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首页> 外文期刊>Materials science forum >Mechanical Study of Carbon Fiber Reinforced Plastic and Thin-Walled Metal Liner in Bi-Material COPV Based on Grid Theory Optimization
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Mechanical Study of Carbon Fiber Reinforced Plastic and Thin-Walled Metal Liner in Bi-Material COPV Based on Grid Theory Optimization

机译:基于网格理论优化的双材料COPV碳纤维增强塑料和薄壁金属衬里的机械研究

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摘要

Composite over-wrapped pressure vessel (COPV) with ultra-thin metal liner and high strength carbon fiber reinforced plastic (CFRP) structure was widely used in space system. Meanwhile, there are some difficulties in the calculation of COPV stress-strain state related to the elastic-plastic liner and elastic composite. In this paper a novel design theory was proposed for calculating stress distribution in the bi-material COPV and determining the optimal thickness parameters of COPV based on traditional grid theory optimization. This new theory named Parameters Correspondence Relationship Structure Design Method (PCRSDM) can increase the design precision and structure performance factor of COPV compared to traditional grid theory. The correct models of mechanical characteristic between liner and CFRP are established from the view of optimized grid theory, the present theory is useful to develop a theoretical framework to calculate and design the COPV double shells. The COPV stress-strain behavior is also systemically studied by the ANSYS finite element analysis (FEA), the results show good agreement between FEA simulation and PCRSDM calculation. Both FEA and PCRSDM can meet the design requirements of COPV. A complete design, development and qualification testing of a specialized COPV used to satellite propulsion system was successfully conducted to verify the COPV design in terms of PCRSDM and FEA, the result show that PCRSDM is suitable for the design of COPV.
机译:具有超薄金属衬里和高强度碳纤维增强塑料(CFRP)结构的复合压力容器(COPV)广泛应用于太空系统。同时,在与弹性塑料衬里和弹性复合材料相关的COPV应力 - 应变状态下存在一些困难。本文提出了一种新颖的设计理论,用于计算双材料COPV中的应力分布,并基于传统网格理论优化确定COPV的最佳厚度参数。这种新的理论名为参数对应关系结构设计方法(PCRSDM)可以增加与传统网格理论相比COPV的设计精度和结构性能因子。从优化的网格理论的视图建立了衬垫和CFRP之间的正确模型,目前的理论可用于开发理论框架来计算和设计COPV双壳。 ANSYS有限元分析(FEA)系统地研究了COPV应力 - 应变行为,结果显示了FEA模拟和PCRSDM计算之间的良好一致性。 FEA和PCRSDM都能满足COPV的设计要求。成功进行了完整的设计,开发和资格测试,用于卫星推进系统的专业COPV,以验证PCRSDM和FEA方面的COPV设计,结果表明PCRSDM适用于COPV的设计。

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