Experimental study on thermal characteristics of positive leader discharges using Mach-Zehnder interferometry

被引:18
|
作者
Zhou, X. [1 ]
Zeng, R. [1 ]
Zhuang, C. [1 ]
Chen, S. [1 ]
机构
[1] Tsinghua Univ, Dept Elect Engn, Beijing 100084, Peoples R China
基金
中国国家自然科学基金;
关键词
ATMOSPHERIC-PRESSURE; AIR; TEMPERATURE; SCHLIEREN; CHANNEL; PLASMA; GAP; PROPAGATION; DIAGNOSTICS;
D O I
10.1063/1.4922660
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Leader discharge is one of the main phases in long air gap breakdown, which is characterized by high temperature and high conductivity. It is of great importance to determine thermal characteristics of leader discharges. In this paper, a long-optical-path Mach-Zehnder interferometer was set up to measure the thermal parameters (thermal diameter, gas density, and gas temperature) of positive leader discharges in atmospheric air. IEC standard positive switching impulse voltages were applied to a near-one-meter point-plane air gap. Filamentary channels with high gas temperature and low density corresponding to leader discharges were observed as significant distortions in the interference fringe images. Typical diameters of the entire heated channel range from 1.5mm to 3.5mm with an average expansion velocity of 6.7 m/s. In contrast, typical diameters of the intensely heated region with a sharp gas density reduction range from 0.4mm to 1.1 mm, about one third of the entire heated channel. The radial distribution of the gas density is calculated from the fringe displacements by performing an Abel inverse transform. The typical calculated gas density reduction in the center of a propagating leader channel is 80% to 90%, corresponding to a gas temperature of 1500K to 3000K based on the ideal gas law. Leaders tend to terminate if the central temperature is below 1500 K. (C) 2015 AIP Publishing LLC.
引用
收藏
页数:5
相关论文
共 50 条
  • [41] MACH-ZEHNDER INTERFEROMETRY AT FRAMING RATES OF 10.5-21 GHZ
    HOUTMAN, H
    LEGAULT, LE
    MEYER, J
    [J]. APPLIED OPTICS, 1987, 26 (06): : 1106 - 1111
  • [42] Measurement of the density of CO2 solution by Mach-Zehnder interferometry
    Song, YC
    Nishio, M
    Chen, BX
    Someya, S
    Uchida, T
    Akai, M
    [J]. VISUALIZATION AND IMAGING IN TRANSPORT PHENOMENA, 2002, 972 : 206 - 212
  • [43] Improvement of Mach-Zehnder Interferometry Base on Multi-CCD Detecting
    Hu Youwen
    Tian Fengchun
    Zhang Wenli
    Song An
    [J]. JOURNAL OF NANOELECTRONICS AND OPTOELECTRONICS, 2019, 14 (06) : 877 - 886
  • [44] Thermal effect of the microwave Mach-Zehnder interferometric switch
    Zhang, Yu
    Liu, Kun
    Fang, Fang
    Liu, Nianfeng
    Li, Tianchu
    [J]. 2014 IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM (FCS), 2014, : 370 - 372
  • [45] EXPERIMENTAL DEMONSTRATION OF SPECTRAL MODIFICATION IN A MACH-ZEHNDER INTERFEROMETER
    RAO, DN
    KUMAR, VN
    [J]. JOURNAL OF MODERN OPTICS, 1994, 41 (09) : 1757 - 1763
  • [46] Characterisation of heat dissipation from PCM based heat sink using Mach-Zehnder Interferometry
    Joseph, Mathew
    Antony, Vibin
    Sajith, V
    [J]. HEAT AND MASS TRANSFER, 2022, 58 (01) : 171 - 193
  • [47] Torsion sensor using a Mach-Zehnder interferometer
    Toral-Acosta, D.
    Sierra Hernandez, J. M.
    Jauregui-Vazquez, D.
    Castillo-Guzman, A.
    Rojas-Laguna, R.
    Estudillo-Ayala, J. M.
    Selvas-Aguilar, R.
    [J]. PHOTONIC FIBER AND CRYSTAL DEVICES: ADVANCES IN MATERIALS AND INNOVATIONS IN DEVICE APPLICATIONS VII, 2013, 8847
  • [48] Switching characteristics of generalized Mach-Zehnder optical switches
    Cahill, LW
    [J]. Optoelectronic Integrated Circuits VII, 2005, 5729 : 241 - 248
  • [49] Monitoring of OSNR by using a Mach-Zehnder interferometer
    Tao, ZN
    Chen, ZY
    Fu, LB
    Wu, DM
    Xu, AS
    [J]. MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2001, 30 (01) : 63 - 65
  • [50] HOLOGRAPHIC SPECTROSCOPY USING A MACH-ZEHNDER INTERFEROMETER
    YOSHIHARA, K
    NAKASHIMA, K
    HIGUCHI, M
    [J]. JAPANESE JOURNAL OF APPLIED PHYSICS, 1976, 15 (06) : 1169 - 1170