材料科学
脆性
复合材料
断裂(地质)
高密度聚乙烯
艾氏冲击强度试验
损伤容限
冲击能
复合数
结构工程
聚乙烯
极限抗拉强度
工程类
作者
Mohammad Azeem,Hamdan Haji Ya,Mohammad Azad Alam,Masdi Muhammad,S.M. Sapuan,Mukesh Kumar,Lokman Gemi,Ammar Maziz,Ahmad Rasdan Ismail,Sanan H. Khan
标识
DOI:10.1016/j.rineng.2023.101730
摘要
Filament wound pipelines and Type IV composite pressure vessels (CPVs) constitutes polymeric liner and are extensively used to transport and store petroleum products, hydrogen, and compressed natural gas. The polymeric liner does not share much pressure load; hence, the composite layers share most of the load. The situation gets worse under transverse impact loads on such structures. For the polymeric liner to be effectively used in pipelines and CPVs, it is crucial to study impact response through testing and computational methods. This article presents experimental and numerical investigations of the transverse low-velocity impact response of filament wound samples. High-density polyethylene (HDPE) liner was adopted, and carbon fiber (T700) continuous filaments with epoxy resin were wound over the liner with several layers. A drop-weight impact loading with 40 J energy has been applied to the fabricated samples. The development of impact damage was assessed using the finite element method, and the damage modes have been discussed. The specimen remains unperforated at the chosen energy level. Though HDPE is ductile, however at impact loads liner damage was encountered, displaying a brittle fracture. At higher strain rates, the material reach its brittle fracture point sooner, leading to failure. The material breaks as brittle due to its inability to dissipate impact energy quickly, resulting in fracturing instead of deformation. Fiber damage was scarcely seen; however, matrix damage has been the dominant failure mode at the chosen impact energy. Comparisons between the simulation and test findings were made, and they agreed on force-time and force-displacement histories.
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