微通道内多组分过冷流动时态转变的可视化研究

IF 4.2 3区 工程技术 Q3 ENERGY & FUELS Chemical Engineering and Processing - Process Intensification Pub Date : 2025-02-01 Epub Date: 2024-11-29 DOI:10.1016/j.cep.2024.110091
Jia-hui Shi , Shi-jiao Li , Sheng-lin Yan , Zheng-hong Luo
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引用次数: 0

摘要

研究过冷流动的流态转变对高性能换热器的设计至关重要。建立了一个高速摄像平台,用于研究水-乙醇混合物在微通道中过冷沸腾的气泡行为。热力学瞬态表征和高速流动可视化的同步。微通道内的流动可分为单相对流区、孤立气泡区、气泡区和段塞流区。微通道和多组分冷却剂的组合以及泡流区域内的过冷沸腾可以改善传热性能。在较高的进口速度条件下,微通道内的壁面效应会增强气泡诱导换热,导致换热性能降低。与0.05 m/s较低速度相比,0.15 m/s较高速度下气泡离开频率在气泡流区最大降低了2倍。在本文所分析的所有条件下,气泡流的传热系数与空隙率普遍成正比。因此,可以利用有利于提高孔隙率的方式来调节气泡流动状态下微通道的换热系数。
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Visualization study on temporal regime transition of multicomponent subcooled flow in microchannel
Researching the regime transition of the subcooled flow is essential for designing high-performance heat exchangers. A high-speed camera platform is built to study the bubble behavior of the subcooled boiling of a water-ethanol mixture in a microchannel. Simultaneous synchronisation of thermodynamic transient characterisation and high speed flow visualisation. The flow in the microchannel can be divided into single-phase convection, isolated bubble, bubbly flow, and slug flow regions. The combination of micro-channel and multi-component coolant along with keeping the subcooled boiling within the bubbly flow region can improve the heat transfer performance. The wall effect in the microchannel will enhance the bubble-induced heat transfer and result in a reduced heat transfer performance under higher inlet velocity conditions. Compared with lower velocity of 0.05 m/s, the bubble departure frequency for higher velocity of 0.15 m/s decreased by a maximum of 2 times in the bubbly flow region. The heat transfer coefficient for the bubbly flow regime is found to be universally proportional to the void fraction for all conditions analysed in this paper. Hence, the manners that are beneficial for void fraction improvement can be utilized to regulate the heat transfer coefficient of the microchannel within the bubbly flow regime.
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来源期刊
CiteScore
7.80
自引率
9.30%
发文量
408
审稿时长
49 days
期刊介绍: Chemical Engineering and Processing: Process Intensification is intended for practicing researchers in industry and academia, working in the field of Process Engineering and related to the subject of Process Intensification.Articles published in the Journal demonstrate how novel discoveries, developments and theories in the field of Process Engineering and in particular Process Intensification may be used for analysis and design of innovative equipment and processing methods with substantially improved sustainability, efficiency and environmental performance.
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