Dynamic integral sliding mode control of an electromechanical system
Ebru Senyigit Sinekli, Ramazan Çoban
Abstract
Ebru Senyigit Sinekli, Ramazan Çoban
Abstract
In this study, a dynamic integral sliding mode control is put forward to control the speed of an electromechanical system. The dynamic integral sliding mode control is proposed to make sliding mode control aspects better and remove undesirable chattering effects. Lyapunov theorem is applied to guarantee the system's stability. The system under parameter uncertainty is considered close to the real world industrial systems. The experimental results obtained from the sliding mode control are compared with the experimental results of dynamic integral sliding mode control under parameter uncertainty. Experimental results verify that dynamic integral sliding mode control method provides preferable tracking performance, overcomes chattering, and has better raising time, smaller settling time, and no overshoot. It is robust with respect to parameter variations compared to the sliding mode control.
OpenAlex reports 5 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
In this study, a dynamic integral sliding mode control is put forward to control the speed of an electromechanical system. The dynamic integral sliding mode control is proposed to make sliding mode control aspects better and remove undesirable chattering effects. Lyapunov theorem is applied to guarantee the system's stability. The system under parameter uncertainty is considered close to the real world industrial systems. The experimental results obtained from the sliding mode control are compared with the experimental results of dynamic integral sliding mode control under parameter uncertainty. Experimental results verify that dynamic integral sliding mode control method provides preferable tracking performance, overcomes chattering, and has better raising time, smaller settling time, and no overshoot. It is robust with respect to parameter variations compared to the sliding mode control.
Key concepts: Integral sliding mode, Control theory (sociology), Sliding mode control, Overshoot (microwave communication), Settling time, Mode (computer interface), Variable structure control, Lyapunov function