吴兴伟
Engineer
Gender:Female
Alma Mater:大连理工大学
Degree:Doctoral Degree
School/Department:物理学院
Discipline:Plasma physics
Business Address:综合教学一号楼305室
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Indexed by:期刊论文
Date of Publication:2015-09-01
Journal:12th Russia/CIS/Baltic/Japan Symposium on Ferroelectricity (RCBJSF) and 9th International Conference on Functional Materials and Nanotechnologies (FM&NT)
Included Journals:SCIE、EI、CPCI-S、Scopus
Volume:90
Issue:9
ISSN No.:0031-8949
Key Words:inverse photon efficiency; optical emission spectroscopy; cavity ring-down spectroscopy
Abstract:The hydrocarbon impurities formation is inevitable due to wall erosion in a long pulse high performance scenario with carbon-based plasma facing materials in fusion devices. The standard procedure to determine the chemical erosion yield in situ is by means of inverse photon efficiency D/XB. In this work, the conversion factor between CH4 flux and photon flux of CH A -> X transition (effective inverse photon efficiency PE-1) was measured directly using a cascaded arc plasma simulator with argon/methane. This study shows that the measured PE-1 is different from the calculated D/XB. We compared the photon flux measured by optical emission spectroscopy (OES) and calculated by electron impact excitation of CH(X) which was diagnosed by cavity ring-down spectroscopy (CRDS). It seems that charge exchange and dissociative recombination processes are the main channels of CH(A) production and removal which lead to the inconsistency of PE-1 and D/XB at lower temperature. Meanwhile, the fraction of excited CH(A) produced by dissociative recombination processes was investigated, and we found it increased with T-e in the range from 4% to 13% at T-e < 1 eV. Our work suggests that the CH spectroscopy should be reinterpreted and the conversion factor should have a new definition instead of D/XB since the electron impact excitation is not the only channel of CH(A) production. These results have an effect on evaluating the yield of chemical erosion in divertor of fusion device.
主要从事激光光谱学诊断低温等离子体痕量物种方面的科学研究工作。侧重于将光腔衰荡光谱技术(CRDS)应用于等离子体痕量物种检测,测量其在不同条件下的绝对数密度。
现就职于基础物理实验教学中心,主要参与大学物理实验教学、物理实验竞赛指导等工作。