首页> 外文期刊>Annals Of Geophysics >Global nonlinear optimization for the estimation of static shift and interpretation of 1-D magnetotelluric sounding data
【24h】

Global nonlinear optimization for the estimation of static shift and interpretation of 1-D magnetotelluric sounding data

机译:用于估计静态位移的全局非线性优化和一维大地电磁测深数据的解释

获取原文
           

摘要

In the presence of conducting inhomogeneities in near-surface structures, apparent resistivity data in magnetotelluric sounding can be severely distorted. This is due to electric fields generated from boundary charges on surficial inhomogeneities. Such distortion persists throughout the entire recording range and is known as static shift in magnetotellurics. Frequency-independent static shifts manifest as vertical, parallel shifts that occur in plots of the dual logarithmic scale of apparent resistivity versus time period. The phase of magnetotelluric sounding data remains unaffected by the static shift and can be used to remove the static shift to some extent. However, individual inversion of phase data yields highly nonunique results, and alone it will not work to correctly remove the static shift. Inversions of uncorrected magnetotelluric data yield erroneous and unreliable estimations, while static-shift-corrected magnetotelluric data provide better and reliable estimations of the resistivities and thicknesses of subsurface structures. In the present study, static shift (a frequency-independent real constant) is also considered as one of the model parameters and is optimized together with other model parameters (resistivity and thickness) using the very fast simulated annealing global inversion technique. This implies that model parameters are determined simultaneously with the estimate of the static shift in the data. Synthetic and noisy data generated for a number of models are interpreted, to demonstrate the efficacy of the approach to yield reliable estimates of subsurface structures when the apparent resistivity data are affected by static shift. Individual inversions of static-shift-affected apparent resistivity data and phase data yield unreliable estimations of the model parameters. Furthermore, the estimated model parameters after individual data inversions do not show any systematic correlations with the amount of static shift in the data. The present study shows that only joint inversion of the apparent resistivity and phase data, without or with optimizing of the static shift, yields models that show good fits between the observed and the model data. Joint inversion results also reveal a systematic relationship between the estimated model parameters and the static shift in the data. The proposed approach also shows that estimated resistivities are ‘S’ (the static shift parameter) times the actual resistivities, and that estimated thicknesses are √S times the actual thicknesses without optimization of the static shift. This result is in good agreement with the existing relationship in the literature. Therefore, the global optimization procedure developed can be effectively used to optimize the static shifts in data, to obtain reliable estimations of model parameters. Subsequently, joint inversion of the apparent resistivity and phase data, with optimization of the static shift, is performed, which yields accurate estimates of subsurface structures. It is demonstrated that this approach can also be used when the data is not affected by the static shift. In such cases, the estimated static shift parameter ‘S’ will be close to unity. The efficacy of the approach is demonstrated with a field example from Singhbhum craton, eastern India, by providing an accurate estimation of the craton thickness and the conducting structure that lies below the craton. Normal 0 false false false EN-US X-NONE X-NONE
机译:在近地表结构中存在导电不均匀性的情况下,大地电磁测深中的视电阻率数据可能会严重失真。这是由于表面不均匀性上的边界电荷产生的电场所致。这种失真在整个记录范围内都持续存在,在大地电磁学中称为静态位移。与频率无关的静态位移表现为垂直,平行位移,出现在视电阻率与时间周期的对数对数刻度图上。大地电磁测深数据的相位不受静态偏移的影响,可以在某种程度上用于消除静态偏移。但是,单独的相位数据反演会产生非常不唯一的结果,而且单独使用它无法正确消除静态位移。未校正的大地电磁数据的反演会产生错误且不可靠的估计,而经静移校正的大地电磁数据会提供更好而可靠的地下结构电阻率和厚度估计。在本研究中,静态位移(与频率无关的实常数)也被视为模型参数之一,并使用非常快速的模拟退火全局反演技术与其他模型参数(电阻率和厚度)一起进行了优化。这意味着模型参数是与数据中静态位移的估计值同时确定的。解释了为多个模型生成的合成数据和噪声数据,以证明当表观电阻率数据受静态位移影响时,该方法可产生可靠的地下结构估算的有效性。受静移影响的视电阻率数据和相位数据的单独反演会导致模型参数的估计不可靠。此外,单个数据反演后的估计模型参数与数据中的静态偏移量没有任何系统相关性。本研究表明,仅对表观电阻率和相位数据进行联合反演,而无须对静位移进行优化,也可以对静位移进行优化,从而得出的模型在观测数据与模型数据之间具有良好的拟合度。联合反演结果还揭示了估计的模型参数与数据中的静态偏移之间的系统关系。所提出的方法还表明,在不优化静态位移的情况下,估算的电阻率是“ S”(静态位移参数)乘以实际电阻率,而估算的厚度是√S乘以实际厚度。该结果与文献中的现有关系非常吻合。因此,开发的全局优化程序可以有效地用于优化数据的静态偏移,以获得模型参数的可靠估计。随后,在优化了静态位移的情况下,进行了视电阻率和相位数据的联合反演,从而得到了地下结构的准确估计值。证明了当数据不受静态偏移影响时也可以使用此方法。在这种情况下,估计的静态位移参数“ S”将接近于1。通过提供对克拉通厚度和位于克拉通下方的导电结构的准确估算,该方法的有效性通过印度东部的Singhbhum克拉通的现场实例得到了证明。正常0否否否EN-US X-NONE X-NONE

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号