{"title":"用于模拟横向各向同性岩土材料中埋藏爆炸的 MPM 拉格朗日-欧勒水力模型","authors":"Mian Xiao, WaiChing Sun","doi":"10.1002/nag.3717","DOIUrl":null,"url":null,"abstract":"<p>Shock waves in geological materials are characterized by a sudden release of rapidly expanding gas, liquid, and solid particles. These shock waves may occur due to explosive volcanic eruptions or be artificially triggered. In fact, underground explosions have often been used as an engineering solution for large-scale excavation, stimulating oil and gas recovery, creating cavities for underground waste storage, and even extinguishing gas field fires. As such, hydrocodes capable of simulating the rapid and significant deformation under extreme conditions can be a valuable tool for ensuring the safety of the explosions. Nevertheless, as most of the hydrocodes are often formulated in an Eulerian grid, this setting makes it non-trivial to track the deformation configuration of the materials without a level set. The objective of this paper is to propose the use of the material point method equipped with appropriate equation of state (EOS) models as a hydrocode suitable to simulate underground explosions of transverse isotropic geomaterials. To capture the anisotropic effect of the common layered soil deposits, we introduce a new MPM hydrocode where an anisotropic version of the Mie-Gruneisen EOS is coupled with a frictional Drucker-Prager plasticity model to replicate the high-strain-rate constitutive responses of soil. By leveraging the Lagrangian nature of material points to capture the historical dependence and the Eulerian calculation of internal force, the resultant model is capable of simulating the rapid evolution of geometry of the soil as well as the high-strain-rate soil mechanics of anisotropic materials.</p>","PeriodicalId":13786,"journal":{"name":"International Journal for Numerical and Analytical Methods in Geomechanics","volume":null,"pages":null},"PeriodicalIF":3.4000,"publicationDate":"2024-03-14","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A MPM Lagrangian-Eulerian hydrocode for simulating buried explosions in transversely isotropic geomaterials\",\"authors\":\"Mian Xiao, WaiChing Sun\",\"doi\":\"10.1002/nag.3717\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Shock waves in geological materials are characterized by a sudden release of rapidly expanding gas, liquid, and solid particles. 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引用次数: 0
摘要
地质材料中的冲击波以突然释放快速膨胀的气体、液体和固体颗粒为特征。这些冲击波可能因火山爆发而产生,也可能是人为触发的。事实上,地下爆炸经常被用作大规模挖掘、刺激石油和天然气开采、为地下废物储存创造空腔,甚至扑灭气田大火的工程解决方案。因此,能够模拟极端条件下快速、显著变形的水力模型是确保爆炸安全的重要工具。然而,由于大多数水力模型通常采用欧拉网格,这种设置使得在没有水平集的情况下跟踪材料的变形构造变得非常困难。本文的目的是建议使用配备适当状态方程(EOS)模型的材料点法,作为一种适合模拟横向各向同性土工材料地下爆炸的水力代码。为了捕捉常见层状土壤沉积的各向异性效应,我们引入了一种新的 MPM 水文编码,其中各向异性版本的 Mie-Gruneisen EOS 与摩擦型 Drucker-Prager 塑性模型相结合,以复制土壤的高应变速率构成响应。通过利用材料点的拉格朗日特性来捕捉历史依赖性和内力的欧拉计算,由此产生的模型能够模拟土壤几何形状的快速演变以及各向异性材料的高应变速率土壤力学。
A MPM Lagrangian-Eulerian hydrocode for simulating buried explosions in transversely isotropic geomaterials
Shock waves in geological materials are characterized by a sudden release of rapidly expanding gas, liquid, and solid particles. These shock waves may occur due to explosive volcanic eruptions or be artificially triggered. In fact, underground explosions have often been used as an engineering solution for large-scale excavation, stimulating oil and gas recovery, creating cavities for underground waste storage, and even extinguishing gas field fires. As such, hydrocodes capable of simulating the rapid and significant deformation under extreme conditions can be a valuable tool for ensuring the safety of the explosions. Nevertheless, as most of the hydrocodes are often formulated in an Eulerian grid, this setting makes it non-trivial to track the deformation configuration of the materials without a level set. The objective of this paper is to propose the use of the material point method equipped with appropriate equation of state (EOS) models as a hydrocode suitable to simulate underground explosions of transverse isotropic geomaterials. To capture the anisotropic effect of the common layered soil deposits, we introduce a new MPM hydrocode where an anisotropic version of the Mie-Gruneisen EOS is coupled with a frictional Drucker-Prager plasticity model to replicate the high-strain-rate constitutive responses of soil. By leveraging the Lagrangian nature of material points to capture the historical dependence and the Eulerian calculation of internal force, the resultant model is capable of simulating the rapid evolution of geometry of the soil as well as the high-strain-rate soil mechanics of anisotropic materials.
期刊介绍:
The journal welcomes manuscripts that substantially contribute to the understanding of the complex mechanical behaviour of geomaterials (soils, rocks, concrete, ice, snow, and powders), through innovative experimental techniques, and/or through the development of novel numerical or hybrid experimental/numerical modelling concepts in geomechanics. Topics of interest include instabilities and localization, interface and surface phenomena, fracture and failure, multi-physics and other time-dependent phenomena, micromechanics and multi-scale methods, and inverse analysis and stochastic methods. Papers related to energy and environmental issues are particularly welcome. The illustration of the proposed methods and techniques to engineering problems is encouraged. However, manuscripts dealing with applications of existing methods, or proposing incremental improvements to existing methods – in particular marginal extensions of existing analytical solutions or numerical methods – will not be considered for review.