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


Paper Publications

Measurement of electron density and electron temperature of a cascaded arc plasma using laser Thomson scattering compared to an optical emission spectroscopic approach

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Indexed by:期刊论文

Date of Publication:2017-11-01

Journal:PLASMA SCIENCE & TECHNOLOGY

Included Journals:Scopus、SCIE、EI

Volume:19

Issue:11

ISSN No.:1009-0630

Key Words:laser Thomson scattering; optical emission spectroscopy; cascaded arc plasma; electron density; electron temperature; electron excitation temperature

Abstract:As advanced linear plasma sources, cascaded arc plasma devices have been used to generate steady plasma with high electron density, high particle flux and low electron temperature. To measure electron density and electron temperature of the plasma device accurately, a laser Thomson scattering (LTS) system, which is generally recognized as the most precise plasma diagnostic method, has been established in our lab in Dalian University of Technology. The electron density has been measured successfully in the region of 4.5 x 10(19) m(-3) to 7.1 x 10(20) m(-3) and electron temperature in the region of 0.18 eV to 0.58 eV. For comparison, an optical emission spectroscopy (OES) system was established as well. The results showed that the electron excitation temperature (configuration temperature) measured by OES is significantly higher than the electron temperature (kinetic electron temperature) measured by LTS by up to 40% in the given discharge conditions. The results indicate that the cascaded arc plasma is recombining plasma and it is not in local thermodynamic equilibrium (LTE). This leads to significant error using OES when characterizing the electron temperature in a non- LTE plasma.

Pre One:超低气压双脉冲激光诱导击穿光谱实验平台开发

Next One:Time-resolved measurements of NO2 concentration in pulsed discharges by high-sensitivity cavity ring-down spectroscopy

Profile

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。