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On further enhancement of single-phase and flow boiling heat transfer in micro/minichannels

机译:进一步增强微/微通道中单相和沸腾沸腾换热

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摘要

With fast growing power consumption and device miniaturization, micro/minichannels are superior to macrochannels or conventional channels for high heat-flux dissipation due to their large surface area to volume ratios and high heat transfer coefficients. However, the associated large pressure drop penalty and flow boiling instability of micro/minichannels hinder their advancement in many practical applications. Therefore, enhancement techniques are required to stabilize the flow and further augment the heat transfer performance in micro/minichannels. This work first presents the classification of micro/ minichannels for single-phase flow and flow boiling and gives a general statement of heat transfer enhancement. Then a state-of-the-art overview of the most recent enhancement techniques is specifically provided for further sing-phase flow and flow boiling enhancement in micro/minichannels. Two promising enhancement techniques, i.e., interrupted microfins and engineered fluids with additives are discussed for single-phase flow. For flow boiling, the focus is given on several selected enhancement approaches which can effectively mitigate flow boiling instability and another hot research topic, i.e., nanoscale surface modification. Besides, effects of wettability on bubble dynamics are presented, and a concept of flow-pattern based heat transfer enhancement is proposed. For both single-phase flow and flow boiling enhancement, a special emphasis is on those enhancement techniques with high thermal performance and relatively low pressure drop penalty.
机译:随着功耗的快速增长和设备的小型化,微通道/微通道由于其大的表面积/体积比和高的传热系数而在高通量散热方面优于宏通道或常规通道。然而,相关联的大的压降损失和微/微型通道的沸腾不稳定性阻碍了它们在许多实际应用中的发展。因此,需要增强技术来稳定流动并进一步增强微通道/微通道中的传热性能。这项工作首先介绍了用于单相流动和流动沸腾的微通道/微通道的分类,并给出了增强传热的一般说明。然后,专门提供了最新增强技术的最新概述,以进一步改善微通道/微通道中的单相流和流沸腾增强。对于单相流,讨论了两种有希望的增强技术,即,中断的微翅片和具有添加剂的工程流体。对于流动沸腾,焦点集中在可以有效减轻流动沸腾不稳定性的几种选择的增强方法上,以及另一个热门的研究课题,即纳米级表面改性。此外,提出了润湿性对气泡动力学的影响,并提出了一种基于流型的传热增强概念。对于单相流增强和流沸腾增强,特别强调那些具有高热性能和相对较低的压降损失的增强技术。

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