Wu Jianyang, Ning Fulong, Trinh Thuat T, Kjelstrup Signe, Vlugt Thijs J H, He Jianying, Skallerud Bjørn H, Zhang Zhiliang
Department of Physics, Research Institute for Biomimetics and Soft Matter, Xiamen University, Xiamen 361005, China.
Faculty of Engineering Science and Technology, Norwegian University of Science and Technology, 7491 Trondheim, Norway.
Nat Commun. 2015 Nov 2;6:8743. doi: 10.1038/ncomms9743.
Despite observations of massive methane release and geohazards associated with gas hydrate instability in nature, as well as ductile flow accompanying hydrate dissociation in artificial polycrystalline methane hydrates in the laboratory, the destabilising mechanisms of gas hydrates under deformation and their grain-boundary structures have not yet been elucidated at the molecular level. Here we report direct molecular dynamics simulations of the material instability of monocrystalline and polycrystalline methane hydrates under mechanical loading. The results show dislocation-free brittle failure in monocrystalline hydrates and an unexpected crossover from strengthening to weakening in polycrystals. Upon uniaxial depressurisation, strain-induced hydrate dissociation accompanied by grain-boundary decohesion and sliding destabilises the polycrystals. In contrast, upon compression, appreciable solid-state structural transformation dominates the response. These findings provide molecular insight not only into the metastable structures of grain boundaries, but also into unusual ductile flow with hydrate dissociation as observed during macroscopic compression experiments.
尽管在自然界中观察到大量甲烷释放以及与天然气水合物不稳定相关的地质灾害,并且在实验室中人工多晶甲烷水合物的水合物分解过程中伴随着延性流动,但天然气水合物在变形作用下的失稳机制及其晶界结构在分子水平上仍未得到阐明。在此,我们报告了单晶和多晶甲烷水合物在机械加载下材料失稳的直接分子动力学模拟。结果表明,单晶水合物中无位错的脆性破坏,以及多晶中从强化到弱化的意外转变。在单轴降压时,应变诱导的水合物分解伴随着晶界脱粘和滑动,使多晶失稳。相比之下,在压缩时,明显的固态结构转变主导了响应。这些发现不仅提供了对晶界亚稳结构的分子洞察,还提供了对宏观压缩实验中观察到的水合物分解时异常延性流动的分子洞察。