Optimization of girth welded joint in a high-pressure hydrogen storage tank based on residual stress considerations

2018 ◽  
Vol 43 (33) ◽  
pp. 16154-16168 ◽  
Author(s):  
Chong Wang ◽  
Shengjun Huang ◽  
Shugen Xu
Author(s):  
Kesheng Ou ◽  
Jiong Zheng ◽  
Weijian Luo ◽  
Xufeng Li ◽  
Jingbiao Yang ◽  
...  

To prevent the on-board storage tank from burst at vehicle fire scenario, pressure relief device (PRD) is required to be installed to the tank and timely activated to release internal high-pressure hydrogen. Actually, there are two types of PRDs (i.e. thermally-activated and pressure-activated PRDs), and four types of tanks such as all-metal, hoop/fully-wrapped with metal liner and fully-wrapped with plastic liner. Great importance should be attached to the using of PRDs for all types of tanks in consideration of the risk of tank burst caused by fire. However, there are great differences in the requirements for the using of PRDs in hydrogen storage tank standards such as GTR-HFCV, ISO/TS 15869, JARI S 001 and TSG R006. Compared with compressed natural gas tank standards, PRD requirements in hydrogen storage tank standards are discussed in this paper. Moreover, key influencing factors on the activation of thermally-activated and pressure-activated PRDs are analyzed in detail based on fire test data. Finally, some advices for the using of PRDs of hydrogen storage tanks are proposed.


2018 ◽  
Vol 55 ◽  
pp. 223-231 ◽  
Author(s):  
Chuanchuan Shen ◽  
Li Ma ◽  
Gai Huang ◽  
Yingzhe Wu ◽  
Jinyang Zheng ◽  
...  

Author(s):  
Z. Y. Li ◽  
C. L. Zhou ◽  
Y. Z. Zhao ◽  
Z. L. Hua ◽  
L. Zhang ◽  
...  

Crack growth analysis (CGA) was applied to estimate the cycle life of the high-pressure hydrogen equipment constructed by the practical materials of 4340 (two heats), 4137, 4130X, A286, type 316 (solution-annealed (SA) and cold-worked (CW)), and type 304 (SA and CW) in 45, 85 and 105 MPa hydrogen and air. The wall thickness was calculated following five regulations of the High Pressure Gas Safety Institute of Japan (KHK) designated equipment rule, KHKS 0220, TSG R0002, JB4732, and ASME Sec. VIII, Div. 3. We also applied CGA for four typical model materials to discuss the effect of ultimate tensile strength (UTS), pressure and hydrogen sensitivity on the cycle life of the high-pressure hydrogen equipment. Leak before burst (LBB) was confirmed in all practical materials in hydrogen and air. The minimum KIC required for LBB of the model material with UTS of even 1500 MPa was 170 MPa·m0.5 in 105 MPa. Cycle life qualified 103 cycles for all practical materials in air. In 105 MPa hydrogen, the cycle life by KIH was much shorter than that in air for two heats of 4340 and 4137 sensitive to hydrogen gas embrittlement (HGE). The cycle life of type 304 (SA) sensitive to HGE was almost above 104 cycles in hydrogen, while the cycle life of type 316 (SA and CW) was not affected by hydrogen and that of A286 in hydrogen was near to that in air. It was discussed that the cycle life increased with decreasing pressure or UTS in hydrogen. This behavior was due to that KIH increased or fatigue crack growth (FCG) decreased with decreasing pressure or UTS. The cycle life data of the model materials under the conditions of the pressure, UTS, KIH, FCG and regulations in both hydrogen and air were proposed quantitatively for materials selection for high-pressure hydrogen storage.


2022 ◽  
Vol 46 ◽  
pp. 103761
Author(s):  
Jianjun Ye ◽  
Zhenhua Zhao ◽  
Junxu Cui ◽  
Zhengli Hua ◽  
Wenzhu Peng ◽  
...  

2011 ◽  
Author(s):  
B. P. Vinayan ◽  
K. Sethupathi ◽  
S. Ramaprabhu ◽  
Alka B. Garg ◽  
R. Mittal ◽  
...  

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