材料科学
韧性
可制造性设计
消散
复合材料
聚氨酯
丙烯酸酯
表面能
聚合物
弹性体
结构材料
光致聚合物
抗冲击性
损伤容限
比强度
工作(物理)
纳米技术
艾氏冲击强度试验
表面改性
平版印刷术
人工肌肉
3D打印
高效能源利用
聚合
机械能
材料设计
吸收(声学)
变形
智能材料
共聚物
增韧
作者
Purun Wang,Liping Gong,Jiajun Yu,Shilong Duan,Zimu Li,Min Sang,Qiankun Chen,Shiyu Lin,Sheng Wang,Huaxia Deng,Weihua Li,Shuai Liu
标识
DOI:10.1002/adfm.202530573
摘要
ABSTRACT To address the growing complexity of protective requirements across diverse scenarios, structural materials should simultaneously achieve light weight, high strength, and efficient energy dissipation. In this work, we propose a synergistic strategy combining material toughening design with biomimetic structure construction. First, a novel hybrid polyurethane acrylate (HPUA) photosensitive resin with high strength (26.1 MPa) and toughness (3.6 MJ/m 3 ) is developed, exhibiting superior comprehensive mechanical performance (e.g., puncture energy up to 249 J/m) compared to commercial photocurable resins. Subsequently, based on the high‐precision manufacturability of this resin system, a bioinspired gradient TPMS (BGT) structure is fabricated by utilizing digital light processing (DLP) technology. Drop‐weight impact tests reveal that the BGT structure exhibits exceptional impact resistance, demonstrating significantly higher peak impact force and energy absorption capacity compared to the normal TPMS (NT) structure and various lattice configurations. Numerical simulations and CT‐based reconstructions further provide theoretical verification of the underlying energy dissipation and damage regulation mechanisms in the BGT structure. Furthermore, by infiltrating flexible polymer phases into the BGT structure, the peak force and energy absorption efficiency can be precisely regulated, enabling tailored performance to meet diverse engineering requirements. This work provides valuable insights for the development of gradient structures and multiphase designs.
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