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DPIM-Based InSAR Phase Unwrapping Model and a 3D Mining-Induced Surface Deformation Extracting Method: A Case of Huainan Mining Area

机译:基于DPIM的INSAR相位展开模型和3D采矿诱导的表面变形提取方法:淮南矿区案例

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摘要

The mining subsidence in mining area could cause large-gradient deformation in a short period of time. When the deformation gradient exceeds the threshold value of the Differential Interferometry Synthetic Aperture Radar (D-InSAR) technology monitoring gradient, D-InSAR technology is likely to cause the failure of InSAR phase unwrapping algorithm. At this time, the InSAR technology is unable to monitor the 3D surface deformation. Aiming at these problems, an dynamic probability integral method (DPIM)-based InSAR phase unwrapping model and a method of extracting 3D surface deformation were proposed. The phase unwrapping model firstly used the empirical parameters of the probability integral of the mining face to predict the line of sight (LOS) direction deformation phase of the mining subsidence surface. Secondly, the phase of differential interferogram was unwrapped with the assist of the predicted LOS deformation phase under the constraint of DPIM, and the true LOS deformation phase was obtained, then the true LOS deformation phase transformed into LOS deformation. Finally, according to the geometric projection relationship between the LOS deformation and 3D deformation of mining subsidence surface, the probability integral prior model was brought into the equation of the geometric projection relationship. On the basis of relevant boundary conditions, the 3D surface deformation was extracted from the LOS direction deformation field of mining subsidence. The feasibility of the method was verified by the simulation experiment results. The differential interferogram of the subsidence basin was obtained by the differential interference processing of image data of Sentinel-1A on Nov. 16, 2017 and Dec. 10, 2017 of 1613 working face of Guqiao South Mine. By using the DPIM-based phase unwrapping model, the phase of differential interferogram was unwrapped and the 3D surface deformation during this period as well as the deformation extraction method were developed. The results showed that the maximum fitting error value of subsidence was 79 mm, about 8.33% of the maximum value of subsidence, and the fitting error of mean square of subsidence was ±33.5 mm. The results showed that the DPIM-based phase unwrapping model and the method of extracting 3D surface deformation proposed in this paper have certain engineering application values.
机译:采矿区采矿沉降可能在短时间内引起大梯度变形。当变形梯度超过差动干涉机合成孔径雷达(D-Insar)技术监测梯度的阈值时,D-Insar技术可能导致Insar相位展开算法的失败。此时,INSAR技术无法监控3D表面变形。针对这些问题,提出了一种基于动态概率积分法(DPIM)的insar相位展开模型和提取3D表面变形的方法。相位展开模型首先利用了挖掘面的概率积分的经验参数来预测矿井沉降表面的视线(LOS)方向变形阶段。其次,在DPIM的约束下,通过预测的LOS变形阶段的辅助来解除差分干涉阶段的阶段,获得真正的LOS变形阶段,然后将真正的LOS变形相变为LOS变形。最后,根据挖掘沉降表面的LOS变形和3D变形之间的几何投影关系,概率积分的现有模型进入几何投影关系的等式。在相关边界条件的基础上,从矿井沉降的LOS方向变形领域提取了3D表面变形。通过模拟实验结果验证了该方法的可行性。沉降盆地的差动干涉图是通过董内克-11月16日和2017年12月10日的古桥南矿1613年12月10日的2017年12月10日的差异干涉处理。通过使用基于DPIM的相位展开模型,显着差分干涉图的相位,并且开发了在此期间的3D表面变形以及变形提取方法。结果表明,沉降的最大拟合误差值为79毫米,约占最大值值的沉降值的约8.33%,沉降的平均平方的拟合误差为±33.5毫米。结果表明,基于DPIM的相展示模型和提取本文提出的3D表面变形的方法具有某些工程应用值。

著录项

  • 来源
    《KSCE journal of civil engineering》 |2021年第2期|654-668|共15页
  • 作者单位

    School of Earth and Environment Anhui University of Science and Technology Huainan 232001 China;

    School of Geodesy and Geomatics Anhui University of Science and Technology Huainan 232001 China;

    School of Geodesy and Geomatics Anhui University of Science and Technology Huainan 232001 China;

    School of Geodesy and Geomatics Anhui University of Science and Technology Huainan 232001 China;

    Jiangsu Key Laboratory of Resources and Environmental Information Engineering China University of Mining & Technology Xuzhou 221116 China;

    Nuclear and Roadway Engineering Group Company Limited Huzhou 313000 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    D-InSAR; Phase unwrapping; Mining subsidence; LOS deformation; Three-dimensional deformation;

    机译:D-INSAR;展开;矿业沉降;los变形;三维变形;

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