Piezoelectric ring-stack actuator design for high-frequency valve

Sydney A. Giannuzzi, A. M. Rodríguez, Seth P. Pietrowski, Jeffrey L. Kauffman
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Abstract

This paper presents a fundamental non-contact valve design developed by integrating a ring-stack piezoelectric actuator into a converging nozzle design to impart harmonic flow. The paper also outlines the governing equations as well as limiting factors that constrain the design and operating performance. The converging nozzle design achieves choked flow at the valve exit when the nozzle is fully open. Valve actuation centers around piezoelectric ring stacks: the piezoelectric stack is fixed within the valve on one end to the base plate and has a conical nozzle tip attached to the opposite end of the stack. When the stack fully displaces to its maximum length, the nozzle tip is in the closed position where minimal flow passes through the valve exit. The flow area between the nozzle tip and casing wall achieves maximum mass flow rate when the piezoelectric stack is at minimum length. The change in flow cross-sectional area due to the piezoelectric stack displacement generates a change in mass flow rate through the valve. Due to the small-scale displacement of piezoelectric stacks, different angles of the nozzle cone and casing are required to achieve a greater desired mass flow rate. This model is adjustable to accommodate various piezoelectric stack sizes and displacements or to alter the exit mass flow rate to best suit a particular application.
高频阀用压电环叠作动器设计
本文提出了一种基本的非接触阀设计,该设计将环叠压电驱动器集成到收敛喷嘴设计中以传递谐波流。本文还概述了控制方程以及制约设计和运行性能的限制因素。当喷嘴完全打开时,会聚喷嘴设计实现了阀门出口的堵塞流动。阀门的驱动以压电环堆为中心:压电堆一端固定在阀门内部的底板上,锥形喷嘴尖端附着在环堆的另一端。当堆完全置换到最大长度时,喷嘴尖端处于关闭位置,通过阀门出口的流量最小。当压电堆长度最小时,喷嘴尖端与机匣壁之间的流动面积达到最大质量流量。由于压电堆位移引起的流动截面积的变化产生了通过阀门的质量流量的变化。由于压电堆的位移较小,为了获得更大的期望质量流量,需要不同的喷嘴锥和机匣角度。该模型可调节,以适应各种压电堆叠尺寸和位移或改变出口质量流量,以最适合特定应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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