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Prediction of the notched strength of woven-ply PolyPhenylene Sulfide thermoplastic composites at a constant high temperature by a physically-based model

机译:基于物理模型预测机织聚苯硫醚热塑性复合材料在恒定高温下的缺口强度

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A simple physically-based model - the Critical Damage Growth model - derived from fracture mechanics criteria has been applied to quasi-isotropic carbon fibers woven-ply reinforced PolyPhenylene Sulfide (PPS) laminates to predict their notched strength under constant high temperature conditions. The tested notched specimens are characterized by an elastic-brittle response resulting from transverse matrix cracking and fiber breakage near the notch tip. This model requires only, as input parameters, the unnotched strength and fracture toughness of the laminate determined from the measurements of critical strain energy release rates. The translaminar fracture toughness has been calculated by means of the compliance method applied to quasi-isotropic Single-Edge Notch specimens with different initial crack lengths. For various hole diameters, the capabilities of the Critical Damage Growth model are very good to predict the notched strength of quasi-isotropic C/PPS laminates tested at a temperature higher than glass transition temperature when PPS matrix ductility and toughness are exacerbated. (C) 2016 Elsevier Ltd. All rights reserved.
机译:从断裂力学标准得出的简单的基于物理的模型-临界损伤增长模型-已应用于准各向同性碳纤维编织增强的聚苯硫醚(PPS)层压板,以预测其在恒定高温条件下的缺口强度。测试的缺口试样的特征在于,由于横向基体开裂和缺口尖端附近的纤维断裂而产生的弹性-脆性响应。该模型仅需要根据临界应变能释放速率的测量结果确定的层压板的无缺口强度和断裂韧性作为输入参数。通过适用于具有不同初始裂纹长度的准各向同性单边缺口试样的顺应性方法,计算出层间断裂韧性。对于各种孔径,“临界损伤增长”模型的功能非常好,可以预测在高于玻璃化转变温度的温度下测试的准各向同性C / PPS层压板的缺口强度,这会加剧PPS基质的延展性和韧性。 (C)2016 Elsevier Ltd.保留所有权利。

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