Simulation of Hydrogen‐Induced Cracking Behavior of Austenitic Stainless Steel 316L With Phase‐Field Method
- 1. Department of Engineering Graphics, School of Science, Xi'an University of Science and Technology, Xi'an 710054, Shaanxi, China
- 2. Department of Mechanical Design, School of Mechanical Engineering, Xi'an University of Science and Technology, Xi'an 710054, Shaanxi, China
- 3. Human Resources Department, China Tobacco Shaanxi Industrial Co., Ltd, Xi'an 710054, Shaanxi, China
Description
Hydrogen‐induced cracking (HIC) is one of the main failure modes of hydrogen after entering the material. In this paper, the hydrogen‐induced fracture behavior of austenitic stainless steel (316L) was studied, electrochemical hydrogen charging and mechanical testing of 316L were carried out, the stress–strain curves of samples before and after hydrogen charging were analyzed, and a phase‐field model of hydrogen embroilment fracture was established to study the hydrogen‐induced fracture behavior of 316L based on weak bond theory, Fick's law, and energy phase‐field formula. The numerical results show that hydrogen can significantly reduce the material's tensile strength and fracture strain, resulting in the loss of plasticity. Under the action of applied load, hydrogen is enriched in the stress concentration position, which increases the hydrogen concentration in this area, reduces the atomic bonding force and the critical energy release rate, increases the damage of the material, and causes damage fractures. The length‐scale parameter (l) has no effect on the crack path, and the increase of the l will lead to the reduction of the maximum bearing capacity of the specimen. The hydrostatic pressure distribution is consistent with the hydrogen concentration distribution, and the hydrogen concentration is enriched at a higher hydrostatic pressure before the material is completely damaged and fractured, while the hydrogen concentration at the tip of the new crack decreases after the material fails and fractures.
Files
10.1155_stni_6649398.pdf
Files
(2.4 MB)
| Name | Size | Download all |
|---|---|---|
|
md5:174bbd2d87b37d0cf22930d3c5829360
|
2.4 MB | Preview Download |
System files
(68.9 kB)
| Name | Size | Download all |
|---|
Additional details
Identifiers
- DOI
- 10.1155/stni/6649398;
- Crossref Funder ID
- 10.13039/501100001809;
Publishing Information
- Journal Title
- Science and Technology of Nuclear Installations
- Journal Volume
- 2024
- Journal Issue
- 1
- ISSN
- 1687-6075
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- BONDING; CONCENTRATION RATIO; CRACK PROPAGATION; CRACKS; DAMAGE; ELECTROCHEMISTRY; FRACTURE MECHANICS; FRACTURE PROPERTIES; FRACTURES; HYDROGEN; PLASTICITY; SIMULATION; STAINLESS STEEL-316L; STRAINS; STRESSES; TENSILE PROPERTIES
- Descriptors DEC
- ALLOYS; AUSTENITIC STEELS; CARBON ADDITIONS; CHEMISTRY; CHROMIUM ALLOYS; CHROMIUM STEELS; CHROMIUM-MOLYBDENUM STEELS; CHROMIUM-NICKEL STEELS; CHROMIUM-NICKEL-MOLYBDENUM STEELS; CORROSION RESISTANT ALLOYS; DIMENSIONLESS NUMBERS; ELEMENTS; FABRICATION; FAILURES; HEAT RESISTANT MATERIALS; HEAT RESISTING ALLOYS; HIGH ALLOY STEELS; IRON ALLOYS; IRON BASE ALLOYS; JOINING; LOW CARBON-HIGH ALLOY STEELS; MATERIALS; MECHANICAL PROPERTIES; MECHANICS; MOLYBDENUM ALLOYS; NICKEL ALLOYS; NONMETALS; STAINLESS STEELS; STEEL-CR17NI12MO3-L; STEELS; TRANSITION ELEMENT ALLOYS
Optional Information
- Copyright
- © Author(s)
- Contract/Grant/Project number
- 52175145, 2023-YBGY-112, 2023-YBGY-335
- Notes
- Record automatically processed
- Funding organization
- National Natural Science Foundation of China, Key Research and Development Projects of Shaanxi Province