Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact

The cavity characteristics in liquid-filled containers caused by high-velocity impacts represent an important area of research in hydrodynamic ram phenomena. The dynamic expansion of the cavity induces liquid pressure variations, potentially causing catastrophic damage to the container. Current stud...

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Main Authors: Shixin Ma, Xiangdong Li, Lanwei Zhou
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2025-05-01
Series:Defence Technology
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Online Access:http://www.sciencedirect.com/science/article/pii/S2214914724002952
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author Shixin Ma
Xiangdong Li
Lanwei Zhou
author_facet Shixin Ma
Xiangdong Li
Lanwei Zhou
author_sort Shixin Ma
collection DOAJ
description The cavity characteristics in liquid-filled containers caused by high-velocity impacts represent an important area of research in hydrodynamic ram phenomena. The dynamic expansion of the cavity induces liquid pressure variations, potentially causing catastrophic damage to the container. Current studies mainly focus on non-deforming projectiles, such as fragments, with limited exploration of shaped charge jets. In this paper, a uniquely experimental system was designed to record cavity profiles in behind-armor liquid-filled containers subjected to shaped charge jet impacts. The impact process was then numerically reproduced using the explicit simulation program ANSYS LS-DYNA with the Structured Arbitrary Lagrangian-Eulerian (S-ALE) solver. The formation mechanism, along with the dimensional and shape evolution of the cavity was investigated. Additionally, the influence of the impact kinetic energy of the jet on the cavity characteristics was analyzed. The findings reveal that the cavity profile exhibits a conical shape, primarily driven by direct jet impact and inertial effects. The expansion rates of both cavity length and maximum radius increase with jet impact kinetic energy. When the impact kinetic energy is reduced to 28.2 kJ or below, the length-to-diameter ratio of the cavity ultimately stabilizes at approximately 7.
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issn 2214-9147
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publishDate 2025-05-01
publisher KeAi Communications Co., Ltd.
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spelling doaj-art-01965e5eec19488dad5a39f62895f8822025-08-20T02:28:38ZengKeAi Communications Co., Ltd.Defence Technology2214-91472025-05-014724225910.1016/j.dt.2024.12.021Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impactShixin Ma0Xiangdong Li1Lanwei Zhou2School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaCorresponding author.; School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaSchool of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaThe cavity characteristics in liquid-filled containers caused by high-velocity impacts represent an important area of research in hydrodynamic ram phenomena. The dynamic expansion of the cavity induces liquid pressure variations, potentially causing catastrophic damage to the container. Current studies mainly focus on non-deforming projectiles, such as fragments, with limited exploration of shaped charge jets. In this paper, a uniquely experimental system was designed to record cavity profiles in behind-armor liquid-filled containers subjected to shaped charge jet impacts. The impact process was then numerically reproduced using the explicit simulation program ANSYS LS-DYNA with the Structured Arbitrary Lagrangian-Eulerian (S-ALE) solver. The formation mechanism, along with the dimensional and shape evolution of the cavity was investigated. Additionally, the influence of the impact kinetic energy of the jet on the cavity characteristics was analyzed. The findings reveal that the cavity profile exhibits a conical shape, primarily driven by direct jet impact and inertial effects. The expansion rates of both cavity length and maximum radius increase with jet impact kinetic energy. When the impact kinetic energy is reduced to 28.2 kJ or below, the length-to-diameter ratio of the cavity ultimately stabilizes at approximately 7.http://www.sciencedirect.com/science/article/pii/S2214914724002952Cavity characteristicsShaped charge jetBehind-armor liquid-filled containerImpact kinetic energyHydrodynamic ram
spellingShingle Shixin Ma
Xiangdong Li
Lanwei Zhou
Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact
Defence Technology
Cavity characteristics
Shaped charge jet
Behind-armor liquid-filled container
Impact kinetic energy
Hydrodynamic ram
title Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact
title_full Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact
title_fullStr Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact
title_full_unstemmed Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact
title_short Experimental and numerical investigation of cavity characteristics in behind-armor liquid-filled containers under shaped charge jet impact
title_sort experimental and numerical investigation of cavity characteristics in behind armor liquid filled containers under shaped charge jet impact
topic Cavity characteristics
Shaped charge jet
Behind-armor liquid-filled container
Impact kinetic energy
Hydrodynamic ram
url http://www.sciencedirect.com/science/article/pii/S2214914724002952
work_keys_str_mv AT shixinma experimentalandnumericalinvestigationofcavitycharacteristicsinbehindarmorliquidfilledcontainersundershapedchargejetimpact
AT xiangdongli experimentalandnumericalinvestigationofcavitycharacteristicsinbehindarmorliquidfilledcontainersundershapedchargejetimpact
AT lanweizhou experimentalandnumericalinvestigationofcavitycharacteristicsinbehindarmorliquidfilledcontainersundershapedchargejetimpact