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物理学

强磁场下液态金属微槽道流动与换热实验研究

  • 雷天扬 ,
  • 孟旭 ,
  • 王增辉 ,
  • 倪明玖
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  • 中国科学院大学工程科学学院, 北京 100049

收稿日期: 2019-10-28

  修回日期: 2019-12-31

  网络出版日期: 2021-07-10

基金资助

国家自然科学基金(51876201)和中国科学院大学优秀青年教师科研能力提升项目资助

Experimental study of flow pattern and heat transfer of liquid metal in microchannel under the magnetic field

  • LEI Tianyang ,
  • MENG Xu ,
  • WANG Zenghui ,
  • NI Mingjiu
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  • College of Engineering, University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2019-10-28

  Revised date: 2019-12-31

  Online published: 2021-07-10

摘要

聚变堆面向等离子体第一壁需要承受高强度的中子辐照和表面热负荷,普通材料难以满足要求,采用流动的液态金属作为面向等离子体第一壁是一种有效的解决途径。液态金属作为第一壁的关键前提是需要解决其在壁面均匀铺展的问题,以及需要研究在外加磁场条件下液态金属与壁面的换热特性,已有研究表明微槽道表面结构有助于液态金属的铺展。本文以液态金属镓铟锡合金为工质,通过实验研究在外加均匀磁场条件下,液态金属在微槽道中的流动与换热特性以及无磁场条件下液态金属在微槽道中的流动与换热特性,并对比两种不同工况下实验结果的差别,研究磁场对液态金属在微槽道中流动与换热的影响。

本文引用格式

雷天扬 , 孟旭 , 王增辉 , 倪明玖 . 强磁场下液态金属微槽道流动与换热实验研究[J]. 中国科学院大学学报, 2021 , 38(4) : 459 -466 . DOI: 10.7523/j.issn.2095-6134.2021.04.004

Abstract

The first wall of facing plasma of fusion reactor needs to bear high-intensity neutron irradiation and heat load, so it is difficult for ordinary materials to meet the requirements. It is an effective way to use the liquid metal as the first wall of facing plasma. Taking liquid metal as the first wall, it is necessary to solve the problem that how to evenly spread the liquid metal on the wall and study the heat transfer characteristics between liquid metal and the wall under a perpendicular magnetic field. Previous studies have shown that the structure of microchannel surface contributes to the even spreading of liquid metal. In this paper, liquid metal alloy GaInSn works as the working fluid. The flow pattern and heat transfer characteristics of the liquid metal in microchannel plate under the condition of uniform magnetic field and no magnetic field are studied experimentally. The influence of a perpendicular magnetic field on the flow pattern and heat transfer of liquid metal in a microchannel is studied by comparing the experimental results of two different working conditions.

参考文献

[1] 张一鸣,曾丽萍,沈欣媛,等. ITER计划与聚变能发展战略[J]. 核聚变与等离子体物理,2013,33(4):359-365.
[2] Narula M, Ying A, Abdou M A. A study of liquid metal film flow, under fusion relevant magnetic fields[J]. Fusion Science and Technology, 2005, 47(3):564-568.
[3] Priest E, Forbes T. Magnetic reconnection:MHD theory and applications[M]. Cambridge:Cambridge University Press, 2000:1-15.
[4] 齐天煜,阳倦成,倪明玖. 展向磁场作用下液态金属GaInSn多层膜流实验研究[J]. 中国科学院大学学报,2019,36(3):320-325.
[5] Xu W, Curreli D, Andruczyk D, et al. Heat transfer of TEMHD driven lithium flow in stainless steel trenches[J]. Journal of Nuclear Materials, 2013, 438:S422-S425.
[6] Fiflis P, Morgan T W, Brons S, et al. Performance of the lithium metal infused trenches in the magnum PSI linear plasma simulator[J]. Nuclear Fusion, 2015, 55(11):113004.
[7] Ruzic D N, Xu W, Andruczyk D, et al. Lithium-metal infused trenches (LiMIT) for heat removal in fusion devices[J]. Nuclear Fusion, 2011, 51(10):102002.
[8] Xu W, Fiflis P, Szott M, et al. Vertical flow in the thermoelectric liquid metal plasma facing structures (TELS) facility at Illinois[J]. Journal of Nuclear Materials, 2015,463:1181-1185.
[9] Xu W, Surla V, Jaworski M A, et al. Investigation of the heat transfer in TEMHD driven swirling lithium flow[J]. Journal of Nuclear Materials, 2011,415(Sup):S981-S984.
[10] Ren J, Hu J S, Zuo G Z, et al. First results of flowing liquid lithium limiter in HT-7[J]. Physica Scripta, 2014,T159:014033.
[11] Kaita R, Majeski R, Gray T, et al. Low recycling and high power density handling physics in the Current Drive Experiment-Upgrade with lithium plasma-facing components[J]. Physics of Plasmas, 2007, 14(5):056111.
[12] Hu J S, Zuo G Z, Ren J, et al. First results of the use of a continuously flowing lithium limiter in high performance discharges in the EAST device[J]. Nuclear Fusion, 2016, 56(4):046011.
[13] Zuo G Z, Hu J S, Maingi R, et al. Results from an improved flowing liquid lithium limiter with increased flow uniformity in high power plasmas in EAST[J]. Nuclear Fusion, 2019, 59(1):016009.
[14] 倪明玖,阳倦成,任东伟,等. 聚变堆相关的液态金属膜流初步实验研究[J].力学学报,2018,50(6):1379-1386.
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