TY - JOUR
T1 - Research on Point-to-Point High-Speed and Low-Vibration Motion Planning Method Considering Time-Frequency Characteristics
AU - Xu, Weiwei
AU - Huang, Xiaoyong
AU - Zheng, Hongmei
AU - Chen, Ke
AU - Tao, Tao
AU - Mei, Xuesong
N1 - Publisher Copyright:
© 2026, Xi'an Jiaotong University. All rights reserved.
PY - 2026/4
Y1 - 2026/4
N2 - To enhance the machining efficiency and positioning accuracy of feed systems during high-speed point-to-point motions, and to address the significant vibrations induced by spectral excitation of motion commands during high-speed operation, a motion planning method considering time-frequency characteristics is proposed to generate high-speed, low-vibration motion commands. This method constructs a motion command described by a 5th-order B-spline representation in the time domain, and integrates the time-frequency characteristics of the motion command into the planning process. On this basis, the short-time Fourier transform is utilized to derive analytical expressions for the spectral components of the acceleration command over different time intervals, and constraint equations for these spectral components are established in combination with the system’ s resonance frequency bands. By formulating a time-optimal motion command planning model that considers vibration suppression, and incorporating kinematic constraints as well as the time-frequency spectral component constraints of the acceleration command, high-speed, low-vibration motion commands are generated. Numerical simulations demonstrate that the proposed method can significantly reduce the amplitude of spectral components that excite system resonance, thereby improving the dynamic characteristics during motion. Experimental results on a flexible cantilever beam feed system show that, compared with the S-curve and asymmetric S-curve velocity planning methods, the proposed method can still achieve a reduction of over 50% in system vibration and a shortening of more than 40% in total positioning time, even in the presence of modeling disturbances.
AB - To enhance the machining efficiency and positioning accuracy of feed systems during high-speed point-to-point motions, and to address the significant vibrations induced by spectral excitation of motion commands during high-speed operation, a motion planning method considering time-frequency characteristics is proposed to generate high-speed, low-vibration motion commands. This method constructs a motion command described by a 5th-order B-spline representation in the time domain, and integrates the time-frequency characteristics of the motion command into the planning process. On this basis, the short-time Fourier transform is utilized to derive analytical expressions for the spectral components of the acceleration command over different time intervals, and constraint equations for these spectral components are established in combination with the system’ s resonance frequency bands. By formulating a time-optimal motion command planning model that considers vibration suppression, and incorporating kinematic constraints as well as the time-frequency spectral component constraints of the acceleration command, high-speed, low-vibration motion commands are generated. Numerical simulations demonstrate that the proposed method can significantly reduce the amplitude of spectral components that excite system resonance, thereby improving the dynamic characteristics during motion. Experimental results on a flexible cantilever beam feed system show that, compared with the S-curve and asymmetric S-curve velocity planning methods, the proposed method can still achieve a reduction of over 50% in system vibration and a shortening of more than 40% in total positioning time, even in the presence of modeling disturbances.
KW - point-to-point motion command
KW - short-time Fourier transform
KW - time-frequency characteristics
KW - vibration suppression
UR - https://www.scopus.com/pages/publications/105039991367
U2 - 10.7652/xjtuxb202604021
DO - 10.7652/xjtuxb202604021
M3 - 文章
AN - SCOPUS:105039991367
SN - 0253-987X
VL - 60
SP - 250
EP - 260
JO - Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University
JF - Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University
IS - 4
ER -