Modeling and Fault Simulation of a New Double-Redundancy Electro-Hydraulic Servo Valve Based on AMESim

IF 2.2 3区 工程技术 Q2 ENGINEERING, MECHANICAL Actuators Pub Date : 2023-11-08 DOI:10.3390/act12110417
Qiuhui Liang, Wentao Wang, Yifei Zhai, Yanan Sun, Wei Zhang
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Abstract

The feedback spring rod of the armature assembly was eliminated in the double-redundancy electro-hydraulic servo valve (DREHSV), which employed a redundant design in contrast to the typical double-nozzle flapper electro-hydraulic servo valve (DNFEHSV). The pilot stage was mainly composed of four torque motors, and the double-system spool was adopted in the power stage. Consequently, the difficulty of spool displacement control was increased. By artificially changing the structural parameters of the simulation model in accordance with the theoretical analysis through AMESim, this paper aimed to study the dynamics and static characteristics of the DREHSV. The advantage of redundant design was further demonstrated by disconnecting working coils and setting the different worn parts of the spool. On the test bench, the necessary experiments were performed. Through simulation, it was discovered that when the clogged degree of the nozzle is increased, the zero bias value increases, the pressure and flow gain remain unchanged, and the internal leakage decreases. The pressure gain changes very little, the flow gain close to the zero position grows, the zero leakage increases significantly, and the pilot stage leakage changes very little as a result of the wear of the spool throttling edge. The basic consistency between the simulation curves and the experimental findings serve to validate the accuracy of the AMESim model. The findings can serve as a theoretical guide for the design, debugging, and maintenance of the DREHSV. The simulation model is also capable of producing a large amount of sample data for DREHSV fault diagnosis using a neural network.
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基于AMESim的新型双冗余电液伺服阀建模与故障仿真
双冗余电液伺服阀(DREHSV)与典型的双喷嘴挡板电液伺服阀(DNFEHSV)相比,采用冗余设计,省去了电枢组件的反馈弹簧杆。先导级主要由4个力矩电机组成,动力级采用双系统阀芯。因此,增大了阀芯位移控制的难度。本文通过AMESim软件,根据理论分析,人为改变仿真模型的结构参数,研究DREHSV的动静态特性。通过断开工作线圈和设置阀芯的不同磨损部件,进一步证明了冗余设计的优点。在实验台上进行了必要的实验。通过仿真发现,当喷嘴堵塞程度增大时,零偏置值增大,压力和流量增益保持不变,内泄漏减小。压力增益变化很小,接近零位置的流量增益增大,零泄漏显著增加,先导级泄漏由于阀芯节流边缘磨损而变化很小。仿真曲线与实验结果基本一致,验证了AMESim模型的准确性。研究结果可为DREHSV的设计、调试和维护提供理论指导。该仿真模型还能为DREHSV故障诊断提供大量的样本数据。
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来源期刊
Actuators
Actuators Mathematics-Control and Optimization
CiteScore
3.90
自引率
15.40%
发文量
315
审稿时长
11 weeks
期刊介绍: Actuators (ISSN 2076-0825; CODEN: ACTUC3) is an international open access journal on the science and technology of actuators and control systems published quarterly online by MDPI.
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