DocumentCode :
33280
Title :
Linear Power-Flow Formulation Based on a Voltage-Dependent Load Model
Author :
Marti, J.R. ; Ahmadi, H. ; Bashualdo, L.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of British Columbia, Vancouver, BC, Canada
Volume :
28
Issue :
3
fYear :
2013
fDate :
Jul-13
Firstpage :
1682
Lastpage :
1690
Abstract :
The power-flow (PF) solution is a fundamental tool in power system analysis. Standard PF formulations are based on the solution of a system of nonlinear equations which are computationally expensive due to the iterations needed. On the other hand, distribution-system (DS) automation algorithms should be fast enough to meet real-time performance. The conventional load representation, as constant P-Q, becomes less accurate as we get closer to the actual load´s level. In this paper, a new load model is proposed which represents the loads´ voltage dependency. A simple curve-fitting technique is used to derive a voltage-dependent load model which splits the load as a combination of an impedance and a current source. With this representation and some numerical approximations on the imaginary part of the nodal voltages, it is possible to formulate the load-flow problem as a linear power-flow (LPF) solution which does not require iterations. The approximation has been tested in systems up to 3000 nodes with excellent results. The LPF formulation is particularly important in the context of optimization algorithms for automated smart distribution systems. The extension of the technique to unbalanced distribution systems will be presented in future work.
Keywords :
approximation theory; distribution networks; load flow; nonlinear equations; optimisation; DS automation algorithms; LPF solution; P-Q constant; PF solution; automated smart distribution systems; current source; curve-fitting technique; distribution-system automation algorithms; linear power-flow formulation; linear power-flow solution; nonlinear equation system; numerical approximations; optimization algorithms; power system analysis; voltage-dependent load model; Approximation methods; Equations; Impedance; Load modeling; Mathematical model; Reactive power; Voltage measurement; Distribution system; linear power-flow (LPF) analysis; voltage-dependent load model;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2013.2247068
Filename :
6507359
Link To Document :
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