High-Power Laser Measurement Device Based on Light Pressure Principle

被引:0
|
作者
Sun, Qing [1 ]
Ma, Chong [1 ]
Lin, Yandong [1 ]
Zhang, Yunpeng [1 ]
Xu, Tao [1 ]
机构
[1] Division of Optical Metrology, National Institute of Metrology, Beijing,100029, China
来源
关键词
High power lasers - Uncertainty analysis - Industrial research - Pressure effects - Calorimetry - Weighing - Electrostatics;
D O I
暂无
中图分类号
学科分类号
摘要
Objective: High-power lasers have important applications in industrial processing, military defense, scientific research, and other fields. With the development of laser technology in recent years, the output power level of lasers has been continuously improved. The accurate measurement of power is the basis of researches and applications of high-power lasers. Traditional high-power laser measurement mainly uses calorimetric methods. The device is large and heavy, and the surface of the absorption material is easily damaged by laser. Methods: Although the photon has no static mass, it has momentum. When the laser is irradiated on the surface of the object, pressure will be generated. Using the light pressure effect, the laser power can be traced directly to the micro-nano force or micro-mass. Figure 1 is the principle diagram of the measuring device, which adopts the structural design of three mirrors, and the transmission direction of the laser remains unchanged after three reflections. One of the mirrors is installed on the weighing module, and the weighing module is placed horizontally in the same manner as the mass calibration. Results and Discusions: Figure 2 shows the time response curve of the optical pressure measurement device. The laser emission time is set to 20 s, and the response time of the measurement device is only 3 s. A calorimetric laser power meter that has been accurately calibrated is placed behind the optical pressure measurement device for simultaneous measurement. The measurement results of the two methods are compared. The maximum relative deviation is less than 1%. Limited by the output power of the test light source, the upper limit of power measurement is only verified to 15 kW. In fact, the upper limit of power measurement of the device is only limited by the damage threshold of the laser mirror, so the upper limit of power measurement can reach 100 kW or even higher. Conclusions: Based on the principle of light pressure, a set of high-power laser measurement devices is established, and the power measurement uncertainty is better than 2% (confidence factor k is 2). The light pressure method is compared with the calorimetric method in the power range of 0.615 kW, and the maximum relative deviation is less than 1%. At the same time, the measurement device has the advantages of fast response speed, high measurement accuracy, and online measurement. © 2021, Chinese Lasers Press. All right reserved.
引用
收藏
相关论文
共 50 条
  • [21] High-power He-Cd+ white light laser
    Fuke, Akira
    Masuda, Katsuhiko
    Tokita, Yasuhiro
    Electronics and Communications in Japan, Part II: Electronics (English translation of Denshi Tsushin Gakkai Ronbunshi), 1988, 71 (09): : 19 - 27
  • [22] Verification and Analysis of Stray Light in High-power Laser System
    Huang Pingxian
    Cen Zhaofeng
    Li Xiaotong
    Jin Yuan
    OPTICAL METROLOGY AND INSPECTION FOR INDUSTRIAL APPLICATIONS III, 2014, 9276
  • [23] Anterior Segment Injury by a High-Power Handheld Blue Laser Device
    Al-Amry, Mohammad A.
    Alsulaiman, Sulaiman M.
    Ghazi, Nicola G.
    OCULAR IMMUNOLOGY AND INFLAMMATION, 2018, 26 (08) : 1174 - 1176
  • [24] Measurement of thermal effect in high-power laser irradiated liquid crystal device using digital holographic interferometry
    Teli Xi
    Jianglei Di
    Jiazhen Dou
    Ying Li
    Jianlin Zhao
    Applied Physics B, 2019, 125
  • [25] Measurement of thermal effect in high-power laser irradiated liquid crystal device using digital holographic interferometry
    Xi, Teli
    Di, Jianglei
    Dou, Jiazhen
    Li, Ying
    Zhao, Jianlin
    APPLIED PHYSICS B-LASERS AND OPTICS, 2019, 125 (06):
  • [26] DEVELOPMENT OF HIGH-POWER LASER BASED NUCLEAR APPLICATIONS
    Guenther, M. M.
    Schuetrumpf, J.
    Britz, A.
    Vogt, K.
    Sonnabend, K.
    Roth, M.
    FUSION SCIENCE AND TECHNOLOGY, 2012, 61 (1T) : 231 - 236
  • [27] A novel laser based high-power terahertz source
    Gopal, A.
    Singh, P.
    Herzer, S.
    Schmidt, A.
    Reinhard, A.
    Ziegler, W.
    Paulus, G. G.
    Dillner, U.
    May, T.
    Meyer, H-G.
    2013 38TH INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER, AND TERAHERTZ WAVES (IRMMW-THZ), 2013,
  • [28] LONGITUDINAL HIGH-POWER HIGH-NEON-PRESSURE COPPER VAPOR LASER
    SMILANSKI, I
    EREZ, G
    KERMAN, A
    LEVIN, LA
    TENENBAUM, J
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1978, 68 (05) : 713 - 714
  • [29] GaN-based high-power laser diodes
    Miyajima, T
    Yoshida, H
    Yanashima, K
    Yamaguchi, T
    Asatsuma, T
    Funato, K
    Hashimoto, S
    Nakajima, H
    Ozawa, M
    Kobayashi, T
    Tomiya, S
    Asano, T
    Uchida, S
    Kijima, S
    Tojyo, T
    Hino, T
    Ikeda, M
    MATERIALS SCIENCE AND ENGINEERING B-SOLID STATE MATERIALS FOR ADVANCED TECHNOLOGY, 2001, 82 (1-3): : 248 - 252
  • [30] Evolutionary target pose measurement in high power laser device
    Song, Wei
    Liu, Xu
    Zhang, Yanan
    Shen, Linyong
    Yi Qi Yi Biao Xue Bao/Chinese Journal of Scientific Instrument, 2015, 36 (01): : 215 - 223