Thermal applications of hybrid nanofluid containing carbon nanotubes with heat source and radiative effects

Document Type : Article

Authors

1 Department of Mechanical Engineering, College of Engineering, Hail University, Hail City, Saudi Arabia

2 Department of Mathematics, University of Wah, Wah Cantt, 47040 Pakistan

3 Department of Mathematics, Namal University Mianwali, 42250, Pakistan

4 Department of Mechanical Engineering, College of Engineering, University of Ha’il, Ha’il City 81451, Saudi Arabia

5 Department of Mechanical Engineering, College of Engineering, University of Ha’il, Ha’il City 81451, Saudi Arabia

6 Department of Mathematics, University of Wah, Wah Cantt, 47040 Pakistan.

10.24200/sci.2024.63581.8476

Abstract

Abstract: The objective of current work is to characterizes the thermal impact of carbon nanotubes due to rotating disk with applications of thermal radiation, heat source and slip effects. The single walled carbon nanotubes (SWCNTs) and multi-walled carbon nanotubes (MWCNTs) with suspension of ethylene glycol (EG) has been used to analyze the problem. The base fluid consequences are justified by using Casson fluid. The flow model is justified with interaction of velocity and thermal slip effects. Thermal characteristics of SWCNT and MWCNTs along ethylene glycol (EG) base materials has been presented. The heat transfer investigation is based on implementation of Cattaneo-Christov approach. Numerical computations are performed with help of shooting scheme. Comparative thermal analysis is performed for traditional nanofluid (SWCNT/EG) hybrid nanofluid (SWCNTs-MWCNTs/EG). Physical visualization of results for enhancement of heat transfer phenomenon is performed. It has been observed that heat transfer phenomenon is more exclusive for hybrid nanofluid (SWCNTs-MWCNTs/EG) as compared to nanofluid (SWCNT/EG. The thermal profile enhances for Casson fluid parameter.

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Articles in Press, Accepted Manuscript
Available Online from 02 December 2024
  • Receive Date: 22 November 2023
  • Revise Date: 04 September 2024
  • Accept Date: 02 December 2024