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Numerical investigation on the leaked nature gas diffusion of underground gas pipeline through soil to atmosphere
Author(s) -
Tiantian Zhang,
Yuxin Qin,
Dongliang Han,
Zonglin Luo,
Yufei Tan
Publication year - 2021
Publication title -
iop conference series earth and environmental science
Language(s) - English
Resource type - Journals
eISSN - 1755-1307
pISSN - 1755-1315
DOI - 10.1088/1755-1315/804/2/022105
Subject(s) - leakage (economics) , diffusion , gaseous diffusion , diffusion process , porosity , leak , environmental science , soil gas , atmosphere (unit) , computer simulation , geotechnical engineering , corrosion , petroleum engineering , materials science , soil water , mechanics , soil science , environmental engineering , geology , composite material , engineering , meteorology , thermodynamics , macroeconomics , fuel cells , knowledge management , innovation diffusion , computer science , physics , chemical engineering , economics
When the buried gas pipeline leaks due to corrosion, aging, overload and other reasons, serious safety accidents are easy to occur. In this paper, a three-dimensional numerical model is established to simulate the underground gas diffusion from the directly buried pipeline, through the soil to the atmosphere. Using the model, the diffusion characteristics under the conditions of different initial pipeline pressures and different soil porosities are comparatively simulated and analysed. As indicated by the numerical results, when pinhole leakage occurs, the gas concentration exhibits a symmetrical distribution in the horizontal and axial directions. The gas content gradually reduces, as the distance from the leakage point increases. The diffusion process and gas content are largely determined by the initial leak pressure, as well as the flow resistance in accordance with the soil porosity.

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