Advanced Search
Yu Yanning, Wan Chongyi. Non-selfsustained longitudinal discharge CO2 laser with pulsed preionization[J]. LASER TECHNOLOGY, 2003, 27(1): 11-13.
Citation: Yu Yanning, Wan Chongyi. Non-selfsustained longitudinal discharge CO2 laser with pulsed preionization[J]. LASER TECHNOLOGY, 2003, 27(1): 11-13.

Non-selfsustained longitudinal discharge CO2 laser with pulsed preionization

More Information
  • Received Date: March 30, 2002
  • Published Date: January 24, 2003
  • A non-selfsustained longitudinal discharge CO2 laser with pulsed preionization was studied for the first time. A novel spiral transversely pulsed preionization scheme is employed. The main discharge and output power of the laser are controlled by applied preionization pulses. The laser can operate free of ballast resistor. The maximum electro-optical efficiency of 19% is obtained.
  • [1]
    Colley A D,Baker H J,Hall D R. A P L,1992,61(2): 136~138.
    [2]
    Generalov N A,Gorbulenko M I,Solov'yov N G et al.Gaslasers-recent developments and future prospects.Nether Lands:Kluwer Academic Publisher.1996:323~341.
    [3]
    Nath A K. Opt Engng,1994,33(6): 1889~1893.
    [4]
    Nagai H,Hishii M,Tanaka M et al.IEEE J Q E,1993,29(12): 2898~2908.
    [5]
    William L.Physical Review A,1970,2(5):1989~2000.
  • Related Articles

    [1]WANG Sheng, SHAO Sicheng, BI Shaoping, LIU Wenjun, WU Jun, YU Wenli. Study on microstructure and properties of laser cladding Fe-based alloy layer on TC4 surface[J]. LASER TECHNOLOGY, 2022, 46(5): 653-656. DOI: 10.7510/jgjs.issn.1001-3806.2022.05.012
    [2]ZHAO Xinxin, XIAO Huaqiang, YOU Chuanchuan, FENG Jinyu, XIAO Yi. Process and microstructure properties of laser cladding TiAl alloy coating on TC4 surface[J]. LASER TECHNOLOGY, 2021, 45(6): 697-702. DOI: 10.7510/jgjs.issn.1001-3806.2021.06.004
    [3]YOU Chuanchuan, XIAO Huaqiang, REN Lirong, ZHAO Xinxin. Microstructure and properties of laser cladding Ti-Al-N composite coating on TC4 surface[J]. LASER TECHNOLOGY, 2021, 45(5): 585-589. DOI: 10.7510/jgjs.issn.1001-3806.2021.05.008
    [4]XIN Xiucheng, HUANG Genzhe, ZHANG Jinjie, ZHANG Hong, WANG Jingang. Microstructure and mechanical properties of composite welded joints of high nitrogen steel[J]. LASER TECHNOLOGY, 2018, 42(4): 476-481. DOI: 10.7510/jgjs.issn.1001-3806.2018.04.009
    [5]ZUO Hui, ZHANG Kai, CAO Xu, YE Yunxia. Research of microstructure and residual stress of copper foils processed by laser shock forming[J]. LASER TECHNOLOGY, 2018, 42(1): 94-99. DOI: 10.7510/jgjs.issn.1001-3806.2018.01.018
    [6]ZHANG Mingyang, ZHU Ying, GUO Wei, HUANG Shuai, HOU Guo. Effects of laser shock processing on fatigue properties of TC17 titanium alloy[J]. LASER TECHNOLOGY, 2017, 41(2): 231-234. DOI: 10.7510/jgjs.issn.1001-3806.2017.02.017
    [7]WU An-qi, LIU Qi-bin, SUN Gui-xiang, QIN Shui-jie. Effect of Y2O3 on microstructure and property of laser surface alloying on 40Cr steel[J]. LASER TECHNOLOGY, 2011, 35(1): 4-6,93. DOI: 10.3969/j.issn.1001-3806.2011.01.002
    [8]YUE Yun, ZHANG Zhan-ling, ZHANG Ke-ke, MA Ning, SHI Hong-xin. Microstructure and property of 1.6%C ultrahigh carbon steel after laser surface treating[J]. LASER TECHNOLOGY, 2010, 34(4): 514-516. DOI: 10.3969/j.issn.1001-3806.2010.04.022
    [9]XU Ren-jun, ZHANG Yong-kang, CHEN Ju-fang. Microstructure change of AZ91 magnesium alloy surface melted by laser[J]. LASER TECHNOLOGY, 2008, 32(5): 487-489.
    [10]SHAN Ji-guo, REN Jia-lie, DING Jian-chun, ZHAO Nan-nan. Microstructure and wear resistance of Cr powder alloying layers on cast iron[J]. LASER TECHNOLOGY, 2004, 28(1): 1-4.

Catalog

    Article views (1) PDF downloads (12) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return