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A Control Method Based on a Simple Dynamic Optimizer: An Application to Micromachines with Friction
1Department of Mathematics, ESEIAAT-Universitat Politècnica de Catalunya, 08222 Terrassa, Spain.
Micromachines
|February 25, 2023
Summary
A novel dynamic optimizer enhances friction compensation in micromachines. This control method ensures finite-time stability and mitigates friction effects for improved regulation control performance.
Area of Science:
- Control Engineering
- Mechanical Engineering
- Robotics
Background:
- Friction compensation is crucial for micromachine control systems.
- Nonlinear control schemes effectively mitigate friction effects in mechanical systems.
Purpose of the Study:
- To propose a new regulation control method for micromachines using a dynamic optimizer.
- To achieve finite-time convergence for optimal performance index values.
Main Methods:
- A simple dynamic optimizer was developed and modified into a control scheme.
- Lyapunov theory was employed to confirm the finite-time stability of the closed-loop system.
- Numerical simulations utilized the LuGre friction model to test the controller.
Main Results:
- The proposed control scheme demonstrated acceptable performance in mitigating friction effects.
- The controller successfully managed a time-varying reference signal in a simulated micromachine.
- Finite-time stability of the closed-loop system was confirmed via Lyapunov theory.
Conclusions:
- The novel dynamic optimizer-based control method is effective for friction compensation in micromachines.
- The approach ensures finite-time stability, crucial for precise control applications.
- This method offers a viable solution for regulation control challenges in systems with friction.
Keywords:
LuGre friction modeldynamic optimizerfinite-time stabilitymicromachinesregulation control designMore Related Videos
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