Damage evolution in unfilled EPDM during various types of repeated hydrogen high-pressure cycles

被引:0
作者
Hiroaki Ono
Azdine Nait-Ali
Sylvie Castagnet
机构
[1] Institut PRIME (UPR 3346 CNRS/ISAE-ENSMA/UNIVERSITÉ de Poitiers),Department of Physics and Mechanics of Materials
[2] Kyushu University,Research Center for Hydrogen Industrial Use and Storage (HYDROGENIUS)
来源
International Journal of Fracture | 2023年 / 242卷
关键词
Decompression failure; Crack; Cavitation; Rubber; In-situ; Cumulative damage;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of repeated high-pressure hydrogen cycles on the decompression failure of unfilled EPDM was investigated from in-situ images of the damage field during decompression. The purpose was to characterize the relative influence of some parameters of the pressure cycle (decompression rate, residual pressure and time between two cycles) and to investigate damage cumulative features. Beyond that, the aim of this wide range of decompression conditions was to separately vary the external pressure and gas diffusion histories, in order to discuss them as driving force contributions to damage growth. Such extended decompression conditions confirmed coupled contributions of diffusion and mechanics. Exposure conditions allowing a significant part of gas diffusion promoted clustering and later macro-cracking, provided that the residual external pressure was low enough. A more heterogeneous spatial distribution of damage was also observed, within clusters and at the sample scale, with non-trivial re-opening of cavities from one cycle to another. More restrictive exposure conditions (i.e., limited diffusion times or residual external pressure) reduced or prevented the onset of cavities, clustering and transition to macro-cracking. More homogeneous damage fields were observed, along with more systematic re-appearing and growth of the same defects with cycling. Damage processes appeared more spatially confined.
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页码:153 / 167
页数:14
相关论文
共 71 条
[1]  
Briscoe BJ(1994)Explosive decompression failure of rubbers: a review of the origins of pneumatic stress induced rupture in elastomers Rubber Chem Technol 67 384-416
[2]  
Savvas T(1990)Explosive decompression in elastomers—Internal blistering and fracturing in rubbers after high-pressure exposure to gases Cell Polym 9 206-228
[3]  
Kelly CT(2020)Local kinetics of cavitation in hydrogen−exposed EPDM using in situ X−Ray tomography: focus on free surface effect and cavity interaction Polym Test 91 106723-2525
[4]  
Campion RP(1969)Nucleation and growth of gas bubbles in elastomers J Appl Phys 40 2520-818
[5]  
Fazal M(2011)On key parameters influencing cavitation damage upon fast decompression in a hydrogen saturated elastomer Polym Testing 30 811-130
[6]  
Castagnet S(2022)Relationships between properties and rapid gas decompression (RGD) resistance of various filled nitrile butadiene rubber vulcanizates under high-pressure hydrogen Mater Today Commun 30 103038-129
[7]  
Nait–Ali A(2016)Time-resolved statistics of cavity fields nucleated in a gas-exposed rubber under variable decompression conditions–support to a relevant modeling framework Polym Test 51 122-19022
[8]  
Nishimura S(2011)Evaluation on high-pressure hydrogen decompression failure of rubber O-ring using design of experiments Int J Autom Eng 2 123-23
[9]  
Gent AN(2021)Damage evolution in polymer due to exposure to high-pressure hydrogen gas Int J Hydrogen Energy 46 19001-4274
[10]  
Tompkins DA(2021)The poker-chip experiments of Gent and Lindley (1959) explained J Mech Phys Solids 150 104359-385