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首页> 外文期刊>Journal of Composite Materials >Investigation of interlayer hybridization effect on burst pressure performance of composite overwrapped pressure vessels with load-sharing metallic liner
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Investigation of interlayer hybridization effect on burst pressure performance of composite overwrapped pressure vessels with load-sharing metallic liner

机译:具有载荷金属衬里复合复合压力容器爆发压力性能的层间杂交效应研究

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In this study, multi-layered composite overwrapped pressure vessels for high-pressure gaseous storage were designed, modeled by finite element method and manufactured by filament winding technique. 34CrMo4 steel was selected as a load-sharing metallic liner. Glass and carbon filaments were overwrapped on the liner with a winding angle of [+/- 11 degrees/90 degrees(2)](3) to obtain fully overwrapped composite reinforced vessel with non-identical front and back dome endings. The vessels were loaded with increasing internal pressure up to the burst pressure level. The mechanical performances of pressure vessels, (i) fully overwrapped with glass fibers and (ii) with additional two carbon hoop layers on the cylindrical section, were investigated by both experimental and numerical approaches. In numerical approaches, finite element analysis was performed featuring a simple progressive damage model available in ANSYS software package for the composite section. The metal liner was modeled as elastic-plastic material. The results reveal that the finite element model provides a good correlation between experimental and numerical strain results for the vessels, together with the indication of the positive effect on radial deformation of the COPVs due to the composite interlayer hybridization. The constructed model was also able to predict experimental burst pressures within a range of 8%. However, the experimental and finite element analysis results showed that hybridization of hoop layers did not have any significant impact on the burst pressure performance of the vessels. This finding was attributed to the change of load-sharing capacity of composite layers due to the stiffness difference of carbon and glass fibers.
机译:在该研究中,设计了用于高压气体存储的多层复合复合压力容器,通过有限元法建模,并通过丝绕组技术制造。选择34CrMO4钢作为负载共用金属衬里。玻璃和碳丝覆盖在衬里上,绕组角度为[+/- 11度/ 90度(2)](3),以获得具有非相同前后圆顶端部的完全超包复合增强容器。装载血管随着爆破压力水平的增加而增加。通过实验和数值方法研究了用玻璃纤维完全覆盖的压力容器,(i)与圆柱形部分的附加两个碳箍层完全包裹的机械性能。在数值方法中,进行有限元分析,以复合部分的ANSYS软件包中提供的简单渐进式损坏模型。金属衬垫被建模为弹性塑料材料。结果表明,有限元模型在血管的实验性和数值应变结果之间提供了良好的相关性,以及由于复合层间杂交而对COPV的径向变形的正效作用的指示。构造的模型也能够预测在8%范围内的实验突发压力。然而,实验和有限元分析结果表明,箍层的杂交对血管的突发压力性能没有任何显着影响。由于碳和玻璃纤维的刚度差异,该发现归因于复合层的载荷分布容量的变化。

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