Title :
Constant power loads and negative impedance instability in automotive systems: definition, modeling, stability, and control of power electronic converters and motor drives
Author :
Emadi, Ali ; Khaligh, Alireza ; Rivetta, Claudio H. ; Williamson, Geoffrey A.
Author_Institution :
Electr. & Comput. Eng. Dept., Illinois Inst. of Technol., Chicago, IL
fDate :
7/1/2006 12:00:00 AM
Abstract :
Power electronic converters and electric motor drives are being put into use at an increasingly rapid rate in advanced automobiles. However, the new advanced automotive electrical systems employ multivoltage level hybrid ac and dc as well as electromechanical systems that have unique characteristics, dynamics, and stability problems that are not well understood due to the nonlinearity and time dependency of converters and because of their constant power characteristics. The purpose of this paper is to present an assessment of the negative impedance instability concept of the constant power loads (CPLs) in automotive power systems. The main focus of this paper is to analyze and propose design criteria of controllers for automotive converters/systems operating with CPLs. The proposed method is to devise a new comprehensive approach to the applications of power electronic converters and motor drives in advanced automotive systems. Sliding-mode and feedback linearization techniques along with large-signal phase plane analysis are presented as methods to analyze, control, and stabilize automotive converters/systems with CPLs
Keywords :
automotive electronics; electric vehicles; feedback; machine control; motor drives; power convertors; stability; variable structure systems; automobiles; automotive power systems; constant power loads; electromechanical systems; feedback linearization techniques; large-signal phase plane analysis; motor drives control; negative impedance instability; power electronic converters control; sliding-mode techniques; Automotive engineering; Control systems; Electric motors; Impedance; Motor drives; Power electronics; Power system dynamics; Power system modeling; Power system stability; Sliding mode control; Constant power loads (CPLs); control; electric vehicles (EVs); fuel cell vehicles (FCVs); hybrid electric vehicles (HEVs); modeling; modeling and analysis; motor drives; negative impedance instability; power converters; stability; state-space averaging;
Journal_Title :
Vehicular Technology, IEEE Transactions on
DOI :
10.1109/TVT.2006.877483