Estimates of Faraday rotation with passive microwave polarimetry for microwave remote sensing of earth surfaces

被引:94
|
作者
Yueh, SH [1 ]
机构
[1] CALTECH, Jet Prop Lab, Pasadena, CA 91109 USA
来源
关键词
D O I
10.1109/36.868900
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A technique based on microwave passive polarimetry for the estimates of ionospheric Faraday rotation for microwave remote sensing of Earth surfaces is described. Under the assumption of azimuth symmetry for the surfaces under investigation, it is possible to estimate the ionospheric Faraday rotation from the third Stokes parameter of microwave radiation. An error analysis shows that the Faraday rotation can be estimated with an accuracy of better than 10 with a space-based L-Band system, and the residual correction errors of linearly polarized brightness temperatures can be less than 0.1 K. it is suggested that the estimated Faraday rotation angle can be further utilized to derive the ionospheric total electron content (TEC) with an accuracy of about 1 TECU = 10(16) electrons-m(-2), which will yield 1 mm accuracy for the estimate of an ionospheric differential delay at Ku-band. Therefore, this technique can potentially provide accurate estimates of ionospheric Faraday rotation, TEC, and differential path delay far applications including microwave radiometry and scatterometry of ocean salinity and soil moisture as well as satellite altimetry of sea surface height. A conceptual design applicable to real aperture and aperture synthesis radiometers is described for the measurements of the third Stokes parameter.
引用
收藏
页码:2434 / 2438
页数:5
相关论文
共 50 条
  • [41] Use of passive microwave remote sensing to monitor soil moisture
    Wigneron, JP
    Schmugge, T
    Chanzy, A
    Calvet, JC
    Kerr, Y
    [J]. AGRONOMIE, 1998, 18 (01): : 27 - 43
  • [42] An Effective Emission Depth Model for Passive Microwave Remote Sensing
    Zhou, Fang-Cheng
    Song, Xiaoning
    Leng, Pei
    Li, Zhao-Liang
    [J]. IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, 2016, 9 (04) : 1752 - 1760
  • [43] Atmospheric Influences Analysis on the Satellite Passive Microwave Remote Sensing
    Qiu Yu-bao
    Shi Li-juan
    Shi Jian-cheng
    Zhao Shao-jie
    [J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2016, 36 (02) : 310 - 315
  • [44] THEORY AND EXPERIMENT FOR PASSIVE MICROWAVE REMOTE-SENSING OF SNOWPACKS
    KONG, JA
    SHIN, R
    SHIUE, JC
    TSANG, L
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH, 1979, 84 (NB10): : 5669 - 5673
  • [45] PASSIVE MICROWAVE REMOTE-SENSING CONTRIBUTION TO HYDROLOGICAL VARIABLES
    CHOUDHURY, BJ
    [J]. SURVEYS IN GEOPHYSICS, 1991, 12 (1-3) : 63 - 84
  • [46] Evaluation of snow parameters using passive microwave remote sensing
    Singh, K. K.
    Mishra, V. D.
    Negi, H. S.
    [J]. DEFENCE SCIENCE JOURNAL, 2007, 57 (02) : 271 - 278
  • [47] Passive microwave remote sensing of snow constrained by hydrological simulations
    Chen, CT
    Nijssen, B
    Guo, JJ
    Tsang, L
    Wood, AW
    Hwang, JN
    Lettenmaier, DP
    [J]. IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2001, 39 (08): : 1744 - 1756
  • [48] A polarized microwave radiative transfer model for passive remote sensing
    Deiveegan, M.
    Balaji, C.
    Venkateshan, S. P.
    [J]. ATMOSPHERIC RESEARCH, 2008, 88 (3-4) : 277 - 293
  • [49] Atmospheric influences and its correction in passive microwave remote sensing
    Wang Yong-Qian
    Feng Wen-Lan
    Shi Jian-Cheng
    Qiu Yu-Bao
    Liu Zhi-Hong
    [J]. JOURNAL OF INFRARED AND MILLIMETER WAVES, 2014, 33 (02) : 192 - 199
  • [50] PASSIVE MICROWAVE REMOTE-SENSING IN METEOROLOGY AND ATMOSPHERIC PHYSICS
    KUNZI, KF
    [J]. JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 1984, 32 (5-6): : 435 - 438