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首页> 外文期刊>Journal of Engineering Mechanics >Nonlinear Vibration Absorber with Pinched Hysteresis: Theory and Experiments
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Nonlinear Vibration Absorber with Pinched Hysteresis: Theory and Experiments

机译:带有滞后滞后的非线性减振器:理论与实验

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摘要

A nonlinear vibration absorber exploiting the pinched hysteresis of mixed wire ropes made of NiTiNOL and steel is proposed. The mixed wire ropes are assembled in a mechanical device which, by bending them, provides the restoring force to the oscillating mass. The assembly of mixed wire ropes, subject to cyclic end displacements, gives rise to a pinched force-displacement behavior due to the simultaneous occurrence of interwire friction and phase transformations. A modified Bouc-Wen model is adopted to represent the pinched hysteresis while the differential evolutionary (DE) algorithm is employed to identify the constitutive parameters that reproduce the experimental force-displacement cycles. The DE algorithm is also utilized to optimize the restoring force of the absorber toward mitigation of the dynamic response of the main structure to external disturbances of various magnitudes. The pinched hysteresis provides an equivalent damping ratio and resonance frequency, which tend to become almost constant in a given oscillation amplitude range, thus overcoming detrimental detuning problems typical of other nonlinear absorbers. The absorber performance is evaluated in the context of a multistory steel building model mounted on a shaking table. The comparison between controlled and uncontrolled responses shows a very good attenuation performance within the design frequency bandwidth.
机译:提出了一种利用NiTiNOL和钢制成的混合钢丝绳夹带滞后的非线性减振器。混合钢丝绳装配在机械装置中,该机械装置通过弯曲它们,为振动的物料提供恢复力。由于同时发生钢丝间摩擦和相变,混合钢丝绳的组装会经受周期性的端部位移,从而产生挤压力-位移行为。采用改进的Bouc-Wen模型来表示捏滞后的磁滞,而采用差分进化(DE)算法来识别可再现实验力-位移循环的本构参数。 DE算法还用于优化吸收体的恢复力,以减轻主体结构对各种大小的外部干扰的动力响应。收缩的磁滞可提供等效的阻尼比和谐振频率,在给定的振幅范围内它们趋于变得几乎恒定,从而克服了其他非线性吸收器常见的有害失谐问题。吸收器的性能是根据安装在振动台上的多层钢结构建筑模型评估的。受控响应与非受控响应之间的比较表明,在设计频率带宽内,衰减性能非常好。

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