Pulsed-flow microchannel heat sink: Simulation and experimental validation

S. Singh, H. Mali, S. Suryawanshi, S. Singh
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引用次数: 1

Abstract

Microchannel heat dissipation devices were first conceptualized in 1981 and since then are at the forefront of cooling techniques for a variety of applications, extending from computer chips and turbine blades to lasers and optical systems. However, much of the research is concentrated on steady flow of a cooling fluid through the channels. In this article, transient two-dimensional (2D) simulation for heat transfer in microchannels under a pulsed-flow condition is carried out. For validation of simulation results, a novel heat sink device is designed and fabricated, using milling and micro-electric discharge machining (EDM) technique. The fabricated device is then tested to evaluate the effect of a variable flow rate on the heat transfer characteristics when the flow is pulsating. It is found that the numerical results underpredict slightly as compared to actual experimental results. Results indicate a higher temperature at the outlet of the heat sink device for lower pulse frequency, and as pulse frequency increases, the outlet temperature decreases.
脉冲流微通道散热器:仿真与实验验证
微通道散热设备于1981年首次提出概念,从那时起,微通道散热设备就处于各种应用冷却技术的最前沿,从计算机芯片和涡轮叶片到激光和光学系统。然而,大部分研究都集中在冷却流体通过通道的稳定流动上。本文对脉冲流动条件下的微通道传热进行了二维瞬态模拟。为了验证仿真结果,采用铣削和微细电火花加工(EDM)技术,设计并制作了一种新型散热装置。然后对该装置进行测试,以评估在流动脉动时变流量对传热特性的影响。结果表明,数值计算结果与实际实验结果有一定的偏差。结果表明:脉冲频率越低,散热装置出口温度越高;脉冲频率越高,出口温度越低;
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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