Research Article

Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder

Volume: 10 Number: 5 September 10, 2024
  • Jintu Mani Nath *
  • Ashish Paul
  • Tusar Kanti Das
EN

Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder

Abstract

In the existence of a thermal source, this study examines the impacts of thermal stratification on the heat transmission characteristics of magnetohydrodynamic water-based copper/molybdenum disulfide Casson hybrid nanofluid flow across a vertical cylinder which is linearly stretching. A magnetic field with an inclination is applied along the stretched vertical cylinder. The driving forces for the flow are due to the stretched cylinder and natural convection. With appropriate similarity transformations, non-linear ordinary differential equations are obtained from the collection of mathematically modeled partial differential equations. The numerical findings are obtained by utilizing the MATLAB bvp4c approach. The consequence of protuberant factors on the thermal and velocity curves is also studied and is depicted pictorially. The outcomes of the friction drag and the thermal transmission rate are summarized in the table. The important contributions highlight that water-based copper/molybdenum disulfide Casson hybrid nanofluids have superior thermal conductivity than water-based copper Casson nanofluids. The water-based Casson hybrid nanofluid fluid has a noteworthy influence on enhancing thermal procedures. Thermal exchangers, solar power systems, automotive cooling down and precision manufacturing are among their beneficial functions. The friction drag for Casson hybrid nanofluid has been found to improve by up to 32.3% when contrasted to water-based Casson nanofluid. While contrasting the Casson hybrid nanofluid with the Casson nanofluid, the thermal transport rate is increased by almost 6.6%. The rate of thermal transmission at the solid surface is negatively impacted by thermal stratification. This finding has practical implications in the areas of bettering materials for thermal insulation and energy-effective designs for buildings. The outcomes reflect a significant enrichment in the discipline of fluid dynamics and nanofluid research since they offer promising potential for heat transfer optimization in various commercial environments.

Keywords

References

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Details

Primary Language

English

Subjects

Thermodynamics and Statistical Physics

Journal Section

Research Article

Authors

Jintu Mani Nath * This is me
0000-0002-9596-2936
India

Publication Date

September 10, 2024

Submission Date

December 17, 2023

Acceptance Date

April 9, 2024

Published in Issue

Year 2024 Volume: 10 Number: 5

APA
Nath, J. M., Paul, A., & Das, T. K. (2024). Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering, 10(5), 1137-1148. https://izlik.org/JA33DJ85BU
AMA
1.Nath JM, Paul A, Das TK. Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering. 2024;10(5):1137-1148. https://izlik.org/JA33DJ85BU
Chicago
Nath, Jintu Mani, Ashish Paul, and Tusar Kanti Das. 2024. “Heat Transfer Characteristics of Magnetohydrodynamic Casson Stratified Hybrid Nanofluid Flow past a Porous Stretching Cylinder”. Journal of Thermal Engineering 10 (5): 1137-48. https://izlik.org/JA33DJ85BU.
EndNote
Nath JM, Paul A, Das TK (September 1, 2024) Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering 10 5 1137–1148.
IEEE
[1]J. M. Nath, A. Paul, and T. K. Das, “Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder”, Journal of Thermal Engineering, vol. 10, no. 5, pp. 1137–1148, Sept. 2024, [Online]. Available: https://izlik.org/JA33DJ85BU
ISNAD
Nath, Jintu Mani - Paul, Ashish - Das, Tusar Kanti. “Heat Transfer Characteristics of Magnetohydrodynamic Casson Stratified Hybrid Nanofluid Flow past a Porous Stretching Cylinder”. Journal of Thermal Engineering 10/5 (September 1, 2024): 1137-1148. https://izlik.org/JA33DJ85BU.
JAMA
1.Nath JM, Paul A, Das TK. Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering. 2024;10:1137–1148.
MLA
Nath, Jintu Mani, et al. “Heat Transfer Characteristics of Magnetohydrodynamic Casson Stratified Hybrid Nanofluid Flow past a Porous Stretching Cylinder”. Journal of Thermal Engineering, vol. 10, no. 5, Sept. 2024, pp. 1137-48, https://izlik.org/JA33DJ85BU.
Vancouver
1.Jintu Mani Nath, Ashish Paul, Tusar Kanti Das. Heat transfer characteristics of magnetohydrodynamic Casson stratified hybrid nanofluid flow past a porous stretching cylinder. Journal of Thermal Engineering [Internet]. 2024 Sep. 1;10(5):1137-48. Available from: https://izlik.org/JA33DJ85BU

IMPORTANT NOTE: JOURNAL SUBMISSION LINK http://eds.yildiz.edu.tr/journal-of-thermal-engineering