Title :
Detection and optimal compensation of unbalanced AC motor drives using DISC analysis
Author_Institution :
Delphi Corp., Saginaw, MI, USA
Abstract :
This paper develops a new feedback control method for fault detection and real-time compensation of unbalanced three-phase motor drive systems. This method is based on an extension time-domain symmetrical component theory where a new transformation is used to express the sequence components in state-space form. This transformation relies upon a decomposition of the instantaneous sequence components (DISC transformation). Unlike previous analysis techniques, this method models the dynamics of positive and negative sequence components for systems with arbitrary resistance, inductance, and capacitance imbalances in a systematic manner. Dynamic models derived using the DISC transformation are well suited for real-time compensation and fault detection in three-phase motor drives. This paper develops the theory of the DISC transformation and gives an application to the optimal compensation of a permanent magnet synchronous motor drive with a resistance imbalance. Experimental measurements from a laboratory inverter are provided to confirm the theoretical development.
Keywords :
capacitance; compensation; electric resistance; fault location; feedback; inductance; machine control; permanent magnet motors; state-space methods; synchronous motor drives; time-domain analysis; DISC analysis; fault detection; feedback control method; instantaneous sequence components; negative sequence components; optimal compensation; permanent magnet synchronous motor drive; positive sequence components; real-time compensation; resistance imbalance; state-space; time-domain symmetrical component theory; unbalanced AC motor drives; unbalanced three-phase motor drive systems; AC motors; Capacitance; Electrical resistance measurement; Fault detection; Feedback control; Inductance; Motor drives; Permanent magnet motors; Real time systems; Time domain analysis;
Conference_Titel :
Diagnostics for Electric Machines, Power Electronics and Drives, 2003. SDEMPED 2003. 4th IEEE International Symposium on
Print_ISBN :
0-7803-7838-5
DOI :
10.1109/DEMPED.2003.1234596