材料科学
焊接
氢脆
因科镍合金
氢
冶金
钨极气体保护焊
氢气储存
储罐
脆化
固体力学
碳钢
应变率
液化天然气
钨
复合材料
碳纤维
扩散
液态氢
延展性(地球科学)
气态氢
电弧焊
作者
Chenjun Yu,Yuji Yoshino,Yuji Abiru,Hiroshi Tsujigami,Xixian Li,Shohei Uranaka,Mitsuo Kimura,Tomoya Kawabata
出处
期刊:Welding in The World
[Springer Science+Business Media]
日期:2025-10-30
卷期号:70 (1): 227-240
被引量:1
标识
DOI:10.1007/s40194-025-02199-9
摘要
Abstract Liquefied hydrogen storage tanks are poised to play a pivotal role in the realization of a carbon–neutral society. While stainless steel is considered the material of choice for the first 50,000-m 3 tank, there is a potential for carbon steel to be employed as the inner tank material in the future to increase capacity. The welding materials combined with the carbon steel are expected to be Hastelloy and Inconel alloys, which are currently used in LNG (liquefied natural gas) tank construction. However, since some reports have shown that the effect of Ni on hydrogen embrittlement properties deteriorates significantly on the high-Ni side, we conducted evaluation tests that took into account the operating environment. The SSRT (slow strain rate testing) revealed that the GTAW (gas tungsten arc welding) weld metal exhibited severe hydrogen embrittlement, whereas no significant crack propagation was observed in the constant-load CT (compact tension) tests. We analyzed the discrepancies between the two experimental methods and concluded that the differences are largely related to pre-straining and hydrogen diffusion and accumulation. From a FFS (fitness for service) perspective, the results of the CT tests are considered more representative of real-world conditions, indicating that this material combination is suitable for use in liquid hydrogen storage tanks.
科研通智能强力驱动
Strongly Powered by AbleSci AI