials Engineering, Indian Institute of Technology, Kharagpur, 721302, India</text>
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