Numerical Investigation of Synergistic Interactions between Fill Ratio and Inclination Angle in Nanofluid Heat Pipes

30 Pages Posted: 11 Mar 2025

See all articles by Gang Yang

Gang Yang

University of Science and Technology Beijing

Ruitao Zhang

Peking University

Haoxuan Li

University of Science and Technology Beijing

Chunhua Zhang

Southern University of Science and Technology

Gang Li

Peking University

Xiong Teng

University of New South Wales (UNSW)

Alfiya I. Aminova

University of New South Wales (UNSW)

Georgy Th. Guria

Sechenov University

Nevzat Akkurt

Munzur University

Zhiying Gao

University of Science and Technology Beijing

Qian Xu

University of Science and Technology Beijing

Abstract

Nanofluid-based heat pipe solar collectors represent an efficient conversion device for solar energy. The fill ratio and inclination angle synergistically influence the thermal performance of heat pipes by altering the size and path of the vapor-liquid flow region. However, the quantitative relationship governing this synergistic interaction remains unclear. This study presents a novel Computational Fluid Dynamics (CFD) numerical model tailored for nanofluid heat pipes, accurately simulating evaporation and condensation processes. The model is validated against experimental data, exhibiting a maximum deviation of 6.99% in wall temperature. By conducting an in-depth analysis of the wall temperature, wall liquid film velocity, and thermal resistance, this study quantitatively elucidates the synergistic mechanism of the fill ratio and inclination angle on the heat pipe's thermal performance. The results demonstrate that the fill ratio and inclination angle primarily influence the thermal resistance of the heat pipe by altering the vapor-liquid flow velocity, which in turn affects the convective heat transfer intensity. The results indicate that the fill ratio exerts a more pronounced impact on the thermal resistance of the heat pipe than the inclination angle, although this effect gradually diminishes as both parameters increase. The predictive modeling has identified the optimum fill ratio and inclination angle as 73.4% and 61.9°, respectively, resulting in a thermal resistance of R = 0.6390 K/W. This represents a 47.4% reduction compared to the thermal resistance observed at a 10% fill ratio and a 10° inclination angle.

Keywords: CFD simulation, Heat pipe, Nanofluid, Inclination angle, Fill ratio

Suggested Citation

Yang, Gang and Zhang, Ruitao and Li, Haoxuan and Zhang, Chunhua and Li, Gang and Teng, Xiong and Aminova, Alfiya I. and Guria, Georgy Th. and Akkurt, Nevzat and Gao, Zhiying and Xu, Qian, Numerical Investigation of Synergistic Interactions between Fill Ratio and Inclination Angle in Nanofluid Heat Pipes. Available at SSRN: https://ssrn.com/abstract=5173565 or http://dx.doi.org/10.2139/ssrn.5173565

Gang Yang

University of Science and Technology Beijing ( email )

Ruitao Zhang

Peking University ( email )

Haoxuan Li

University of Science and Technology Beijing ( email )

Chunhua Zhang

Southern University of Science and Technology ( email )

No 1088, xueyuan Rd.
Xili, Nanshan District
Shenzhen, 518055
China

Gang Li

Peking University ( email )

Xiong Teng

University of New South Wales (UNSW) ( email )

Alfiya I. Aminova

University of New South Wales (UNSW) ( email )

Georgy Th. Guria

Sechenov University ( email )

Nevzat Akkurt

Munzur University ( email )

Munzur Üniversitesi Mühendislik Fakültesi Endüstri
merkez Tunceli̇
Tunceli, 62000
Turkey

Zhiying Gao

University of Science and Technology Beijing ( email )

Qian Xu (Contact Author)

University of Science and Technology Beijing ( email )

30 Xueyuan Road, Haidian District
beijing, 100083
China

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