隔离器
隔振
刚度
谐波平衡
结构工程
传递率(结构动力学)
振动
非线性系统
无量纲量
参数统计
材料科学
振动控制
悬浮
控制理论(社会学)
数值积分
脉冲(物理)
工程类
波形
动力减振器
谐波
机械
梁的直接积分
阻尼器
频率响应
振幅
激发
数值分析
简谐运动
作者
Hanxuan Wang,Kaiping Yu,Rui Zhao,Minqiang Xu
标识
DOI:10.1142/s0219455427500751
摘要
This paper proposes a novel composite high-order quasi-zero stiffness (HO-QZS) vibration isolator that achieves HO-QZS characteristics through the integration of a positive stiffness spring, a negative stiffness cam-roller-horizontal spring (CRHS) mechanism, and a magnetic levitation module. In system modeling, nonlinear restoring force equations were derived for both the CRHS mechanism and magnetic levitation structure. Utilizing parametric design theory for QZS systems, a dimensionless dynamic control equation containing only a seventh-order stiffness term with parameter g was developed through Taylor expansion and dimensional normalization methods. The steady-state response, stability, and vibration transmission characteristics were analyzed using the harmonic balance method and numerical integration verification. Research results demonstrate that HO-QZS designs (e.g. fifth-order QZS) significantly reduce the initial isolation frequency (36.78% lower than non-QZS systems) by expanding the quasi-zero stiffness region, while suppressing peak transmissibility (3.81[Formula: see text]dB attenuation compared with non-QZS systems). Parametric sensitivity analysis reveals that increased damping ratio effectively suppresses resonance peaks but compromises high-frequency isolation performance. Larger excitation amplitudes induce stiffness hardening effects, and reduced stiffness coefficients improve isolation efficiency while introducing dynamic stability challenges in low-frequency ranges. This study provides theoretical and design foundations for low-frequency vibration isolation engineering.
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