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A NOVEL CONCEPT FOR BOOSTING THE SUCTION LINE OF PISTON PUMPS BY PIEZO-ACTUATED PIPE WALLS

机译:用压电驱动管壁提升活塞泵吸水线的新概念

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Axial and radial piston pumps are the work horse of the fluid power industry in the medium to high power range. During the maturation of the technology in the last five decades, both the pressure levels and the maximum rotational speeds have been increased significantly to meet the market demands for an increased power to weight or size ratio. The maximum speed of operation is often limited by cavitation occuring in the suction duct of pumps. A well known but expensive solution to the problem is the use of booster pumps to raise the suction pressure at the piston pump inlet. The rationale behind this solution is very simple: The pressure oscillations inevitably caused by the nonuniform operation of the piston pump will occur around an increased mean pressure level, thereby raising also the pressure minima and avoiding cavitation. The present paper looks into the dynamics of the suction process in more detail. A simulation model of an axial piston pump with a detailed model of the wave propagation in the suction line is analysed for the potential of mitigating the pressure oscillations locally at the pump inlet by actuating the pipe wall for instance with piezo ring actuators. In a first simulation study, the power electronics of the actuation system is idealized and a mathematical optimization of the actuation signals for a certain operating point of the pump is set up. A theoretical proof of concept can be achieved in this simulation. A second, and more detailed simulation includes the computation of power budgets for the power electronics operating the piezo actuation. An experimental proof of concept is left to future work at this point.
机译:轴向和径向柱塞泵是中功率到高功率范围内流体动力行业的主力军。在过去的五十年中,随着技术的成熟,压力水平和最大旋转速度都得到了显着提高,以满足市场对功率/重量或尺寸比增加的需求。最高运行速度通常受到泵吸入管中发生的气蚀的限制。解决该问题的一种众所周知但昂贵的解决方案是使用增压泵来提高活塞泵入口处的吸入压力。该解决方案背后的原理非常简单:不可避免地由活塞泵的不均匀运行引起的压力振荡将在增加的平均压力水平附近发生,从而也提高了最小压力并避免了气穴现象。本文更详细地研究了抽吸过程的动力学。分析了轴向柱塞泵的仿真模型,该模型具有详细的吸入管线中的波传播模型,通过例如使用压电环致动器来致动管壁,可以减轻在泵进口处局部压力波动的可能性。在第一个模拟研究中,对致动系统的电力电子设备进行了理想化,并针对泵的某个工作点建立了致动信号的数学优化。在此模拟中可以得到理论上的概念证明。第二个更详细的模拟包括计算用于压电致动的功率电子设备的功率预算。在这一点上,概念的实验性证明留待将来的工作。

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