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Ahmet Çakanel

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Open access Jul 2026

Design-Oriented Benchmarking of Sliding Mode Controllers for a Magnetic Levitation System Under Actuator and Sensor Constraints

This study examined the control of a single-axis vertical magnetic levitation (MagLev) system under realistic implementation constraints. The system was considered due to its nonlinear dynamics and inherent open-loop instability, which make it suitable for evaluating practical control limitations. Actuator voltage and current saturation, parameter uncertainty, external disturbances, and measurement noise were explicitly incorporated into the analysis. For comparative evaluation, three control strategies were implemented: local linear state feedback control based on an LQR design, fixed-gain sliding mode control, and adaptive sliding mode control. Rather than relying on a single initial condition, controller performance was assessed over ranges of initial positions and velocities using a capture region framework. The effects of parametric uncertainty were systematically investigated through Monte Carlo–based numerical simulations. The results indicated that the linear controller exhibited zero successful captures over the evaluated initial condition grid, while sliding mode controllers achieved restricted but nonzero capture regions under nominal and disturbance conditions. The adaptive mechanism influenced transient behavior but did not substantially expand the feasible operating region due to actuator constraints. Measurement noise was found to degrade controller effectiveness in all cases. These findings emphasize the importance of jointly considering physical constraints and stability properties when evaluating control strategies for magnetic levitation systems.

Ahmet Çakanel, Mine Menekli, Yaren Kurum et al. · 0 citations
Jul 2026

Energy-Consistent Super-Twisting Sliding-Mode Control of a Grid-Forming LC Inverter: A Port-Hamiltonian Diagnostic Perspective

This paper presents an energy-consistent super-twisting (ST) sliding-mode control design for a single-phase grid-forming inverter with an output LC filter, motivated by inverter-dominated low-inertia power-electronic applications. Throughout, energy-consistent refers to a sliding surface whose closed-loop motion is shaped to avoid large transient excursions of the filter Hamiltonian. The surface couples the voltage error, its integral, and the inductor current, and its design is informed by the port-Hamiltonian (PH) representation of the LC filter; the Hamiltonian is employed as a physically meaningful diagnostic rather than as a strict control structure. A super-twisting reaching law is used to provide continuous control action and finite-time convergence under bounded matched perturbations, with explicit gain conditions stated. An actuator saturation constraint is included in the model and its effect is reported. The proposed controller is benchmarked against a classical first-order SMC with boundary layer on the same sliding surface, isolating the contribution of the ST reaching law. Simulation studies on a grid-forming LC inverter subject to renewable-like disturbances and parameter uncertainties show that the ST controller reduces steady-state tracking error, control chatter, and Hamiltonian variation by a factor of two or more across the tested operating envelope, while the gain-sensitivity coefficient of variation of $\Delta {\mathcal{H}}$ stays below 3 over a [0.5,1.5]× nominal gain box.

Ahmet Çakanel · 0 citations

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