Cavitation dynamics and thermodynamic effect of R134a refrigerant in a Venturi tube.

IF 8.7 1区 化学 Q1 ACOUSTICS
Ultrasonics Sonochemistry Pub Date : 2025-01-01 Epub Date: 2024-12-15 DOI:10.1016/j.ultsonch.2024.107202
Beile Zhang, Ze Zhang, Xufeng Fang, Rong Xue, Shuangtao Chen, Yu Hou
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引用次数: 0

Abstract

Cavitation plays a crucial role in the reliability of components in refrigeration systems. The properties of refrigerants change significantly with temperature, thereby amplifying the impact of thermodynamic effects. This study, based on the Large Eddy Simulation (LES) method and the Schnerr-Sauer (S-S) cavitation model, investigates the transient cavitating flow characteristics of the R134a refrigerant in a Venturi tube (VT). The bubble number density in the S-S model was improved based on the experimental data of pressure and temperature. Simulation results indicate that there are two shedding modes of cavitation clouds in R134a refrigerant. One is induced by the combined action of reentrant flow and the vortices centrifugal force, while the other is generated by the central jet of the mainstream and the reverse jet produced by the collapsing cavitation bubbles. Furthermore, the thermodynamic effects of the refrigerant exert a certain inhibitory effect on cavitation, revealing the causes of instability in the refrigerant cavitation interface and the shedding characteristics of cavitation clouds. The relationship between local sound speed, flow velocity, and heat conduction rate in the cavitation region was studied, unveiling a time-lag in temperature changes relative to pressure changes in the intensive cavitation region. This study provides insights into the complex cavitation dynamics, especially in R134a refrigerant systems, and provides an approach for accurately predicting and managing cavitation in various industrial applications.

R134a制冷剂在文丘里管内的空化动力学及热力学效应。
空化对制冷系统部件的可靠性起着至关重要的作用。制冷剂的性质随温度发生显著变化,从而放大了热力学效应的影响。基于大涡模拟(LES)方法和Schnerr-Sauer (S-S)空化模型,研究了R134a制冷剂在文丘里管(VT)中的瞬态空化流动特性。基于压力和温度的实验数据,对S-S模型中的气泡数密度进行了改进。模拟结果表明,R134a制冷剂中的空化云有两种脱落模式。一种是由重入流和涡旋离心力的共同作用引起的,另一种是由主流的中心射流和空化泡坍缩产生的反向射流产生的。此外,制冷剂的热力学效应对空化有一定的抑制作用,揭示了制冷剂空化界面不稳定的原因和空化云的脱落特征。研究了空化区内声速、流速和热传导率之间的关系,揭示了在密集空化区内,温度变化相对于压力变化存在时滞。该研究提供了对复杂空化动力学的见解,特别是在R134a制冷剂系统中,并为准确预测和管理各种工业应用中的空化提供了一种方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Ultrasonics Sonochemistry
Ultrasonics Sonochemistry 化学-化学综合
CiteScore
15.80
自引率
11.90%
发文量
361
审稿时长
59 days
期刊介绍: Ultrasonics Sonochemistry stands as a premier international journal dedicated to the publication of high-quality research articles primarily focusing on chemical reactions and reactors induced by ultrasonic waves, known as sonochemistry. Beyond chemical reactions, the journal also welcomes contributions related to cavitation-induced events and processing, including sonoluminescence, and the transformation of materials on chemical, physical, and biological levels. Since its inception in 1994, Ultrasonics Sonochemistry has consistently maintained a top ranking in the "Acoustics" category, reflecting its esteemed reputation in the field. The journal publishes exceptional papers covering various areas of ultrasonics and sonochemistry. Its contributions are highly regarded by both academia and industry stakeholders, demonstrating its relevance and impact in advancing research and innovation.
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