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Enhancement of loop heat pipe heat transfer performance with superhydrophilic porous wick

机译:用超硫酸多孔芯的环路热管传热性能的增强

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A loop heat pipe (LHP) can effectively improve the heat dissipation capacity for a variety of equipment and instruments with high heat flux.A superhydrophilic porous wick was fabricated in a LHP to investigate the effect of wettability and nanostructures on heat transfer performance. These wicks can be achieved by copper powder sintering and surface modification through hydrogen peroxide (H_2O_2) oxidation. For the LHP with a superhydrophilic wick (SH-LHP), the heat transfer performance was significantly enhanced in comparison with the LHP with a hydrophilic wick (H-LHP).SH-LHP can startup at a lower heat load, and it has smaller temperature fluctuations. At a high heat load, it first enters the normal working mode, and it has better temperature uniformity. When the heat load is 240 W, the temperature in the center of the evaporator is 64.3°C, which is nearly 8.7°C below that of H-LHP. Under anti-gravity condition, SH-LHP shows its superior heat transfer performance at a high heat load; the maximum heat transfer coefficient increased by 50% in comparison with the H-LHP. The main mechanism has three aspects. First, superhydrophilic wicks have a large capillary force that provides a sizable driving force and an adequate liquid supply for the circulation and phase transformation of the working fluid. Second, the superhydrophilic wick has multi-scale structures in the nanometer to millimeter range, which effectively regulates the vapor-liquid distribution and bubble formation. Third, the nanostructures on the superhydrophilic wick's surface provide more nucleation sites and a large surface area for phase change heat transfer.
机译:环路热管(LHP)可以有效地提高各种设备和具有高热量的仪器的散热能力。在LHP中制造过硫酸多孔芯,以研究润湿性和纳米结构对传热性能的影响。这些芯可以通过铜粉末烧结和通过过氧化氢(H_2O_2)氧化来实现。对于具有超硫酸芯(SH-LHP)的LHP,与具有亲水芯(H-LHP)的LHP相比,传热性能显着提高了.SH-LHP在较低的热负荷下启动,它具有更小的温度波动。在高热负荷下,首先进入正常的工作模式,它具有更好的温度均匀性。当热负荷为240W时,蒸发器中心的温度为64.3°C,低于H-LHP的近8.7℃。在抗重力条件下,SH-LHP在高热负荷下显示出其优异的传热性能;与H-LHP相比,最大传热系数增加了50%。主要机制有三个方面。首先,过硫基芯具有大的毛细力,其为工作流体的循环和相变的循环和相变的液体供应提供了大量的驱动力和足够的液体供应。其次,超硫酸芯在纳米到毫米范围内具有多尺度结构,有效调节蒸汽液体分布和泡沫形成。第三,超硫基芯表面上的纳米结构提供更多的成核位置和用于相变热传递的大表面积。

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