• Title/Summary/Keyword: 수력발전 공급계약

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Estimation of Optimal Hydro-Power Supply Amount of Yongdam Multipurpose Dam for the Contract on the Free-Competition Market (자유경쟁 시장 내에서 용담다목적댐 발전소의 최적 계약가능 공급량 평가)

  • Yoo, Ju-Hwan
    • Journal of Korea Water Resources Association
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    • v.38 no.1
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    • pp.25-35
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    • 2005
  • Nowaday the amount of water resource to generate the hydro-power energy has decreased as that of the water supply has increased. In case that the national market of the energy will be in free competition, the energy producer need to suggest the amount of the optimal supply with the hydrological reliability for a deal. In this study the optimal reservoir operation was performed by the linear programming and the optimal reliabilities of inflows and the power supply were obtained by the one dimensional search technique to estimate the energy with the optimal inflow reliability which the power system of the Yongdam multipurpose dam in Geum river can produce. And the main results were presented.

Determination of the Optimal Contract Amount of the Hydropower Energy Considering the Reliabilities of Reservoir Inflows (저수지(貯水池) 유입량(流入量)의 신뢰도(信賴度)를 고려한 최적(最適) 계약전력량(契約電力量)의 결정(決定))

  • Kwon, Oh Hun;Yoo, Ju Hwan
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.13 no.2
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    • pp.141-149
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    • 1993
  • Production of hydro-energy is random in its output amount due to the characteristics of the reservoir inflows. Therefore, it is necessary to provide the rationality in determining the amount of energy for a supply contract. This study presents a methodology for determining reasonably reliable amount of the energy supply considering the energy sale-incomes associated with the penalties which are subject to inflow-reliabilities. The objective function consists of the returns of energy sales and the risk-loss function to reflect statistically relevant risks. A range of the coefficient of the risk-loss function was figured out by its sensitivity analysis. The risk-loss herein means the penalty which should be paid by the energy supplier in case that the level of the energy supply is behind the contracted amount. And the reliability of reservoir inflow is defined by the exceedance probability of the inflow. The log-normal distribution was accepted as the probability density function of monthly inflows on the level of significance at 5%. Golden-ratio searching was applied to identify the optimal reliability and Incremental Dynamic Programming was used to maximize generation of the hydro-power energy in reservoir operation. The algorithm was the applied to the Daechung multi-purpose reservoir and hydro-power plant system in order to verify its usefulness.

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Solar ESS Peak-cut Simulation Model for Customer (수용가 대응용 태양광 ESS 피크컷(Peak-cut) 시뮬레이션 모델)

  • Park, Seong-Hyeon;Lee, Gi-Hyun;Chung, Myoung-Sug;Chae, U-ri;Lee, Joo-Yeuon
    • Journal of Digital Convergence
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    • v.17 no.7
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    • pp.131-138
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    • 2019
  • The world's electricity production ratio is 40% for coal, 20% for natural gas, 16% for hydroelectric power, 15% for nuclear power and 6% for petroleum. Fossil fuels also cause serious problems in terms of price and supply because of the high concentration of resources on the earth. Solar energy is attracting attention as a next-generation eco-friendly energy that will replace fossil fuels with these problems. In this study, we test the charge-operation plan and the discharge operation plan for peak-cut operation by applying the maximum power demand reduction simulation. To do this, we selected the electricity usage from November to February, which has the largest amount of power usage, and applied charge / discharge logic. Simulation results show that the contract power decreases as the peak demand power after the ESS Peak-cut service is reduced to 50% of the peak-target power. As a result, the contract power reduction can reduce the basic power value of the customer and not only the economic superiority can be expected, but also contribute to the improvement of the electric quality and stabilization of the power supply system.