Title :
Mechanical resonance suppression and shaft torque limitation of two-mass drive system based on model predictive control
Author :
Can Wang ; Ming Yang ; Geng Wang ; Dianguo Xu
Author_Institution :
Dept. of Electr. Eng., Harbin Inst. of Technol., Harbin, China
Abstract :
The flexibility of transmission mechanisms in two-mass servo system can lead to its mechanical resonance. If the oscillation amplitude is beyond the shaft tolerance, it will lead to system insecurity problems. In this paper, the model of transmission mechanisms is firstly established, and based on that, four strategies: engineering design, pole placement method, shaft torque state feedback method and model predictive control are studied to suppress mechanical vibration and protect the safety of transmission. Simulation results show the advantages and disadvantages of the four strategies, meanwhile confirm MPC as the optimal method. MPC can suppress mechanical resonance, limit the amplitude of the shaft torque and allow the system to complete the transient process with maximum acceleration, taking dynamic performance and security into account at the same time.
Keywords :
pole assignment; power transmission (mechanical); predictive control; servomechanisms; shafts; state feedback; torque control; MPC; engineering design; maximum acceleration; mechanical resonance suppression; mechanical vibration suppression; model predictive control; pole placement method; shaft tolerance; shaft torque limitation; shaft torque state feedback method; system insecurity problems; transient process; transmission mechanisms flexibility; transmission safety; two-mass drive system; two-mass servo system; Damping; Oscillators; Predictive control; Security; Shafts; State feedback; Torque; mechanical resonance; model predictive control; servo system; shaft torque limitation;
Conference_Titel :
Industrial Electronics Society, IECON 2014 - 40th Annual Conference of the IEEE
DOI :
10.1109/IECON.2014.7048905