• Title/Summary/Keyword: Voltage Stability Margin

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A Study on Voltage Stability Enhancement of Power System using the STATCOM (STATCOM을 이용한 전력계통의 전압안정도 향상방안에 관한 연구)

  • Gim, Jea-Hyeon;Kim, Yang-Il;Ki, Kyung-Hyun;Jeung, Sung-Won
    • Proceedings of the KIEE Conference
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    • 2003.11a
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    • pp.255-258
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    • 2003
  • In this paper there are different methods used to study the voltage stability, such as the P-V curve method. Jacobian method and the voltage collapse proximity indicator(L-index) method. The P-V curve method is to check operating margin from the maximum operating point. The Jacobian method is to check the eigenvalue or the minimum singular value of the load flow Jacobian matrix. If the power system is unstable, one of the eigenvalues, at least, has crossed the imaginary axis. The L-index method is to quantify how to close a particular operating point. This paper describes these methods to select the best location of FACTS and demonstrate the effectiveness of STATCOM of voltage stability on the IEEE 9-bus system.

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Optimization Application for Assessment of Total Transfer Capability Using Transient Energy Function in Interconnection Systems (과도에너지 함수를 이용하여 연계계통의 총송전용량 평가를 위한 최적화기법 응용)

  • Kim, Kyu-Ho;Kim, Soo-Nam;Rhee, Sang-Bong;Lee, Sang-Keun;Song, Kyung-Bin
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.58 no.12
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    • pp.2311-2315
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    • 2009
  • This paper presents a method to apply energy margin for assesment of total transfer capability (TTC). In order to calculate energy margin, two values of the transient energy function have to be computed. The first value is transient energy that is the sum of kinetic and potential energy at the end of fault. The second is critical energy that is potential energy at controlling UEP(Unstable Equilibrium Point). It is seen that TTC level is determined by not only bus voltage magnitudes and line thermal limits but also transient stability. TTC assessment is compared by the repeated power flow(RPF) method and optimization method.

Improvement of Transient Stability Energy Margin by using UPFC (UPFC를 이용한 과도안정도 에너지마진 향상)

  • Lee, Sung-Gul;Kim, Soo-Nam;You, Seok-Ku
    • Proceedings of the KIEE Conference
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    • 2001.07a
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    • pp.152-154
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    • 2001
  • This paper presents a method for determination of UPFC control quantity in order to enhance the power system transient stability energy margin using Genetic Algorithms in multi-machine system. We use the minimization of energy margin as the object function in GA. To set critical energy, we use the potential energy boundary surface(PEBS) method. PEBS is one of the transient energy function(TEF) method. And we used the series voltage compensator as the UPFC model. The proposed method is applied to 6-bus, 7-line, 4-machine model system to show its effectiveness.

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An Intelligent System to Prevent Voltage Collapse for A Power system (전력계통의 전압 붕괴 방지를 위한 인텔리젼트 시스템)

  • Kim, Jae-Hyeon
    • The Transactions of the Korean Institute of Electrical Engineers A
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    • v.50 no.10
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    • pp.472-479
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    • 2001
  • In order to prevent voltage collapse. this paper introduces the idea of the intelligent system and operating polices for a power system, then presents the results of voltage stability studies for that power system. The intelligent system includes a dedicated computer doing calculation and evaluation jobs and several intelligent relays serving as last guards to carry out the pre-set remedies. In the intelligent system, P-V curves are used to determine the operating margin from the current operating point to the maximum operating point, or the nose point. This paper suggests an operating guide for voltage stability of a power system. The effectiveness of location ad amount of load shedding for the different power load models are studied.

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Development of New Method for the Proper Component Ratio of Combined Heat and Power in Long Term Generation Expansion Planning (전력수급기본계획에 열병합발전 설비의 적정 구성비율 결정)

  • Kim, Yong-Ha;Son, Hak-Sik;Im, Yong-Jae;Na, In-Kyu;Lee, Sung-Jun;Kim, Mi-Ye;Woo, Sung-Min
    • Proceedings of the KIEE Conference
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    • 2005.11b
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    • pp.58-60
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    • 2005
  • This paper presents a optimal power flow calculation algorithm considering voltage and transient stability. In this method, voltage stability margin and transient stability constraints is incorporated into a optimal power flow calculation formulation to guarantee adequate voltage and transient security levels in power system. The proposed method is applied to IEEE-24 Reliability Test System and the results shows the effectiveness of the method.

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A Study on the Voltage Stability Direct Analysis reflecting Load Increase Pattern (부하의 증가 패턴을 고려한 전압 안정도 직접 해석에 관한 연구)

  • Moon, Y.H.;Choi, D.K.;Roh, T.H.;Lee, E.H.
    • Proceedings of the KIEE Conference
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    • 1996.11a
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    • pp.80-83
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    • 1996
  • This paper develops a method for reliably estimating an UEP(Unstable Equilibrium Point) which is located in the direction of SEP(Stable Equilibrium Point)'s moving as system load is getting heavy. As power systems are getting loaded heavily, the SEP which is an operable solution, and the UEP which is occurring voltage collapse, are moving toward each other linearly. The estimated UEP is used as a good initial guess for the real UEP. The proposed method is tested by 3 bus system and Stagg 5 bus system. It is demonstrated that the proposed method is very useful for assessing system voltage stability in the case of heavy loaded power system. The result solutions are often used in conjunction with energy methods and the stability margin.

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Voltage Stability Analysis Based on Energy Function Considering Tap of Transformer (변압기 탭이 반영된 에너지 함수를 이용한 전압안정도 해석)

  • Lee Ki-Je;Choi Byoung-Kon;Kwon Yong-Jun;Moon Young-Hyun;Oh Yong-Taek;Lee Byunn-Ha
    • The Transactions of the Korean Institute of Electrical Engineers A
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    • v.54 no.7
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    • pp.337-344
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    • 2005
  • An energy function is derived on the basis of the EMM(Equivalent Mechanical Model) to take account of the effects of tap changer, and then the VC(Voltage Collapse) criteria is proposed to predict the voltage collapse in Power systems. The VC criterion can be evaluated by using the energy margin given by the energy gap between UEP(Unstable Equilibrium Point) and SEP(Stable Equilibrium Point) of the energy function adopted, in which it is noted that the energy contour should be considered due to energy discontinuity associated with tap changing. This paper shows that the proposed VC criterion improves the accuracy of voltage stability analysis with application to a two-bus sample system.

Generation Dispatch Algorithm Applying a Simulation Based Optimization Method (시뮬레이션 기반 최적화 기법을 적용한 발전력 재분배 알고리즘)

  • Kang, Sang-Gyun;Song, Hwachang
    • Journal of the Korean Institute of Intelligent Systems
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    • v.24 no.1
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    • pp.40-45
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    • 2014
  • This paper suggests the optimal generation dispatch algorithm for ensuring voltage stability margin considering high wind energy injection. Generally, with wind generation being installed into the power system, we would have to consider several factors such as the voltage stability margin because wind turbine generators are mostly induction machines. If the proportion of wind generation increases in the power system increases this would affect the overall stability of the system including the voltage stability. This paper considers a specific system that is composed of two areas: area 1 and area 2. It is assumed that generation cost in area 1 is relatively higher than that in area 2. From an economic point of view generation in area 1 should be decreased, however, in the stability point of view the generation in area 2 should be decreased. Since the power system is a nonlinear system, it is very difficult to find the optimal solution and the genetic algorithm is adopted to solve the objective function that is composed of a cost function and a function concerned with voltage stability constraints. For the simulations, the New England system was selected. The algorithm is implemented and Python 2.5.

Centralized Control Algorithm for Power System Performance using FACTS Devices in the Korean Power System

  • Kang, Sang-Gyun;Seo, Sang-Soo;Lee, Byong-Jun;Chang, Byung-Hoon;Myung, Ro-Hae
    • Journal of Electrical Engineering and Technology
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    • v.5 no.3
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    • pp.353-362
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    • 2010
  • This paper presents a centralized control algorithm for power system performance in the Korean power system using Flexible AC Transmission Systems (FACTS) devices. The algorithm is applied to the Korean power system throughout the metropolitan area in order to alleviate inherent stability problems, especially concerns with voltage stability. Generally, control strategies are divided into local and centralized control. This paper is concerned with a centralized control strategy in terms of the global system. In this research, input data of the proposed algorithm and network data are obtained from the SCADA/EMS system. Using the full system model, the centralized controller monitors the system condition and decides the operating point according to the control objectives that are, in turn, dependent on system conditions. To overcome voltage collapse problems, load-shedding is currently applied in the Korean power system. In this study, the application of the coordination between FACTS and switch capacitor (SC) can restore the solvability without load shedding or guarantee the FV margin when the margin is insufficient. Optimal Power Flow (OPF) algorithm, for which the objective function is loss minimization, is used in a stable case. The results illustrate examples of the proposed algorithm using SCADA/EMS data of the Korean power system in 2007.

On Control Strategies for BTB Converters for Enhancement of Interface Flow Margins (융통전력 여유 향상을 위한 BTB 컨버터 제어 전략 수립)

  • Ohn, Sung-Min;Song, Hwa-Chang;Jang, Byong-Hoon
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.374-375
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    • 2011
  • This paper presents a method to determine parameters of BTB (back-to-back) converters in terms of the enhancement of interface flow margins. Interface flow margin is by definition a measure of how much active power can be transferred from the external areas to the study area with the fixed load demand, and it is mainly constrained by system voltage stability. BTB converters are controllable equipments with the active power flow through them, and its DC link in fact can divide the AC systems at the location and hence can reduce the fault current level. This paper first cals margin sensitivities at the nose point of F-V curves and formulates an optimization problem to update the BTB parameters to improve the margins. This procedure is repeated performed until the required margin enhancement is achieved.

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