TY - JOUR
T1 - A two-layered control for backlash compensation and oscillation suppression in ball screw drives
AU - Dai, Jia
AU - Wan, Min
AU - Zhang, Wei Hong
AU - Li, Deng Hui
AU - Zhou, Peng
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/8/15
Y1 - 2026/8/15
N2 - Backlash in ball screw drives causes torque loss and engagement impact during motion reversal, resulting in tracking errors and oscillations. Existing compensation methods, which treat backlash as a lumped disturbance, fail to balance fast estimation and smooth compensation, leading to delayed or abrupt responses. This study introduces a two-layered composite control structure for backlash-affected ball screw drives, featuring a torque-loss compensation layer and an oscillation-damping layer to enhance tracking accuracy and suppress reversal oscillations. The backlash transition process is divided into three phases. Theoretical analysis demonstrates that tracking errors primarily occur in the first and third phases due to torque loss, while oscillations occur in the second phase due to engagement impact. A continuous prediction method for backlash transitions employs motor-side position increments after velocity reversal to achieve accurate phase switching and torque compensation. A combined backlash–friction feedforward strategy is developed to compensate for torque losses, while an extended state observer (ESO)-based controller rejects residual disturbances. An oscillation-damping layer with velocity-difference feedback suppresses engagement-induced vibrations, and a back-propagation artificial neural network characterizes position-dependent backlash using laser interferometer measurements. Comparative motion and milling tests validate the effectiveness of the proposed approach.
AB - Backlash in ball screw drives causes torque loss and engagement impact during motion reversal, resulting in tracking errors and oscillations. Existing compensation methods, which treat backlash as a lumped disturbance, fail to balance fast estimation and smooth compensation, leading to delayed or abrupt responses. This study introduces a two-layered composite control structure for backlash-affected ball screw drives, featuring a torque-loss compensation layer and an oscillation-damping layer to enhance tracking accuracy and suppress reversal oscillations. The backlash transition process is divided into three phases. Theoretical analysis demonstrates that tracking errors primarily occur in the first and third phases due to torque loss, while oscillations occur in the second phase due to engagement impact. A continuous prediction method for backlash transitions employs motor-side position increments after velocity reversal to achieve accurate phase switching and torque compensation. A combined backlash–friction feedforward strategy is developed to compensate for torque losses, while an extended state observer (ESO)-based controller rejects residual disturbances. An oscillation-damping layer with velocity-difference feedback suppresses engagement-induced vibrations, and a back-propagation artificial neural network characterizes position-dependent backlash using laser interferometer measurements. Comparative motion and milling tests validate the effectiveness of the proposed approach.
KW - Active damping
KW - Backlash compensation
KW - Backlash prediction
KW - Extended state observer
KW - Oscillation suppression
UR - https://www.scopus.com/pages/publications/105045197324
U2 - 10.1016/j.ymssp.2026.114675
DO - 10.1016/j.ymssp.2026.114675
M3 - 文章
AN - SCOPUS:105045197324
SN - 0888-3270
VL - 258
JO - Mechanical Systems and Signal Processing
JF - Mechanical Systems and Signal Processing
M1 - 114675
ER -