Determining the Norton’s Equivalent Model of Distribution System with Distributed Generation (DG) for Stability Analysis
-
Published:2019-02-28
Issue:2
Volume:12
Page:190-198
-
ISSN:2352-0965
-
Container-title:Recent Advances in Electrical & Electronic Engineering (Formerly Recent Patents on Electrical & Electronic Engineering)
-
language:en
-
Short-container-title:EEENG
Author:
Katyara Sunny1, Staszewski Lukasz2, Chachar Faheem Akhtar1
Affiliation:
1. Department of Electrical Engineering, Sukkur IBA University, Sindh, Sukkur, Pakistan 2. Department of Electrical Power Engineering, Wroclaw University of Science & Technology, Poland
Abstract
Background:
Since the distribution networks are passive until Distributed Generation
(DG) is not being installed into them, the stability issues occur in the distribution system after the
integration of DG.
Methods:
In order to assure the simplicity during the calculations, many approximations have been
proposed for finding the system’s parameters i.e. Voltage, active and reactive powers and load angle,
more efficiently and accurately. This research presents an algorithm for finding the Norton’s
equivalent model of distribution system with DG, considering from receiving end. Norton’s model
of distribution system can be determined either from its complete configuration or through an
algorithm using system’s voltage and current profiles. The algorithm involves the determination of
derivative of apparent power against the current (dS/dIL) of the system.
Results:
This work also verifies the accuracy of proposed algorithm according to the relative variations
in the phase angle of system’s impedance. This research also considers the varying states of
distribution system due to switching in and out of DG and therefore Norton’s model needs to be updated
accordingly.
Conclusion:
The efficacy of the proposed algorithm is verified through MATLAB simulation results
under two scenarios, (i) normal condition and (ii) faulty condition. During normal condition, the stability
factor near to 1 and change in dS/dIL was near to 0 while during fault condition, the stability
factor was higher than 1 and the value of dS/dIL was away from 0.
Publisher
Bentham Science Publishers Ltd.
Subject
Electrical and Electronic Engineering,Electronic, Optical and Magnetic Materials
Reference19 articles.
1. Ramdhin A, Chowdhury S, A study of technical and regulatory issues for integration of distributed generation to medium voltage networks, , pp. 1101-1106, 2017, AFRICON 2017 IEEE 2. Mangang P, Ahmed SS, Petroianu A. IFAC Proceed Vol, Control of the static voltage stability margin using optimal power flow.,, 1995, 28,, 329-334 3. Palukuru N. Ain Shams Eng J, S.H. nee Dey, T. Datta and S. Paul, "Voltage stability assessment of a power system incorporating FACTS controllers using unique network equivalent.,, 2014, 5,, 103-111 4. Ferreira LAFM, De Jesus CMSC. , “Power flow by adjoint networks” IEEE PES transmission and distribution conference and exposition, Vol. 1, pp. 196 – 200, 2003, 5. Kundur P, Paserba J, Ajjarapu V, Andersson G, Bose A, Canizares C, Hatziargyriou N, Hill D, Stankovic A, Taylor C, Van Cutsem T, Vittal V. Power Syst IEEE Transact, Definition and classification of power system stability ieee/cigre joint task force on stability terms and definitions.,, 2004, 19,, 1387-1401
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|