用正则化方法建立具有非微小各向异性的三维磁电流模型

IF 2.4 3区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Zeqiu Guo , Hao Dong , Keke Zhang
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引用次数: 0

摘要

正则化方法已成功应用于消除各向同性地球介质的磁突扰(MT)前向问题中的假解。然而,在各向异性介质的数值解中更容易出现杂散模式,因为电各向异性给此类介质中的电磁感应带来了更多复杂因素。本研究的重点是开发正则化方法,以解决各向异性介质的三维 MT 正演问题,尤其是非三向异性介质。现在,通过电导张量导出了控制方程,并增加了相应调整形式的缩放梯度项,以正则化求解并约束无发散条件。我们提出了一种新的缩放方案,以应对非三向各向异性介质中复杂的电流密度分布,并用电导张量的对角元素近似表示有效电导率,以制定缩放因子。数值测试表明,对于各种电各向异性模型,正则化方法可以有效地强制执行发散条件,并成功抑制假解。因此,对于非三向各向异性介质,这种方法还能提高迭代求解器的效率,同时保持解的精度。治理方程的推导基于 MT 方法。不过,这一策略应普遍适用于其他频域电磁方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Three-dimensional magnetotelluric modeling with nontrivial anisotropy by a regularization approach

Three-dimensional magnetotelluric modeling with nontrivial anisotropy by a regularization approach

The regularization approach has been successfully applied to remove spurious solutions in the magnetotelluric (MT) forward problems of isotropic Earth media. However, spurious modes are more likely to occur in numerical solutions of anisotropic media, as electrical anisotropy introduces many more complications to electromagnetic (EM) induction in such media. This study focuses on developing the regularization approach to 3D MT forward problems of anisotropic media, especially those of nontrivial anisotropy. The governing equation is now derived with a conductivity tensor, and an accordingly adapted form of a scaled grad-div term is augmented to regularize the solutions and constrain the divergence-free condition. A new scaling scheme is proposed to cope with the complicated distribution of current densities in nontrivial anisotropy media, and an effective conductivity is approximated by the diagonal elements of the conductivity tensor to formulate the scaling factor. Numerical tests show that, for various models of electrical anisotropy, the regularization approach can effectively enforce the divergence condition and successfully suppress spurious solutions. Therefore, for nontrivial anisotropy media, this approach can also improve the efficiency of the iterative solvers while retaining the accuracy of the solutions. The derivation of the governing equation is based on the MT method. However, this strategy should be generally applicable to other frequency-domain EM methods.

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来源期刊
Physics of the Earth and Planetary Interiors
Physics of the Earth and Planetary Interiors 地学天文-地球化学与地球物理
CiteScore
5.00
自引率
4.30%
发文量
78
审稿时长
18.5 weeks
期刊介绍: Launched in 1968 to fill the need for an international journal in the field of planetary physics, geodesy and geophysics, Physics of the Earth and Planetary Interiors has now grown to become important reading matter for all geophysicists. It is the only journal to be entirely devoted to the physical and chemical processes of planetary interiors. Original research papers, review articles, short communications and book reviews are all published on a regular basis; and from time to time special issues of the journal are devoted to the publication of the proceedings of symposia and congresses which the editors feel will be of particular interest to the reader.
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