Journal of Atmospheric and Environmental Optics, Volume. 20, Issue 2, 134(2025)
Design and preliminary application of weather phenomenon recognition system based on forward and backward light scattering principle
[1] Long D D. Preliminary Study on The Quantification of Weather Impact on Air Traffic[D](2016).
[2] Zhou K L, Huang J Z, Tao W et al. Quality analysis of automatic and manual observation data of precipitation weather phenomenon instrument[J]. Journal of Meteorological Research and Application, 43, 112-117(2022).
[3] Bachalo W D. Method for measuring the size and velocity of spheres by dual-beam light-scatter interferometry[J]. Applied Optics, 19, 363-370(1980).
[4] Ellis R A, Sandford A P, Jones G E et al. New laser technology to determine present weather parameters[J]. Measurement Science and Technology, 17, 1715-1722(2006).
[5] Löffler-Mang M, Joss J. An optical disdrometer for measuring size and velocity of hydrometeors[J]. Journal of Atmospheric and Oceanic Technology, 17, 130(2000).
[6] Lundberg A, Johansson R M. Optical precipitation gauge[J]. Hydrology Research, 25, 359-370(1994).
[7] Kruger A, Krajewski W F. Two-dimensional video disdrometer: A description[J]. Journal of Atmospheric and Oceanic Technology, 19, 602-617(2002).
[8] Earnshaw K B, Wang T I, Lawrence R S et al. A feasibility study of identifying weather by laser forward scattering[J]. Journal of Applied Meteorology, 17, 1476-1481(1978).
[9] Tjugum S A, Vaagen J S, Jakobsen T et al. Use of optical scatter sensors for measurement of visibility[J]. Journal of Environmental Monitoring, 7, 608-611(2005).
[10] Peng P, Li C W. Visibility measurements using two-angle forward scattering by liquid droplets[J]. Applied Optics, 55, 3903-3908(2016).
[11] Li C W, Peng P. Visibility measurement using multi-angle forward scattering by liquid droplets[J]. Measurement Science and Technology, 23, 105802(2012).
[12] Zhou X J[M]. Advanced Atmospheric Physics, 740-820(1991).
[13] Winstanley J V, Adams M J. Point visibility meter: A forward scatter instrument for the measurement of aerosol extinction coefficient[J]. Applied Optics, 14, 2151-2157(1975).
[14] Jia S J, Lu D R. Optimal forward-scattering angles of atmospheric aerosols in North China[J]. Atmospheric and Oceanic Science Letters, 7, 236-242(2014).
[15] Ren X C, Wang J A, Wu R H. The research of extinction coefficient measurement of 1064 nm wavelength by backscatter visibility measuring set[J]. Infrared Technology, 31, 32-34(2009).
[16] Wang M, Liu W Q, Lu Y H et al. Study on the measurement of the atmospheric extinction of fog and rain by forward-scattering near infrared spectroscopy[J]. Spectroscopy and Spectral Analysis, 28, 1776-1780(2008).
[17] Hutt D L, Bissonnette L R, Germain D S et al. Extinction of visible and infrared beams by falling snow[J]. Applied Optics, 31, 5121-5132(1992).
[18] Hutt D L, Oman J. Visible extinction measurements in rain and snow using a forward-scatter meter[C], 1487, 312-323(1991).
[21] Wang K. Research on the Light Scattering and Propagation Characteristic of Haze[D](2014).
[22] Cao W H, Liang X D, Li Q C. A study of the stageful characteristics and influencing factors of a long-lasting fog/haze event in Beijing[J]. Acta Meteorologica Sinica, 71, 940-951(2013).
[23] Marshall J S, Palmer W M. The distribution of raindrops with size[J]. Journal of the Atmospheric Sciences, 5, 165-166(1948).
Get Citation
Copy Citation Text
Zhiru WANG, Yin CHENG, Huaqiao GUI, Jiaoshi ZHANG, Ming YANG, Jianguo LIU. Design and preliminary application of weather phenomenon recognition system based on forward and backward light scattering principle[J]. Journal of Atmospheric and Environmental Optics, 2025, 20(2): 134
Category:
Received: Oct. 19, 2022
Accepted: --
Published Online: May. 30, 2025
The Author Email: Yin CHENG (chenyin@aiofm.ac.cn)