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Semi-active vibration control of an eleven degrees of freedom suspension system using neuro inverse model of magnetorheological dampers
Seiyed Hamid Zareh*, Meisam Abbasi, Hadi Mahdavi and Kambiz Ghaemi Osgouie
The Journal of Mechanical Science and Technology, vol. 26, no. 8, pp.2459-2467, 2012
Abstract : "A semi-active controller-based neural network for a suspension system with magnetorheological (MR) dampers is presented and
evaluated. An inverse neural network model (NIMR) is constructed to replicate the inverse dynamics of the MR damper. The typical
control strategies are linear quadratic regulator (LQR) and linear quadratic gaussian (LQG) controllers with a clipped optimal control
algorithm, while inherent time-delay and non-linear properties of MR damper lie in these strategies. LQR part of LQG controller is also
designed to produce the optimal control force. The LQG controller and the NIMR models are linked to control the system. The effectiveness
of the NIMR is illustrated and verified using simulated responses of a full-car model. The results demonstrate that by using the
NIMR model, the MR damper force can be commanded to follow closely the desirable optimal control force. The results also show that
the control system is effective and achieves better performance and less control effort than the optimal in improving the service life of the
suspension system and the ride comfort of a car."
Keyword : "Clipped optimal algorithm; Inverse model; MR damper; Neural network; Semi-active control; Suspension system |
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