提高自锁紧凑型电液缸驱动流量控制单元的效率和动态特性

Lasse Schmidt, Søren Ketelsen, D. Padovani, K. Mortensen
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引用次数: 11

摘要

低成本电动机和驱动解决方案的引入,为设计具有成本竞争力的紧凑型变速驱动提供了可能,成为传统阀控解决方案的潜在可行替代方案。现有的独立驱动技术的一个主要缺点是在固定负载情况下的功耗。然而,最近推出的紧凑型自锁驱动拓扑结构,具有独立的前进和返回流线,可以显着降低功耗,但也带来了另一个问题。依赖于流量装置的控制,与非自锁驱动拓扑结构相比,可以实现连续的、但更低的功耗。此外,活塞运动可能会出现时间延迟,因为在气缸驱动之前,流动单元中的出口压力积聚阶段,限制了这种驱动概念的应用范围。本研究的目的是通过基于模型的方法分析这些属性,并建立控制功能,以最大限度地减少这些不幸的特征。由此产生的流量装置控制结构允许在执行时间延迟显著减少,以及在固定负载承载情况下的功耗。数值结果验证了理论分析和控制设计阶段所宣布的特性,从而拓宽了所讨论的自锁驱动拓扑的应用范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving the Efficiency and Dynamic Properties of a Flow Control Unit in a Self-Locking Compact Electro-Hydraulic Cylinder Drive
The introduction of low cost electric motor and drive solutions provides the possibility to design cost competitive compact speed-variable drives as potentially feasible alternatives to conventional valve-controlled solutions. A main drawback in existing self-contained drive technology is the power consumption in stationary load carrying situations. However, the recent introduction of compact self-locking drive topologies with separate forward and return flow lines allow to significantly minimize the power consumption, but introduces another problem. Dependent on the control of the flow device, a continuous, but lower power consumption compared to non-self-locking drive topologies may be present. Furthermore, the piston motion may exhibit a time delay due to an outlet pressure build-up phase in the flow unit prior to actuation of the cylinder, limiting the application range of such a drive concept. The purpose of the study presented, is to analyze these properties through model-based methods, and to establish control functionalities allowing to minimize these unfortunate features. The resulting flow device control structure allows for a significant reduction in the actuation time delay as well as in the power consumption in stationary load carrying situations. Numerical results demonstrate the properties announced by the theoretical analysis and control design phase, hence broadening the application range of the self-locking drive topology in question.
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