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Design of an Area-Scalable Two-Layer Evaporator Wick for High-Heat-Flux Vapor Chambers

机译:用于高热通量蒸气室的可缩放面积的两层蒸发器芯的设计

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A hybrid two-layer evaporator wick is proposed for passive, high-heat-flux dissipation over large areas using a vapor chamber heat spreader. For such applications, the evaporator wick layer must be designed to simultaneously minimize the device temperature rise and minimize the flow resistance to a capillary feeding of the wick. This requires a strategy that exploits the benefits of a thin wick for reduced thermal resistance and a thick wick for liquid feeding. In the present design, a thick cap layer of wick material evenly routes liquid to a thin, low-thermal-resistance base layer through an array of vertical liquidfeeding posts. This two-layer structure decouples the functions of liquid resupply (cap layer) and capillary-fed boiling heat transfer (base layer), making the design scalable to heat input areas of similar to 1 cm(2) for operation at 1 kW/cm(2). A reduced-order model is developed to demonstrate the potential performance of a vapor chamber incorporating such a two-layer evaporator wick design. The model comprises simplified hydraulic and thermal resistance networks for predicting the capillary-limited maximum heat flux and the overall thermal resistance, respectively. The reduced-order model is validated against a higher fidelity numerical model and then used to analyze the performance of the vapor chamber with varying two-layer wick geometric feature sizes. The two-layer wick design is found to sustain liquid feeding at higher heat fluxes, without reaching the capillary limit, compared to single-layer evaporator wick designs.
机译:提出了一种混合式两层蒸发器芯,用于使用蒸气室散热器在大面积上进行被动的高热通量消散。对于这样的应用,蒸发器芯层必须被设计成同时最小化装置温度升高并且最小化对芯的毛细管进料的流动阻力。这就需要一种策略,该策略应利用薄芯吸管降低热阻和厚芯吸管供液的优点。在本设计中,芯材料的厚盖层通过一排垂直的液体进料柱将液体均匀地引导至薄的,低耐热性的基层。这种两层结构将液体补给(盖层)和毛细管进给的沸腾传热(基础层)的功能分离开来,使设计可扩展到热输入面积约1 cm(2),以1 kW / cm运行(2)。开发了降阶模型来演示结合了这种两层蒸发器芯设计的蒸气室的潜在性能。该模型包括简化的液压和热阻网络,分别用于预测毛细管限制的最大热通量和总热阻。针对较高保真度的数值模型对降阶模型进行了验证,然后将其用于分析具有变化的两层灯芯几何特征尺寸的蒸气室的性能。与单层蒸发器芯设计相比,发现两层芯设计可在较高的热通量下维持液体进料,而不会达到毛细管极限。

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