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DESIGNING COMPOSITES FOR GRACEFUL FAILURE

机译:设计复合材料,用于优雅故障

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摘要

When inevitable, failure in composite laminates is preferred to occur gracefully to avoid loss of property and possibly life. While the inherent inhomogeneity leads to slow dissipation of damage-related energy, overall failure is fiber-dominated and occurs in a rather brittle manner. Multidirectional plies usually give a more ductile response. Additionally, stiffness and strength as well as cost are important factors to consider in designing composite laminates. It is hence desirable to optimize for high mechanical properties and low cost while keeping graceful failure. Designing composite laminates with hybrid systems and layups, which permit gradual damage energy dissipation, are two ways proposed in this work to optimize for mechanical properties while avoiding catastrophic failure. In the hybrid system design, combining the less expensive glass reinforced plies with carbon reinforced plies offers a cost-effective product, marginal mechanical properties change and ductile profile upon failure. Hybrid glass/carbon composite laminates subjected to three-point bending showed strain to failure which is double that measured for carbon composite specimens, without affecting the ultimate load. Energy dissipation mechanisms were also created by building laminates which were intentionally made discontinuous by introducing cuts in the fibers of the interior plies. This created a longer path for damage before cutting through the next ply resulting in double failure strain with marginal reduction in load. The effect of fiber discontinuity in terms of spacing and distribution are among the factors considered.
机译:当不可避免的时,复合层压板中的失效是优选优雅的,以避免失去财产和可能的生活。虽然固有的不均匀性导致损坏损坏相关的能量,但总体失效是纤维主导的,并且以相当脆的方式发生。多向帘布层通常给出更具韧性的响应。另外,刚度和强度以及成本是在设计复合层压板上考虑的重要因素。因此,希望优化高机械性能和低成本,同时保持优雅的故障。设计具有混合系统的复合材料层压板和允许逐渐损坏的能量耗散,是在这项工作中提出的两种方式,以优化机械性能,同时避免灾难性故障。在混合系统设计中,将较便宜的玻璃增强层与碳增强层组合提供经济高效的产品,边际机械性能变化和失效时的韧性曲线。经过三点弯曲的混合玻璃/碳复合层压板显示出含有碳复合标本的双倍的失效,而不会影响最终载荷。通过构建层压材料,还通过构建层压材料来创建能量耗散机制,这是通过在内部层的纤维中引入切割而故意造成的。这在切割下一个帘布层之前产生了更长的损坏路径,导致双重破坏应变,负荷的边际降低。纤维不连续性在间距和分布方面的影响是考虑的因素之一。

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