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Unsteady Fluid Flow in Smart Material Actuated Fluid Pumps

机译:智能材料驱动流体泵中的不稳定流体流动

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Smart materials' ability to deliver large block forces in a small package while operating at high frequencies makes them extremely attractive for converting electrical to mechanical power. This has led to the development of hybrid actuators consisting of co-located smart material actuated pumps and hydraulic cylinders that are connected by a set of fast-acting valves. The overall success of the hybrid concept hinges on the effectiveness of the coupling between the smart material and the fluid. This, in turn, is strongly dependent on the resistance to fluid flow in the device. This paper presents results from three-dimensional unsteady simulations of fluid flow in the pumping chamber of a prototype hybrid actuator powered by a piezo-electric stack. The results show that the forces associated with moving the fluid into and out of the pumping chamber already exceed 10% of the piezo stack blocked force at relatively low frequencies 120 Hz and approach 40% of the blocked force at 800 Hz. This reduces the amplitude of the piston motion in such a way that the volume flow rate remains approximately constant above operating frequencies of 500 Hz while the efficiency of the pump decreases rapidly.
机译:智能材料具有在小包装中传递高阻滞力的能力,同时还可以在高频下运行,这使其在将电能转换为机械能方面极具吸引力。这导致了混合动力致动器的发展,该混合动力致动器由并置的智能材料致动泵和液压缸组成,这些泵和液压缸通过一组速动阀连接。混合概念的整体成功取决于智能材料与流体之间的耦合效果。这又很大程度上取决于对设备中流体流动的阻力。本文介绍了由压电堆驱动的原型混合执行器的泵送腔中流体流动的三维非稳态模拟结果。结果表明,在相对较低的120 Hz频率下,与将流体移入或移出泵浦腔室相关的力已经超过压电叠层阻塞力的10%,而在800 Hz下接近阻塞力的40%。这样就减小了活塞运动的幅度,使得在500 Hz的工作频率以上,体积流量保持大致恒定,而泵的效率迅速下降。

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