Diffusion Distribution Characteristics and Flammable Areas of Refrigerants Encountering Obstacles in Confined Spaces
|更新时间:2024-10-09
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Diffusion Distribution Characteristics and Flammable Areas of Refrigerants Encountering Obstacles in Confined Spaces
Journal of RefrigerationVol. 45, Issue 5, Pages: 71-83(2024)
作者机构:
1.浙江大学制冷与低温研究所 浙江省制冷与低温技术重点实验室 杭州 310027
2.含氟温室气体替代及控制处理国家重点实验室 浙江省化工研究院有限公司 杭州 310023
作者简介:
Han Xiaohong, female, professor, Ph.D.supervisor, Institute of Refrigeration and Cryogenics,Zhejiang University, 86-571-87953944, E-mail: hanxh66@zju.edu.cn. Research fields: high heat flux heat dissipation technology (mainly heat pipe heat dissipation, microchannel heat dissipation and immersion liquid cooling technology), immersion liquid cooling of power battery, refrigerant replacement technology, refrigerant leakage, refrigerant recovery, recycling and reclamation.
基金信息:
the National Natural Science Foundation of China(51936007;52076185)
LI YALUN, ZHOU PEIXU, YE GONGRAN, et al. Diffusion Distribution Characteristics and Flammable Areas of Refrigerants Encountering Obstacles in Confined Spaces. [J]. Journal of refrigeration, 2024, 45(5): 71-83.
DOI:
LI YALUN, ZHOU PEIXU, YE GONGRAN, et al. Diffusion Distribution Characteristics and Flammable Areas of Refrigerants Encountering Obstacles in Confined Spaces. [J]. Journal of refrigeration, 2024, 45(5): 71-83. DOI: 10.12465/j.issn.0253-4339.2024.05.071.
Diffusion Distribution Characteristics and Flammable Areas of Refrigerants Encountering Obstacles in Confined Spaces
Refrigerants exhibit different diffusion and distribution characteristics when they encounter obstacles after leaking into confined spaces. The influence of the thermophysical parameters of refrigerants on their diffusion and distribution after encountering obstacles thus needs to be analyzed to facilitate the prediction of flammable areas during the leakage of flammable refrigerant. In this study
R717
R290
R32
and R1234yf were selected. The diffusion and distribution characteristics of the refrigerants encountering high and low obstacles in a confined space were investigated
and the influence of the thermophysical parameters of the refrigerants on the diffusion process and flammable area were analyzed in detail. The results indicated different patterns of rigid collision when the refrigerants encountered a high obstacle after leakage. Refrigerant with lower densities diffused rapidly in the direction opposite to the leakage direction and gathered at the top of the space
whereas refrigerants with higher densities diffused along the surface of the obstacle to the ground. As the height of the measurement point decreased
the mass concentration of R717 decreased from 2.04% to 0.024%
and the mass concentration of R1234yf increased from 0.192% to 1.64%. The mass concentrations of R290 and R744 below the leakage hole were 0.92% and 1.27%
respec
tively. When the densities of the refrigerants were similar
the refrigerant with a higher viscosity had a higher mass concentration. The flammable area was primarily located above the high obstacle
and as the refrigerant leakage increased
the flammable area in the
y
-
z
section of the space gradually extended to the ground. When refrigerants encountered low obstacles after leakage
they accumulated below the leakage hole and gradually diffused to other low mass concentration areas of the space along the surface of the low obstacle. The distribution of refrigerants with lower densities was more uniform. As the densities of refrigerants increased
they accumulated significantly below the leakage hole. As the height of the measurement point decreased
the mass concentrations of R1234yf and R717 increased from 0.066% and 1% to 2.12% and 1.14%
respectively. The flammable area was mainly located in the corner surrounded by the low obstacle and the wall below the leakage hole. With an increase in refrigerant leakage
the flammable area extended to the ground along the surface of the obstacle.
关键词
可燃制冷剂泄漏障碍物热物性参数燃爆区域
Keywords
flammable refrigerantleakageobstaclethermophysical parameterflammable area