Simulation Research of the Direct Driving Active Mass Driver System

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Abstract:

In order to solve the problem of the traditional AMD(Active Mass Drive system), the DDVC(DAMD,Direct Driving Volume Control) AMD is presented in this paper. Firstly, the mathematical models of the electric motor, hydraulic power system and the hydraulic actuators are constructed respectively. Then, the whole model integrated with different parts is analyzed. Finally, the critical factors which can affect the dynamic characteristics are introduced by using numerical simulation. The results show that the new system has a good performance.

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1287-1290

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August 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] OU Jinping. Structure Vibration Control: Active, Semi-active and Intelligent control. Science Press, 2003, 1.

Google Scholar

[2] LIU Junlong. Structural Hydraulic Passive Energy Dissipation and Direct Driving Active Control Systems. Doctoral Dissertation of Harbin Institute of Technology. 2009, 6.

Google Scholar

[3] LIU Qinghe. Direct Drive Volume Control Electro-hydraulic System. Harbin Institute of Technology. 2007, (10): 12~18.

Google Scholar

[4] SOONG T. T. and SPENCER B. F. Supplemental Energy Dissipation: State-of- the-Art and State-of-the Practice. Engineering Structures. 2000, 24: 243~259.

DOI: 10.1016/s0141-0296(01)00092-x

Google Scholar

[5] SOONG T.T., REINHORN A.M. and WANG Y. P. et al. Full Scale Implementation of Active Control I: Design and Simulation. Journal of Engineering Mechanics. 1991, 117(11): 3516~3536.

DOI: 10.1061/(asce)0733-9445(1991)117:11(3516)

Google Scholar

[6] SPENCER B.F. and NAGARAJAIAH S. State of the Art of Structural Control. Journal of Structural Engineering. 2003, 129(7): 845~856.

DOI: 10.1061/(asce)0733-9445(2003)129:7(845)

Google Scholar

[7] HOUSNER G. W., BERGMAN L. A., CAUGHEY T. K., CHASSIAKOS A. G., CLAUS R. O., MASRI S. F., SKELTON R. E., SOONG T. T., SPENCER B.F., YAO J. T. P. Structural Control: Past, Present, and Future. J Engng Mech, ASCE. 1997, 123(9): 897~971.

DOI: 10.1061/(asce)0733-9399(1997)123:9(897)

Google Scholar

[8] SUN H., GEORGE T. and CHIU C. Nonlinear Observer Based Force Control of Electro-Hydraulic Actuators. Proceedings of the American Control Conference, San Diego, California. 1999: 764~768.

DOI: 10.1109/acc.1999.783143

Google Scholar

[9] M. ITO, H. SATO and Y. Maeda. Direct Drive Volume Control of Hydraulic System and its application to the Steering System of Ship. FLUCOME'97, Hayama. 1999, 1: 445~450.

Google Scholar

[10] MASANORI ITO, NORIKI, HiROSE. Main Engine Revolution Control for Ship with Direct Drive Volume Control System. ISME TOKYO, 2000, 2: 26~31.

Google Scholar

[11] YAMAMOTO, TOMOICHIRO. Apparatus for Controlling a Hydraulic Elevator. United States Patent No: 4593792.

Google Scholar

[12] NAKANO K., TANAKA Y. Energy Saving Type Electro-hydraulic Servo System. Journal of Fluid Control. 1988, 18(3): 35~51.

Google Scholar

[13] TANAKA Y. ,MACHDA T. ,NAKANO K. Speed and Displacement Control of Pump System for Energy Saving. Journal of fluid control. 1998, 17(5): 78~81.

Google Scholar