In the framework of wave-based method, we have examined swing motion control for double-pendulum and load-hoist models. Emphases are placed on wave scattering by the middle load mass in the double-pendulum model and on time-varying configuration in the load-hoist model. By analyzing wave transmission and reflection, trolley's motion to alleviate swing is designed by absorbing reflected wave through adjusting the velocity of trolley. Simulation and experiment are also conducted to validate the proposed control method. The results show that with the designed trolley's motion swings of load can be significantly reduced for both double-pendulum model, suspended rod model which is demonstrated a special case of double-pendulum model, and load-hoist model. Simulation results agree well with the experimental measurement. Launch velocity profiles may have important impact on motion design, especially on force necessary to displace trolley. Finally, a wave-based feedback control is also discussed to demonstrate the flexibility of method.
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August 2017
Research-Article
Wave-Based Control of a Crane System With Complex Loads
Jiao Zhou,
Jiao Zhou
Key Laboratory of Dynamics and Control of
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Search for other works by this author on:
Kai Zhang,
Kai Zhang
Key Laboratory of Dynamics and Control of
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Search for other works by this author on:
Gengkai Hu
Gengkai Hu
Key Laboratory of Dynamics and Control of
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: hugeng@bit.edu.cn
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: hugeng@bit.edu.cn
Search for other works by this author on:
Jiao Zhou
Key Laboratory of Dynamics and Control of
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Kai Zhang
Key Laboratory of Dynamics and Control of
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
Gengkai Hu
Key Laboratory of Dynamics and Control of
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: hugeng@bit.edu.cn
Flight Vehicle,
Ministry of Education,
School of Aerospace Engineering,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: hugeng@bit.edu.cn
1Corresponding author.
Contributed by the Dynamic Systems Division of ASME for publication in the JOURNAL OF DYNAMIC SYSTEMS, MEASUREMENT, AND CONTROL. Manuscript received October 21, 2015; final manuscript received January 11, 2017; published online June 1, 2017. Assoc. Editor: Douglas Bristow.
J. Dyn. Sys., Meas., Control. Aug 2017, 139(8): 081016 (11 pages)
Published Online: June 1, 2017
Article history
Received:
October 21, 2015
Revised:
January 11, 2017
Citation
Zhou, J., Zhang, K., and Hu, G. (June 1, 2017). "Wave-Based Control of a Crane System With Complex Loads." ASME. J. Dyn. Sys., Meas., Control. August 2017; 139(8): 081016. https://doi.org/10.1115/1.4036228
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