发光学报, 2018, 39 (4): 547, 网络出版: 2018-05-07   

三种电极的大气压氩等离子体射流光学特性

Optical Property of The Atmospheric Pressure Argon Plasma Jet Generated by Three Types of Electrodes
作者单位
华北电力大学 数理学院, 河北 保定071003
引用该论文

唐蕾, 王永杰, 袁春琪, 尹增谦. 三种电极的大气压氩等离子体射流光学特性[J]. 发光学报, 2018, 39(4): 547.

TANG Lei, WANG Yong-jie, YUAN Chun-qi, YIN Zeng-qian. Optical Property of The Atmospheric Pressure Argon Plasma Jet Generated by Three Types of Electrodes[J]. Chinese Journal of Luminescence, 2018, 39(4): 547.

参考文献

[1] KONG M G, KROESEN G, MORFILL G E, et al.. Plasma medicine: an introductory review [J]. New J. Phys., 2009, 11(11):1-35.

[2] PARK G Y, PARK S J, CHOI M Y, et al.. Atmospheric-pressure plasma sources for biomedical applications [J]. Plasma Sources Sci. Technol., 2012, 21(4):043001.

[3] LAROUSSI M, LU X. Room-temperature atmospheric pressure plasma plume for biomedical applications [J]. Appl. Phys. Lett., 2005, 87(11):113902.

[4] 刘文正, 严伟, 郝宇翀. 大气压射流等离子体放电特性及其灭菌效果 [J]. 强激光与粒子束, 2010, 22(12):002984-2988.

    LIU W Z, YAN W, HAO Y C. Discharge characteristics of plasma jet at atmospheric pressure and its sterilization efficacy [J]. High Power Laser and Particle Beams, 2010, 22(12):002984-2988. (in Chinese)

[5] GHERARDI N, MARTIN S, MASSINES F. A new approach to SiO2 deposit using a N2-SiH4-N2O glow dielectric barrier-controlled discharge at atmospheric pressure [J]. J. Phys. D: Appl. Phys., 2000, 33(19):L104.

[6] MARIOTTI D, SANKARAN R M. Microplasmas for nanomaterials synthesis [J]. J. Phys. D: Appl. Phys., 2010, 43(43):241-323001.

[7] REUTER S, WINTER J, SCHMIDT-BLEKER A, et al.. Controlling the ambient air affected reactive species composition in the effluent of an argon plasma jet [J]. IEEE Trans. Plasma Sci., 2012, 40(11):2788-2794.

[8] YONG C H, HAN S U. Air plasma jet with hollow electrodes at atmospheric pressure [J]. Phys. Plasmas, 2007, 14(5):013903.

[9] BRUGGEMAN P, LEYS C. Non-thermal plasmas in and in contact with liquids [J]. J. Phys. D: Appl. Phys., 2009, 42(5):053001.

[10] SANDS B L, GANGULY B N, TACHIBANA K. A streamer-like atmospheric pressure plasma jet (postprint) [J]. Appl. Phys. Lett., 2008, 92(15):151503-1-3.

[11] 牛铮, 邵涛, 章程, 等. 空气中纳秒脉冲均匀DBD增加聚合物的表面亲水性 [J]. 高电压技术, 2011, 37(6):1536-1541.

    NIU Z, SH H, ZHANG C, et al.. Hydrophilic improvement of polymers treated homogeneous nanosecond pulse dielectric barrier discharge in atmospheric air [J]. High Volt. Eng., 2011, 37(6):1536-1541. (in Chinese)

[12] MERICAMBOURDET N, LAROUSSI M, BEGUM A, et al.. Experimental investigations of plasma bullets [J]. J. Phys. D: Appl. Phys., 2009, 42(5):055207.

[13] 鲜于斌, 卢新培. 离子体射流的推进机理 [J]. 高电压技术, 2012, 38(7):136-145.

    XIAN Y B, LU X P. Propagation of atmospheric pressure cold plasma jet [J]. High Volt. Eng., 2012, 38(7):136-145. (in Chinese)

[14] ZHANG C, SHAO T, WANG R, et al.. A comparison between characteristics of atmospheric-pressure plasma jets sustained by nanosecond- and microsecond-pulse generators in helium [J]. Phys. Plasmas, 2014, 21(10):123.

[15] HAO Z Y, JI S C, LIU H, et al.. Effect of the grounded electrode on cold ar atmospheric pressure plasma jet generated with a simple DBD configuration [J]. IEEE Trans. Plasma Sci., 2014, 42(3):824-832.

[16] 张冠军, 詹江杨, 邵先军, 等. 大气压氩气等离子体射流长度的影响因素 [J]. 高电压技术, 2011, 37(6):1432-1438.

    ZHANG G J, ZHAN J Y, SHAO X J, et al.. Influence factor analysis jet length atmospheric pressure argon plasma jets [J]. High Volt. Eng., 2011, 37(6):1432-1438. (in Chinese)

[17] 李雪辰, 张盼盼, 李亚茹, 等. 三种波形激励的大气压等离子体射流的比较研究 [J]. 中国科学:物理学 力学 天文学, 2016, 46(8):085211.

    LI X C, ZHANG P P, LI Y R, et al.. Comparative investigation on the atmospheric pressure plasma jet excited by three types of waveforms [J]. Sci. China Phys., Mechan. Astronom., 2016, 46(8):085211. (in Chinese)

[18] 侯世英, 罗书豪, 刘坤, 等. 双环电极大气压氦气等离子体射流的特性及其影响因素 [J]. 高电压技术, 2013, 39(7):1569-1576.

    HOU S Y, LUO S H, LIU K, et al.. Characteristics and their influencing factors of double wrapped electrode induced atmospheric pressure helium plasma jet [J]. High Volt. Eng., 2013, 39(7):1569-1576. (in Chinese)

[19] 吴蓉, 李燕, 朱顺官, 等. 等离子体电子温度的发射光谱法诊断 [J]. 光谱学与光谱分析, 2008, 28(4):731-735.

    WU R, LI Y, ZHU S G, et al.. Emission spectroscopy diagnostics of plasma electron temperature [J]. Spectrosc. Spect. Anal., 2008, 28(4):731-735. (in Chinese)

[20] LI X C, DI C, JIA P, et al.. Characteristics of a direct current-driven plasma jet operated in open air [J]. Appl. Phys. Lett., 2013, 103(14):034005.

[21] LI X C, DI C, JIA P, et al.. Characteristics of an atmospheric-pressure argon plasma jet excited by a DC voltage [J]. Plasma Sources Sci. Technol., 2013, 22(4):045007.

[22] DONG L, RAN J, MAO Z. Direct measurement of electron density in microdischarge at atmospheric pressure by Stark broadening [J]. Appl. Phys. Lett., 2005, 86(16):1400.

[23] DONG L, QI Y, ZHAO Z, et al.. Electron density of an individual microdischarge channel in patterns in a dielectric barrier discharge at atmospheric pressure [J].Plasma Sources Sci. Technol., 2008, 17(1):015015.

[24] 陆同兴, 赵献章. 用发射光谱测量激光等离子体的电子温度与电子密度 [J]. 原子与分子物理学报, 1994, 11(2):120-128.

    LU T X, ZHAO X Z. The determination of the electron temperature and electron density of laser plasma from the emission spectra [J]. J. Atom. Mol. Phys., 1994, 11(2):120-128. (in Chinese)

[25] LI X C, LI J, CHU J, et al.. A linear-field plasma jet for generating a brush-shaped laminar plume at atmospheric pressure [J]. Phys. Plasmas, 2016, 23(6):1-84.

[26] LI X C, ZHANG P P, JIA P Y, et al.. Dynamics of atmospheric pressure plasma plumes in the downstream and upstream regions [J]. Plasma Proc. Polym., 2016, 13(4):480-487.

唐蕾, 王永杰, 袁春琪, 尹增谦. 三种电极的大气压氩等离子体射流光学特性[J]. 发光学报, 2018, 39(4): 547. TANG Lei, WANG Yong-jie, YUAN Chun-qi, YIN Zeng-qian. Optical Property of The Atmospheric Pressure Argon Plasma Jet Generated by Three Types of Electrodes[J]. Chinese Journal of Luminescence, 2018, 39(4): 547.

本文已被 3 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!