首页> 外文会议>Symposium on fluid power and motion control 2018 >DIRECT DRIVEN PUMP CONTROL OF HYDRAULIC CYLINDER FOR RAPID VERTICAL POSITION CONTROL OF HEAVY LOADS - ENERGY EFFICIENCY INCLUDING EFFECTS OF DAMPING AND LOAD COMPENSATION
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DIRECT DRIVEN PUMP CONTROL OF HYDRAULIC CYLINDER FOR RAPID VERTICAL POSITION CONTROL OF HEAVY LOADS - ENERGY EFFICIENCY INCLUDING EFFECTS OF DAMPING AND LOAD COMPENSATION

机译:液压缸的直接驱动泵控制,用于大载荷的快速垂直位置控制-能量效率,包括阻尼和载荷补偿的作用

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摘要

The ever-tightening government-enforced regulations for more energy efficient and less polluting machines and the simultaneous fast development of electric drives have caused hydraulic systems to lose ground to electric drives. One promising solution to improve the status of hydraulics in this competition are the Direct Driven Hydraulic (DDH) systems, aka electro-hydraulic actuators (EHAs), which are characterized by a closed circuit type and a servo motor driven speed-controlled pump controlling the actuator. Due to this topology, they offer a possibility of reaching higher energy efficiencies compared to traditional open circuit type valve-controlled systems and simultaneously they offer the high accuracy and dynamics of these. Typical applications where DDHs have been used are, in the area of mobile equipment, modern commercial and military aircrafts and some lift trucks, and in the area of stationary applications, mostly presses. In all of these, the actuators produce relatively slow motions. In this experimental study, a DDH system is applied to a stationary industrial vertical position control application where a very rapid movement of a heavy load is required. This brings out some unwanted fluctuation phenomena not encountered with slower motion velocities. Here we are striving for avoiding these phenomena by adding damping to the system. In addition, it is studied whether the good energy efficiency of DDH systems could be enhanced with load-compensation. The presented measurement results include the system behavior regarding the smoothness of positioning, the fluctuations of pressures, forces, and power, and finally the energy consumption with three different system configurations: basic DDH, load-compensated DDH, and load-compensated and damped DDH. The measured energy consumptions are compared against results gained in simulating a conventional valve-controlled system driving the same application. The measurement results manifest that energy consumption wise significant benefits are achievable with DDH, especially in combination with hydraulic load compensation. However, without added damping the motion involved marked vibrations in the end of the upward and downward strokes. Added damping eliminated these vibrations, but at the cost of reduced energy efficiency. Due to this, the solution for the fluctuation and vibration problem should be sought by developing a control strategy that produces a smoother but as fast motion.
机译:不断严格的政府强制性法规,要求提高能源效率和减少污染的机器,以及电动驱动器的同时快速发展,导致液压系统失去了电动驱动器的基础。直接驱动液压(DDH)系统(又名电动液压执行器(EHA))是一种在本次比赛中改善液压状态的有前途的解决方案,其特点是采用闭路型和由伺服电动机驱动的调速泵来控制液压系统。执行器。由于具有这种拓扑结构,与传统的开路型阀门控制系统相比,它们提供了更高的能源效率的可能性,同时,它们还提供了这些方法的高精度和动态性。使用DDH的典型应用是在移动设备领域,现代商用和军用飞机以及某些起重卡车以及在固定应用领域(主要是压力机)。在所有这些情况下,致动器产生相对缓慢的运动。在本实验研究中,将DDH系统应用于需要重载快速移动的固定式工业垂直位置控制应用中。这会带来一些较慢的运动速度所不会遇到的不必要的波动现象。在这里,我们正在努力通过为系统增加阻尼来避免这些现象。此外,研究了通过负载补偿能否提高DDH系统的良好能效。给出的测量结果包括与定位平稳性有关的系统行为,压力,力和功率的波动,最后涉及三种不同系统配置的能耗:基本DDH,负载补偿DDH以及负载补偿和阻尼DDH 。将测得的能量消耗与模拟驱动相同应用的常规阀控系统获得的结果进行比较。测量结果表明,使用DDH可以实现能耗方面的显着效益,尤其是与液压负载补偿相结合时。但是,在不增加阻尼的情况下,该运动在向上和向下冲程的末尾都产生了明显的振动。增加的阻尼消除了这些振动,但以降低能源效率为代价。因此,应通过制定一种控制策略来寻求波动和振动问题的解决方案,该控制策略可产生较平稳但快速的运动。

著录项

  • 来源
    《Symposium on fluid power and motion control 2018》|2018年|V001T01A007.1-V001T01A007.11|共11页
  • 会议地点 Bath(GB)
  • 作者单位

    Aalto University, Department of Mechanical Engineering Espoo, Finland;

    Aalto University, Department of Mechanical Engineering Espoo, Finland;

    Aalto University, Department of Mechanical Engineering Espoo, Finland;

    Aalto University, Department of Mechanical Engineering Espoo, Finland;

    Aalto University, Department of Mechanical Engineering Espoo, Finland;

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  • 正文语种 eng
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