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Fatigue damage behavior in carbon fiber polymer composites under biaxial loading

机译:碳纤维聚合物复合材料在双轴载荷下的疲劳损伤行为

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摘要

An investigation into the damage accumulation and propagation behavior in carbon fiber reinforced polymer (CFRP) composites under complex in-phase biaxial fatigue loading has been conducted. The goal is to capture early stage damage and obtain an improved understanding of damage propagation and associated degradation in material properties. Both cross ply and quasi isotropic laminate configurations have been studied and the tests were conducted under constant amplitude in-phase biaxial loading. An optimization technique was used to design the cruciform specimens for each stacking sequence. To understand the propagation of damage from the micro-to the macroscale, the fractured surfaces were analyzed, during various stages of fatigue, using electron microscope assisted fractography and a high-resolution camera. Material property degradation was determined by measuring the change in specimen stiffness to analyze the progression of fatigue damage and is correlated to the micro- and macroscale damage mechanisms and the biaxial fatigue loading parameters. The results provide insight into the initiation and propagation of damage mechanisms in CFRP composites which is essential to understanding the fatigue behavior of composite materials under complex multiaxial loadings.
机译:研究了碳纤维增强聚合物(CFRP)复合材料在复杂同相双轴疲劳载荷下的损伤累积和扩展行为。目的是捕获早期损坏,并更好地了解损坏的传播以及相关的材料性能下降。已经研究了交叉层和准各向同性的层状结构,并在恒定振幅同相双轴载荷下进行了测试。使用优化技术为每个堆叠序列设计十字形样本。为了了解从微观到宏观的损伤传播,在疲劳的各个阶段,使用电子显微镜辅助的断层照相术和高分辨率照相机分析了断裂的表面。通过测量样品刚度的变化以分析疲劳损伤的进程来确定材料的性能退化,并与微观和宏观损伤机理以及双轴疲劳载荷参数相关。结果为洞察CFRP复合材料中损伤机理的产生和传播,这对于理解复合材料在复杂多轴载荷下的疲劳行为至关重要。

著录项

  • 来源
    《Composites》 |2019年第1期|106942.1-106942.11|共11页
  • 作者单位

    Arizona State Univ Sch Engn Matter Transport & Energy Tempe AZ 85287 USA|Sch Engn Matter Transport & Energy Tempe AZ USA;

    Arizona State Univ Sch Engn Matter Transport & Energy Tempe AZ 85287 USA|Sch Engn Matter Transport & Energy Mech & Aerosp Engn Tempe AZ 85287 USA;

    US Army Res Lab Vehicle Technol Directorate Aberdeen Proving Ground MD 21005 USA|US Army Res Lab Mech Div Vehicle Technol Directorate Aberdeen Proving Ground MD 21005 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biaxial fatigue; Carbon fiber; Damage mechanisms; Fractography;

    机译:双轴疲劳;碳纤维;损害机制;分形术;

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