Study on erosion characteristics and prediction model of an axial flow regulating valve based on CFD method

Solid-particle erosion poses a critical threat to the trim and body of axial flow regulating valves during the transport of dust-laden natural gas in gathering stations. To investigate its erosion evolution characteristics and develop a predictive model for complex working conditions, this study combines wall-thickness measurement experiments with Eulerian-Lagrangian-based CFD numerical simulations. Analysis of flow-field characteristics and particle trajectories across three representative openings (30%, 70%, and 100%) identifies the cage sleeve and inlet reducer as the predominant erosion hot spots, which are attributed to abrupt velocity increases. Over a five-year service period, the respective contributions of the three representative openings (30%, 70%, and 100%) to cumulative wall loss are 23.0%, 34.7%, and 41.5%. Furthermore, this study recalibrates the impact-angle function f(α) within the Tulsa erosion framework via regression analysis of experimental data and develops an improved erosion-rate prediction model tailored for axial-flow regulating valves. The modified model shows good agreement with field measurement. This demonstrates its engineering viability and provides a quantitative tool for equipment integrity management.

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Publication Details

Journal
Particulate Science And Technology
Published
2026-10-09
DOI
https://doi.org/10.1080/02726351.2026.2734778
Primary Topic
Erosion and Abrasive Machining
Type
article
Field-Weighted Citation Impact
0.00
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article

Study on erosion characteristics and prediction model of an axial flow regulating valve based on CFD method

Wanni Huang, Mei Huang, Ting Lei, Yongzhao Fan et al.
Particulate Science And Technology
Erosion and Abrasive Machining
article

Study on erosion characteristics and prediction model of an axial flow regulating valve based on CFD method

Wanni Huang, Mei Huang, Ting Lei, Yongzhao Fan, Cheng Zeng, Sijia Zheng, Jie Sun, Qin Bie, Xinyi Wang, Ling Kong, Xiaochun Zheng, Feng Wang
article en

Abstract

Solid-particle erosion poses a critical threat to the trim and body of axial flow regulating valves during the transport of dust-laden natural gas in gathering stations. To investigate its erosion evolution characteristics and develop a predictive model for complex working conditions, this study combines wall-thickness measurement experiments with Eulerian-Lagrangian-based CFD numerical simulations. Analysis of flow-field characteristics and particle trajectories across three representative openings (30%, 70%, and 100%) identifies the cage sleeve and inlet reducer as the predominant erosion hot spots, which are attributed to abrupt velocity increases. Over a five-year service period, the respective contributions of the three representative openings (30%, 70%, and 100%) to cumulative wall loss are 23.0%, 34.7%, and 41.5%. Furthermore, this study recalibrates the impact-angle function f(α) within the Tulsa erosion framework via regression analysis of experimental data and develops an improved erosion-rate prediction model tailored for axial-flow regulating valves. The modified model shows good agreement with field measurement. This demonstrates its engineering viability and provides a quantitative tool for equipment integrity management.

Particulate Science And Technology
Southwest Petroleum University (CN), PetroChina Southwest Oil and Gas Field Company (China), Gas Technology Institute (US)
Openalex Percentile: Top 4%
Erosion and Abrasive Machining
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Study on erosion characteristics and prediction model of an axial flow regulating valve based on CFD method — Wanni Huang, Mei Huang, et al. · Particulate Science And Technology (2026) | TGRS Research Map | TGRS