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A Method for Thermal Performance Characterization of Ultra-Thin Vapor Chambers Cooled by Natural Convection

机译:自然对流冷却的超薄蒸气室热性能表征方法

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摘要

Vapor chamber technologies offer an attractive approach for passive cooling in portable electronic devices. Due to the market trends in device power consumption and thickness, vapor chamber effectiveness must be compared with alternative heat spreading materials at ultrathin form factors and low heat dissipation rates. A test facility is developed to experimentally characterize performance and analyze the behavior of ultrathin vapor chambers that must reject heat to the ambient via natural convection. The evaporatorside and ambient temperatures are measured directly; the condenser-side surface temperature distribution, which has critical ergonomics implications, is measured using an infrared (IR) camera calibrated pixel-by-pixel over the field of view and operating temperature range. The high thermal resistance imposed by natural convection in the vapor chamber heat dissipation pathway requires accurate prediction of the parasitic heat losses from the test facility using a combined experimental and numerical calibration procedure. Solid metal heat spreaders of known thermal conductivity are first tested, and the temperature distribution is reproduced using a numerical model for conduction in the heat spreader and thermal insulation by iteratively adjusting the external boundary conditions. A regression expression for the heat loss is developed as a function of measured operating conditions using the numerical model. A sample vapor chamber is tested for heat inputs below 2.5 W. Performance metrics are developed to characterize heat spreader performance in terms of the effective thermal resistance and the condenser-side temperature uniformity. The study offers a rigorous approach for testing and analysis of new vapor chamber designs, with accurate characterization of their performance relative to other heat spreaders.
机译:蒸气室技术为便携式电子设备的被动冷却提供了一种有吸引力的方法。由于器件功耗和厚度方面的市场趋势,必须以超薄的外形尺寸和低散热率将蒸气室的效率与替代的散热材料进行比较。开发了一种测试设备,以通过实验表征性能并分析必须通过自然对流将热量散发到周围环境的超薄蒸气室的性能。蒸发器侧和环境温度直接测量;冷凝器侧表面温度分布具有重要的人体工程学意义,它是使用红外(IR)摄像机在视场和工作温度范围内逐像素校准的,进行测量。蒸气室散热路径中自然对流所产生的高热阻要求使用组合的实验和数值校准程序来准确预测测试设备的寄生热损失。首先测试导热系数已知的固体金属散热器,然后使用数值模型通过迭代调整外部边界条件,在散热器和隔热层中进行传导,从而复制温度分布。使用数值模型,将热损失的回归表达式作为测得的运行条件的函数进行开发。测试样本蒸气室的热量输入低于2.5W。开发了性能指标,以根据有效的热阻和冷凝器侧温度均匀性来表征散热器的性能。这项研究提供了一种严格的方法来测试和分析新的蒸汽室设计,并准确表征了其相对于其他散热器的性能。

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