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A literature review of failure prediction and analysis methods for composite high-pressure hydrogen storage tanks

机译:复合高压储氢罐失效预测与分析方法的文献综述

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With the development of hydrogen fuel cell vehicles, the on-board hydrogen storage technology with safety, efficiency and economy has become a fundamental part. Low cost, light weight and good safety performance are required for the on-board hydrogen storage tanks. The composite high-pressure hydrogen storage tank has been recognized as an efficient solution that could address these problems. However, the complex working environment of hydrogen-thermo-mechanism presents challenge to the failure analysis and predictive model establishment of the composite hydrogen storage tanks. The crucial parameters or indicators for tank's failure analysis include burst pressure, damage state and fatigue lifetime, etc. So this paper gives a comprehensive review on the failure behavior analysis methods and prediction models of composite high-pressure hydrogen storage tanks from the literature. First, the failure analysis methods of composite high-pressure hydrogen storage tanks are summarized. Second, the latest literature regarding failure mode predictive methods and models of type III and type IV tanks are reviewed. The different failure criteria are compared and summarized, including some new failure criteria. These criteria enable failure analysis methods to obtain the interaction information on the interaction between the microscopic and macroscopic aspects of the composite. Damage evolution model and constitutive model are summarized. The post-initial failure behavior of the composite laminates structure is simulated by the material property degradation method (MPDM), especially the continuum damage mechanics (CDM) in conjunction with commercial finite element (FE) analysis method. The process of progressive failure analysis of composite tank is summarized as a reference for subsequent failure analysis. The future work of progressive failure analysis should focus on the initial failure of the composite material and microscopic failure mechanisms. The burst, fiber damage and fatigue life are the mainly investigated failure modes for type III composite hydrogen storage tank. For Type IV, the mainly researched failure modes are the collapse and blistering of the liner, burst and damage. The different finite element analysis methods and failure predictive models were classified and summarized. Further improvements were required for the simulation models of full-scale structure of the tank in the working environment or under the complex fiber winding modes. The liner of the type IV cylinder is completely distinct from that of the type III, therefore the behavior of collapse and blistering of the liner needs to be further investigated. The factors that affect collapse and blistering should be explored. The future research need focus on controlling these factors and monitoring the effects of these factors towards structural strength. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:随着氢燃料电池汽车的发展,具有安全性,效率和经济性的车载储氢技术已成为基础。车载储氢罐需要低成本,轻量化和良好的安全性能。复合高压储氢罐已被公认为是可以解决这些问题的有效解决方案。然而,复杂的氢热机制工作环境给复合储氢罐的失效分析和预测模型的建立提出了挑战。储罐失效分析的关键参数或指标包括爆破压力,损伤状态和疲劳寿命等。因此,本文从文献上对复合高压储氢罐的失效行为分析方法和预测模型进行了全面综述。首先,总结了复合高压储氢罐的失效分析方法。第二,回顾了有关III型和IV型储罐失效模式预测方法和模型的最新文献。比较和总结了不同的失败标准,包括一些新的失败标准。这些标准使失效分析方法能够获得有关复合材料微观和宏观方面之间相互作用的相互作用信息。总结了损伤演化模型和本构模型。通过材料性能退化方法(MPDM),特别是连续损伤力学(CDM)结合商业有限元(FE)分析方法,模拟了复合材料层合结构的初始破坏行为。总结了复合罐渐进式失效分析的过程,为后续失效分析提供参考。渐进式失效分析的未来工作应集中在复合材料的初始失效和微观失效机理上。爆裂,纤维损伤和疲劳寿命是III型复合储氢罐主要研究的失效模式。对于IV型,主要研究的失效模式是衬套的塌陷和起泡,破裂和损坏。分类并总结了不同的有限元分析方法和故障预测模型。在工作环境或复杂的纤维缠绕模式下,需要对罐的全尺寸结构的仿真模型进行进一步的改进。 IV型气缸的衬套与III型气缸的衬套完全不同,因此需要进一步研究衬套的塌陷和起泡行为。应该探讨影响坍塌和起泡的因素。未来的研究需要集中于控制这些因素并监测这些因素对结构强度的影响。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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