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Development and Parameters Analysis of Hydraulic Controlled Rotary Valve Excitation System

机译:液压控制旋转阀励磁系统的开发和参数分析

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摘要

Electro-hydraulic excitation systems are key equipment in various industries. Electric motor driving rotary valves are mostly used in existing systems. However, due to the separate design of the driving and hydraulic parts, highly compact integration cannot be achieved by these type of systems. Moreover, investigation on the influence of relevant parameters on the system has been insufficient in previous studies. To overcome these problems, a novel full electro-hydraulic excitation system scheme as well as a parameters analysis are presented in this paper. Theoretical models of the flow areas for valve orifices of different geometric shapes are obtained, based on which an AMESim® simulation model of the system is established. The effects of the main parameters are analyzed using numerical simulations, and the coupling relationship of the parameters is revealed. The results demonstrate the feasibility and effectiveness of the proposed method. Experimental studies were conducted to verify the effectiveness of the proposed system scheme and the analysis results. We found that a highly compact integration can be obtained while maintaining a high reversing frequency. We also found that the proposed system has a certain level of load adaptability, which is superior to the existing methods.
机译:电动液压激励系统是各种行业的主要设备。电动机驱动旋转阀主要用于现有系统。然而,由于驱动和液压部件的单独设计,通过这些类型的系统不能实现高度紧凑的集成。此外,对先前研究的相关参数对系统影响的调查是不充分的。为了克服这些问题,本文提出了一种新型的全电动液压激励系统方案以及参数分析。获得了不同几何形状的阀孔的流动区域的理论模型,基于该系统的AMESIM®仿真模型。使用数值模拟分析主要参数的效果,并且揭示了参数的耦合关系。结果证明了该方法的可行性和有效性。进行了实验研究以验证所提出的系统方案的有效性和分析结果。我们发现,可以在保持高反转频率的同时获得高度紧凑的集成。我们还发现,所提出的系统具有一定程度的负载适应性,其优于现有方法。

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