Bisić Muhamed, Pandžić Adi, Jusufbegović Merim, Ćerimović Mujo, Elek Predrag
Faculty of Mechanical Engineering, University of Belgrade, 11120 Belgrade, Serbia.
Faculty of Mechanical Engineering, University of Sarajevo, 71000 Sarajevo, Bosnia and Herzegovina.
Polymers (Basel). 2025 Jul 2;17(13):1854. doi: 10.3390/polym17131854.
Recent technological advances have expanded the use of 3D-printed polymer components across industries, including a growing interest in military applications. The effective defensive use of such materials depends on a thorough understanding of polymer properties, printing techniques, structural design, and influencing parameters. This paper analyzes the ballistic resistance of 3D-printed polymer structures against 9 × 19 mm projectiles. Cuboid targets with different infill patterns-cubic, grid, honeycomb, and gyroid-were fabricated and tested experimentally using live ammunition. Post-impact, CT scans were used to non-destructively measure projectile penetration depths. The honeycomb infill demonstrated superior bullet-stopping performance. Additionally, mechanical properties were experimentally determined and applied in FEM simulations, confirming the ability of commercial software to predict projectile-target interaction in complex geometries. A simplified analytical model also produced satisfactory agreement with experimental observations. The results contribute to a better understanding of impact behavior in 3D-printed polymer structures, supporting their potential application in defense systems.
最近的技术进步扩大了3D打印聚合物部件在各行业的应用,包括军事应用领域日益增长的兴趣。有效防御性地使用此类材料取决于对聚合物特性、打印技术、结构设计和影响参数的透彻理解。本文分析了3D打印聚合物结构对9×19毫米射弹的抗弹性能。制造了具有不同填充图案(立方、网格、蜂窝和螺旋状)的长方体靶,并使用实弹进行了实验测试。撞击后,使用CT扫描无损测量射弹的穿透深度。蜂窝填充显示出卓越的防弹性能。此外,通过实验确定了力学性能并应用于有限元模拟,证实了商业软件预测复杂几何形状中射弹与靶相互作用的能力。一个简化的分析模型也与实验观察结果取得了令人满意的一致性。这些结果有助于更好地理解3D打印聚合物结构中的撞击行为,支持它们在防御系统中的潜在应用。