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Influence of fin height on heat transfer and fluid flow characteristics of rectangular microchannel heat sink

机译:翅片高度对矩形微通道散热器的传热和流体流动特性的影响

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摘要

Heat transfer and fluid flow behavior have been studied numerically in rectangular parallel microchannel heat sinks with varying fin height. Seven different cases have been considered by varying the fin heights from 0.4 to 1.0 mm. Completely closed heat sink (conventional configuration) of 1.0 mm fin height is one of the cases while remaining six heat sink configurations hold open space between fin top surfaces and cover wall. Three dimensional (3D) numerical simulations were carried out for the range of operating parameters where heat flux varied from 100 to 500 kW/m(2) and Reynolds number from 100 to 400. Single phase liquid water flows as coolant in the heat sink to remove heat. Optimization of fin height has been done to achieve maximum heat transfer rate and overall thermal performance of the heat sink. It has been observed that proposed design of the heat sinks facilitate distinct heat dissipation capacity and fluid flow characteristics. Predicted results i.e. temperature distribution, heat transfer coefficient pressure drop and velocity profile clearly reveal that heat transfer increases with increasing fin height however, heat sinks of considerably shorter fin heights (0.4 - 0.6 mm) have less potential to transfer heat. Pressure drop also increases with fin height because flow obstruction rises. It has been found that heat sink of fin height 0.8 mm exhibits maximum heat transfer which is even higher than fin heights of 0.9 mm and 1.0 mm (completely closed heat sink). Net convective surface area and typical flow behavior caused by available open space have been identified as major reasons to influence the overall thermal performance of the proposed heat sinks. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在翅片高度不同的矩形平行微通道散热器中,对传热和流体流动行为进行了数值研究。通过将翅片高度从0.4毫米更改为1.0毫米,已经考虑了七种不同的情况。散热片高度为1.0 mm的完全封闭式散热器(常规配置)是其中一种情况,而其余六种散热器配置则在散热片顶面和盖板之间保持开放空间。对于热通量从100到500 kW / m(2)变化和雷诺数从100到400的运行参数范围进行了三维(3D)数值模拟。单相液态水作为冷却剂在散热器中流动到排热。翅片高度的优化已经完成,以实现最大的热传递速率和散热器的整体热性能。已经观察到,所提出的散热器设计有助于明显的散热能力和流体流动特性。预测结果,即温度分布,传热系数压降和速度曲线清楚地表明,随着翅片高度的增加,传热会增加,但是,翅片高度明显较短(0.4-0.6 mm)的散热器的传热潜力较小。由于流动障碍增加,压降也随着翅片高度而增加。已经发现,翅片高度为0.8mm的散热器表现出最大的热传递,其甚至高于0.9mm和1.0mm的翅片高度(完全封闭的散热器)。净对流表面积和由可用开放空间引起的典型流动行为已被确定为影响拟议散热器整体热性能的主要原因。 (C)2019 Elsevier Ltd.保留所有权利。

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