Jae-Kun Lyu
Seoul National University
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Publication
Featured researches published by Jae-Kun Lyu.
Journal of Electrical Engineering & Technology | 2013
Jae-Kun Lyu; Jae-Haeng Heo; Mun-Kyeom Kim; Jong-Keun Park
The probabilistic nature of renewable energy, especially wind energy, increases the needs for new forms of planning and operating with electrical power. This paper presents a novel approach for determining the short-term generation schedule for optimal operations of wind energy-integrated power systems. The proposed probabilistic security-constrained optimal power flow (P-SCOPF) considers dispatch, network, and security constraints in pre- and post-contingency states. The method considers two sources of uncertainty: power demand and wind speed. The power demand is assumed to follow a normal distribution, while the correlated wind speed is modeled by the Weibull distribution. A Monte Carlo simulation is used to choose input variables of power demand and wind speed from their probability distribution functions. Then, P-SCOPF can be applied to the input variables. This approach was tested on a modified IEEE 30-bus system with two wind farms. The results show that the proposed approach provides information on power system economics, security, and environmental parameters to enable better decision-making by system operators.
Journal of Electrical Engineering & Technology | 2012
Jae-Haeng Heo; Jae-Kun Lyu; Mun-Kyeom Kim; Jong-Keun Park
Electric power transmission utilities make an effort to maximize profit by reducing their electricity supply and operation costs while maintaining their reliability. The development of maintenance strategies for aged components is one of the more effective ways to achieve this goal. The reliability centered approach is a key method in providing optimal maintenance strategies. It considers the tradeoffs between the upfront maintenance costs and the potential costs incurred by reliability losses. This paper discusses the application of the Particle Swarm Optimization (PSO) technique used to find the optimal maintenance strategy for a transmission component in order to achieve the minimum total expected cost composed of Generation Cost (GC), Maintenance Cost (MC), Repair Cost (RC) and Outage Cost (OC). Three components of a transmission system are considered: overhead lines, underground cables and insulators are considered. In regards to aged and aging component, a component state model that uses a modified Markov chain is proposed. A simulation has been performed on an IEEE 9-bus system. The results from this simulation are quite encouraging, and then the proposed approach will be useful in practical maintenance scheduling.
Journal of Electrical Engineering & Technology | 2009
Jae-Kun Lyu; Mun-Kyeom Kim; Jong-Keun Park
This paper proposes a novel technique for calculating the security costs that properly includes ramping constraints in the operation of a deregulated power system. The ramping process is modeled by a piecewise linear function with certain assumptions. During this process, a ramping cost is incurred if the permissible limits are exceeded. The optimal production costs of the power producers are calculated with the ramping cost included, considering a time horizon with N-1 contingency cases using contingency constrained optimal power flow (CCOPF), which is solved by the primal-dual interior point method (PDIPM). A contingency analysis is also performed taking into account the severity index of transmission line outages and its sensitivity analysis. The results from an illustrative case study based on the IEEE 30-bus system are analyzed. One attractive feature of the proposed approach is that an optimal solution is more realistic than the conventional approach because it satisfies physical constraints, such as the ramping constraint.
The Transactions of the Korean Institute of Electrical Engineers | 2013
Jae-Haeng Heo; Jae-Kun Lyu; Woo-Ri Lee; Jong-young Park; Jong-Keun Park
This paper proposes the allocation method for capacitor-reactor banks in a distribution system with dispersed generators to reduce the installation costs, the maintenance costs and minimize the loss of electrical energy. The expected lifetime and maintenance period of devices with moving parts depends on the total number of operations, which affects the replacement and maintenance period for aging equipment under a limited budget. In this paper, the expected device lifetimes and the maintenance period are included in the formulation, and the optimal operation status of the devices is determined using a genetic algorithm. The optimal numbers and locations for capacitor-reactor banks are determined based on the optimal operation status. Simulation results in a 69-bus distribution system with the dispersed generator show that the proposed technique performs better than conventional methods.
The Transactions of the Korean Institute of Electrical Engineers | 2013
Kyung-bin Kwon; Hyeongon Park; Jae-Kun Lyu; Yu-Chang Kim; Jong-Keun Park
Renewable energy integration and increased system complexities make system operator maintain supply and demand balance harder than before. To keep the grid frequency in a stable range, an appropriate spinning reserve margin should be procured with consideration of ever-changing system situation, such as demand, wind power output and generator failure. This paper propose a novel concept of dynamic reserve, which arrange different spinning reserve margin depending on time. To investigate the effectiveness of the proposed dynamic reserve, we developed a new short-term reliability criterion that estimates the probability of a spinning reserve shortage events, thus indicating grid frequency stability. Uncertainties of demand forecast error, wind generation forecast error and generator failure have been modeled in probabilistic terms, and the proposed spinning reserve has been applied to generation scheduling. This approach has been tested on the modified IEEE 118-bus system with a wind farm. The results show that the required spinning reserve margin changes depending on the system situation of demand, wind generation and generator failure. Moreover the proposed approach could be utilized even in case of system configuration change, such as wind generation extension.
Journal of Electrical Engineering & Technology | 2014
Jae-Haeng Heo; Mun-Kyeom Kim; Dam Kim; Jae-Kun Lyu; Yong-Cheol Kang; Jong-Keun Park
Overhead transmission lines are crucial components in power transmission systems. Well- designed maintenance strategy for overhead lines is required for power utilities to minimize operating costs, while improving the reliability of the power system. This paper presents a maintenance priority index (MPI) of overhead lines for a reliability centered approach. Proposed maintenance strategy is composed of a state index and importance indices, taking into account a transmission condition and importance in system reliability, respectively. The state index is used to determine the condition of overhead lines. On the other hand, the proposed importance indices indicate their criticality analysis in transmission system, by using a load effect index (LEI) and failure effect index (FEI). The proposed maintenance method using the MPI has been tested on an IEEE 9-bus system, and a numerical result demonstrates that our strategy is more cost effective than traditional maintenance strategies.
The Transactions of the Korean Institute of Electrical Engineers | 2013
Jae-Kun Lyu; Jae-Haeng Heo; Jong-Keun Park
Wind energy is rapidly becoming significant generating technologies in electricity markets. As probabilistic nature of wind energy creates many uncertainties in the short-term scheduling, additional actions for reliable market operation should be taken. This paper presents a novel approach to evaluate ramping capability requirement for changes in imbalance energy between day-ahead market and real-time market due to uncertainty of wind generation as well as system load. Dynamic ramp rate model has been applied for realistic solution in unit commitment problem, which is implemented in day-ahead market. Probabilistic optimal power flow has been used to verify ramping capability determined by the proposed method is reasonable in economic and reliable aspects. This approach was tested on six-bus system and IEEE 118-bus system with a wind farm. The results show that the proposed approach provides ramping capability information to meet both forecasted variability and desired confidence level of anticipated uncertainty.
transmission & distribution conference & exposition: asia and pacific | 2009
Yu Chang Kim; Jeong-Won Kwak; Jae-Kun Lyu; Jae-Haeng Heo; Jong-Keun Park
In many countries, the electric power system and market interconnection is undergoing. Especially in Europe, there is a large interconnection project aiming pan-European power market. ETSO and Europex charged to develop harmonization of network access rules propose flow-based market coupling to manage cross-border congestion. In this methods, Power transmission distribution factor (PTDF) is used to measure sensitivity of the bids to the congestion. It is a simple way of understanding how much generation effect on congested line, but it depends on choosing slack bus. This paper describes slack independent sensitivity algorithm for a flow-based capacity allocation method.
International Journal of Electrical Power & Energy Systems | 2014
Jae-Haeng Heo; Mun-Kyeom Kim; Jae-Kun Lyu
International Journal of Electrical Power & Energy Systems | 2012
Jae-Kun Lyu; Mun-Kyeom Kim; Yong Tae Yoon; Joung-Hu Park