Design and Transient Flow Characteristics of New Differential Large Flow Safety Valve

سال انتشار: 1405
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 72

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شناسه ملی سند علمی:

JR_JAFM-19-4_011

تاریخ نمایه سازی: 1 تیر 1405

چکیده مقاله:

This paper presents a novel differential-type high-flow safety valve, with a rated flow and pressure of ۳۰۰۰ L/min and ۵۰ MPa respectively, aimed at enhancing the impact resistance and stability of hydraulic supports. Based on the Ansys Fluent platform, dynamic mesh technology and User-Defined Functions (UDF) were employed to identify the optimal damping hole radius for the differential high-flow safety valve. The transient fluid characteristics throughout the opening process until stable unloading were simulated for valves featuring damping hole radii of ۱ mm, ۲ mm, and ۳ mm. Based on the optimal damping hole radius, test samples were developed high flow safety valves and constructed a rapid dynamic loading shock test rig to evaluate their shock resistance characteristics. Results indicate that a damping hole radius of ۲ mm achieves the best overall performance in both transient response characteristics and operational stability. The differential high-flow safety valve demonstrates rated flow and pressure of approximately ۲۹۹۶ L/min and ۴۹.۴ MPa respectively, with valve core opening time of under ۲ ms, unloading time of under ۵ ms, and pressure overshoot of below ۲۰%. These findings validate the structural rationality of the differential high-flow safety valve and confirm its advantages in rapid unloading speed and excellent impact resistance.

کلیدواژه ها:

Hydraulic support ، Differential large flow safety valve ، Dynamic grid technology ، User-defined functions ، Rapid dynamic load impact test

نویسندگان

N. Li

Liaoning Technical University, School of mechanical engineering, Fuxin, Liaoning, China

X. Yang

Liaoning Technical University, School of mechanical engineering, Fuxin, Liaoning, China

S. Wang

Nanjing Ye Hengda Intelligent System Co., Ltd, Nanjing, Jiangsu, China

G. Zhao

Liaoning Technical University, School of mechanical engineering, Fuxin, Liaoning, China

Y. Song

YingKou Institute of Technology, School of Mechanical and Power Engineering, Yingkou, Liaoning, China

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