TY - JOUR
T1 - Adaptive feed-forward compensation for hybrid control with acceleration time waveform replication on electro-hydraulic shaking table
AU - Gang, Shen
AU - Zhen-Cai, Zhu
AU - Lei, Zhang
AU - Yu, Tang
AU - Chi-fu, Yang
AU - Jin-song, Zhao
AU - Guang-da, Liu
AU - Jun-Wei, Han
PY - 2013
Y1 - 2013
N2 - This article presents a high fidelity acceleration time waveform replication (TWR) on an electro-hydraulic shaking table (EHST) using the hybrid control combined with an offline feed-forward compensator and an online adaptive inverse control (AIC). This study applies the acceleration and velocity feedback to improve the steady performance of the EHST, and employs the system inverse transfer function (ITF) of the acceleration closed-loop system to extend the frequency bandwidth and a modeling error compensator to improve the dynamic characteristics. Moreover, the investigation utilizes a Zero Phase Error Tracking Controller to improve the accuracy of the designed ITF. The proposed hybrid controller also utilizes an online AIC for a high fidelity TWR after that the dynamic characteristics has been improved by the feedback and feed-forward controllers. Thus, the proposed hybrid control strategy combines the merits of the offline feed-forward compensation and online AIC. Performance analysis and comparison of the experimental results demonstrate that better replication accuracy with the proposed hybrid control can be achieved in experiments on an actual EHST.
AB - This article presents a high fidelity acceleration time waveform replication (TWR) on an electro-hydraulic shaking table (EHST) using the hybrid control combined with an offline feed-forward compensator and an online adaptive inverse control (AIC). This study applies the acceleration and velocity feedback to improve the steady performance of the EHST, and employs the system inverse transfer function (ITF) of the acceleration closed-loop system to extend the frequency bandwidth and a modeling error compensator to improve the dynamic characteristics. Moreover, the investigation utilizes a Zero Phase Error Tracking Controller to improve the accuracy of the designed ITF. The proposed hybrid controller also utilizes an online AIC for a high fidelity TWR after that the dynamic characteristics has been improved by the feedback and feed-forward controllers. Thus, the proposed hybrid control strategy combines the merits of the offline feed-forward compensation and online AIC. Performance analysis and comparison of the experimental results demonstrate that better replication accuracy with the proposed hybrid control can be achieved in experiments on an actual EHST.
KW - Adaptive inverse control
KW - Electro-hydraulic shaking table
KW - Feed-forward compensation
KW - Hybrid control
KW - System identification
UR - https://www.scopus.com/pages/publications/84882714237
U2 - 10.1016/j.conengprac.2013.03.007
DO - 10.1016/j.conengprac.2013.03.007
M3 - 文章
AN - SCOPUS:84882714237
SN - 0967-0661
VL - 21
SP - 1128
EP - 1142
JO - Control Engineering Practice
JF - Control Engineering Practice
IS - 8
ER -