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국산 탄소섬유를 적용한 6.8 L급 복합재 압력용기의 구조안전성 평가 연구

Evaluation of Structural Integrity of 6.8 L Composite Pressure Vessel Manufactured by Domestic Carbon Fiber

Journal of the Korean Society for Precision Engineering 2021;38(12):953-958.
Published online: December 1, 2021

1 국립한밭대학교 대학원 기계공학과

2 국립한밭대학교 기계공학과

1 Department of Mechanical Engineering, Graduate School, Hanbat National University

2 Department of Mechanical Engineering, Hanbat National University

#E-mail: shin955@hanbat.ac.kr, TEL: +82-42-821-1470
• Received: August 18, 2021   • Revised: September 29, 2021   • Accepted: October 7, 2021

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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  • Techno-economic analysis of type III and IV composite hydrogen storage tanks for fuel cell vehicles
    Hyun Kyu Shin, Sung Kyu Ha
    Advanced Composite Materials.2024; 33(4): 527.     CrossRef

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Evaluation of Structural Integrity of 6.8 L Composite Pressure Vessel Manufactured by Domestic Carbon Fiber
J. Korean Soc. Precis. Eng.. 2021;38(12):953-958.   Published online December 1, 2021
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Evaluation of Structural Integrity of 6.8 L Composite Pressure Vessel Manufactured by Domestic Carbon Fiber
J. Korean Soc. Precis. Eng.. 2021;38(12):953-958.   Published online December 1, 2021
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Evaluation of Structural Integrity of 6.8 L Composite Pressure Vessel Manufactured by Domestic Carbon Fiber
Image Image Image Image Image Image Image Image Image
Fig. 1 Dimensions of aluminum liner
Fig. 2 Shape of composite pressure vessel
Fig. 3 Manufacturing process of composite pressure vessel
Fig. 4 Hydrostatic test for composite pressure vessel
Fig. 5 Finite element model of composite pressure vessel
Fig. 6 Winding angles of dome
Fig. 7 Load and boundary conditions
Fig. 8 Internal pressure-strain curves
Fig. 9 Analysis results for maximum fiber direction stress
Evaluation of Structural Integrity of 6.8 L Composite Pressure Vessel Manufactured by Domestic Carbon Fiber

Experimental result of hydrostatic test

Failure pressure [MPa] 50.43
Hoop strain [uε] 16,259.31
Axial strain [uε] 7,419.65
Fiber direction stress [MPa] 2,545.17

Material properties of carbon/epoxy composite

Material property Symbol Value
Elastic modulus
[GPa]
E11 154.48
E22 8.61
E33 8.61
Shear modulus
[GPa]
G12 5.02
G13 5.02
G23 2.50
Poisson’s ratio ν12 0.31
ν13 0.31
ν23 0.45

Material properties of aluminum

Material property Symbol Value
Elastic modulus [GPa] E 71.15
Poisson’s ratio ν 0.33
Yield strength [MPa] Xyield 286
Ultimate strength [MPa] Xult 324
Elongation [%] δ 14

Structural analysis results

Fiber direction stress
[MPa]
Hoop strain
[uε]
Axial strain
[uε]
2,468.91 15,526.1 7,730.41
Table 1 Experimental result of hydrostatic test
Table 2 Material properties of carbon/epoxy composite
Table 3 Material properties of aluminum
Table 4 Structural analysis results