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Combined effects of filling ratio and wick surface coating on thermal performance of cylindrical heat pipes

机译:灌装率和芯面涂层对圆柱热管热性能的综合影响

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Growing technological developments to improve the thermal efficiency of heat pipes resulted in many innovative techniques. The use of nanofluids with superior thermophysical properties compared to conventional fluids is one such technique. However, the service life of nanofluid driven heat pipes is affected by agglomeration and stability issues, demanding an alternate solution. Boiling heat transfer rate of a heat pipe depends on the availability of working fluid at the evaporator, which is decided by the wick wettability and filling ratio. Wick wettability is improved with a hydrophilic coating using sol-gel dip coating process. Coating improves wick capillarity at the expense of wick permeability. Hence, an accurate balance of wick coating thickness and evaporator filling ratio are essential for the enhanced performance. The present work aims to demonstrate the benefits derived from optimal wick coating over these issues posed by nanofluids and to provide a better understanding on device level thermal performance. Thermal performance of coated mesh wick cylindrical heat pipe is experimentally studied for various coating thicknesses, evaporator filling ratios and inclinations. The existence of an optimum evaporator filling ratio for each coating thickness in boosting the limits of heat transfer is established. For the optimized values of inclination, coating thickness and evaporator filling ratio, a maximum reduction of 38.49% in thermal resistance and an improvement of 25% in thermal efficiency are obtained at 150 W heat input. The results from the repeatability test confirms coating stability.
机译:越来越多的技术发展,提高热管的热效率导致了许多创新技术。与常规流体相比,使用具有优异的热物理性质的纳米流体是一种这种技术。然而,纳米流体驱动热管的使用寿命受到附聚和稳定性问题的影响,要求替代溶液。热管的沸腾传热速率取决于蒸发器处的工作流体的可用性,其由芯润湿性和填充率决定。利用溶胶 - 凝胶浸涂方法,亲水涂层改善了芯润湿性。涂层以芯片渗透率为代价而改善芯毛细径。因此,芯涂厚度和蒸发器填充率的精确平衡对于增强的性能至关重要。本作工作旨在展示在纳米流体构成的这些问题上获得最佳芯层涂层的益处,并提供更好地了解设备水平热性能。涂层网眼芯圆柱热管的热性能实验研究各种涂层厚度,蒸发器灌装比和倾斜。建立了对升压热传递限制的每个涂层厚度的最佳蒸发器填充率的存在。对于倾斜,涂层厚度和蒸发器填充率的优化值,在150W的热量输入下获得最大耐热性38.49%的热阻和25%的提高。来自重复测试的结果证实了涂层稳定性。

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