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Article

Experimental Study on the Impact Resistance of UHMWPE Flexible Film Against Hypervelocity Particles

1
School of Physics, Harbin Institute of Technology, Harbin 150001, China
2
School of Mechanical Engineering, Xi’an Jiaotong University, Xi’an 710049, China
3
Department of Civil Engineering, Faculty of Engineering, Universiti Putra Malaysia, Serdang 43400, Selangor, Malaysia
4
Department of Mechanical Engineering Technologies, Bauman Moscow State Technical University, Moscow 105005, Russia
5
Center for Materials Technologies, Skolkovo Institute of Science and Technology, Moscow 121205, Russia
*
Author to whom correspondence should be addressed.
Polymers 2026, 18(2), 161; https://doi.org/10.3390/polym18020161
Submission received: 23 September 2025 / Revised: 31 December 2025 / Accepted: 5 January 2026 / Published: 7 January 2026

Abstract

The increasing threat posed by micrometeoroids and orbital debris to in-orbit spacecraft necessitates the development of lightweight and deformable shielding systems capable of withstanding hypervelocity impacts. Ultra-high-molecular-weight polyethylene (UHMWPE) films, owing to their high specific strength and energy-absorption capacity, present a promising candidate for such applications. However, the hypervelocity impact response of thin, highly oriented UHMWPE films—distinct from bulk plates or composites—remains poorly understood, particularly for micron-scale particles at velocities relevant to space debris (≥8 km/s). In this study, we systematically investigate the impact resistance of 0.1 mm UHMWPE films using a plasma-driven microparticle accelerator and a hypervelocity dust gun to simulate impacts by micron-sized Al2O3 and Fe particles at velocities up to ~8.5 km/s. Through detailed analysis of crater morphology via scanning electron microscopy, we identify three distinct damage modes: plastic-dominated craters (Type I), fracture-melting craters (Type II), and perforations (Type III). These modes are correlated with impact energy and particle size, revealing the material’s transition from large-scale plastic deformation to localized thermal softening and eventual penetration. Crucially, we provide quantitative penetration thresholds (e.g., 2.25 μm Al2O3 at 8.5 km/s) and establish a microstructure-informed damage classification that advances the fundamental understanding of UHMWPE film behavior under extreme strain rates. Our findings not only elucidate the energy-dissipation mechanisms in oriented polymer films but also offer practical guidelines for the design of next-generation, flexible spacecraft shielding systems.
Keywords: UHMWPE; flexible film; hypervelocity impact; impact resistance; damage; microparticle; spacecraft shielding UHMWPE; flexible film; hypervelocity impact; impact resistance; damage; microparticle; spacecraft shielding

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MDPI and ACS Style

Liu, C.; Rao, Z.; Liu, H.; Zhao, C.; Wang, Y.; Khaziev, A. Experimental Study on the Impact Resistance of UHMWPE Flexible Film Against Hypervelocity Particles. Polymers 2026, 18, 161. https://doi.org/10.3390/polym18020161

AMA Style

Liu C, Rao Z, Liu H, Zhao C, Wang Y, Khaziev A. Experimental Study on the Impact Resistance of UHMWPE Flexible Film Against Hypervelocity Particles. Polymers. 2026; 18(2):161. https://doi.org/10.3390/polym18020161

Chicago/Turabian Style

Liu, Chen, Zhirui Rao, Hao Liu, Changlin Zhao, Yifan Wang, and Aleksey Khaziev. 2026. "Experimental Study on the Impact Resistance of UHMWPE Flexible Film Against Hypervelocity Particles" Polymers 18, no. 2: 161. https://doi.org/10.3390/polym18020161

APA Style

Liu, C., Rao, Z., Liu, H., Zhao, C., Wang, Y., & Khaziev, A. (2026). Experimental Study on the Impact Resistance of UHMWPE Flexible Film Against Hypervelocity Particles. Polymers, 18(2), 161. https://doi.org/10.3390/polym18020161

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