Title :
DQ impedance of a regulated synchronous machine
Author :
Belkhayat, M. ; Gonzalez, J.I. ; Verhulst, J.
Author_Institution :
Newport News Shipbuilding, Washington, DC, USA
Abstract :
Impedance based stability techniques have been developed since the 80s for stable filter and converter designs. More recently, similar impedance techniques have been used to impose stability requirements on power systems including distributed converters. Significant effort has been spent on the development of models and impedance characterizations for regulated DC-DC converters and AC-DC converters. For rotating machinery however, and in particular synchronous machines, very little has been published on impedance characterizations. In this paper, the DQ impedance of a regulated synchronous machine is developed and compared to a hardware-validated Saber model of the synchronous machine. The DQ impedance expressions are derived based on the fixed-field impedances, the droop parameter, and simplified transfer functions for the exciter and the regulator. The analytical results are compared to the numerical results obtained from the Saber model.
Keywords :
AC-DC power convertors; DC-DC power convertors; power filters; synchronous machines; transfer functions; AC-DC converters; DC-DC converters; DQ impedance; converter designs; distributed converters; droop parameter; fixed-field impedances; hardware-validated Saber model; impedance based stability; power systems; regulated synchronous machine; rotating machinery; stable filter; transfer functions; Equations; Impedance; Mathematical model; Regulators; Rotors; Synchronous machines; Transfer functions;
Conference_Titel :
Electric Ship Technologies Symposium (ESTS), 2013 IEEE
Conference_Location :
Arlington, VA
Print_ISBN :
978-1-4673-5243-7
DOI :
10.1109/ESTS.2013.6523707