Title :
Active vibration control for electric vehicle compliant drivetrains
Author :
Rodriguez, J.M. ; Meneses, Ricardo ; Orus, J.
Author_Institution :
Inst. Tecnol. de Aragon, Zaragoza, Spain
Abstract :
The present work describes a novel controller based on perturbation observers for reducing the oscillations and improving the stability in the powertrain of a full electric vehicle with in-board motors. Compared with more classical approaches, the proposed strategy permits to damp the resonance in the transmission line and to control the reaction torque on the road. To do that, the controller combines state feedback with a tyre reaction tracking loop. The former is intended to damp the resonance frequency of the drivetrain using pole placement, and the latter avoids low frequency oscillations and assures the proper reaction on the road. The inner state feedback loop is applied to the subsystem motor-gearbox-halfshaft-wheel, which can be perfectly characterized, and it is not affected by the nonlinear time-varying response of the tyre. This last magnitude is estimated with a perturbation observer without requiring complex nonlinear representations, and the obtained value is compared with the reference driver command. The outer tracking loop compensates for the tracking error. The proposed controller is compared with a more traditional algorithm based on a tachometric feedback, and it has proved a good performance in dry and snowy road conditions, properly working in presence of actuations of the traction control system in low adherence situations.
Keywords :
electric vehicles; gears; observers; pole assignment; power transmission (mechanical); road vehicles; shafts; stability; state feedback; tracking; tyres; vibration control; wheels; active vibration control; complex nonlinear representations; dry road condition; electric vehicle compliant drivetrains; frequency oscillations; in-board motors; inner state feedback loop; nonlinear time-varying response; outer tracking loop; perturbation observers; pole placement; powertrain; reaction torque; reference driver command; resonance frequency; snowy road condition; stability; subsystem motor-gearbox-halfshaft-wheel; tachometric feedback; tracking error; traction control system; transmission line; tyre reaction tracking loop; Damping; Oscillators; Roads; Tires; Torque; Vehicles; Wheels; Active Vibration Control; Drivetrain Oscillation; Electric Vehicle; Perturbation Observers; Torque tracking;
Conference_Titel :
Industrial Electronics Society, IECON 2013 - 39th Annual Conference of the IEEE
Conference_Location :
Vienna
DOI :
10.1109/IECON.2013.6699539