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Publishing Language: Chinese | Open Access

Influence Factors of Ice Surface Temperature in Direct Evaporation CO2 Artificial Ice

Jing Wu1Libo Yan2( )Lin Ye3Minxia Li1Yitai Ma1Pai Wang4
School of Mechanical Engineering, Tianjin University, Tianjin, 300072, China
Guangdong Midea HVAC Equipment Co., Ltd., Foshan, 528311, China
Shanghai Marine Equipment Research Institute, Shanghai, 200031, China
Tianjin Key Laboratory of Refrigeration Technology, Tianjin University of Commerce, Tianjin, 300134, China
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Abstract

In this study, using a direct evaporation indoor CO2 artificial ice rink as the research object, we establish a mathematical model for the stable temperature field of the indoor ice rink to analyze the influence of mass flux, tube spacing, oil content, and other factors on ice surface temperature and ice temperature difference when the evaporating temperature is -13 ℃ in a 12.7 mm diameter copper pipe. Results show that an increase in the lubricating oil content increases the pressure drop in the pipe and the temperature difference between the inlet and outlet of the ice surface. However, because the pipe diameter and mass flux investigated in this study are relatively large, the influence range is small. The temperature distribution on the ice surface is mainly affected by the distance between the cooling pipes and the mass flux. The temperature difference of the ice surface increases with an increase in tube spacing and mass flux. To ensure a temperature difference of the ice surface less than 0.5 ℃, the recommended mass flux should be less than 200 kg/(m2·s), and the tube spacing should be less than 90 mm.

CLC number: TB61+1; TB657.1 Document code: A Article ID: 0253-4339(2024)04-0114-010

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Journal of Refrigeration
Pages 114-123

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Cite this article:
Wu J, Yan L, Ye L, et al. Influence Factors of Ice Surface Temperature in Direct Evaporation CO2 Artificial Ice. Journal of Refrigeration, 2024, 45(4): 114-123. https://doi.org/10.3969/j.issn.0253-4339.2024.04.114

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Received: 08 May 2023
Revised: 14 September 2023
Accepted: 15 September 2023
Published: 16 August 2024
© 2024 The Editorial Office of Journal of Refrigeration

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, http://creativecommons.org/licenses/by/4.0/).