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首页> 外文期刊>Journal of thermal analysis and calorimetry >Evaluating the efficiency of pin-fin micro-heat sink considering different shapes of nanoparticle based on exergy analysis
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Evaluating the efficiency of pin-fin micro-heat sink considering different shapes of nanoparticle based on exergy analysis

机译:基于Deerteny分析,评估考虑纳米粒子不同形状的尖面微散热器的效率

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摘要

In this paper, the exergy rate analysis at a pin-fin micro-heat sink (MH/S) is investigated numerically. The critical part of a MH/S contains several square-shaped pin-fins. A turbulent flow of water/boehmite alumina nanofluid (N-F) moves on the pin-fins and cools the MH/S. Constant heat flux is entered into the lower part of the pin-fin MH/S. The governing equations are solved based on the control volume method and simple algorithm. The K-epsilon model is applied to model the N-F flow over pin-fins. The first-law, second-law efficiencies, gains exergy rate, loss exergy rate, and output exergy rate are studied in analysis. Variables considered in the problem consist of the inlet flow rate of N-F, N-Ps shape, and volume fraction of N-Ps in water. The main purpose of this paper is to investigate the exergy rate of various N-P shapes in a MH/S. The results of this study showed that increasing the flow rate reduces the temperature of the MH/S. Increasing the velocity and volume percentage reduces the amount of out exergy rate. In fact, by increasing the velocity from 1 to 3 m s(-1) for water, the amount of out exergy rate output decreases by 7.36 W. The greatest reduction in loss exergy rate is for platelets N-Ps with a reduction of 441 W. Also, increasing the velocity and decreasing the volume percentage reduce the efficiency of the first law of thermodynamics, which is 8.5% for platelets N-Ps. The addition of these N-Ps reduces the efficiency of the second law by 5.7%.
机译:本文对针翅式微型散热器(MH/S)的火用率进行了数值分析。MH/S的关键部分包含几个方形的针形翅片。水/薄水铝石-氧化铝纳米流体(N-F)的湍流在针形翅片上移动并冷却MH/S。恒定热流进入针形翅片MH/S的下部。基于控制体积法和simple算法求解控制方程。采用K-epsilon模型对针形翅片上的N-F流动进行了模拟。分析中研究了第一定律、第二定律效率、增益火用率、损耗火用率和输出火用率。该问题考虑的变量包括N-F的入口流量、N-Ps形状和N-Ps在水中的体积分数。本文的主要目的是研究MH/S中各种N-P形状的(火用)率。研究结果表明,增加流量会降低MH/S的温度。增加流速和体积百分比会减少(火用)率。事实上,通过将水的速度从1 m s(-1)增加到3 m s(-1),输出的火用率减少了7.36 W。损失火用率的最大减少是血小板N-Ps,减少了441 W。此外,增加速度和降低体积百分比会降低热力学第一定律的效率,对于血小板N-Ps,这是8.5%。添加这些N-Ps会使第二定律的效率降低5.7%。

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