A coupled SPH–FEM strategy for hypervelocity impact analysis with emphasis on shock-wave transmission in Whipple shields

IF 1.8 Q3 ENGINEERING, AEROSPACE
Journal of Space Safety Engineering Pub Date : 2026-06-01 Epub Date: 2026-04-02 DOI:10.1016/j.jsse.2026.03.005
Tiziana Cardone, Chiara Bisagni
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引用次数: 0

Abstract

The population of orbital debris in Low Earth Orbit (LEO) continues to increase steadily. This situation is driven by a combination of human space activities and collisions between objects in orbit, which are becoming increasingly unavoidable and pose a significant threat to space missions.
This work addresses debris–spacecraft collision phenomena by first investigating the hypervelocity impact of a projectile on a single plate. A coupled smoothed particle hydrodynamics (SPH) and finite element method (FEM) numerical framework, implemented in the commercial code LS-DYNA®, is developed to simulate this process and correlated with publicly available hypervelocity impact experimental data. The methodology is subsequently optimised and extended to a more complex configuration, namely a Whipple shield, which is more representative of realistic spacecraft shielding concepts against debris impacts. Validation is performed using an experimental dataset provided by Airbus Defence and Space.
Unlike conventional SPH/FEM coupling approaches that are primarily used to improve local damage modelling near the impact zone, the proposed framework is deliberately formulated to enable consistent propagation of shock waves and stress fields into the surrounding finite element domain. This enables the method to be employed not only for accurate fragmentation modelling, but as a physics-driven approach for analysing energy transport and shock propagation within spacecraft structures following hypervelocity impacts.
The developed methodology enhances insight into spacecraft structural behaviour under hypervelocity debris impacts and supports its application in the design and optimisation of future spacecraft shielding solutions.
基于SPH-FEM的惠普尔护罩超高速冲击分析策略
近地轨道上的轨道碎片数量持续稳定增长。这种情况是由人类空间活动和在轨物体之间的碰撞共同造成的,这种碰撞越来越不可避免,并对空间任务构成重大威胁。这项工作通过首先研究弹丸对单个板的超高速撞击来解决碎片-航天器碰撞现象。在商业代码LS-DYNA®中实现了一个耦合的光滑粒子流体力学(SPH)和有限元方法(FEM)数值框架,以模拟这一过程,并与公开可用的超高速撞击实验数据相关联。该方法随后被优化并扩展到更复杂的配置,即惠普尔屏蔽,它更能代表现实的航天器屏蔽碎片撞击的概念。使用空客防务与航天公司提供的实验数据集进行验证。传统的SPH/FEM耦合方法主要用于改善冲击区域附近的局部损伤建模,与之不同的是,所提出的框架经过精心设计,使冲击波和应力场能够一致地传播到周围的有限元区域。这使得该方法不仅可以用于精确的碎片建模,而且可以作为一种物理驱动的方法来分析超高速撞击后航天器结构内的能量传输和冲击传播。所开发的方法增强了对超高速碎片撞击下航天器结构行为的洞察力,并支持其在未来航天器屏蔽解决方案的设计和优化中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Space Safety Engineering
Journal of Space Safety Engineering Engineering-Safety, Risk, Reliability and Quality
CiteScore
2.50
自引率
0.00%
发文量
80
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