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首页> 外文期刊>日本機械学会論文集. A編 >Mode II Interlaminar Fracture under Static and Fatigue Loadings of Alumina Fiber/Epoxy Laminates in Liquid Nitrogen
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Mode II Interlaminar Fracture under Static and Fatigue Loadings of Alumina Fiber/Epoxy Laminates in Liquid Nitrogen

机译:液氮中氧化铝纤维/环氧层压板的静态和疲劳载荷下的II型层间断裂

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摘要

Amoung advanced composite materials, alumina fiber (ALF) /epoxy composites are selected for the structural components of superconducting magnets because of their low thermal conductivity in addition to their higher specific strength and modulus. Since laminate structures are used as the load support system for superconducting magnets, the evaluation of interlaminar strength both under static and fatigue loadings at cryogenic temperature is essential. In the present study, mode II interlaminar fracture toughness and delamination fatigue crack growth behavior in liquid nitorogen (77 K) were investigated with unidirectional ALF/epoxy laminates. Tests were carried out using end notched flexure specimens with special loading apparatus. The fracture toughness values at 77 K were higher than those in laboratory air at room temperature (RT). The fracture mechanism under fatigue loading at 77 K was controlled by the maximum stress, and was completely different from that at RT. Then, the increase of the fatigue crack growth resistance at 77 K from that at RT was observed only under stress ratio, R=0.1. The fractographic observation showed that the resin fracture was dominant for the fracture surfaces of fatigue fracture, suggesting that the microscopic mechanism was different from that at RT where the interfacial fracture was dominant.
机译:在先进的复合材料中,氧化铝纤维(ALF)/环氧树脂复合材料被选作超导磁体的结构部件,因为它们具有较高的比强度和模量,而且导热系数低。由于层压结构被用作超导磁体的负载支撑系统,因此在低温下静态和疲劳负载下评估层间强度至关重要。在本研究中,使用单向ALF /环氧树脂层压板研究了液态Nitorogen(77 K)中的II型层间断裂韧性和分层疲劳裂纹扩展行为。使用带有特殊加载装置的带有缺口的挠曲样品进行测试。 77 K时的断裂韧性值高于室温(RT)的实验室空气中的断裂韧性值。在77 K疲劳载荷下的断裂机理受最大应力控制,与RT时完全不同。然后,仅在应力比R = 0.1下,观察到在77K处的疲劳裂纹扩展阻力比在RT时的增加。断口观察表明,在疲劳断裂的断裂面中,树脂断裂占主导地位,这表明微观机理不同于在室温下界面断裂占优势的RT。

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