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Numerical simulation of thermal performance in a hybrid nanofluid filled chamber with a heat producing element

  • S. Priyadharsini and C. Sivaraj
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Applied Engineering Mathematics
This chapter is in the book Applied Engineering Mathematics

Abstract

Exploring new techniques and improving prevailing ones is a crucial part of today’s analysis of many physical systems. This research examines the effects of hybrid nanofluid-filled chambers having a heat-producing element within in terms of entropy production and thermal transference. The control volume approach is used to solve a time-dependent governing equations. The effects of nanoparticle volume fraction, heat-generating factors, and external force are examined for the Rayleigh number R a = 10 7 . The current work addresses the impact of various combinations of nanoparticles via entropy generation and aims to uncover the key properties of nanoparticles. It has been established that hybrid nanofluids make an effective coolant for electronic devices. The outcome will assist engineers realize how to examine convective thermal transfer and how to predict enhanced rate of thermal transfer in high-tech systems employed in business like shipping power production, and chemical sectors, reactive cooling system for the electronic contrivance, etc.

Abstract

Exploring new techniques and improving prevailing ones is a crucial part of today’s analysis of many physical systems. This research examines the effects of hybrid nanofluid-filled chambers having a heat-producing element within in terms of entropy production and thermal transference. The control volume approach is used to solve a time-dependent governing equations. The effects of nanoparticle volume fraction, heat-generating factors, and external force are examined for the Rayleigh number R a = 10 7 . The current work addresses the impact of various combinations of nanoparticles via entropy generation and aims to uncover the key properties of nanoparticles. It has been established that hybrid nanofluids make an effective coolant for electronic devices. The outcome will assist engineers realize how to examine convective thermal transfer and how to predict enhanced rate of thermal transfer in high-tech systems employed in business like shipping power production, and chemical sectors, reactive cooling system for the electronic contrivance, etc.

Chapters in this book

  1. Frontmatter I
  2. Preface V
  3. Contents VII
  4. Love wave propagation in layered piezoelectric structures for sensor-based applications 1
  5. A safe-ML model for assessing head loss in a subject-specific human femoral arterial network 11
  6. Fluid dynamics of transportation of viscoelastic fluids through inclined circular cylindrical tubes and its application in biological systems 31
  7. Numerical computation of Crane-type MHD Casson (blood type) stagnation point fluid flow past a stretching sheet 45
  8. Bioconvective MHD Casson fluid flow with motile microorganisms on a moving flat plate embedded in a porous medium 59
  9. Stability analysis of convection in rotating fluid layers with triple diffusion 73
  10. Groundwater contamination in heterogeneous semi-infinite aquifers for 1-D flow 85
  11. Convection in the boundary layer with uniform heat flux from a rectangular cavity’s side walls enclosed by porous lining 99
  12. Natural convection in a rectangular cavity bounded by porous lining 113
  13. Analysis of delayed mosquito life-cycle model 127
  14. Reflection and transmission of plane waves between two initially stressed rotating nonlocal orthotropic microstretch thermoelastic half-spaces with imperfect interface 137
  15. Nonlocal thermoelasticity of Klein–Gordon type: constitutive modelling in a piezoelectric microbeam resonator with memory effect 159
  16. Mathematical perspectives on biomechanical signal processing 179
  17. Numerical simulation of thermal performance in a hybrid nanofluid filled chamber with a heat producing element 221
  18. Non-Darcian flow of bioconvective viscoelastic fluid in a convectively heated elongating surface with variable heat source and energy activation 239
  19. Finite element analysis of biological systems 255
  20. Numerical analysis of free convective heat-transfer characteristics of a non-Newtonian (Casson) fluid in a heated permeable cavity under the effects of thermal radiation 279
  21. Graph-theoretical insights into resting-state EEG: a mathematical approach to psychiatric disorder analysis 289
  22. Index 317
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