We focus on the entropy generation minimization for the flow of a viscoelastic fluid through a parallel plate microchannel under the combined influences of applied pressure gradient, interfacial slip, and conjugate heat transfer. We use the simplified Phan–Thien–Tanner model (s-PTT) to represent the rheological behavior of the viscoelastic fluid. Using thermal boundary conditions of the third kind, we solve the transport equations analytically to obtain the velocity and temperature distributions in the flow field, which are further used to calculate the entropy generation rate in the analysis. In this study, the influential role of the following dimensionless parameters on entropy generation rate is examined: the viscoelastic parameter , slip coefficient , channel wall thickness , thermal conductivity of the wall , Biot number and Peclet number . We show that there exists a particular value of the abovementioned parameters that lead to a minimum entropy generation rate in the system. We believe the results of this analysis could be of helpful in the optimum design of microfluidic system/devices typically used in thermal management, such as micro-electronic devices, microreactors, and microheat exchangers.
Skip Nav Destination
Article navigation
Research-Article
Entropy Generation Minimization in a Pressure-Driven Microflow of Viscoelastic Fluid With Slippage at the Wall: Effect of Conjugate Heat Transfer
Rajkumar Sarma,
Rajkumar Sarma
Department of Mechanical Engineering,
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: rajkumarsarma11@gmail.com
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: rajkumarsarma11@gmail.com
Search for other works by this author on:
Pranab Kumar Mondal
Pranab Kumar Mondal
Department of Mechanical Engineering,
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: mail2pranab@gmail.com
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: mail2pranab@gmail.com
Search for other works by this author on:
Rajkumar Sarma
Department of Mechanical Engineering,
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: rajkumarsarma11@gmail.com
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: rajkumarsarma11@gmail.com
Pranab Kumar Mondal
Department of Mechanical Engineering,
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: mail2pranab@gmail.com
Indian Institute of Technology Guwahati,
Guwahati 781039, India
e-mail: mail2pranab@gmail.com
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received May 24, 2017; final manuscript received September 8, 2017; published online January 30, 2018. Assoc. Editor: George S. Dulikravich.
J. Heat Transfer. May 2018, 140(5): 052402 (11 pages)
Published Online: January 30, 2018
Article history
Received:
May 24, 2017
Revised:
September 8, 2017
Citation
Sarma, R., and Mondal, P. K. (January 30, 2018). "Entropy Generation Minimization in a Pressure-Driven Microflow of Viscoelastic Fluid With Slippage at the Wall: Effect of Conjugate Heat Transfer." ASME. J. Heat Transfer. May 2018; 140(5): 052402. https://doi.org/10.1115/1.4038451
Download citation file:
Get Email Alerts
Cited By
Challenges and Innovations of Lithium-Ion Battery Thermal Management Under Extreme Conditions: A Review
J. Heat Mass Transfer (August 2023)
Related Articles
Thermal Analysis of Power-Law Fluid Flow in a Circular Microchannel
J. Heat Transfer (March,2017)
Heat Transfer and Entropy Generation Analysis of Bingham Plastic Fluids in Circular Microchannels
J. Thermal Sci. Eng. Appl (December,2015)
Entropy Generation Minimization in an Electroosmotic Flow of Non-Newtonian Fluid: Effect of Conjugate Heat Transfer
J. Heat Transfer (May,2016)
Numerical Analysis of Conjugated Convection-Conduction Heat Transfer in a Microtube Gas Flow
J. Thermal Sci. Eng. Appl (February,2019)
Related Proceedings Papers
Related Chapters
Laminar Fluid Flow and Heat Transfer
Applications of Mathematical Heat Transfer and Fluid Flow Models in Engineering and Medicine
Heat Transfer Enhancement by Using Nanofluids in Laminar Forced Convection Flows Considering Variable Properties
Proceedings of the 2010 International Conference on Mechanical, Industrial, and Manufacturing Technologies (MIMT 2010)
Control and Operational Performance
Closed-Cycle Gas Turbines: Operating Experience and Future Potential