Research Article

Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks

Volume: 9 Number: 5 October 17, 2023
  • Rajendra Prasad K S *
  • Vijay Krıshna
  • Sachin Bharadwaj
EN

Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks

Abstract

Drastic variation in the thermodynamic properties of supercritical fluids near the pseudo critical point hinders the use of commercial computational fluid dynamics (CFD) software. However, with the increase in computational abilities, along with the use of Artificial Neu-ral Networks (ANN), turbulence heat transfer characteristics of supercritical fluids can be very accurately predicted. In the present work, heat transfer characteristics for a vertically downward flow of carbon dioxide in a pipe are studied for a wide range of heat flux and mass flux values. Firstly, six different turbulent models available in the commercial CFD software - Ansys Fluent are validated against the experimental results. The k- ω Standard model with enhanced wall treatment is found to be the best-suited turbulence model. When experimental results were validated in CFD, an average error of 1% in the bulk fluid temperature and 2% in the wall temperature were recorded. Further, K- ω Standard Turbulence Model is used in CFD for parametric analysis to generate the data for ANN studies. Mass flux range of 238 to 1038 kg/m2s, and heat flux range of 26 kW/m2 to 250 kW/m2 are used to generate 81,432 data sam-ples. These samples were fed into the ANN program to develop an equation that can predict the heat transfer coefficient. It was found that ANN can predict the heat transfer coefficient for the considered range of values within the absolute average relative deviation of 2.183 %.

Keywords

References

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Details

Primary Language

English

Subjects

Thermodynamics and Statistical Physics

Journal Section

Research Article

Authors

Rajendra Prasad K S * This is me
0000-0002-4318-3615
India

Sachin Bharadwaj This is me
0000-0002-6034-1654
India

Publication Date

October 17, 2023

Submission Date

March 5, 2022

Acceptance Date

July 12, 2022

Published in Issue

Year 2023 Volume: 9 Number: 5

APA
Prasad K S, R., Krıshna, V., & Bharadwaj, S. (2023). Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks. Journal of Thermal Engineering, 9(5), 1291-1306. https://doi.org/10.18186/thermal.1376850
AMA
1.Prasad K S R, Krıshna V, Bharadwaj S. Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks. Journal of Thermal Engineering. 2023;9(5):1291-1306. doi:10.18186/thermal.1376850
Chicago
Prasad K S, Rajendra, Vijay Krıshna, and Sachin Bharadwaj. 2023. “Effect of Heat Flux and Mass Flux on the Heat Transfer Characteristics of Supercritical Carbon Dioxide for a Vertically Downward Flow Using Computational Fluid Dynamics and Artificial Neural Networks”. Journal of Thermal Engineering 9 (5): 1291-1306. https://doi.org/10.18186/thermal.1376850.
EndNote
Prasad K S R, Krıshna V, Bharadwaj S (October 1, 2023) Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks. Journal of Thermal Engineering 9 5 1291–1306.
IEEE
[1]R. Prasad K S, V. Krıshna, and S. Bharadwaj, “Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks”, Journal of Thermal Engineering, vol. 9, no. 5, pp. 1291–1306, Oct. 2023, doi: 10.18186/thermal.1376850.
ISNAD
Prasad K S, Rajendra - Krıshna, Vijay - Bharadwaj, Sachin. “Effect of Heat Flux and Mass Flux on the Heat Transfer Characteristics of Supercritical Carbon Dioxide for a Vertically Downward Flow Using Computational Fluid Dynamics and Artificial Neural Networks”. Journal of Thermal Engineering 9/5 (October 1, 2023): 1291-1306. https://doi.org/10.18186/thermal.1376850.
JAMA
1.Prasad K S R, Krıshna V, Bharadwaj S. Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks. Journal of Thermal Engineering. 2023;9:1291–1306.
MLA
Prasad K S, Rajendra, et al. “Effect of Heat Flux and Mass Flux on the Heat Transfer Characteristics of Supercritical Carbon Dioxide for a Vertically Downward Flow Using Computational Fluid Dynamics and Artificial Neural Networks”. Journal of Thermal Engineering, vol. 9, no. 5, Oct. 2023, pp. 1291-06, doi:10.18186/thermal.1376850.
Vancouver
1.Rajendra Prasad K S, Vijay Krıshna, Sachin Bharadwaj. Effect of heat flux and mass flux on the heat transfer characteristics of supercritical carbon dioxide for a vertically downward flow using computational fluid dynamics and artificial neural networks. Journal of Thermal Engineering. 2023 Oct. 1;9(5):1291-306. doi:10.18186/thermal.1376850

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