Research on the Throttling Performance and Anti-Erosion Structure of Trapezoidal Throttle Orifices

Author:

Zhao Jianguo12,Zheng Haotian1,Xie Chong1,Peng Hanxiu3

Affiliation:

1. School of Mechatronics Engineering, Southwest Petroleum University, Chengdu 610500, China

2. State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation Engineering, Chengdu University of Technology, Chengdu 610500, China

3. Sinopec Research Institute of Petroleum Engineering, Beijing 100011, China

Abstract

The throttling performance of conventional throttle orifice structures of fluid control valves is very low. Therefore, this paper proposes a novel trapezoidal throttle orifice with excellent throttling performance. The effect of the taper of the throttle orifice on the erosion was researched. Firstly, two schemes of trapezoidal throttle orifice were proposed according to the fluid control valve. Secondly, the excellent throttling performance of the trapezoidal throttle orifice was compared and optimized. Finally, a numerical simulation method of the erosion-resistant ability of the trapezoidal throttle orifice was established. It was found that for the same throttling area, the differential pressure of the trapezoidal orifice was higher than that of the conventional rectangular orifice by about 18.6%. The taper had little effect on the gas production, which increased by only 3.3% during the 10° to 30° change. The maximum erosion was firstly reduced and then increased with increases in the angle from 0 to 25°of the taper. Moreover, the minimum was achieved at about a 20° taper angle. The above research methods provide a theoretical basis for optimizing the size and structure of orifices and the sealing reliability of fluid control valves.

Funder

The National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

MDPI AG

Reference34 articles.

1. Tan, L., Xie, L., He, B., and Zhang, Y. (2024). Multi-Fracture Propagation Considering Perforation Erosion with Respect to Multi-Stage Fracturing in Shale Reservoirs. Energies, 17.

2. Research Progress of Capacity Evaluation Techniques for Horizontal Well Segmental Fracturing in Various Segments;Li;Sci. Technol. Eng.,2023

3. New Progress and Development Suggestions of SINOPEC’s Horizontal Well Drilling Technology for Ultra-Long Horizontal Segments of Shale Gas;Yuan;Pet. Drill. Tech.,2023

4. Integrated Intelligent Completion Technology for Water Searching and Control in Horizontal Wells and Its Application;Cui;China Offshore Oil Gas.,2021

5. Eren, T., and Polat, C. (2020). Numerical investigation of the application of intelligent horizontal well completion. J. Nat. Gas. Sci. Eng., 83.

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