数字直接液压缸传动的控制与性能分析

IF 0.7 Q4 ENGINEERING, MECHANICAL
N. Pedersen, P. Johansen, Lasse Schmidt, R. Scheidl, T. Andersen
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引用次数: 3

摘要

本文涉及数字直接液压缸驱动(D-DHCD)的控制,这是一个新概念,有可能成为未来节能液压驱动的解决方案。该概念依赖于通过连接到每个气缸入口/出口的单个液压泵/马达单元对差动气缸的直接控制。本研究中的泵/电机单元使用数字排量技术,由许多单独的数字控制压力室组成,因此主动(电动、泵送或空转)室的比例决定了机器的功率吞吐量。由于非活动(怠速)腔室的损耗非常低,因此此功能可将能量损失降至最低。单个DDM可以为多个气缸提供单独的负载控制,而不会因各种负载大小而过度节流。该概念的成功实施依赖于DDM的适当控制,这需要一个允许系统分析和控制器综合的动力学模型。这是一项具有挑战性的任务,因为机器的行为高度不平滑,包括非线性连续和离散元件。本文基于离散动力学近似,提出了D-DHCD概念的第一个反馈控制策略,并研究了代表物理系统的数学仿真模型中的控制性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control and Performance Analysis of a Digital Direct Hydraulic Cylinder Drive
This paper concerns control of a digital direct hydraulic cylinder drive (D-DHCD) and is a novel concept with the potential to become the future solution for energy efficient hydraulic drives. The concept relies on direct control of a differential cylinder by a single hydraulic pump/motor unit connected to each cylinder inlet/outlet. The pump/motor unit in this research uses the digital displacement technology and comprises of numerous individually digital controlled pressure chambers, such that the ratio of active (motoring, pumping or idling) chambers determines the machine power throughput. This feature reduces energy losses to a minimum, since the inactive (idling) chambers has very low losses. A single DDM may provide individually load control for several cylinders without excessive throttling due to various load sizes. Successful implementation of the concept relies on proper control of the DDM, which demands a dynamical model that allows for system analysis and controller synthesis. This is a challenging task, due to the highly non-smooth machine behavior, comprising both non-linear continuous and discrete elements. This paper presents the first feedback control strategy for a D-DHCD concept, based on a discrete dynamical approximation and investigates the control performance in a mathematical simulation model representing the physical system.
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来源期刊
International Journal of Fluid Power
International Journal of Fluid Power ENGINEERING, MECHANICAL-
CiteScore
1.60
自引率
0.00%
发文量
16
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