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首页> 外文期刊>International Journal of Heat and Mass Transfer >Transient thermal analysis of flash-boiling cooling in the presence of high-heat-flux loads
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Transient thermal analysis of flash-boiling cooling in the presence of high-heat-flux loads

机译:存在高热通量负载时的闪蒸冷却瞬态热分析

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A flash-boiling fluid rapidly cools and expands, responding to depressurization in as little as 10-100 ms. The presented dynamic cooling mechanism harnesses this phenomenon. Applications include pulsed, high-heat-flux (similar to 100 W cm(-2)) devices, particularly those requiring strict temperature stability (+/- 5 degrees C) for a short duration (similar to 0.1 to 10 s). A highly conductive graphitic foam is included as an extended surface, while enhancing phase-change phenomena. In addition to quantifying the rate of heat transfer as it varies spatially and temporally, the temperature stability of the surrogate heat source is evaluated. The experiments were designed using a statistical framework, allowing for the efficient generation of surrogate models. These surrogate models are used to explore the multi-parameter design space, identifying design criteria that optimize different performance objectives, such as temperature stability, efficiency, and cooling rate. An inverse-heat-transfer technique is applied to determine the dynamic rate of cooling during the event. Cooling rapidly peaks after 0.5-1 s, reaching approximately 30-50 W cm(-2), and steadily decays thereafter. The cooling device maintains stable system temperatures (+/- 5 degrees C) during heat loads of up to 104 W cm(-2). (C) 2018 Elsevier Ltd. All rights reserved.
机译:沸腾的液体迅速冷却并膨胀,在短短10-100毫秒内对降压作出响应。提出的动态冷却机制利用了这种现象。应用包括脉冲,高热通量(类似于100 W cm(-2))设备,尤其是在短时间内(类似于0.1到10 s)需要严格的温度稳定性(+/- 5摄氏度)的设备。包括高导电石墨泡沫作为延伸表面,同时增强了相变现象。除了量化随时间和空间变化的传热速率外,还评估了替代热源的温度稳定性。实验是使用统计框架设计的,从而可以有效生成替代模型。这些替代模型用于探索多参数设计空间,确定可优化不同性能目标(例如温度稳定性,效率和冷却速率)的设计标准。应用反向传热技术来确定事件期间的动态冷却速率。在0.5-1 s之后,冷却迅速达到峰值,达到大约30-50 W cm(-2),此后逐渐衰减。在高达104 W cm(-2)的热负荷下,冷却装置可保持稳定的系统温度(+/- 5摄氏度)。 (C)2018 Elsevier Ltd.保留所有权利。

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