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Analysis on the mechanical response of composite pressure vessels during internal pressure loading: FE modeling and experimental correlation

机译:内压加载过程中复合压力容器机械响应的分析:FE模拟与实验相关性

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Commercial development of gaseous hydrogen storage in fuel cell electric vehicles is inevitably subjected to reliable and cost-effective design of composite pressure vessels. In this context, certainty in the design process is sought, which is determined by how well the vessel's mechanical response is understood, but more importantly to which accuracy the final collapse can be predicted. As such, a symbiosis of numerical and experimental work appears as a leading path towards robust design methodologies, where both analyses complement and scrutinize each others validity. This research presents the analysis on the mechanical response of composite pressure vessels during internal pressure loading through the correlation of numerical and experimental results on various degrees of complexity. Based on an extensive experimental dataset, a three-dimensional FE model is implemented on a realistic vessel geometry, evaluating its constitutively elastic behavior, and its response under failure and damage progression. Likewise, an established experimental framework is used to derive data by means of contour scans, outer surface strains, airborne acoustic emissions and final burst pressure. The precise recreation of the vessel geometry, together with the detailed analysis approach, permits to show a reasonable agreement between the predicted and the measured structural responses, the sequence of damage onset, and the final collapse occurring in the cylindrical region (1%). Discrepancies still exist because of the remaining uncertainty concerning the individual layer geometry and the characterization of damage in the helical plies. Altogether, through the alignment of experimental and numerical analyses, this work provides the base for further optimization frameworks, in which an adequate representation of the vessel's meridional thickness profile and material properties stands out as necessary feat to accurately reproduce the mechanical response and final strength in a time- and cost-effective design process.
机译:燃料电池电动车中气体储氢的商业发展不可避免地经受复合压力容器可靠且经济高效的设计。在这种情况下,寻求设计过程中的确定性,这是由船舶的机械响应理解的程度决定,但更重要的是可以预测最终崩溃的准确性。因此,数值和实验工作的共生效果显示为朝着稳健的设计方法的领先路径,其中均分析补充并仔细审查彼此的有效性。本研究通过数值和实验结果对各种复杂性的实验结果的相关性,提出了内部压力负荷期间复合压力容器的机械响应的分析。基于广泛的实验数据集,在现实的船舶几何形状上实施了三维Fe模型,评估其组成型弹性行为,并在失败和损害进展下的反应。同样地,建立的实验框架用于通过轮廓扫描,外表面应变,空机声发射和最终突发压力来导出数据。血管几何的精确娱乐,以及详细的分析方法,允许在预测和测量的结构响应中显示合理的协议,圆柱区域中发生的损伤序列和最终塌陷(<1%) 。由于各层几何形状的剩余不确定性以及螺旋形层中损坏的表征,差异仍然存在。通过对准实验和数值分析的对准,这项工作为进一步的优化框架提供了基础,其中船舶的子午线厚度和材料特性的足够表示是必要的,以准确地再现机械响应和最终强度一个时间和经济高效的设计过程。

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