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吴兴伟
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工程师

性别: 女

毕业院校: 大连理工大学

学位: 博士

所在单位: 物理学院

学科: 等离子体物理

办公地点: 综合教学一号楼305室

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Study of the effective inverse photon efficiency using optical emission spectroscopy combined with cavity ring-down spectroscopy approach

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论文类型: 期刊论文

发表时间: 2015-09-01

发表刊物: 12th Russia/CIS/Baltic/Japan Symposium on Ferroelectricity (RCBJSF) and 9th International Conference on Functional Materials and Nanotechnologies (FM&NT)

收录刊物: SCIE、EI、CPCI-S、Scopus

卷号: 90

期号: 9

ISSN号: 0031-8949

关键字: inverse photon efficiency; optical emission spectroscopy; cavity ring-down spectroscopy

摘要: 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.

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