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首页> 外文期刊>Journal of Composite Materials >Comparison of damage development in random fiber-reinforced polymers (FRPs) under cyclic loading
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Comparison of damage development in random fiber-reinforced polymers (FRPs) under cyclic loading

机译:循环载荷下无规纤维增强聚合物(FRP)破坏发展的比较

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摘要

It has been well known that suppression of debonding and matrix cracking could improve fatigue resistance of fiber-reinforced polymers (FRPs). In this study, the roles of these two mechanisms on the damage development in FRPs with in-plane random glass fiber reinforcement have been investigated. Two polymers are used as the matrix-isophthalic polyester and polyurethane. Polyurethane-based FRP shows higher ultimate tensile strength (UTS) and strain to failure, but lower elastic modulus. Under zero-tension fatigue loading (with the maximum stress level equivalent to 50% of their respective UTS), the change in modulus, energy dissipation rate, and the corresponding damage development process are investigated. The damage development is analyzed at the macroscopic and microscopic levels, and found to be closely related to the modulus degradation and change in energy dissipation rate. The study concludes that the two FRPs show significantly different behavior under fatigue loading. The polyurethane-based FRP had better fatigue resistance, in view of the mild modulus change and the capability of absorbing energy through plastic deformation. Results from the study suggest that the excellent fatigue resistance of the polyurethane-based FRP is due to good toughness of the matrix.
机译:众所周知,抑制剥离和基体开裂可以改善纤维增强聚合物(FRP)的抗疲劳性。在这项研究中,研究了这两种机制对平面内随机玻璃纤维增​​强的FRP损伤发展的作用。两种聚合物用作基质,即间苯二甲酸聚酯和聚氨酯。聚氨酯基FRP表现出更高的极限拉伸强度(UTS)和破坏应变,但弹性模量更低。在零张力疲劳载荷下(最大应力水平相当于各自UTS的50%),研究了模量,能量耗散率的变化以及相应的损伤发展过程。在宏观和微观层面分析了损伤的发展,发现其与模量下降和能量耗散率的变化密切相关。研究得出的结论是,两个FRP在疲劳载荷下表现出明显不同的行为。考虑到温和的模量变化和通过塑性变形吸收能量的能力,基于聚氨酯的FRP具有更好的抗疲劳性。研究结果表明,聚氨酯基FRP优异的抗疲劳性归因于良好的基体韧性。

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