首页> 美国卫生研究院文献>Wiley-Blackwell Online Open >LoadDef: A Python‐Based Toolkit to Model Elastic Deformation Caused by Surface Mass Loading on Spherically Symmetric Bodies
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LoadDef: A Python‐Based Toolkit to Model Elastic Deformation Caused by Surface Mass Loading on Spherically Symmetric Bodies

机译:LoadDef:基于Python的工具包用于建模由球对称物体上的表面质量载荷引起的弹性变形

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摘要

Temporal variations of surface masses, such as the hydrosphere and atmosphere of the Earth, load the surfaces of planetary bodies causing temporal variations in deformation. Surface shear forces and gravitational fields also drive ongoing planetary deformation. Characterizing the spatiotemporal patterns of planetary deformation can constrain allowable models for the interior structure of a planetary body as well as for the distribution of surface and body forces. Pertinent applications include hydrology, glaciology, geodynamics, atmospheric science, and climatology. To address the diversity of emerging applications, we introduce a software suite called LoadDef that provides a collection of modular functions for modeling planetary deformation within a self‐consistent, Python‐based computational framework. Key features of LoadDef include computation of real‐valued potential, load, and shear Love numbers for self‐gravitating and spherically symmetric planetary models; computation of Love‐number partial derivatives with respect to planetary density and elastic structure; computation of displacement, gravity, tilt, and strain load Green's functions; and computation of three‐component surface displacements induced by surface mass loading. At a most basic level, only a planetary‐structure model and a mass‐load model must be supplied as input to LoadDef to utilize all the main features of the software. The end‐to‐end forward‐modeling capabilities for mass‐loading applications lay the foundation for sensitivity studies and geodetic tomography. LoadDef results have been validated with Global Navigation Satellite System observations and verified against independent software and published results. As a case study, we use LoadDef to predict the solid Earth's elastic response to ocean tidal loading across the western United States.
机译:表面质量的时间变化,例如地球的水圈和大气层,会对行星体的表面施加压力,从而导致变形的时间变化。表面剪切力和重力场也驱动正在进行的行星变形。表征行星变形的时空模式可以限制行星体内部结构以及表面力和体力分布的允许模型。相关应用包括水文学,冰川学,地球动力学,大气科学和气候学。为了解决新兴应用程序的多样性,我们引入了一个名为 LoadDef 的软件套件,该套件提供了一组模块函数,用于在基于 Python 的自洽计算中对行星变形建模。框架。 LoadDef 的主要功能包括计算自重和球对称行星模型的实值电势,载荷和切变Love数;关于行星密度和弹性结构的洛夫数偏导数的计算;计算位移,重力,倾斜和应变载荷格林函数;表面质量载荷引起的三分量表面位移的计算和计算。在最基本的层次上,只需提供行星结构模型和质量载荷模型作为 LoadDef 的输入,即可利用该软件的所有主要功能。用于大载荷应用的端到端正向建模功能为灵敏度研究和大地层析成像奠定了基础。 LoadDef 结果已通过全球导航卫星系统的观测结果进行了验证,并已针对独立软件和已发布的结果进行了验证。作为案例研究,我们使用 LoadDef 来预测固体地球对美国西部海洋潮汐负荷的弹性响应。

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