A polytopic LPV approach to active fault tolerant control system design for three-phase induction motors
DOI10.1080/00207179.2016.1244730zbMath1380.93094OpenAlexW2529821102MaRDI QIDQ3132979
No author found.
Publication date: 12 February 2018
Published in: International Journal of Control (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1080/00207179.2016.1244730
observersfault-tolerant control (FTC)fault detection and isolation (FDI)induction motors (IMs)linear parameter-varying systems (LPVs)
Sensitivity (robustness) (93B35) Application models in control theory (93C95) Linear systems in control theory (93C05) Observability (93B07) Control/observation systems governed by ordinary differential equations (93C15)
Related Items (2)
Cites Work
- Unnamed Item
- Unnamed Item
- Induction motor control design
- Fault detection and fault-tolerant control using sliding modes.
- Robust sensor fault reconstruction for Lipschitz nonlinear systems
- Model-based fault diagnosis techniques. Design schemes, algorithms and tools
- Implicit fault-tolerant control: Application to induction motors.
- Self-scheduled \({\mathcal H}_ \infty\) control of linear parameter-varying systems: A design example
- New fault tolerant control strategies for nonlinear Takagi-Sugeno systems
- Fault-Diagnosis Applications
- LQG control with an H/sup infinity / performance bound: a Riccati equation approach
- Mixed H/sub 2//H/sub infinity / control: a convex optimization approach
- Mixed ℋ/sub 2/ and ℋ/sub ∞/ performance objectives. I. Robust performance analysis
- Multiobjective output-feedback control via LMI optimization
- Adaptive input-output linearizing control of induction motors
This page was built for publication: A polytopic LPV approach to active fault tolerant control system design for three-phase induction motors