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PMID: 39625890 Published · epublish English Journal Article

Simulation study on hydrogen concentration distribution in hydrogen blended natural gas transportation pipeline.

PloS one ·Vol. 19 ·No. 12 ·2024-00-00 ·页码 e0314453

Xu W, An Y, Yan S, Li R, Cai M, Jia G

Abstract

Hydrogen is a clean energy source, and blending it with natural gas in existing pipeline networks is a key transition solution for transportation cost reduction. However, during the transportation process, a non-uniform distribution of hydrogen concentration occurs in the pipeline due to gravity. Therefore, it is necessary to study the hydrogen concentration distribution law of hydrogen-blended natural gas in pipelines. The undulation and ball valve pipelines, which are common in transport pipelines, were constructed in this study. The effects of the undulation angle, height, pipeline diameter, ball valve opening, and temperature on the distribution of the hydrogen concentration were investigated using computational fluid dynamic (CFD) methods. The results indicated that the hydrogen concentration gradient changed gently with the larger diameter of the undulating pipeline, minimizing hydrogen accumulation. Higher undulation angle and smaller height differences reduces the hydrogen accumulation risk. Increasing vertical height difference of the pipeline from 5 m to 15 m increased the hydrogen volume fraction gradient by1.3 times. In the ball valve pipeline, the velocity fluctuation decreased as the ball valve opening increased. However, the hydrogen accumulation phenomenon was obvious. The opening increased from 25% to 100% and the hydrogen volume fraction gradient increased more than two times. Selecting delivery conditions with low hydrogen blending ratios, high temperatures, low pressures, and high flow rates reduces the occurrence of hydrogen buildup in the pipeline.

MeSH 主题词
Hydrogen Natural Gas Transportation Computer Simulation Hydrodynamics Temperature
化学物质
Hydrogen Natural Gas
作者与单位
共 6 位作者,点击展开单位 / ORCID
Xu Weiqing
School of Automation Science and Electrical Engineering, Beihang University, Beijing, China. | Pneumatic and Thermodynamic Energy Storage and Supply Beijing Key Laboratory, Beijing, China.
An Yongwei
School of Physics and Electronics, Henan University, Kaifeng, China.
Yan Shuangjie
School of Physics and Electronics, Henan University, Kaifeng, China.
Li Rui
General Institute of Science and Technology of National Petroleum and Natural Gas Pipeline Network Group Co.,Ltd, Langfang, Hebei, China.
Cai Maolin
School of Automation Science and Electrical Engineering, Beihang University, Beijing, China. | Pneumatic and Thermodynamic Energy Storage and Supply Beijing Key Laboratory, Beijing, China.
Jia Guanwei ORCID
Pneumatic and Thermodynamic Energy Storage and Supply Beijing Key Laboratory, Beijing, China. | School of Physics and Electronics, Henan University, Kaifeng, China.
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2024-00-00
电子出版
2024-00-03
页码
e0314453
Language
English
Country/Region
United States
NLM ID
101285081
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