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A CRITICAL OVERVIEW ON THE RECENT LITERATURE CONCERNING FLOW BOILING AND TWO-PHASE FLOWS INSIDE MICRO-SCALE CHANNELS

机译:关于微尺度通道内流沸腾和两相流的近期文献的关键概述

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Studies on two-phase flow and flow boiling inside micro-scale channels published approximately until the middle of last decade were characterized by drastic discrepancies among authors. Frequently, differences of about one order of magnitude were observed for experimental results obtained at almost similar conditions. Parcels of these differences were related to the use of inaccurate experimental techniques and also for not taking into account all the relevant experimental parameters, such as surface roughness, presence of thermal instabilities, and flash gas effects. Therefore, it was not surprising that the proposed models and correlations worked reasonably well for restricted databases, mainly those considered during their development. Transitions between micro- and macro-scale were proposed based only on channel dimensions and manufacturing processes without taking into account heat transfer and two-phase flow mechanistic aspects. During this early period, most authors were just theorizing about the relevant physical mechanisms, and nucleate boiling was frequently proposed as the main heat transfer mechanism even at high vapor qualities under annular flow conditions. Most recently, as result of the large number of studies performed on this theme and the efforts of leading laboratories over the world, agreements between independent databases are observed and recent correlations and models are providing accurate predictions. The experimental techniques used by each laboratory were improved, resulting in more accurate results that have contributed to the actual status quo. Flow pattern predictive methods based on objective recognition techniques have been proposed. Researchers are suggesting that the transition between micro- and macro-behaviors may be due to the results of bubble confinement within the channel as well as the balance among gravitational, inertial, wetting, and surface tension forces. In addition, recent physical models have been proposed and their hypothesis investigated through numerical simulations and experimental studies focusing on determining the two-phase topology and temperature and velocity fields. Additionally, the knowledge of the mechanisms acting on the flow thermal instabilities has immerged as a critical aspect in order to predict the hydro-thermal performance of flow boiling in micro-scale channels. In this context, the present study concerns an overview on the recent literature (from 2005 to 2012) dealing with flow boiling and two-phase flow in micro-scale channels and was written having the main goal of identifying points of agreements among authors and aspects that remain unclear.
机译:研究两相流和流量大约出版直到最后十年中,通过作者之间激烈的差异表征微尺度通道内沸腾。通常,观察到在几乎相同条件下获得的实验结果大约一个数量级的差异。这些差异被包裹的使用相关的不准确的实验技术,也为不考虑所有相关的实验参数,如表面粗糙度,热不稳定性的存在,和闪蒸气体的效果。因此,这并不令人感到意外的是,提出的模型和相关工作相当不错了限制的数据库,主要是那些在成长过程中考虑。微观和宏观尺度之间的转变,提出仅基于信道的尺寸和制造过程中没有考虑到的热传递和二相流机制方面。在这个早期阶段,大多数作者都对相关的物理机制只是理论化,和泡核沸腾经常被提出,因为即使在环形流条件下的高品质汽的主要传热机理。最近,随着大量关于这个主题进行的研究和领导的实验室在世界各地努力的结果,独立的数据库之间的协议的遵守和相关性近期和模型提供准确的预测。各实验室所使用的实验技术进行了改进,导致了实际的现状贡献更准确的结果。基于客观识别技术流动模式的预测方法已被提出。研究人员正在提示微观和宏观行为之间的过渡可能是由于气泡约束的信道以及重力,惯性,润湿和表面张力力的平衡内的结果。此外,最近的物理模型已经被提出和他们的假设,通过数值模拟和实验研究,重点确定两相拓扑和温度场和速度场研究。另外,作用于流量热不稳定性的机制的知识,以便预测流动沸腾的在微观尺度通道水热性能已经浸入作为关键方面。在此背景下,本研究关注于最近的文献(2005年至2012年)的概述处理流动沸腾并在微观尺度通道两相流和写入具有作者和方面中识别的协议的点的主要目标这仍不清楚。

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