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Cam-based passive variable friction device for structural control

机译:基于凸轮的被动可变摩擦装置,用于结构控制

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A solution to increasing the resiliency of civil structures with respect to natural and man-made hazards is the implementation of supplemental damping systems. These systems can be constructed using passive, active, and semi-active devices. In particular, passive devices are widely accepted in the field of structural engineering, because they do not require power to operate and can be holistically integrated into the structural design process. This paper investigates the use of 3D printing technology to expand on the possibilities in passive damping, notably in the fabrication of a variable friction device. This device uses a 3D printed cam with a predefined surface profile to vary the normal forces applied to a traditional sliding plate friction system. It follows that these varying forces develop a variable damping force that is dependent on the device's displacement. In this work, a friction model is developed to characterize the device's behavior. This model is then validated on various cam profiles by exposing the device to a set of harmonic motions and to a nonstationary motion. Results show a high level of agreement between the experimental results and analytical model.
机译:增强民用建筑在自然和人为危害方面的弹性的一种解决方案是实施辅助阻尼系统。可以使用无源,有源和半有源设备来构建这些系统。特别地,无源器件在结构工程领域中被广泛接受,因为它们不需要电源即可运行,并且可以整体集成到结构设计过程中。本文研究了3D打印技术的使用,以扩展被动阻尼的可能性,特别是在可变摩擦装置的制造中。该设备使用具有预定义表面轮廓的3D打印凸轮来改变施加到传统滑板摩擦系统上的法向力。因此,这些变化的力会产生取决于设备位移的可变阻尼力。在这项工作中,开发了摩擦模型来表征设备的行为。然后,通过将设备暴露于一组谐波运动和非平稳运动,在各种凸轮轮廓上验证该模型。结果表明,实验结果与分析模型之间的一致性很高。

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