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Variable Friction Device for Structural Control based on Duo-Servo Vehicle Brake: Modeling and Experimental Validation

机译:基于双伺服车辆制动的结构控制可变摩擦装置:建模与实验验证

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摘要

Supplemental damping can be used as a cost-effective method to reduce structural vibrations. In particular, passive systems are now widely accepted and have numerous applications in the field. However, they are typically tuned to specific excitations and their performances are bandwidth-limited. A solution is to use semi-active devices, which have shown to be capable of substantially enhanced mitigation performance. The authors have recently proposed a new type of semi-active device, which consists of a variable friction mechanism based on a vehicle duo-servo drum brake, a mechanically robust and reliable technology. The theoretical performance of the proposed device has been previously demonstrated via numerical simulations. In this paper, we further the understanding of the device, termed Modified Friction Device (MFD) by fabricating a small scale prototype and characterizing its dynamic behavior. While the dynamics of friction is well understood for automotive braking technology, we investigate for the first time the dynamic behavior of this friction mechanism at low displacements and velocities, in both forward and backward directions, under various hydraulic pressures. A modified 3-stage dynamic model is introduced. A LuGre friction model is used to characterize the friction zone (Stage 1), and two pure stiffness regions to characterize the dynamics of the MFD once the rotation is reversed and the braking shoes are sticking to the drum (Stage 2) and the rapid build up of forces once the shoes are held by the anchor pin (Stage 3). The proposed model is identified experimentally by subjecting the prototype to harmonic excitations. It is found that the proposed model can be used to characterize the dynamics of the MFD, and that the largest fitting error arises at low velocity under low pressure input. The model is then verified by subjecting the MFD to two different earthquake excitations under different pressure inputs. The model is capable of tracking the device׳s response, despite a lower fitting performance under low pressure and small force output, as it was found in the harmonic tests due to the possible nonlinearity in Stage 2 of the model.
机译:补充阻尼可以用作降低结构振动的一种经济有效的方法。特别地,无源系统现在被广泛接受并且在该领域中具有许多应用。但是,它们通常被调整为特定的激励,并且它们的性能受到带宽的限制。一种解决方案是使用半主动设备,该设备已显示出能够显着增强缓解性能。作者最近提出了一种新型的半主动装置,该装置由基于车辆双伺服鼓式制动器的可变摩擦机构,机械坚固且可靠的技术组成。之前已经通过数值模拟证明了所提出装置的理论性能。在本文中,我们通过制造小规模原型并表征其动态行为,进一步了解了称为改良摩擦装置(MFD)的装置。尽管汽车制动技术已经很好地了解了摩擦动力学,但我们还是首次研究了该摩擦机构在各种液压压力下,在低位移和低速度,正向和反向时的动力学行为。介绍了一种改进的三阶段动态模型。使用LuGre摩擦模型来表征摩擦区域(阶段1),使用两个纯刚度区域来表征MFD的动力学,一旦旋转反转并且制动蹄粘在鼓上(阶段2)并快速建立一旦鞋被锚定销钉固定(阶段3)。通过使原型受到谐波激励,通过实验确定了所提出的模型。发现所提出的模型可用于表征MFD的动力学,并且在低压输入下低速下出现最大的拟合误差。然后通过使MFD在不同压力输入下经受两次不同的地震激励来验证模型。该模型能够跟踪设备的响应,尽管在低压和较小的力输出下拟合性能较低,这是由于在谐波测试中发现的,因为该模型的第二阶段可能存在非线性。

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