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首页> 外文期刊>Procedia CIRP >Integrating Allowable Design Strains in Composites with Whole Life Value
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Integrating Allowable Design Strains in Composites with Whole Life Value

机译:将允许的设计菌株整合到具有整个生命周期价值的复合材料中

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Fibre-Reinforced Plastics (FRPs) have been used in civil aerospace vehicles for decades. The current state-of-the-art in airframe design and manufacture results in approximately half the airframe mass attributable to FRP materials. The continual increase in the use of FRP materials over metallic alloys is attributable to the material's superior specific strength and stiffness, fatigue performance and corrosion resistance. However, the full potential of these materials has yet to be exploited as analysis methods to predict physical failure with equal accuracy and robustness are not yet available. The result is a conservative approach to design, but one that can bring benefit via increased inspection intervals and reduced cost over the vehicle life. The challenge is that the methods used in practice are based on empirical tests and real relationships and drivers are difficult to see in this complex process and so the trade-off decision is challenging and uncertain. The aim of this feasibility study was to scope a viable process which could help develop some rules and relationships based on the fundamental mechanics of composite material and the economics of production and operation, which would enhance understanding of the role and impact of design allowables across the life of a composite structure.
机译:纤维增强塑料(FRP)在民用航空航天器中已使用了数十年。机身设计和制造方面的最新技术可将机身质量的一半归功于FRP材料。与金属合金相比,FRP材料的使用持续增加归因于该材料的优异比强度和刚度,疲劳性能和耐腐蚀性。然而,这些材料的全部潜力尚待开发,因为尚无可预测具有同等准确性和鲁棒性的物理故障的分析方法。结果是一种保守的设计方法,但可以通过增加检查间隔和降低车辆使用寿命内的成本来带来收益。挑战在于,实践中使用的方法是基于经验检验的,在这种复杂的过程中很难发现真实的关系和驱动因素,因此,权衡决策具有挑战性和不确定性。这项可行性研究的目的是确定一个可行的过程,该过程可能有助于根据复合材料的基本原理以及生产和运营的经济状况制定一些规则和关系,从而加深对整个设计允许范围的作用和影响的理解。复合结构的寿命。

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