Title :
Stability modeling of HEV/EV electric drives as a small-scale distributed power system
Author_Institution :
Res. & Innovation Center, Ford Motor Co., Dearborn, MI, USA
Abstract :
Stability modeling of Hybrid Electric Vehicle and Electric Vehicle (HEV/EV) electric drives as a small-scale distributed power system is presented. Three fundamental questions in applying the impedance-based stability analysis are broached, those are “Is output/input impedance stability modeling sensitive to 1) input-output boundary location?, 2) power-flow direction?, and 3) voltage-stiff or current-stiff representation?”. The validity of the answers to these questions presented in this paper is not restricted to vehicle electric drive applications. The stability modeling description is presented with an example of an HEV electric drive (e-drive) system consisting of a dc-dc converter and two three-phase inverters sharing a common dc-bus. It is shown that there is good correlation of the stability analysis results between the presented approach and the time-domain circuit simulations.
Keywords :
DC-DC power convertors; electric drives; hybrid electric vehicles; invertors; load flow; stability; DC-DC converter; HEV-EV electric drives; common dc-bus; current-stiff representation; e-drive system; electric vehicle; hybrid electric vehicle; impedance-based stability analysis; input-output boundary location; output-input impedance stability modeling; power-flow direction; small-scale distributed power system; three-phase inverters; time-domain circuit simulations; voltage-stiff; DC-DC power converters; Hybrid electric vehicles; Impedance; Stability analysis; Switches; Trajectory; Transfer functions;
Conference_Titel :
Applied Power Electronics Conference and Exposition (APEC), 2015 IEEE
Conference_Location :
Charlotte, NC
DOI :
10.1109/APEC.2015.7104727