Molecular Dynamics Simulation of Simultaneous High-Speed Impact of Double Tungsten Fragments on a Titanium Target Plate

This study employs molecular dynamics (MD) simulations to explore the high-speed impact behavior of double conical tungsten (W) fragments on titanium (Ti) target plates, focusing on fragment cloud formation, Ti damage evolution, and the effects of temperature and impact velocity. High-speed impact converts W fragments’ kinetic energy into internal energy, causing W fragmentation and the formation of a mixed-phase fragment cloud, which induces severe damage to the Ti target. Under double-particle impacts, W fragments penetrate the Ti target to form a multi-source fragment cloud, with Ti target damage (characterized by amorphous phase distribution) undergoing initiation and extension stages. Higher temperatures broaden the high-temperature damage zone and increase crater size but do not change the impact penetration evolution mode or penetration depth. Impact velocity determines damage modes: low velocity causes non-through internal damage with a rear bulge, while high velocity leads to full perforation with mixed W-Ti fragment ejection, and lateral crater size is almost unaffected by velocity. This study innovatively reveals the atomic-scale damage evolution mechanism of Ti targets under dual conical W fragment impact, which fills the research gap in conventional single-fragment impact studies. These findings clarify the high-speed impact mechanism of Ti alloys, providing theoretical support for the design of Ti-based protective structures in engineering.

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Publication Details

Journal
Crystals
Published
2026-08-31
DOI
https://doi.org/10.3390/cryst16090569
Primary Topic
High-Velocity Impact and Material Behavior
Type
article
Field-Weighted Citation Impact
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article

Molecular Dynamics Simulation of Simultaneous High-Speed Impact of Double Tungsten Fragments on a Titanium Target Plate

Ruochen Sun, Meng Xiang, Xianjun Shi
Crystals
High-Velocity Impact and Material Behavior
article

Molecular Dynamics Simulation of Simultaneous High-Speed Impact of Double Tungsten Fragments on a Titanium Target Plate

Ruochen Sun, Meng Xiang, Xianjun Shi
article en

Abstract

This study employs molecular dynamics (MD) simulations to explore the high-speed impact behavior of double conical tungsten (W) fragments on titanium (Ti) target plates, focusing on fragment cloud formation, Ti damage evolution, and the effects of temperature and impact velocity. High-speed impact converts W fragments’ kinetic energy into internal energy, causing W fragmentation and the formation of a mixed-phase fragment cloud, which induces severe damage to the Ti target. Under double-particle impacts, W fragments penetrate the Ti target to form a multi-source fragment cloud, with Ti target damage (characterized by amorphous phase distribution) undergoing initiation and extension stages. Higher temperatures broaden the high-temperature damage zone and increase crater size but do not change the impact penetration evolution mode or penetration depth. Impact velocity determines damage modes: low velocity causes non-through internal damage with a rear bulge, while high velocity leads to full perforation with mixed W-Ti fragment ejection, and lateral crater size is almost unaffected by velocity. This study innovatively reveals the atomic-scale damage evolution mechanism of Ti targets under dual conical W fragment impact, which fills the research gap in conventional single-fragment impact studies. These findings clarify the high-speed impact mechanism of Ti alloys, providing theoretical support for the design of Ti-based protective structures in engineering.

CrystalsVol. 16(9)
Civil Aviation University of China (CN), Beijing Institute of Aeronautical Materials (CN), Air Force Engineering University (CN)
Natural Science Foundation of Henan Province
Openalex Percentile: Top 24%
High-Velocity Impact and Material Behavior
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Molecular Dynamics Simulation of Simultaneous High-Speed Impact of Double Tungsten Fragments on a Titanium Target Plate — Ruochen Sun, Meng Xiang, et al. · Crystals (2026) | TGRS Research Map | TGRS