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Characterization of laminar jet impingement cooling in portable computer applications

机译:便携式计算机应用中层流射流冲击冷却的特性

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A thermal characterization study of laminar air jet impingement cooling of electronic components within a geometry representative of the CPU compartment of a typical portable computer is reported. A finite control volume technique was used to solve for the velocity and temperature fields. Convection, conduction and radiation effects were included in the simulations. The range of jet Reynolds numbers considered was 63 to 1500; the applied compartment heat load ranged from 5-15 W. Radiation effects were significant over the range of Reynolds numbers and heat loads considered, while the effect of natural convection was only noticeable for configurations when the ratio Gr/Re/sup 2/ exceeded 5. The predicted importance of Re rather than jet size was confirmed with test data. Proof of concept was demonstrated with a numerical model representative of a full laptop computer. Both simulations and lab tests showed that low flow rate JI cooling schemes can provide cooling comparable to a high volume flow rate configuration, while using only a fraction of the air flow. Further, under the conservative assumption of steady state, fully powered components, a hybrid cooling scheme utilizing a heat pipe and laminar JI was capable of cooling the processor chip within 11 C of the vendor specified maximum temperature for a system with a total power dissipation of over 21 W.
机译:报告了对代表典型便携式计算机CPU隔室的几何形状内的电子组件进行层流喷气冲击冷却的热特性研究。有限控制体积技术用于求解速度和温度场。对流,传导和辐射效应包括在模拟中。考虑到的雷诺数范围为63至1500;施加的隔室热负荷范围为5-15W。在雷诺数和所考虑的热负荷范围内,辐射效应显着,而自然对流效应仅在比率Gr / Re / sup 2 /超过5时才显着测试数据证实了Re而不是射流尺寸的预测重要性。用代表完整笔记本电脑的数值模型演示了概念验证。仿真和实验室测试均表明,低流量JI冷却方案可提供与高体积流量配置相当的冷却效果,同时仅使用一部分气流。此外,在稳态,全功率组件的保守假设下,利用热管和层状JI的混合冷却方案能够将处理器芯片冷却到厂商指定的最高温度的11 C以内,而系统的总功耗为超过21 W

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