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首页> 外文期刊>International Journal of Computational Materials Science and Engineering >On numerical heat transfer characteristic study of flat surface subjected to variation in geometric thickness
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On numerical heat transfer characteristic study of flat surface subjected to variation in geometric thickness

机译:关于几何厚度变化的平坦表面的数值传热特性研究

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Thermal management in the looming world of electronic packaging system is the most prior and conspicuous issue as far as the working efficiency of the system is concerned. The cooling in such systems can be achieved by impinging air jet over the heat sink as jet impingement cooling is one of the cooling technologies which are widely studied now. Here the modulation in impinging and geometric parameters results in the establishment of the characteristic cooling rate over the target surface. The characteristic cooling curve actually resembles non-uniformity in cooling rate. This non-uniformity favors the area average heat dissipation rate. In order to study the non-uniformity in cooling characteristic, the present study takes an initiative in plotting the local Nusselt number magnitude against the non-dimensional radial distance of the different thickness of target surfaces. For this, the steady temperature distribution over the target surface under the impingement of air jet is being determined numerically. The work is completely inclined towards the determination of critical value of geometric thickness below which the non-uniformity in the Nusselt profile starts. This is done by numerically examining different target surfaces under constant Reynolds number and nozzle-target spacing. The occurrences of non-uniformity in Nusselt profile contributes to over a 42% enhancement in area average Nusselt magnitude. The critical value of characteristic thickness (t/d) reported in the present investigation approximate to 0.05. Below this value, the impingement of air jet generates a discrete pressure zones over the target surface in the form of pressure spots. As a result of this, the air flowing in contact with the target surface experiences a damping potential, in due of which it gets more time and contact with the surface to dissipate heat.
机译:就系统涉及的工作效率而言,电子包装系统的迫近世界中的热管理是最先前和最显着的问题。这种系统中的冷却可以通过在散热器上撞击空气射流作为喷射冲击冷却是现在被广泛研究的冷却技术之一。这里,在撞击和几何参数中的调制导致在目标表面上建立特征冷却速率。特性冷却曲线实际上在冷却速率上类似于不均匀性。这种不均匀性有利于面积平均散热速率。为了研究冷却特性的不均匀性,本研究采取主动绘制局部泡沫数量幅度符合不同厚度的目标表面的非尺寸径向距离。为此,在数值上确定在空气射流冲击下目标表面上的稳定温度分布。该工作完全倾向于确定下面的几何厚度的临界值,该颈部内部的不均匀性开始。这是通过在恒定的雷诺数和喷嘴 - 目标间距下进行数字检查不同的目标表面来完成的。篮区内谱中的不均匀性的发生有助于面积平均水果幅度的42%增强。本研究中报告的特征厚度(T / D)的临界值近似为0.05。在该值下方,空气喷射的冲击以压力点的形式在目标表面上产生离散压力区。结果,流动与目标表面接触的空气经历阻尼电位,因为它可以获得更多的时间并与表面接触以消散热量。

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