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A sharp interface Cartesian grid hydrocode.

机译:尖锐的笛卡尔直角坐标网水力代码。

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摘要

Dynamic response of materials to high-speed and high-intensity loading conditions is important in several applications including high-speed flows with droplets, bubbles and particles, and hyper-velocity impact and penetration processes. In such high-pressure physics problems, simulations encounter challenges associated with the treatment of material interfaces, particularly when strong nonlinear waves like shock and detonation waves impinge upon them. To simulate such complicated interfacial dynamics problems, a fixed Cartesian grid approach in conjunction with levelset interface tracking is attractive. In this regard, a sharp interface Cartesian grid-based, Ghost Fluid Method (GFM) is developed for resolving embedded fluid, elasto-plastic solid and rigid (solid) objects in hyper-velocity impact and high-intensity shock loaded environment. The embedded boundaries are tracked and represented by virtue of the level set interface tracking technique. The evolving multimaterial interface and the flow are coupled by meticulously enforcing the boundary conditions and jump relations at the interface. In addition, a tree-based Local Mesh Refinement scheme is employed to efficiently resolve the desired physics. The framework developed is generic and is applicable to interfaces separating a wide range of materials and for a broad spectrum of speeds of interaction (O(km/s)). The wide repertoire of problems solved in this work demonstrates the flexibility, stability and robustness of the method in accurately capturing the dynamics of the embedded interface. Shocks interacting with large ensembles of particles are also computed.
机译:材料对高速和高强度加载条件的动态响应在几种应用中很重要,包括带液滴,气泡和颗粒的高速流动以及超高速冲击和渗透过程。在这种高压物理问题中,模拟遇到与材料界面处理相关的挑战,特别是当诸如冲击波和爆震波之类的强非线性波撞击到材料界面时。为了模拟这种复杂的界面动力学问题,固定的笛卡尔网格方法与水平集界面跟踪相结合是有吸引力的。在这方面,开发了一种基于笛卡尔直角网格的幽灵流体方法(GFM),用于解决高速冲击和高强度冲击载荷环境中的嵌入式流体,弹塑性固体和刚性(固体)物体。借助级别集接口跟踪技术来跟踪和表示嵌入的边界。不断发展的多材料界面和流动通过精心执行边界条件和界面上的跳跃关系而耦合。另外,基于树的局部网格细化方案被用来有效地解析期望的物理。开发的框架是通用的,适用于分离多种材料的界面以及广泛的交互速度(O(km / s))。在这项工作中解决的各种问题表明,该方法具有灵活性,稳定性和鲁棒性,可以准确地捕获嵌入式接口的动态特性。还计算了与大量粒子相互作用的冲击。

著录项

  • 作者

    Sambasivan, Shiv Kumar.;

  • 作者单位

    The University of Iowa.;

  • 授予单位 The University of Iowa.;
  • 学科 Engineering Aerospace.;Engineering Materials Science.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 388 p.
  • 总页数 388
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:36:47

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