首页> 外文会议>ASME international mechanical engineering congress and exposition >EFFECTS OF CRIMPED FIBER PATHS ON MIXED MODE DELAMINATION BEHAVIORS IN WOVEN FABRIC COMPOSITES
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EFFECTS OF CRIMPED FIBER PATHS ON MIXED MODE DELAMINATION BEHAVIORS IN WOVEN FABRIC COMPOSITES

机译:蠕变纤维路径对机织织物复合材料混合模式脱层行为的影响

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This research investigated the fracture toughness and crack propagation behaviors of woven fabric reinforced polymer (WFRP) composite laminates subjected to single and mixed mode loadings using numerical models. The objectives were to characterize the fracture behaviors and toughness properties at the fiber/matrix interfaces and to identify mechanisms that can be exploited for increasing delamination resistance. The mode-I and mode-II strain energy release rates G_I and G_(II), the effective critical strain energy release rate, G_(c_eff), (also known as the mixed mode fracture toughness) and crack growth stabilities were determined as functions of crimped fiber paths using meso-scale, 2D multi-continuum finite element models. Three variations of a plain-woven fabric architecture were considered; each having different crimped fiber paths. The presence of mixed-mode strain energy release rates at the meso-scale due to the curvilinear fiber paths was shown to influence the interlaminar fracture toughness and was explored for pure single-mode and mixed-mode global loadings. It was concluded that woven fabric composites provided a Fracture Toughness Conversion Mechanism (FTCM) and their toughness properties were dependent upon and varied with positon along the crimped fiber paths. The FTCM was identified as an advanced tailoring mechanism that can be further utilized to improve toughness and damage tolerance thresholds especially when the mode-II fracture toughness G_(IIc) is greater than the mode-I fracture toughness G_(Ic).
机译:本研究使用数值模型研究了单模和混合模式载荷下机织织物增强聚合物(WFRP)复合层压板的断裂韧性和裂纹扩展行为。目的是表征纤维/基体界面处的断裂行为和韧性,并确定可用于提高抗分层性的机制。确定I型和II型应变能释放率G_I和G_(II),有效临界应变能释放率G_(c_eff)(也称为混合模式断裂韧性)和裂纹扩展稳定性使用中尺度的二维多连续体有限元模型对卷曲的光纤路径进行分析。考虑了平纹织物结构的三个变体。每个都有不同的卷曲纤维路径。曲线纤维路径导致的介观尺度上的混合模式应变能释放速率的存在被证明会影响层间断裂韧性,并被研究用于纯单模式和混合模式的整体载荷。结论是,机织织物复合材料提供了断裂韧性转化机制(FTCM),其韧性取决于卷曲纤维路径上的位置,并随位置的变化而变化。 FTCM被认为是一种先进的剪裁机制,可以进一步用于提高韧性和损伤容限阈值,尤其是当II型断裂韧性G_(IIc)大于I型断裂韧性G_(Ic)时。

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