论文标题

刚度调制的振动减少 - 一项理论研究

Vibration Reduction by Stiffness Modulation -- a Theoretical Study

论文作者

Nowak, Alexander, Campanile, L. Flavio, Hasse, Alexander

论文摘要

半活性振动还原技术被定义为在系统的自由度(如主动振动控制的情况下),而是在系统的参数(即质量,阻尼或刚度)上直接在系统的自由度上运行的技术。 在先前的几项研究中已经解决了结构系统刚度的环状变化,作为一种有效的半活动振动减少方法。此想法的提议应用在这里表示为刚度调制,范围从简单的弹簧系统上的逐步刚度变化到空气动力载荷下转子叶片的连续刚度变化。 通常认为半活性系统在能量上是被动的。但是,刚度的变化直接影响系统的弹性势能,并需要在给定条件下进行外部工作。在大多数情况下,这种注入或提取能量(由刚度变化的设备执行并表示为伪活性效应)通常与半活性效应共存,该效应通过将系统内的势能重新分布,以这种方式可以更有效地消散系统中的势能。 这项工作的重点是这两种效应之间的歧视,这在以前的文献中没有。这里介绍了他们对刚度调制过程参数的依赖性的首次研究,重点是刚度变化的空间分布。结果表明,局部变化往往会导致较大的半活动振动衰减,而空间均匀的刚度调制只会产生伪活性效应。

Semi-active vibration reduction techniques are defined as techniques in which controlled actions do not operate directly on the system's degrees of freedom (as in the case of active vibration control) but on the system's parameters, i.e., mass, damping, or stiffness. Cyclic variations in the stiffness of a structural system have been addressed in several previous studies as an effective semi-active vibration reduction method. The proposed applications of this idea, denoted here as stiffness modulation, range from stepwise stiffness variations on a simple spring-mass system to continuous stiffness changes on rotor blades under aerodynamic loads. Semi-active systems are generally claimed to be energetically passive. However, changes in stiffness directly affect the elastic potential energy of the system and require external work under given conditions. In most cases, such injection or extraction of energy (performed by the device in charge of the stiffness variation and denoted as the pseudo-active effect) usually coexists with the semi-active effect, which operates by redistributing the potential energy within the system in such a way that it can be dissipated more efficiently. This work focuses on the discrimination between these two effects, which is absent in previous literature. A first study on their dependence on the process parameters of stiffness modulation is presented here, with emphasis on the spatial distribution of the stiffness changes. It is shown that localized changes tend to result in a larger semi-active share of vibration attenuation, whereas a spatially homogeneous stiffness modulation only generates a pseudo-active effect.

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