Development and Analysis of Composite Overwrapped Pressure Vessels for Hydrogen Storage

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Green Open Access

Yes

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Abstract

In this study, composite overwrapped pressure vessels (COPVs) for high-pressure hydrogen storage were designed, modeled by finite element (FE) method, manufactured by filament winding technique and tested for burst pressure. Aluminum 6061-T6 was selected as a metallic liner material. Epoxy impregnated carbon filaments were overwrapped over the liner with a winding angle of +/- 14 degrees to obtain fully overwrapped composite reinforced vessels with non-identical front and back dome layers. The COPVs were loaded with increasing internal pressure up to the burst pressure level. During loading, deformation of the vessels was measured locally with strain gauges. The mechanical performances of COPVs designed with various number of helical, hoop and doily layers were investigated by both experimental and numerical methods. In numerical method, FE analysis containing a simple progressive damage model available in ANSYS software package for the composite section was performed. The results revealed that the FE model provides a good correlation as compared to experimental strain results for the developed COPVs. The burst pressure test results showed that integration of doily layers to the filament winding process resulted with an improvement of the COPVs performance.

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Fields of Science

02 engineering and technology, 0210 nano-technology

Citation

WoS Q

Q3

Scopus Q

Q2
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OpenCitations Citation Count
24

Source

Journal of Composite Materials

Volume

55

Issue

Start Page

4141

End Page

4155
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CrossRef : 24

Scopus : 32

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Mendeley Readers : 77

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32

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31

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5672

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127

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Sustainable Development Goals

AFFORDABLE AND CLEAN ENERGY7
AFFORDABLE AND CLEAN ENERGY