浏览全部资源
扫码关注微信
1. 深圳职业技术大学机电工程学院,深圳
2. 南方科技大学力学与航空航天工程系,深圳
3. 广东工业大学材料与能源学院,广州
移动端阅览
庄晓如, 李翔, 杨智. 微通道液液两相弹状流传热的研究进展[J/OL]. 制冷学报, 2025.
Research Progress on Heat Transfer of Liquid-liquid Two-phase Slug Flow in Microchannels. [J/OL]. Journal of refrigeration, 2025.
高热流密度散热是当前微电子器件高效稳定运行的关键问题
而微通道液液两相流动传热技术则是一种有效的解决方案。本文首先综述了微通道液液两相流型的分类
其中弹状流相较于其他流型
具有显著的强化传热传质性能
是微通道液液两相流动中的重要流态。接着
本文对微通道液液两相弹状流传热的研究进展进行了全面整理与分析
并提出了当前研究中存在的科学问题:现有研究大多依赖于数值模拟方法
相关的实验研究相对较少;现有的数值计算模型通常简化了实际物理问题
并且大多数未与实验数据进行对比验证;多数数值模型采用宏观数值计算方法捕捉两相界面
其对流场、温度场及界面传热传质的计算准确性仍需进一步验证;实验研究多集中于小通道
主要测定宏观尺度的全局数据
而对微观尺度下的局部和瞬时数据的研究较为缺乏。最后
本文展望了微通道液液两相弹状流传热的未来研究方向。
With the rapid development of micro-electro-mechanical system (MEMS) technology
heat dissipation with high heat flux in limited space has become a key problem restricting the efficient and stable operation of the equipment. Heat dissipation technology of liquid-liquid two-phase flow in microchannels has emerged as an effective solution to this problem. In this paper
the classification of liquid-liquid two-phase flow patterns in microchannels was first reviewed. Compared with other flow patterns
slug flow is a critical flow pattern in it
which has significantly enhanced heat and mass transfer performance. Then
this paper summarizes and analyzes the current research progress on heat transfer of liquid-liquid two-phase slug flow in microchannels. At present
most studies in this field rely heavily on numerical simulations
with relatively few experimental investigations. Existing numerical models often simplify the complexities of physical phenomena
and many have not been validated against experimental data. Furthermore
these models frequently employ macroscopic numerical methods
such as Volume of Fluid (VOF) and Finite Volume Method (FVM)
to capture the two-phase interface. However
the accuracy of these models in calculating the flow field
temperature field
and the rates of heat and mass transfer in two-phase interface still requires further verification. Experimental studies tend to focus on mini-channels
primarily measuring macro-scale global data
such as total pressure drop
overall heat transfer coefficient
and average fluid temperature. There is a notable lack of research involving micro-scale local and instantaneous data
such as local heat transfer coefficient and detailed flow and temperature fields. Finally
the future research direction of heat transfer for liquid-liquid two-phase slug flow in microchannels is prospected.
液液两相流微通道传热弹状流多相流
liquid-liquid two-phase flowmicrochannelsheat transferslug flowmultiphase flow
0
浏览量
0
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构