Advanced Search

ISSN1001-3806 CN51-1125/TN Map

Volume 37 Issue 5
Jul.  2013
Article Contents
Turn off MathJax

Citation:

Spectroscopic diagnosis of air plasma induced by pulsed CO2 laser

  • In order to study the evolution of laser-induced plasma and obtain the properties of plasma, transversely excited atmospheric CO2 laser was focused by a parabolic reflector to generate air breakdown plasma. Based on the imaging spectrometer system and intensified CCD detector, time-space resolution of laser-induced air plasma were investigated and the time evolution spectra and the space resolution spectra of plasma were obtained. Electron temperature of about 4104K and electron density of 1018cm-3 were calculated respectively by using the ratio of oxygen line spectrum and continuous spectrum and full width at half maximum of spectral line. The results show high-energy laser-induced plasma spectra radiate the intense continuous spectra outward, comparing with low-energy laser-induced plasma spectra. At the same time, laser-induced air plasma expands outward rapidly with the way of the laser-supported detonation wave. Due to the shielding effect of laser power, laser-induced air plasma shows the behavior of spatial separation. The results are useful for understanding the interaction between plasma and high-energy laser.
  • 加载中
  • [1]

    KANTROWITZ A. Propulsion to orbit by ground-based lasers[J]. Astronaut Aeronaut,1972,9(3): 34-35.
    [2]

    HONG Y J,LI Q,FANG J,et al. Advances in study of laser plasma drag reduction technology[J]. Acta Aeronautica et Astronautica Sinica,2010,31(1): 93-101 (in Chinese).
    [3]

    XIE C L,LU J D,YAO S C,et al. Quantitative analysis and material identification by laser induced breakdown spectroscopy[J]. Laser Optoelectronics Progress,2009(11): 65-72 (in Chinese).
    [4]

    PIRRI A N,MONSLER M J,NEBOLSINE P E. Propulsion by absorption of laser radiation[J]. AIAA Journal,1974,12(9): 1254-1261.
    [5]

    SCHALL W O,BOHN W L,ECKEL H A,et al. Lightcraft experiments in Germany[J].Proceedings of SPIE,2000,4065: 472-481.
    [6]

    MEAD F B,MYRABO L N,MESSITT D G. Flight and ground tests of a laser-boosted vehicle[C]//Proceedings 34th AIAA/ASME/SAE/ASEE Joint Propulsion Conference.Cleveland, USA: AIAA,1998: 98-3735.
    [7]

    MYRABO L N. World record flights of beam-riding rocket lightcraft: demonstration of disruptive propulsion technology[C]//Proceedings 37th AIAA/ASME/SAE/ASEE Joint Propulsion Conference.Salt Lake City, USA: AIAA,2001: 01-3798.
    [8]

    ZHEN Y J,TAN R Q,ZHANG K H,et al. Experiment of laser-propulsion free-flight[J]. Chinese Journal of Lasers,2006,33(2): 171-174 (in Chinese).
    [9]

    JONES J E,WANG T S. Time dependent measurements of electron temperature and density in a laser lightcraft[C]//Proceedings 37th AIAA/ASME/SAE/ASEE Joint Propulsion Conference.Salt Lake City, USA: AIAA,2001: 01-3796.
    [10]

    WANG T S,CHEN Y S,LIU J,et al. Advanced performance modeling of experimental laser lightcraft[J]. Journal of Propulsion and Power,2002,18(6): 1129-1138.
    [11]

    GOLOVACHOV Y P,KURAKIN Y A,REZUNKOV Y A,et al. Numerical analysis of gasdynamic aspects of laser propulsion[J]. AIP Conference Proceedings,2003,664(1): 149-159.
    [12]

    HONG Y J,SONG J L,CUI C Y,et al. Numerical study of energy conversion process in air-breathing laser propulsion[J]. Applied Physics,2011,A105(1): 189-196.
    [13]

    AGUILERA J A,ARAGON C. Multi-element Saha-Boltzmann and Boltzmann plots in laser-induced plasmas[J]. Spectrochimica Acta,2007,B62(4): 378-385.
    [14]

    LI X Y,LIN Zh X,LIU Y Y,et al. Spectroscopic study on the behaviors of the laser-induced air plasma[J]. Acta Optica Sinica,2004,24(8): 1051-1056(in Chinese).
    [15]

    ZHANG B H,LIU W Q,CUI Zh F. Time and spatial evolution of the electron density in laser-induced Co plasmas[J]. Chinese Journal of Lasers,2008,35(10): 1485-1490 (in Chinese).
    [16]

    TANG J,ZUO D L,JIU Z X,et al. Spectral properties investigation of air plasma generated by pulsed CO2 laser[J]. IEEE Transactions on Plasma Science,2011,39(4): 1114-1119.
    [17]

    MENART J,HEBERLEIN J,PFENDER E. Line by line method of calculating emission coefficients for thermal plasmas consisting of monatomic species[J]. Journal of Quantitative Spectroscopy Radiative Transfer,1996,56(3): 377-398.
    [18]

    GRIEM H R. Plasma spectroscopy[M]. New York, USA: McGraw-Hill Book Company,1964: 88-91.
  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Article views(3525) PDF downloads(1060) Cited by()

Proportional views

Spectroscopic diagnosis of air plasma induced by pulsed CO2 laser

    Corresponding author: ZUO Du-luo, zuoduluo@mail.hust.edu.cn
  • 1. Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan 430074, China

Abstract: In order to study the evolution of laser-induced plasma and obtain the properties of plasma, transversely excited atmospheric CO2 laser was focused by a parabolic reflector to generate air breakdown plasma. Based on the imaging spectrometer system and intensified CCD detector, time-space resolution of laser-induced air plasma were investigated and the time evolution spectra and the space resolution spectra of plasma were obtained. Electron temperature of about 4104K and electron density of 1018cm-3 were calculated respectively by using the ratio of oxygen line spectrum and continuous spectrum and full width at half maximum of spectral line. The results show high-energy laser-induced plasma spectra radiate the intense continuous spectra outward, comparing with low-energy laser-induced plasma spectra. At the same time, laser-induced air plasma expands outward rapidly with the way of the laser-supported detonation wave. Due to the shielding effect of laser power, laser-induced air plasma shows the behavior of spatial separation. The results are useful for understanding the interaction between plasma and high-energy laser.

Reference (18)

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return