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Trans-scale analysis of composite overwrapped pressure vessel at cryogenic temperature

机译:低温下复合包裹压力容器的跨尺度分析

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摘要

Composite over-wrapped pressure vessels (COPVs) are ideal structures for the gaseous helium vessels that is located within the liquid hydrogen (LH2) fuel tank. Their thermo-mechanical properties at cryogenic temperatures are critical to ensure the safety and reliability requirements. Most of the current analyses of thermal deformation only focus on the mismatch of thermal expansion coefficients between metal liner and composite winding layer, as the winding layers were usually assumed to be homogeneous material. However, the mismatch deformation between the reinforcing phase and the matrix phase is also significant to the micro-crack incubation, which is critical to the failure of structure. In this paper, a computational model of COPVs is developed based on the micro-structure of COPV. Finite element analysis is performed on a representative volume element based on the detailed structure of fiber/matrix to determine the effective elastic constants and thermal expansion coefficients at micro-scale. This micromechanical model gives higher prediction quality and more details about the thermo-mechanical deformation of COPV at cryogenic temperature. These microscopic details are critical to the future design of COPV structure with consideration of crack incubation. (C) 2016 Elsevier Ltd. All rights reserved.
机译:复合包裹压力容器(COPV)是位于液态氢(LH2)燃料箱内的气态氦容器的理想结构。它们在低温下的热机械性能对于确保安全性和可靠性要求至关重要。当前大多数的热变形分析仅关注金属衬里和复合绕组层之间的热膨胀系数不匹配,因为通常认为绕组层是均质材料。然而,增强相与基体相之间的失配变形对微裂纹的温育也很重要,这对于结构的破坏至关重要。本文基于COPV的微观结构,建立了COPV的计算模型。基于纤维/基质的详细结构,对具有代表性的体积元素进行有限元分析,以确定有效的弹性常数和热膨胀系数。该微力学模型提供了更高的预测质量,以及有关低温下COPV的热机械变形的更多细节。这些微观细节对于考虑裂纹孵化的COPV结构的未来设计至关重要。 (C)2016 Elsevier Ltd.保留所有权利。

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