Dynamic Characteristics of the Jet Force on the Flapper of the Pilot Stage in a Flapper Nozzle Servo Valve Under the Flow-Solid Interaction

Q4 Engineering
Xinbei Lü, Jinghui Peng, Songjing Li
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引用次数: 2

Abstract

Nowadays, more and more attention has been paid to improve the performance of the nozzle flapper servo valve. As a core part of nozzle flapper servo valve, the armature assembly is affected by electromagnetic force, jet force and feedback force at the same time. Due to the complex structure of the pilot stage flow field and the high jet pressure, the prediction of the jet force has always been difficult in modeling the transient motion of the servo valve. Whereupon, a numerical simulation method based on the flow-solid interaction(FSI) is applied to observe the variation of the jet force when the flapper is moving. Different parameters are employed to seek a suitable numerical simulation model which can balance the accuracy and computational cost. By comparing with the experiment results, the effectiveness of numerical simulation method in predicting the variation of the jet force and cavitation is verified. By this numerical simulation model, the distribution of flow field and the force on the flapper predicted by the moving and fixed flapper are compared. The results show that more dynamic details are achieved by the transient simulation. By analyzing the numerical simulation results of different inlet pressures and flapper vibration frequencies, the relationship between the movement of the flapper, the flow field distribution, the jet force and the inlet pressure is established, which provides a theoretical basis for the subsequent modeling of the armature assembly.
流固耦合作用下挡板喷嘴伺服阀先导级挡板射流力的动态特性
提高喷嘴挡板伺服阀的性能越来越受到人们的重视。作为喷嘴挡板伺服阀的核心部件,电枢总成同时受到电磁力、射流力和反馈力的影响。由于先导级流场结构复杂,射流压力高,在伺服阀瞬态运动建模中,射流力的预测一直很困难。在此基础上,采用基于流固相互作用(FSI)的数值模拟方法,观察了挡板运动时射流力的变化。采用不同的参数来寻求一个合适的数值模拟模型,该模型能够平衡精度和计算成本。通过与实验结果的比较,验证了数值模拟方法在预测射流力和空化变化方面的有效性。通过该数值模拟模型,比较了运动挡板和固定挡板预测的流场分布和作用在挡板上的力。结果表明,通过瞬态仿真可以获得更多的动态细节。通过分析不同入口压力和挡板振动频率的数值模拟结果,建立了挡板运动、流场分布、射流力和入口压力之间的关系,为后续的电枢组件建模提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.10
自引率
0.00%
发文量
2437
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