首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >DEVELOPMENT OF NOVEL COMPACT COMPRESSION SPECIMEN FOR MATRIX COMPRESSION DAMAGE INITIATION AND PROPAGATION BEHAVIOR IN FIBER REINFORCED COMPOSITES
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DEVELOPMENT OF NOVEL COMPACT COMPRESSION SPECIMEN FOR MATRIX COMPRESSION DAMAGE INITIATION AND PROPAGATION BEHAVIOR IN FIBER REINFORCED COMPOSITES

机译:用于纤维增强复合材料中基质压缩损伤启动和传播行为的新型紧凑型压缩试样

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Robust design and analysis of carbon fiber reinforced polymers (CFRP) mandates a thorough understanding of the onset and propagation of damaging mechanisms. Damage can manifest from fiber tension, fiber compression, matrix tension, and matrix compression. Of these damage forms, matrix compression has seen the least attention. Previous work has developed experimental specimens that enabled characterization of the onset and propagation of matrix compression damage. However, if high performance composite materials are used complications can arise when the matrix compression strength (σ_(MC)) exceeds the matrix tension strength (σ_(MT)). When the σ_(MC)/σ_(MT) ratio is greater than 2, compact compression (CC) specimens can exhibit matrix tension damage before the onset of matrix compression damage. The onset of matrix tension damage prevents proper characterization of matrix compression damage mechanisms. This paper presents the development of a novel stepped compact compression specimen. The reduced thickness of the stepped region allows significant matrix-compression damage to occur prior to tensile failure. Specimens comprised of 90° plies were fabricated using either a machined taper or a layering process. Both methods were successful however variability in machining generated substantial inconsistency and layering was found to be superior.
机译:碳纤维增强聚合物(CFRP)的鲁棒设计和分析要求彻底了解破坏机制的发病和传播。损伤可以从纤维张力,纤维压缩,基质张力和基质压缩中显现。在这些损害形式中,矩阵压缩最不注意。以前的工作开发了实验标本,使能矩阵压缩损伤的发作和传播的表征能够表征。然而,如果使用高性能复合材料,则当矩阵压缩强度(Σ_(MC))超过矩阵张力强度(Σ_(MT))时,可以出现并发症。当Σ_(MC)/Σ_(MT)的比率大于2时,紧凑的压缩(CC)样本可以在矩阵压缩损伤开始之前表现出基质张力损坏。基质张力损坏的发作可防止矩阵压缩机制的适当表征。本文介绍了一种新型步进紧凑压缩试样的发展。阶梯状区域的减小厚度允许在拉伸失效之前发生显着的基质压缩损伤。使用加工的锥形或分层工艺制造由90°层组成的标本。两种方法都是成功的,然而,发现加工产生的大量不一致和分层的可变性是优越的。

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