• Title/Summary/Keyword: Long-range Energy Alternatives Planning

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장기 에너지 수요전망 및 정책 시사점

  • 이원우
    • Journal of Energy Engineering
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    • v.8
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    • pp.3-18
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    • 1999
  • 에너지 수요전망을 위하여 상향식(bottom-up) 모형인 LEAP(Long-range Energy Alternatives Planning System) 모형을 이용하였다. 본 모형에서는 기본적으로 최종에너지 소비부문을 산업, 수송, 가정, 상업의 4부문으로 구분하여, 각 부문별 소비행태 및 수요 특성을 반영하였다. (중략)

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Analysis of Potential Reductions of Greenhouse Gas Emissions on the College Campus through the Energy Saving Action Programs

  • Woo, Jeongho;Choi, Kyoung-Sik
    • Environmental Engineering Research
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    • v.18 no.3
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    • pp.191-197
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    • 2013
  • Republic of Korea announced the reduction target to be around 30% of business as usual greenhouse gas emissions by 2020. College campuses were ranked at the 5th of high energy consumption areas in the building sectors. Target management scheme was designed to set greenhouse gas emissions target including several college campuses. Previous studies showed the amount of greenhouse gas emissions with several assumptions such as the applications of renewable energy systems and light emitting diode lamps, etc. Long-range Energy Alternatives Planning model was utilized to simulate future greenhouse gas emissions. This study sets standard model labs for energy saving action programs by applying guidance studies. It has been deduced that energy saving action programs was responsible for reducing 949.5 kWh for each standard model lab and the total reduction of all 59 model labs in the Engineering College building has been calculated to 56,020.5 kWh. The objective of the study is to provide guidelines on standard model laboratory for greenhouse gas emissions reduction on the campus.

Scenario Analysis of Renewable Transition by 2050 in Korea (2050년 재생가능 에너지 전환 시나리오 분석)

  • Park, Nyun-Bae;Jeon, Eui-Chan
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.05a
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    • pp.134.2-134.2
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    • 2011
  • 정부의 제1차 국가에너지기본계획(국무총리실 외. 2008)과 제4, 5차 전력수급기본계획(지식경제부 2008, 2010)을 바탕으로 장기 에너지 시스템 분석모형인 LEAP(Long-range Energy Alternatives Planning system) 모형을 이용하여 2050년까지 발전 부문에서 재생가능 에너지의 확대를 통한 에너지 전환 시나리오에 대하여 정량적인 분석을 하였다. 기준 시나리오, 정부 정책 시나리오, 지속가능 사회 시나리오에 대한 발전량 및 설비 구성, 수입의존도, 연료 다양성 등 에너지 시스템에 대해 분석하는 한편, 온실가스, 대기오염물질, 온배수, 토지이용 등 환경영향을 검토하고, 시나리오별 총 비용을 분석하였다. 본 연구의 의의는 영국, 독일, 미국, 일본 등 선진국에서 전력 장기 시나리오들을 검토하는 한편, 국내 발전 부문 재생가능 에너지 전환의 가능성과 의미에 대해 화두를 던지고자 함이다.

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Feasibility Analysis of Alternative Electricity Systems by 2030 in the Post-Fukushima Era

  • Park, Nyun-Bae;Lee, Sanghoon;Han, Jin-Yi;Jeon, Eui Chan
    • Asian Journal of Atmospheric Environment
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    • v.8 no.1
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    • pp.59-68
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    • 2014
  • The Fukushima nuclear accident in 2011 had an extensive impact on the national electricity plans. This paper outlines alternative electricity scenarios that meet the goals of nuclear phase-out and greenhouse gas (GHG) emission reduction. This paper also analyzes the results of each scenario in respect to the electricity mix, GHG emissions, costs and employment effects. The Long-range Energy Alternatives Planning system (LEAP) model was used to simulate the annual electricity demand and supply system from 2011 to 2030. The reference year was 2009. Scenarios are reference (where existing plans are continued), A1, A2, B1, B2, and C2 (where the levels of demand management and nuclear phase-out are different). The share of renewable energy in the electricity mix in 2030 for each scenario will be increased from about 1% in 2009 to 8% in the reference scenario and from 11% to 31% in five alternative scenarios. Total cumulative cost increases up to 14% more than the reference scenario by replacing nuclear power plants with renewable energy in alternative scenarios could be affordable. Deploying enough renewable energy to meet such targets requires a roadmap for electricity price realization, expansion of research, development and deployment for renewable energy technologies, establishment of an organization dedicated to renewable energy, and ambitious targets for renewable energy.

Greenhouse Gas Reduction Scenario from LEAP Model Application to a University Campus-For Hanyang University Ansan Campus (LEAP 모델 적용을 통한 대학단위 온실가스 감축안 도출 - 한양대학교 안산캠퍼스 대상으로)

  • Park, Hyo-Jeong;Jung, Hye-Jin;Yi, Seung-Muk;Park, Jae-Woo
    • Journal of Korean Society of Environmental Engineers
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    • v.34 no.4
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    • pp.280-287
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    • 2012
  • The sources of greenhouse gases (GHG) at Hanyang University Ansan campus, including direct sources, indirect sources, and others, were investigated in order to establish the GHG inventory. Emission of GHG was calculated with the energy use from each source from 2007 and 2009. The indirect emission (56.7%) due to the electricity significantly contributed to total GHG emission. The scenario for the GHG reduction was designed for both campus administration and members. The reduction potential of GHG was simulated from 2007 to 2020 using Long-range Energy Alternatives Planning (LEAP) model. In case of GHG reduction scenario by campus administration, the GHG can be reduced by 63.34 ton $CO_{2eq}/yr$ for stationary combustion in the direct source, by 221.1 ton $CO_{2eq}/yr$ for mobile combustion in the direct source, and by 4,637.34 ton $CO_{2eq}/yr$ for lighting in the indirect source, compared to 2020 Business As Usual (BAU). In case of GHG reduction action scenario by campus members, the reduction potential of GHG was 1293.76 ton $CO_{2eq}/yr$. Overall, the total GHG emissions in 2020 by the both scenarios can be decreased by 24% compared to 2020 BAU.

Estimation of Greenhouse Gas Emissions (GHG) Inventory and Reduction Plans for Low Carbon Green Campus in Daegu University (저탄소 그린캠퍼스 조성을 위한 온실가스 인벤토리 구축 및 감축잠재량 분석 - 대구대학교를 중심으로)

  • Jeong, YeongJin;Li, KaiChao;Kim, TaeOh;Hwang, InJo
    • Journal of Korean Society of Environmental Engineers
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    • v.36 no.7
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    • pp.506-513
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    • 2014
  • The objective of this study is to establish the greenhouse gases (GHG) inventories and estimate the GHG reduction plans for Daegu University from 2009 to 2011. The annual average of GHG emissions in Daegu University was estimated to be 19,413 ton $CO_2$ eq during the study period. Emissions of electricity usage in Scope 2 most contributed about 55.4% of the total GHG emissions. Also, GHG emissions of Scope 2, Scope 1, and Scope 3 contributed 60.4%, 22.6%, and 17.0%, respectively. In order to estimate reduction potential of GHG, the Long-range Energy Alternatives Planning (LEAP) model was calculated using three scenarios such as sensor installation, LED replacement, and solar facility. The GHG will be reduced by 1,656 ton $CO_2$ eq for LED scenario, by 1,041 ton $CO_2$ eq for sensor scenario, and by 737 ton $CO_2$ eq for solar scenario compared to 2020 business as usual (BAU). Therefore, the total GHG emissions in 2020 apply three scenarios can be reduced by 15% compared with 2020 BAU.