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首页> 外文期刊>International Journal of Heat and Mass Transfer >Working-fluid selection for minimized thermal resistance in ultra-thin vapor chambers
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Working-fluid selection for minimized thermal resistance in ultra-thin vapor chambers

机译:工作流体的选择,可将超薄蒸汽室的热阻降至最低

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The behavior of a vapor chamber is strongly coupled to the thermophysical properties of the working fluid within. It is well known that these properties limit the maximum power (heat load) at which a vapor chamber can operate, due to incidence of the capillary limit. At this limit, the available capillary pressure generated within the wick structure balances the total pressure drop incurred along the path of fluid flow within the wick. A common figure of merit prioritizes working fluids that maximize this capillary-limited operating power. The current work explores working fluid selection for ultra-thin vapor chambers based on a thermal performance objective, rather than for maximized power dissipation capability. A working fluid is sought in this case that provides the minimal thermal resistance while ensuring a capillary limit is not reached at the target operating power. A resistance-network-based model is used to develop a simple analytical relationship for the vapor chamber thermal resistance as a function of the working fluid properties, operating power, and geometry. At small thicknesses, the thermal resistance of vapor chambers becomes governed by the saturation temperature gradient in the vapor core, which is dependent on the thermophysical properties of the working fluid. To satisfy the performance objective, it is shown that the choice of working fluid cannot be based on a single figure of merit containing only fluid properties. Instead, the functional relationship for thermal resistance must be analyzed taking into account all operating and geometric parameters, in addition to the thermophysical fluid properties. Such an approach for choosing the working fluid is developed and demonstrated.
机译:蒸气室的行为与内部工作流体的热物理特性密切相关。众所周知,由于毛细管极限的发生,这些特性限制了蒸气室可以工作的最大功率(热负荷)。在此极限下,油芯结构内产生的可用毛细管压力平衡了沿油芯内流体流动路径产生的总压降。常见的优点是优先考虑使毛细管限制的工作功率最大化的工作流体。当前的工作是基于热性能目标,而不是为了最大化功率消耗能力,探索用于超薄蒸汽室的工作流体选择。在这种情况下,寻求一种工作流体,该工作流体提供最小的热阻,同时确保在目标工作功率下未达到毛细管极限。基于电阻网络的模型用于根据工作流体属性,工作功率和几何形状来开发用于蒸汽室热阻的简单分析关系。在较小的厚度下,蒸气室的热阻由蒸气芯中的饱和温度梯度控制,这取决于工作流体的热物理性质。为了满足性能目标,已表明工作流体的选择不能基于仅包含流体性质的单一品质因数。取而代之的是,除了热物理流体特性外,还必须考虑所有操作和几何参数来分析热阻的函数关系。已经开发并展示了这种选择工作流体的方法。

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