Title :
A detailed R-L fed bridge converter model for power flow studies in industrial AC/DC power systems
Author :
Tzeng, Yii-Shen ; Chen, Nanming ; Wu, Ruay-Nan
Author_Institution :
Dept. of Electron. Eng., Nat. Taiwan Inst. of Technol., Taipei, Taiwan
fDate :
10/1/1995 12:00:00 AM
Abstract :
Because of lower voltage levels and smaller power ratings, the R/X ratio of commutation impedance in industrial AC/DC distribution systems is usually higher than that in HVDC transmission systems. Considerable discrepancies may therefore occur in industrial AC/DC power flow results, especially the reactive power consumption of converters, if the commutation resistances of the converters are neglected. To describe the effects of commutation impedance on converter operations and to precisely relate the fundamental line current and DC output current of the converter, a detailed model of the bridge converter with commutation impedance for use of Newton-Raphson power flow studies in industrial AC/DC power systems is derived in this paper. A coal mine power system and a DC electrified transit railway system with regenerative braking function, a part of Taipei Rapid Transit Systems under planning, have been analyzed to show the improved accuracy and good convergence characteristics of the developed Newton-Raphson power flow formulation with the proposed converter model
Keywords :
Newton-Raphson method; bridge circuits; commutation; convergence of numerical methods; electric impedance; industrial power systems; load flow; mineral processing industry; mining; power convertors; railways; rapid transit systems; regenerative braking; DC electrified transit railway system; DC output current; Newton-Raphson power flow; R-L fed bridge converter model; R/X ratio; Taipei Rapid Transit Systems; bridge converter model; coal mine power system; commutation impedance; commutation resistances; convergence characteristics; fundamental line current; industrial AC/DC power systems; power flow; regenerative braking function; Analog-digital conversion; Bridge circuits; Impedance; Industrial power systems; Load flow; Load flow analysis; Power system analysis computing; Power system modeling; Power system planning; Voltage;
Journal_Title :
Industrial Electronics, IEEE Transactions on
Conference_Location :
10/1/1995 12:00:00 AM