DocumentCode :
253356
Title :
Optimal placement and sizing of SVC for loss minimization and voltage security improvement using differential evolution algorithm
Author :
Udgir, Shraddha ; Srivastava, L. ; Pandit, M.
Author_Institution :
Dept. of Electr. Eng., Madhav Inst. of Technol. & Sci., Gwalior, India
fYear :
2014
fDate :
9-11 May 2014
Firstpage :
1
Lastpage :
6
Abstract :
The emerging trend of restructuring power systems, security is becoming a major concern for electric utilities. The security assessment of power system is being considered as an important problem in planning, operation and control. Security assessment entails that the system should remain in secure operating state under abnormal conditions. In a power system the Security assessment is carried out by using the voltage performance index (VPI) following a contingency. Contingencies are termed as the uncertain events, occurred due to line outage in the system. VPI can be used for identifying the critical contingency from the perspective of bus voltage violation limits. Flexible Alternating Current Transmission Systems (FACTS) devices are having a great impact on the performance of the transmission network. FACTS devices are used for controlling real and reactive power flows and regulating the bus voltages in power systems. Also, FACTS devices raises power transfer capability reduces system losses and improves system stability, because of their fast and flexible control characteristics. Owing to their huge capital cost, it is essential to place these devices optimally in a power system. In this paper, Differential Evolution (DE), a population based stochastic meta-heuristic optimization algorithm is applied for optimal placement of static var compensator (SVC) aimed to the voltage security enhancement of a power system. The SVC placement is considered to be a planning problem and is formulated as a multi-criteria problem comprising of minimization of real power loss, voltage security and investment cost of SVC under single line outage contingencies. Effectiveness of the DE algorithm based approach has been demonstrated on IEEE 30-bus test system.
Keywords :
electricity supply industry; flexible AC transmission systems; load flow control; losses; optimisation; performance index; power system security; power system stability; power transmission control; power transmission planning; static VAr compensators; stochastic programming; voltage control; DE; FACTS devices; IEEE 30-bus test system; SVC; VPI; abnormal conditions; bus voltage regulation; bus voltage violation limits; capital cost; critical contingency identification; differential evolution algorithm; electric utilities; flexible alternating current transmission systems devices; line outage; loss minimization; multicriteria problem; optimal placement; optimal sizing; population based stochastic meta-heuristic optimization algorithm; power system control; power system operation; power system planning; power system security assessment; power transfer capability; reactive power flow control; real power flow control; restructuring power systems; secure operating state; static var compensator; system loss reduction; system stability improvement; transmission network; voltage performance index; voltage security improvement; Indexes; Reactive power; Sociology; Static VAr compensators; Statistics; Cost of SVC; DE Algorithm; FACTS; Power system Security; Real Power Loss; SVC; Single line Outage Contingency; VPI;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Recent Advances and Innovations in Engineering (ICRAIE), 2014
Conference_Location :
Jaipur
Print_ISBN :
978-1-4799-4041-7
Type :
conf
DOI :
10.1109/ICRAIE.2014.6909310
Filename :
6909310
Link To Document :
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