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Experimental and numerical investigation of single-phase heat transfer using a hybrid jet-impingement/micro-channel cooling scheme

机译:射流/微通道混合冷却方案单相传热的实验和数值研究

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摘要

Experimental and numerical methods were used to explore the cooling performance of a new hybrid device consisting of a slot jet impinging into a micro-channel, thus capitalizing upon the merits of both cooling configurations. The three-dimensional heat transfer characteristics of this device were analyzed using the standard k-ε turbulent model. Numerical predictions for liquid PF-5052 show excellent agreement with experimental measurements. Vorticity effects are shown to greatly influence cooling performance outside the impingement zone. Higher jet Reynolds numbers yielded stronger attachment to the heated surface and lower surface temperatures. The model was also used to optimize the cooling performance for a water-cooled device. Lower surface temperatures were achieved by decreasing jet width and micro-channel height. These findings are used to recommend a simplified hybrid cooling geometry in pursuit of both lower surface temperatures and smaller temperature gradients across the heated surface.
机译:使用实验和数值方法来探索一种新型混合动力装置的冷却性能,该混合动力装置由射流喷射到微通道中组成,因此充分利用了两种冷却方式的优点。使用标准的k-ε湍流模型分析了该设备的三维传热特性。液体PF-5052的数值预测表明与实验测量结果非常吻合。结果表明,涡流效应会极大地影响撞击区域之外的冷却性能。更高的雷诺数产生了更牢固的附着到加热表面和更低的表面温度。该模型还用于优化水冷设备的冷却性能。通过降低射流宽度和微通道高度可以降低表面温度。这些发现用于推荐简化的混合冷却几何形状,以同时追求较低的表面温度和整个加热表面上较小的温度梯度。

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