Numerical and experimental study on forming characteristics of jet from nylon–water composite liner and its penetration performance on steel targets

N Ning Du T Tianchen Yu (State Key Laboratory of Coordination Chemistry, MOE Key Laboratory of Mesoscopic Chemistry, MOE Key Laboratory of High Performance Polymer Materials and Technology, Jiangsu Key Laboratory of Advanced Organic Materials, Suzhou Key Laboratory of Green Intelligent Manufacturing of New Energy Materials and Devices, Tianchang New Materials and Energy Technology Research Center, Institute of Green Chemistry and Engineering, School of Sustainable Energy and Resources, School of Chemistry and Chemical Engineering) M Mingran Pan (Liaoshen Industrial Group Co., Ltd. 2 , Shenyang 110045,)

Abstract

Compared to traditional metal jets, shaped charge water jets offer the advantage of low-collateral-damage when destroying explosives. To investigate the forming characteristics and penetration performance of Nylon–Water Composite Jet (NWCJ), this study designed a 3D-printed Nylon–Water Composite Liner. Combining numerical simulation with experimental validation, the formation and penetration characteristics of polymer–liquid composite jets were studied. First, numerical simulations analyzed the forming characteristics and penetration performance of the nylon–water jet. Subsequently, the shaped charge was fabricated using selective laser sintering powder printing technology, overcoming the key technical challenge of solid–liquid coupling. Finally, static armor penetration tests validated the reliability of numerical simulations. Results indicate that compared to the Single Nylon Liner, the NWCJ exhibits significantly greater head expansion and higher velocity during the formation process. By regulating the water layer thickness, the NWCJ can effectively control penetration depth while maintaining hole-enlarging capability. The differing kinetic energy decay sequences of nylon and water reveal the penetration mechanism of polymer–liquid composites. This study provides guidance for designing polymer–liquid composite liner structures and enhances understanding of the formation and penetration of polymer–liquid composite jets under explosive loading.

Article Details

Volume / Issue Vol. 139, Issue 22
Published June 14, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (3)

N

Ning Du

T

Tianchen Yu

State Key Laboratory of Coordination Chemistry, MOE Key Laboratory of Mesoscopic Chemistry, MOE Key Laboratory of High Performance Polymer Materials and Technology, Jiangsu Key Laboratory of Advanced Organic Materials, Suzhou Key Laboratory of Green Intelligent Manufacturing of New Energy Materials and Devices, Tianchang New Materials and Energy Technology Research Center, Institute of Green Chemistry and Engineering, School of Sustainable Energy and Resources, School of Chemistry and Chemical Engineering

M

Mingran Pan

Liaoshen Industrial Group Co., Ltd. 2 , Shenyang 110045,