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Actuation efficiency in piezoelectrically driven linear and nonlinear systems

机译:压电驱动的线性和非线性系统的驱动效率

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Abstract: Standard assumptions about the efficiency of active systems working against a load neglect the electro-mechanical coupling inherent in these systems. This paper contains a derivation for finding the actuation efficiency and work output in electro-mechanically coupled systems working against a load. This general derivation is for fully coupled, non-linear systems working against a generalized load. Three example cases are then shown to demonstrate several key aspects of the general derivation. The first example case is a 1D, linear discrete actuator working against a 1D, linear spring load. This example shows the effects of electro-mechanical coupling on the actuation efficiency. The second example case is of a piezoelectric bender first presented by Lesieutre and Davis in their derivation of the device coupling coefficient. The bender example demonstrates the differences between the device coupling coefficient and actuation efficiency as well as the use of the generalized derivation in mechanically complex problems. The final example presented is a 1D, linear discrete actuator working against a 1D, non-linear load in order to demonstrate the possibility of increasing the work output of a system through the use of non-linear loading functions. Finally, a custom built testing facility measures the work output and actuation efficiency of a discrete actuator working against both linear and non-linear loads. The testing facility was designed for load application with programmable impedances and closed loop testing at frequencies up to 1 kHz. The tests performed on a discrete actuator closely match the expected work outputs and efficiencies predicted by the theory.!8
机译:摘要:关于有源系统抵抗负载的效率的标准假设忽略了这些系统固有的机电耦合。本文包含一个推导,用于找到在负载作用下的机电耦合系统中的致动效率和功输出。此一般推导适用于针对广义负载工作的完全耦合的非线性系统。然后显示了三个示例案例,以说明通用推导的几个关键方面。第一种情况是抵抗一维线性弹簧载荷的一维线性离散致动器。该示例示出了机电耦合对致动效率的影响。第二个示例案例是Lesieutre和Davis在推导设备耦合系数时首先提出的压电弯曲机。弯曲器示例演示了设备耦合系数和致动效率之间的差异,以及在机械复杂问题中使用广义导数的情况。给出的最后一个例子是一维,线性离散致动器,其作用于一维,非线性负载,以演示通过使用非线性负载功能来增加系统的功输出的可能性。最后,一个定制的测试设备可以测量离散致动器在线性和非线性负载下的工作输出和致动效率。该测试设备专为具有可编程阻抗的负载应用和高达1 kHz的频率的闭环测试而设计。在分立执行器上进行的测试与理论预测的预期工作输出和效率非常匹配!! 8

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