自适应FEM-SPH技术在高速碰撞仿真中的应用

A. Cherniaev
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引用次数: 1

摘要

众所周知,虽然无网格光滑颗粒流体力学(SPH)技术在涉及极端变形和破碎的建模场景中通常具有优势,但在拉格朗日实现中的有限元方法(FEM)非常适合跟踪材料的界面。为了同时利用这两种技术的优点,可以采用自适应FEM/SPH方法。在该方法中,拉格朗日固体元向SPH粒子的局部自适应转换是由固体元高度扭曲和低效时的侵蚀触发的。取代被侵蚀固体单元的SPH颗粒继承了原始固体的所有节点和积分点数量,并开始附着在邻近的固体单元上。本研究采用LS-DYNA实现该技术,解决了两个问题:(1)涡扇发动机叶片与发动机壳体摩擦;(2)轨道碎片粒子与航天器母线夹芯板碰撞;对于第一个问题,将自适应技术的预测结果与仅使用fem模型和仅使用sph模型的预测结果进行了比较。对于第二个问题,给出了数值和实验结果的比较。该研究突出了自适应建模方法的优点和局限性。
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The use of adaptive FEM-SPH technique in high-velocity impact simulations
It is well known that while the meshless smoothed particles hydrodynamics (SPH) technique is often advantageous in modelling scenarios involving extreme deformations and fragmentation, the finite element method (FEM) in its Lagrangian implementation is wellsuited for tracking the materials' interfaces. To use the advantages of both techniques simultaneously, an adaptive FEM/SPH approach can be employed. In this method, the local and adaptive transformation of Lagrangian solid elements to SPH particles is triggered by erosion of the solid elements when they become highly distorted and inefficient. The SPH particles replacing the eroded solid elements inherit all the nodal and integration point quantities of the original solids and initiated being attached to the neighbouring solid elements. LS-DYNA implementation of this technique was adopted in this study for the solution of two problems: (1) turbofan engine blade rub against the engine’s fancase; (2) collision of an orbital debris particle with a sandwich panel of a spacecraft bus;. For the first problem, predictions of the adaptive technique are compared with those obtained using FEMonly and SPH-only models. For the second problem, a comparison of the numerical and experimental results is provided. The study highlights advantages and limitations of the adaptive modelling methodology.
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