Hydrogen, as a clean energy source, has high calorific value, low pollution, and renewability. Injecting hydrogen into natural gas pipelines is efficient and economical for transportation. Unfortunately, flammable gas pipelines often leak due to material corrosion, construction defects, and external interference. To this end, a numerical method is established to investigate the gas diffusion behaviour and accumulation of leaked natural gas from an underground pipe to the soil. The variations in gas concentrations under different leak conditions, as well as the effects of pipeline release pressure orifice diameters (4.0–5.8 MPa), orifice diameters (1, 5, 10 mm), hydrogen-doped ratio (0–30%), and soil porosity (0.1–0.4) on the mass flow rate at the leakage point are evaluated. The simulation results indicated that the mass flow rate and gas concentration increase fast with release pressure. Leakage with high hydrogen content can lead to an opposite trend between methane and hydrogen concentration. The soil porosity directly determines the gas concentration distribution of diffusion at different monitoring points. Moreover, the quantitative relationship between the mass flow rate and different influencing factors has also been fitted. Finally, an empirical correlation formula is used to explain the leakage and diffusion characteristics of hydrogen-doped natural gas in soil.
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1 January 2026
Research Article|
September 23 2025
Numerical simulation of leakage and diffusion behaviour of hydrogen-doped natural gas from buried pipeline Available to Purchase
Yixiang Zhang;
College of Petroleum Engineering,
Xi’an Shiyou University
, Xi’an, China
Corresponding author Yixiang Zhang (czhang26@126.com)
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Xiaomei Ma;
Xiaomei Ma
College of Petroleum Engineering,
Xi’an Shiyou University
, Xi’an, China
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Zhuoyang Xia;
Zhuoyang Xia
College of Petroleum Engineering,
Xi’an Shiyou University
, Xi’an, China
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Linjun Wang
Linjun Wang
Pipeline Department of Pipeline Storage and Transportation Center,
Zhejiang Shiyou Chemical Industry Co, Ltd
, Zhoushan, China
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Corresponding author Yixiang Zhang (czhang26@126.com)
Competing interests The authors declare that they have no conflicts of interest.
Publisher: Emerald Publishing
Received:
August 19 2024
Accepted:
August 11 2025
Online ISSN: 1496-256X
Print ISSN: 1496-2551
Funding
Funding Group:
- Award Group:
- Funder(s): Shaanxi Provincial Education Department
- Award Id(s): 23JK0597
- Funder(s):
- Award Group:
- Funder(s): Natural Science Basic Research Plan of Shaanxi Province in China
- Award Id(s): 2023-JC-QN-0375
- Funder(s):
- Funding Statement(s): This work was supported by the Scientific Research Program Funded by the Shaanxi Provincial Education Department (Program No. 23JK0597) and Natural Science Basic Research Plan of Shaanxi Province in China (Program No. 2023-JC-QN-0375).
© 2025 Emerald Publishing Limited
2025
Emerald Publishing Limited
Licensed re-use rights only
Journal of Environmental Engineering and Science (2026) 21 (1): 72–79.
Article history
Received:
August 19 2024
Accepted:
August 11 2025
Citation
Zhang Y, Ma X, Xia Z, Wang L (2026), "Numerical simulation of leakage and diffusion behaviour of hydrogen-doped natural gas from buried pipeline". Journal of Environmental Engineering and Science, Vol. 21 No. 1 pp. 72–79, doi: https://doi.org/10.1680/jenes.24.00112
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