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ANALYSIS OF GALINSTAN-BASED MICROGAP COOLING ENHANCEMENT USING STRUCTURED SURFACES

机译:基于结构表面的基于加林斯坦的微间隙冷却增强分析

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Analyses of conventional microchannel and microgap cooling show that galinstan, a recently developed non-toxic liquid metal that melts at -19 °C, may be more effective than water for high flux thermal management applications. This is because its thermal conductivity is nearly 28 times that of water. However, since the specific heat per unit volume of galinstan is about half that of water and its viscosity is 2.5 times that of water, caloric, rather than convective, resistance is dominant. We analytically investigate the effect of using microgaps that incorporate structured surfaces to ascertain their efficacy in reducing overall thermal resistance of galinstan-based thermal management in the laminar flow regime. Significantly, the high surface tension of galinstan (10 times that of water) implies that it can remain in the non-wetting Cassie state at the requisite pressure differences for driving flow through microchannels and microgaps. The flow over the structured surface encounters a limited liquid/solid contact area and a low viscosity gas layer interposed between the channel walls and galinstan. Consequent reductions in friction factor result in decreased caloric resistance and reductions in Nusselt number produce an increase in convective resistance. These are accounted for by recently developed expressions in the literature for hydrodynamic and thermal slip.
机译:对常规微通道和微间隙冷却的分析表明,对于高通量热管理应用,Galinstan是一种最新开发的无毒液态金属,熔点为-19°C,它可能比水更有效。这是因为其热导率几乎是水的28倍。但是,由于盖林斯坦单位体积的比热约为水的一半,并且其粘度是水的2.5倍,所以热量(而不是对流)占​​主导地位。我们分析性地研究了使用包含结构化表面的微间隙来确定其在降低层流状态下基于加林斯坦的热管理的整体热阻方面的功效。显着的是,加林斯坦的高表面张力(是水的10倍)意味着它可以在驱动流过微通道和微间隙的必要压力差下保持在非润湿的卡西状态。在结构化表面上的流动遇到有限的液/固接触面积以及插在通道壁和加林斯坦之间的低粘度气体层。因此,摩擦系数的降低导致热阻降低,Nusselt数的降低导致对流阻力的增加。这些是由文献中最近开发的流体动力和热滑动的表达式解释的。

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