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Comparative study of boron and neon injections on divertor heat fluxes using SOLPS-ITER simulations

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【作者】 彭磊孙震孙继忠Rajesh Maingi高放Xavier Bonnin常华溢汪炜康刘金远

【Author】 Lei Peng;Zhen Sun;Ji-Zhong Sun;Rajesh Maingi;Fang Gao;Xavier Bonnin;Hua-Yi Chang;Wei-Kang Wang;Jin-Yuan Liu;Key Laboratory of Materials Modification by Laser, Ion, and Electron Beams (Ministry of Education),Dalian University of Technology;Princeton Plasma Physics Laboratory;School of Computer and Communication Engineering, Dalian Jiaotong University;ITER Organization, Route de Vinon-sur-Verdon;

【通讯作者】 孙继忠;

【机构】 Key Laboratory of Materials Modification by Laser, Ion, and Electron Beams (Ministry of Education),Dalian University of TechnologyPrinceton Plasma Physics LaboratorySchool of Computer and Communication Engineering, Dalian Jiaotong UniversityITER Organization, Route de Vinon-sur-Verdon

【摘要】 Based on the EAST equilibrium,the effects of boron(B) and neon(Ne) injected at different locations on the target heat load,and the distributions of B and Ne particles were investigated by transport code SOLPS-ITER.It was found that the B injection was more sensitive to the injection location for heat flux control than impurity Ne.The high electron and ion densities near the inner target in the discharge with impurity B injected from over X-point(R1) led to plasma detachment only at the inner target,and the localized B ions in the cases with injection from outer target location(R2) and upstream location(R3) led to far-SOL detachment at the outer target,but not at the inner target.In contrast,for Ne,the spatial distributions of Ne ions and electrons were found to be similar in all the cases at the three injection locations,and the detached plasma was achieved at the inner target and the electron temperature was reduced at the outer target.For locations R2 and R3,impurity B showed a more pronounced effect on the heat flux at the far-SOL of the outer target.Further analysis indicated that Ne atoms came mainly from the recycling sources,whereas B atoms came mainly from injection,and that their distinct atomic distributions resulted from the difference in the ionization threshold and ionization mean free path.In addition,the radiation proportion of B in the divertor region was larger than that of Ne when the total radiation power was similar,which suggests that B has less influence on the core region.

【Abstract】 Based on the EAST equilibrium,the effects of boron(B) and neon(Ne) injected at different locations on the target heat load,and the distributions of B and Ne particles were investigated by transport code SOLPS-ITER.It was found that the B injection was more sensitive to the injection location for heat flux control than impurity Ne.The high electron and ion densities near the inner target in the discharge with impurity B injected from over X-point(R1) led to plasma detachment only at the inner target,and the localized B ions in the cases with injection from outer target location(R2) and upstream location(R3) led to far-SOL detachment at the outer target,but not at the inner target.In contrast,for Ne,the spatial distributions of Ne ions and electrons were found to be similar in all the cases at the three injection locations,and the detached plasma was achieved at the inner target and the electron temperature was reduced at the outer target.For locations R2 and R3,impurity B showed a more pronounced effect on the heat flux at the far-SOL of the outer target.Further analysis indicated that Ne atoms came mainly from the recycling sources,whereas B atoms came mainly from injection,and that their distinct atomic distributions resulted from the difference in the ionization threshold and ionization mean free path.In addition,the radiation proportion of B in the divertor region was larger than that of Ne when the total radiation power was similar,which suggests that B has less influence on the core region.

【关键词】 boronneoninjection locationheat flux
【Key words】 boronneoninjection locationheat flux
【基金】 Project supported by the National Key R&D Program of China (Grant No. 2019YFE03030004);the National Natural Science Foundation of China (Grant No. 12275040);the Users with Excellence Program of Hefei Science Center CAS(Grant No. 2020HSC-UE010);sponsored in part by the U.S. Department of Energy under contract DEAC02-09CH11466
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2024年11期
  • 【分类号】TL631.24
  • 【下载频次】2
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