Molecular dynamics simulation of sI methane hydrate under compression and tension

Abstract Molecular dynamics (MD) analysis of methane hydrate is important for the application of methane hydrate technology. This study investigated the microstructure changes of sI methane hydrate and the laws of stress–strain evolution under the condition of compression and tension by using MD sim...

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Bibliographic Details
Published in:Open Chemistry
Main Authors: Wang, Qiang, Tang, Qizhong, Tian, Sen
Format: Article in Journal/Newspaper
Language:unknown
Published: Walter de Gruyter GmbH 2020
Subjects:
Online Access:http://dx.doi.org/10.1515/chem-2020-0008
https://www.degruyter.com/view/journals/chem/18/1/article-p69.xml
https://www.degruyter.com/downloadpdf/journals/chem/18/1/article-p69.xml
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Summary:Abstract Molecular dynamics (MD) analysis of methane hydrate is important for the application of methane hydrate technology. This study investigated the microstructure changes of sI methane hydrate and the laws of stress–strain evolution under the condition of compression and tension by using MD simulation. This study further explored the mechanical property and stability of sI methane hydrate under different stress states. Results showed that tensile and compressive failures produced an obvious size effect under a certain condition. At low temperature and high pressure, most of the clathrate hydrate maintained a stable structure in the tensile fracture process, during which only a small amount of unstable methane broke the structure, thereby, presenting a free-motion state. The methane hydrate cracked when the system reached the maximum stress in the loading process, in which the maximum compressive stress is larger than the tensile stress under the same experimental condition. This study provides a basis for understanding the microscopic stress characteristics of methane hydrate.