TY - JOUR
T1 - Passive vibration isolation of flexure jointed hexapod
T2 - A geometry design method
AU - Zuo, Zongyu
AU - Wang, Jiahao
AU - Wang, Heng
AU - Wang, Qiang
N1 - Publisher Copyright:
© IMechE 2020.
PY - 2021/7
Y1 - 2021/7
N2 - This paper presents the passive vibration isolation problem for a specific kind of Stewart Platform called flexure jointed hexapod (FJH). For purpose of analyzing the relationship between passive vibration isolation and parameters of the FJH, an existing dynamic model of the hexapod is re-cast appropriately to obtain the transfer function matrix from disturbance to generalized coordinates of the payload. Then, the system natural frequencies and the corresponding damping ratios are derived analytically. To guarantee the effective disturbance attenuation and isolation, a lower bound of the disturbance frequency with respect to the geometric parameters of the FJH is identified. Based on the identified sufficient conditions for disturbance isolation, a new design algorithm for geometry structure of the FJH and coefficients of the parallel spring-damping mechanism in struts is proposed. Finally, numerical simulation results are provided to demonstrate effectiveness of the proposed design algorithm.
AB - This paper presents the passive vibration isolation problem for a specific kind of Stewart Platform called flexure jointed hexapod (FJH). For purpose of analyzing the relationship between passive vibration isolation and parameters of the FJH, an existing dynamic model of the hexapod is re-cast appropriately to obtain the transfer function matrix from disturbance to generalized coordinates of the payload. Then, the system natural frequencies and the corresponding damping ratios are derived analytically. To guarantee the effective disturbance attenuation and isolation, a lower bound of the disturbance frequency with respect to the geometric parameters of the FJH is identified. Based on the identified sufficient conditions for disturbance isolation, a new design algorithm for geometry structure of the FJH and coefficients of the parallel spring-damping mechanism in struts is proposed. Finally, numerical simulation results are provided to demonstrate effectiveness of the proposed design algorithm.
KW - dynamic model
KW - Flexure jointed hexapod
KW - geometry structure
KW - natural frequency and damping ratio
KW - passive vibration isolation
KW - Stewart Platform
UR - https://www.scopus.com/pages/publications/85090154959
U2 - 10.1177/0954406220954483
DO - 10.1177/0954406220954483
M3 - 文章
AN - SCOPUS:85090154959
SN - 0954-4062
VL - 235
SP - 2496
EP - 2506
JO - Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science
JF - Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science
IS - 13
ER -