DocumentCode :
3382754
Title :
Hybrid three-phase load flow method for ungrounded distribution systems
Author :
Hongbo Sun ; Nikovski, Daniel ; Ohno, Tetsufumi ; Takano, Takeshi ; Kojima, Yasuhiro
Author_Institution :
Mitsubishi Electr. Res. Labs., Cambridge, MA, USA
fYear :
2012
fDate :
14-17 Oct. 2012
Firstpage :
1
Lastpage :
8
Abstract :
This paper proposes a hybrid three-phase load flow method for ungrounded distribution systems. Based on topology connectivity analysis, the system is partitioned into a mainline system and multiple tap systems. A Newton method with constant admittance matrix is used to solve the mainline system, such that zero impedance branches are merged into adjacent impedance branches to be considered, and constant active-power and voltage-magnitude (PV) buses with three-phase balanced voltages are transformed into single-phase PV buses to be modeled. A backward/forward sweep with loop compensation is used to solve the tap systems, such that a transformer and a voltage regulator is modeled using line-to-line voltages, a distribution line is simplified as a series branch, and loop compensation current is initialized based on loop downstream loads and the impedances of loop paths. Test results of sample systems are given to demonstrate the effectiveness of the proposed method.
Keywords :
Newton method; distribution networks; field buses; hybrid power systems; load flow; power transformers; voltage regulators; Newton method; adjacent impedance branch; backward-forward sweep; constant active-power; constant admittance matrix; hybrid three-phase load flow method; line-to-line voltage; loop compensation; loop compensation current; loop downstream load; loop path impedance; mainline system; multiple tap system; series branch; single-phase PV bus; three-phase balanced voltage transformer; topology connectivity analysis; ungrounded distribution line system; voltage regulator; voltage-magnitude bus; zero impedance branch; Admittance; Equations; Impedance; Load flow; Mathematical model; Vectors; Voltage control; Distribution system; Load Flow; Real-time; Three-phase; Ungrounded;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Innovative Smart Grid Technologies (ISGT Europe), 2012 3rd IEEE PES International Conference and Exhibition on
Conference_Location :
Berlin
ISSN :
2165-4816
Print_ISBN :
978-1-4673-2595-0
Electronic_ISBN :
2165-4816
Type :
conf
DOI :
10.1109/ISGTEurope.2012.6465613
Filename :
6465613
Link To Document :
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