Fluid Flow and Heat Transfer Characteristics of Micro Oscillating Heat Pipes With and Without Expanding Channels

Qin Sun, Jian Qu, Jianping Yuan, Hai Wang, S. Thompson
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Abstract

The oscillating heat pipe is considered a promising candidate for high-efficiency and compact thermal control for next-generation electronics. In this paper, the visualized flow and heat transfer characteristics of two silicon-based micro oscillating heat pipes (micro-OHPs) with expanding and straight channels, respectively, were experimentally investigated. The overall size of these two micro-OHPs are both 28 mm × 23 mm × 1.025 mm and have thirty rectangular cross-section channels. The hydraulic diameter of parallel direct channel is 332.4 μm, while they are about 364.4 and 287.0 μm at the two ends of expanding channel, respectively. R141b was used as the working fluid with the volumetric filling ratio of 50%. Inside these two micro-devices, the fluid oscillating motion, including unidirectional movement and intermittent stopovers, was observed at the quasi-steady oscillation state, accompanied by bubbly flow, slug flow and annular/semi-annular flow in microchannels. The micro-OHP with expanding channels possessed better thermal performance and could achieve ephemeral circulation flow, while poorer heat transfer performance occurred for the micro-OHP with straight channels due to more localized slug/plug oscillations and intermittent stopovers. The oscillating amplitudes of liquid slugs are presented to estimate the flow behavior of working fluid inside micro-OHPs. The introduction of expanding channels in a micro-OHP is beneficial for realizing the more robust oscillating motion of liquid slugs with larger oscillating amplitudes for heat transfer enhancement.
带和不带扩孔道微振荡热管的流体流动和传热特性
振荡热管被认为是下一代电子产品高效紧凑热控制的有前途的候选者。实验研究了两种膨胀型和直线型硅基微振荡热管的流动和传热特性。两种微ohps的整体尺寸均为28 mm × 23 mm × 1.025 mm,具有30个矩形截面通道。平行直接通道的水力直径为332.4 μm,扩张通道两端的水力直径分别约为364.4 μm和287.0 μm。采用R141b作为工质,体积填充比为50%。在两个微装置内部,流体处于准稳态振荡状态,包括单向运动和间歇停留,微通道内存在气泡流、段塞流和环形/半环形流动。膨胀通道的微ohp传热性能较好,可以实现短暂循环流动,而直线型微ohp传热性能较差,主要是局部段塞/塞振荡和间歇停留。利用液体段塞的振荡幅值来估计微ohps内工作流体的流动特性。在微ohp中引入膨胀通道有利于实现振荡幅度更大的液体段塞振荡运动的鲁棒性,从而增强传热。
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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