Lower troposphere refractivity bias in GPS occultation retrievals

被引:123
作者
Ao, CO
Meehan, TK
Hajj, GA
Mannucci, AJ
Beyerle, G
机构
[1] CALTECH, Jet Prop Lab, Pasadena, CA 91109 USA
[2] Geoforschungszentrum Potsdam, Div 1, D-14473 Potsdam, Germany
关键词
refractivity bias; GPS occultation; end-to-end simulation;
D O I
10.1029/2002JD003216
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
[1] Analysis of atmospheric occultation data from the GPS Meteorology experiment has revealed that the refractivity retrievals in the lower troposphere were systematically smaller than those obtained with numerical weather prediction models. It has been suggested that the bias was due to a combination of atmospheric multipath, critical refraction, and receiver tracking errors. In this paper, we show that a similar bias exists in the CHAMP and SAC-C data and describe the characteristics of the bias based on over 6700 soundings from October 2001. Retrievals obtained using the recently introduced canonical transform method are shown to markedly reduce the refractivity bias; however, a significant bias still remains below 2 km altitude. To better understand the underlying causes of the bias, we perform an end-to-end simulation study that incorporates full-wave signal propagation and realistic receiver tracking effects using an ensemble of atmospheric profiles. We find that atmospheric ducting effects associated with the top of the planetary boundary layer (PBL) at 1-2 km altitude would cause retrieval errors at and below the PBL even in the absence of the receiver errors. Furthermore, current implementation of the receiver tracking algorithm based on an enhanced version of the phase-locked loop could introduce additional errors under the low signal-to-noise ratio conditions that are often encountered in the lower troposphere. The latter problem is expected to be resolved in the near future through the adoption of open-loop tracking and the removal of the navigation modulation from the GPS signal.
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页数:16
相关论文
共 35 条
  • [11] GURVICH AS, 1990, SOV J REMOT SENS+, V7, P1124
  • [12] Haack T, 2001, J APPL METEOROL, V40, P673, DOI 10.1175/1520-0450(2001)040<0673:SMRCAC>2.0.CO
  • [13] 2
  • [14] A technical description of atmospheric sounding by GPS occultation
    Hajj, GA
    Kursinski, ER
    Romans, LJ
    Bertiger, WI
    Leroy, SS
    [J]. JOURNAL OF ATMOSPHERIC AND SOLAR-TERRESTRIAL PHYSICS, 2002, 64 (04) : 451 - 469
  • [15] Hall M. P. M., 1979, EFFECTS TROPOSPHERE
  • [16] Radio holographic principle for observing natural processes in the atmosphere and retrieving meteorological parameters from radio occultation data
    Igarashi, K
    Pavelyev, A
    Hocke, K
    Pavelyev, D
    Kucherjavenkov, IA
    Matyugov, S
    Zakharov, A
    Yakovlev, O
    [J]. EARTH PLANETS AND SPACE, 2000, 52 (11): : 893 - 899
  • [17] Observing Earth's atmosphere with radio occultation measurements using the Global Positioning System
    Kursinski, ER
    Hajj, GA
    Schofield, JT
    Linfield, RP
    Hardy, KR
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1997, 102 (D19) : 23429 - 23465
  • [18] A comparison of water vapor derived from GPS occultations and global weather analyses
    Kursinski, ER
    Hajj, GA
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D1): : 1113 - 1138
  • [19] Levy M.F., 2000, Parabolic equation methods for electromagnetic wave propagation, P40
  • [20] Marquardt C, 2003, FIRST CHAMP MISSION RESULTS FOR GRAVITY, MAGNETIC AND ATMOSPHERIC STUDIES, P384