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

High-Sensitivity In-Situ Diagnosis of NO2 Production and Removal in DBD Using Cavity Ring-Down Spectroscopy

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Indexed by:期刊论文

Date of Publication:2014-02-01

Journal:PLASMA SCIENCE & TECHNOLOGY

Included Journals:SCIE、EI、Scopus

Volume:16

Issue:2

Page Number:142-148

ISSN No.:1009-0630

Key Words:DBD; CRDS; NO2 production; NO2 removal

Abstract:A highly-sensitive in-situ diagnosis approach for nitrogen dioxide (NO2) has been developed in dielectric barrier discharge (DBD) based on pulsed cavity ring-down spectroscopy (CRDS). Absorption bands of NO2 in a spectral region from 508 nm to 509 nm were used, and a detection limit of 17.5 ppb was achieved. At this level of sensitivity, the quantitative and real-time monitoring of the production and removal of NO2 are accomplished for the first time in the discharge region. By measuring the removal amount and rate at different NO2 initial number densities from 1.54 x 10(13) cm(-3) to 2.79 x 10(14) cm(-3), we determined the relationship between them and NO2 initial number densities. The removal amount linearly increases with the initial number density, while the removal rate increases logarithmically. At a lower initial number density, the removal rate is limited. By considering the chemical kinetic mechanism in plasma, a qualitative explanation for the above phenomena is proposed: the additional NO2 produced by discharge limits the removal rate, since the NO2 concentration is dominated by the competition between the forward reactions (production) and the reverse reactions (removal).

Pre One:Use of dual-pulse laser-induced breakdown spectroscopy for characterization of the laser cleaning of a first mirror exposed in HL-2A

Next One:Diagnosis of Electron, Vibrational and Rotational Temperatures in an Ar/N-2 Shock Plasma Jet Produced by a Low Pressure DC Cascade Arc Discharge

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。