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Microchannel cooling technique for dissipating high heat flux on W/Cu flat-type mock-up for EAST divertor
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作者 鲁铭翔 韩乐 +5 位作者 赵起 邱俊城 周剑宏 胡定华 牟南瑜 陈雪梅 《Plasma Science and Technology》 SCIE EI CAS CSCD 2022年第9期134-144,共11页
As an important component of tokamaks,the divertor is mainly responsible for extracting heat and helium ash,and the targets of the divertor need to withstand high heat flux of 10 MW m-2 for steady-state operation.In t... As an important component of tokamaks,the divertor is mainly responsible for extracting heat and helium ash,and the targets of the divertor need to withstand high heat flux of 10 MW m-2 for steady-state operation.In this study,we proposed a new strategy,using microchannel cooling technology to remove high heat load on the targets of the divertor.The results demonstrated that the microchannel-based W/Cu flat-type mock-up successfully withstood the thermal fatigue test of 1000 cycles at 10 MW m^(-2)with cooling water of 26 l min^(-1),30°C(inlet),0.8 MPa(inlet),15 s power on and 15 s dwell time;the maximum temperature on the heat-loaded surface(W surface)of the mock-up was 493°C,which is much lower than the recrystallization temperature of W(1200°C).Moreover,no occurrence of macrocrack and‘hot spot’at the W surface,as well as no detachment of W/Cu tiles were observed during the thermal fatigue testing.These results indicate that microchannel cooling technology is an efflcient method for removing the heat load of the divertor at a low flow rate.The present study offers a promising solution to replace the monoblock design for the EAST divertor. 展开更多
关键词 MICROCHANNEL DIVERTOR flat-type high heat flux test EAST
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微通道过冷流动沸腾汽泡动力学行为研究 被引量:1
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作者 邱俊城 李强 陈雪梅 《工程热物理学报》 EI CAS CSCD 北大核心 2021年第10期2665-2671,共7页
微通道相变冷却技术在高热流密度散热领域具有广泛的应用前景,本文通过FLUENT内的流体体积VOF模型来建立过冷流动沸腾下微通道内单汽泡生长模型,通过用户自定义函数UDF在汽液界面上添加质量源项和能量源项实现相变。研究结果表明,汽泡... 微通道相变冷却技术在高热流密度散热领域具有广泛的应用前景,本文通过FLUENT内的流体体积VOF模型来建立过冷流动沸腾下微通道内单汽泡生长模型,通过用户自定义函数UDF在汽液界面上添加质量源项和能量源项实现相变。研究结果表明,汽泡的上游接触角恒大于下游接触角,汽泡的大小随时间先呈幂函数增长,开始受限后则随时间线性增长。随着入口速度的降低、壁面过热度的提高与入口过冷度的降低,汽泡的生长速度均能加快,受限时间均可提前。 展开更多
关键词 微通道 过冷流动沸腾 汽泡 受限生长
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