Investigation of Interlayer Hybridization Effect on Burst Pressure Performance of Composite Overwrapped Pressure Vessels With Load-Sharing Metallic Liner

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Date

2020

Authors

Kangal, Serkan
Kartav, Osman
Tanoğlu, Metin
Aktaş, Engin
Artem, Hatice Seçil

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Journal ISSN

Volume Title

Publisher

SAGE Publications

Open Access Color

Green Open Access

Yes

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0

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1

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No
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Abstract

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.

Description

Keywords

Composite overwrapped pressure vessels, Filament winding, Hybridization, Burst pressure, Finite element analysis, ANSYS, Polymer composites

Fields of Science

02 engineering and technology, 0210 nano-technology

Citation

WoS Q

Q3

Scopus Q

Q2
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OpenCitations Citation Count
31

Source

Journal of Composite Materials

Volume

54

Issue

7

Start Page

961

End Page

980
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CrossRef : 31

Scopus : 37

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Mendeley Readers : 74

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37

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40

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Page Views

1674

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821

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