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DIGITAL HYDRAULIC SYSTEM USING PUMPS AND ON/OFF VALVES CONTROLLING THE ACTUATOR

机译:使用泵和控制执行器的开/关阀的数字液压系统

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Hydraulic systems employed in several industrial and mobile applications present significant advantages, such as a high power-to-weight ratio and fast dynamic response. However, these systems have low efficiency due to high power dissipation. A recent concept called "digital hydraulics" comprises particularities that create opportunities for a reduction in load loss. This paper proposes a configuration and control method for actuator speed control based on the principles of digital hydraulics. In this context, several fixed displacement units and on/off valves are connected directly to the actuators without throttling valves. The system studied here presents three operation methods (pump mode, motor mode and idle mode), which allows discrete valves to replace continuous or flow control valves in order to control the actuator. Furthermore, a fixed or variable displacement pump with large displacement is replaced by several small, fixed displacement units. Simulations are performed with a co-simulation technique using AMESim and MATLAB. The actuator speed, inlet and outlet pressures on the fixed displacement units and flow rate in the circuit lines are analysed. Preliminary simulation results exhibit smooth transitions between speed levels, adequate dynamic performance, low power dissipation and high energy-storage capacity. A specific limitation of this technology is the obtained actuator discrete speed. The main contributions of this research are the development of a digital hydraulic system configuration and its control strategy, which allows speed control of hydraulic actuators and provides the capacity to store energy.
机译:在几种工业和移动应用中采用的液压系统具有明显的优势,例如高的功率重量比和快速的动态响应。但是,这些系统由于功耗高而效率低下。最近称为“数字液压系统”的概念包含一些特殊性,这些特殊性为减少负载损失创造了机会。本文提出了一种基于数字液压原理的执行器速度控制配置与控制方法。在这种情况下,几个固定排量单元和开/关阀直接连接到执行器,而没有节流阀。此处研究的系统提供了三种操作方法(泵模式,电动机模式和怠速模式),该方法允许离散阀代替连续阀或流量控制阀以控制执行器。此外,大排量的固定式或可变排量泵被数个小型的固定排量单元代替。使用AMESim和MATLAB的协同仿真技术进行仿真。分析了执行机构的速度,固定排量单元上的入口和出口压力以及回路中的流量。初步的仿真结果显示出速度水平之间的平滑过渡,足够的动态性能,低功耗和高储能能力。该技术的特定限制是获得的执行器离散速度。这项研究的主要贡献是开发了数字液压系统配置及其控制策略,该策略允许对液压执行器进行速度控制并提供存储能量的能力。

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