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布置带劈缝球凸结构微通道热沉内流动和换热特性 被引量:7

Flow structure and heat transfer characteristics of microchannel heat sinks with split protrusion
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摘要 将球凸结构与鲨鱼皮仿生概念相结合,提出了带劈缝的球凸结构,并对布置该结构微通道内的流场结构和换热特性进行了数值分析.研究结果表明,宽劈缝通道有利于降低其尾缘逆压梯度,抑制通道流动分离;劈缝通道外移,劈缝壁面温度明显降低,通道尾缘分离泡尺寸减小;斜劈缝通道将主流沿展向引射到侧面,强化了通道二次流,有效降低了侧面角区温度,通道各壁面的温度均匀性得以提升.相同条件下, B方案(劈缝中心线在球凸直径上相对位置w/D=0.25)通道相对范宁摩擦系数(f/f_0)较小,劈缝宽度较大的工况中上述趋势更为明显,而劈缝宽度为10μm的微通道换热能力优势明显; A方案(w/D=0.33)中,劈缝宽度为15μm的通道f/f_0很低,其综合热性能(TP)较好.本研究中布置带劈缝球凸微通道TP最大为185.3%,表现出了良好的强化换热和节能性能. Heat transfer capacity of compact heat exchanger is critical for applications with confined space and with large heat duty,in order to maintain the safety and efficiency of equipment.As a high-efficient and energy-saving compact heat exchanger,microchannel heat sinks have attracted extensive attention from both academics and industries.However,the development of thermal boundary layer in microchannel reduces the efficiency of heat transfer.Therefore,extensive efforts have been paid to improve the heat transfer performance in microchannel,for example,through incorporation of periodic rough elements of pin-fin,groove,rib and protrusion,which could disrupt the development of thermal boundary layer and induce secondary flow for thorough mixing between near-wall hot fluid and main fluid.Despite of superiority in the microchannel heat sink with protrusion,further structural optimizations are necessary to reduce resistance and enhance the heat transfer efficiency.Investigations on the flow resistance of shark,as well as the geometry of sharkskin,show that the discrete gap and hump of sharkskin reduce the flow resistance.Therefore,the split protrusion was proposed in this work,which was based on the common protrusion and shark skin bionic concept.And,the detailed flow structure and heat transfer mechanisms of microchannel heat sinks with split protrusion were studied.Transitional periodic boundary conditions were applied at the inlet and outlet with water as the working fluid,and the Reynolds number(Re)at the inlet were varied from 50 to 350.Moreover,a uniform constant heat flux of q′′=5×105 W m-2 and no-slip boundary condition were specified at other surfaces of the microchannel.Furthermore,to avoid local hot spot of microchannel surfaces due to the existence of non-uniform temperature distribution,the temperature uniformity was discussed as well.The results show that thermal performance(TP)increases with the increase of Re and the superior heat transfer capacity is reached when the split width is10μm.In this study,the largest TP is 185.3%at the case of Plan A with Re=350 and 10μm split width,where the relative friction factor(f/f0)is much large.As the width of split increases to 15μm in Plan A,its f/f0 significantly decreases but the thermal performance is relative large.Moreover,f/f0 is also smaller than others at the case of PlanB with 15μm width split.For Plan B with large split width,the value of TP increases with the split width at large Re(>250),while there is an opposite trend with the split width at small Re(<250).It was found that wide split passage could reduce the adverse pressure gradient at rear-end of passage.Both the wall temperature of split passage and the scale of separation bubble located at rearend of split passage decreases when the split was placed in smaller relative position(w/D).Keeping other conditions at the same,the TP for Plan A is larger than that for Plan B when w/D is larger,while the f/f0 is relatively smaller in PlanB at the case of smaller w/D,especially for the cases with wide split passage.However,the f/f0 in PlanC with the smaller w/D is much larger than that of others,especially at large Re,since the sideward-inclined split in PlanC guides the part of main flow to side walls,enhancing the secondary passage flow of whole channel.Therefore,the temperature of side wall corners has been decreased effectively and the temperature uniformity of all walls in Plan C increases.
作者 郭丁彰 黄心悦 李平 Dingzhang Guo;Xinyue Huang;Ping Li(MOE Key Laboratory of Thermo-Fluid Science and Engineering,School of Energy and Power Engineering,Xi’an Jiaotong University,Xi’an 710049,China)
出处 《科学通报》 EI CAS CSCD 北大核心 2019年第14期1526-1534,共9页 Chinese Science Bulletin
基金 陕西省自然科学基础研究计划(2017JQ5096)资助
关键词 微通道热沉 带劈缝球凸 周期性流动 流动结构 强化换热 microchannel heat sinks split protrusion periodical flow flow structure heat transfer enhancement
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