首页> 外文会议>ISPRS Technical Commission VIII Mid-Term Symposium >ESTIMATING THE ATMOSPHERIC PHASE DELAY FOR QUANTIFYING COSEISMIC DEFORMATION USING REPEAT PASS DIFFERENTIAL SAR INTERFEROMETRY: OBSERVATIONS FROM 20th APRIL 2013 LUSHAN (CHINA) EARTHQUAKE
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ESTIMATING THE ATMOSPHERIC PHASE DELAY FOR QUANTIFYING COSEISMIC DEFORMATION USING REPEAT PASS DIFFERENTIAL SAR INTERFEROMETRY: OBSERVATIONS FROM 20th APRIL 2013 LUSHAN (CHINA) EARTHQUAKE

机译:使用重复通行差分SAR干扰测量来估计量化电影变形的大气相延迟:2013年4月20日庐山(中国)地震的观察

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Atmospheric phase contribution significantly influences co-seismic surface deformation estimates from repeat pass Differential Synthetic Aperture Radar Interferometry (DInSAR). Present study investigates the contribution of the atmosphere in co-seismic deformation estimation associated with the 20th April 2013 Lushan (China) earthquake. The Lushan Earthquake occurred in the south-western segment of the Longmenshan fault zone, on the eastern margin of the Qinghai-Tibetan Plateau. Using pre- and postearthquake Radarsat-2 interferometric pair, the co-seismic deformation of the Lushan earthquake has been estimated. The tropospheric phase delay component has been estimated using tropospheric models in conjunction with surface temperature and pressure data from MODIS atmospheric products. The ionospheric phase component has been computed using the Total Electron Content (TEC) data. The net atmospheric path addition in the study area varies from 3.022 m to 4.621 m for the pre-earthquake SAR acquisition and from 2.687 m to 4.199 m for the post-event data acquisition. Comparison of the Line of Sight (LOS) displacement values computed using un-corrected and corrected interferometric data shows that the atmospheric phase component has introduced considerable contribution in the LOS displacement values. The uncorrected LOS displacement values vary from 0.902 m to -0.157 m where as those from the phase-corrected interferometric data are in the range of 0.052 m and -0.062 m. The corrected LOS displacement values show close agreement to a few GPS based co-seismic surface deformation components from published literature. Thus removal of atmospheric phase contribution is a necessary step in using repeat pass DInSAR for co-seismic surface deformation estimation.
机译:大气相位贡献显著影响由重复通微分合成孔径雷达干涉(DInSAR技术)同震表面变形的估计。本研究调查的气氛与2013年4月20日庐山(中国)地震相关的同震形变估计的贡献。庐山地震发生在龙门山断裂带的西南段,在青藏高原东缘。使用前和震后RADARSAT-2干涉对,鹿山地震的共震形变已被估计。对流层的相位延迟分量已经结合表面温度和从MODIS大气压力的产品数据结合使用对流层模型估计。电离层相分量已被使用总电子含量(TEC)数据计算。净大气路径除了在研究领域而异,从3.022米到4.621米为预地震SAR采集和2.687米到4.199米为后事件的数据采集。视距(LOS)的位移值的线相比,在使用未校正的计算和校正的干涉数据显示,大气相位成分引进了具有LOS的位移值相当大的贡献。未校正的LOS位移值变化从0.902米至-0.157 m,其中那些由相位校正后的干涉数据是在0.052 m和-0.062米的范围内。修正LOS位移值显示基于从公开发表的文献同震地表变形部件几GPS吻合。因此除去大气相位贡献是在使用重复通DInSAR技术用于共地震面变形估计的必要步骤。

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