• Title/Summary/Keyword: 열병합 발전소

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Prediction of Performance Characteristics with Various Location of Waste Heat Recovery Heat Pump in a Gwang-gyo Cogeneration Plant (냉각수 활용 히트펌프 설치 위치에 따른 광교 열병합발전소의 성능 특성 예측)

  • Park, Heun-Dong;Heo, Ki-Moo;Yoon, Sung-Hoon;Moon, Yoon-Jae;Yoo, Ho-Sun;Lee, Jae-Heon
    • Plant Journal
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    • v.10 no.2
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    • pp.28-37
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    • 2014
  • Recently, it is considered that environment and energy are critical issues all over the world. In power generation sector in Korea, almost power stations are constructed and operated as cogeneration plants in conformity with this trend. KDHC(Korea District Heating Corporation) goes one step further adopting renewable energy technology like heat pump using wasted heat for energy-saving and environment improvement. This study investigates the performance characteristics by the location of waste heat recovery heat pumps of 5 Gcal/h capacity in 150 MW-class Gwang-gyo cogeneration plant using commercial software 'THERMOFLEX'. Prior to analysis, the simulations are performed with actual operation data, and then the validation of simulations is verified by checking the error within 2%. After verification, the simulations are carried out with 3 locations and the effect on electrical power output and heat output is analyzed. As a result, overall efficiency of cogeneration plant is the highest in the case of heat pump located before DH(District Heating) Heater because of the largest increase of heat output despite of decrease of electrical power output.

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Basic Economic Evaluation of Industrial Complex CHP based on the type of Turbine (산업단지 열병합 발전 방식의 터빈 형식에 따른 기초경제성 평가)

  • Seo, Young-Ho;Lee, Joon-Hee;Cho, Chung-Sik;Jeon, Yong-Han;Yeom, Won-Sik
    • Proceedings of the KAIS Fall Conference
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    • 2011.12b
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    • pp.624-627
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    • 2011
  • 본 논문에서는 산업단지에 공정증기를 공급하는 열병합 발전소 건설에 대한 타당성 분석시 적용되는 경제성 분석에 대한 것으로, 동일한 보일러 및 주증기 그리고 공정증기 조건하에서 배압터빈 및 복수터빈 적용시 수반되는 경제성 분석을 통해 타당성 있는 시스템을 선정하는데 그 목적이 있다. 복수터빈 방식이 배압터빈 방식에 비해 전력생산량은 약 3배정도 많으나 초기 시설투자비의 증대 및 상대적인 에너지 활용측면에서 낮은 결과를 나타냈다.

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Engineering Properties of the Non-Cement Mortar using the Fly ash from Combined Heat Power Plant and Recycled Fine Aggregate (열병합발전소 플라이애시와 순환잔골재를 사용한 무시멘트 모르타르의 공학적 특성)

  • Nam, Han-Kook;Lim, Jeong-Geun;Lee, Sang-Soo
    • Journal of the Korea Institute of Building Construction
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    • v.15 no.6
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    • pp.553-559
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    • 2015
  • In this study, to suggest the application method of recycled fine aggregate, the non-cement mortar was prepared and studied with the binders of blast furnace slag, fly ash, and fly ash from combined heat power plant. As a basic experiment, a series of tests was conducted to determine the potions of the binders and types of activator. When the binder was consisted with 20% of fly ash and 40% of fly ash from combined heat power plant, the highest strength of the mortar was obtained, and as an activator, the combination of sodium hydroxide 2.5%, and calcium hydroxide 7.5% showed the highest strength of the mortar. Therefore, this study focuses on engineering properties of mortar contains fly ash from combined heat power plant and recycled fine aggregate according to replacement ratio of recycled fine aggregate based on the optimum mix from the basic experiment. As a result, the best replacement ratio of recycled fine aggregate is 75%.

Power Generation Efficiency Model for Performance Monitoring of Combined Heat and Power Plant (열병합발전의 성능 모니터링을 위한 발전효율 모델)

  • Ko, Sung Guen;Ko, Hong Cheol;Yi, Jun Seok
    • Plant Journal
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    • v.16 no.4
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    • pp.26-32
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    • 2020
  • The performance monitoring system in the power plant should have the capability to estimate power generation efficiency accurately. Several power generation efficiency models have been proposed for the combined heat and power (CHP) plant which produces both electricity and process steam(or heating energy, hereinafter expressed by process steam only). However, most of the models are not sufficiently accurate due to the wrong evaluation of the process steam value. The study suggests Electricity Conversion Efficiency (ECE) model with determination of the heat rate of process steam using operational data. The suggested method is applied to the design data and the resulted trajectory curve of power generation efficiency meets the data closely with R2 99.91%. This result confirms that ECE model with determination of the model coefficient using the operational data estimate the efficiency so accurately that can be used for performance monitoring of CHP plant.

Economic analysis of Frequency Regulation Battery Energy Storage System for Czech combined heat & power plant (체코 열병합발전소 주파수조정용 배터리에너지저장장치 경제성 분석)

  • KIM, YuTack;Cha, DongMin;Jung, SooAn;Son, SangHak
    • Journal of Energy Engineering
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    • v.29 no.2
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    • pp.68-78
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    • 2020
  • According to the new climate change agreement, technology development to reduce greenhouse gases is actively conducted worldwide, and research on energy efficiency improvement in the field of power generation and transmission and distribution is underway [1,2]. Economic analysis of the operation method of storing and supplying surplus electricity using energy storage devices, and using energy storage devices as a frequency adjustment reserve power in regional cogeneration plants has been reported as the most profitable operation method [3-7]. Therefore, this study conducted an economic analysis for the installation of energy storage devices in the combined heat and power plant in the Czech Republic. The most important factor in evaluating the economics of battery energy storage devices is the lifespan, and the warranty life is generally 10 to 15 years, based on charging and discharging once a day. For the simulation, the ratio of battery and PCS was designed as 1: 1 and 1: 2. In general, the primary frequency control is designed as 1: 4, but considering the characteristics of the cogeneration plant, it is set at a ratio of up to 1: 2, and the capacity is simulated at 1MW to 10MW and 2MWh to 20MWh according to each ratio. Therefore, life was evaluated based on the number of cycles per year. In the case of installing a battery energy storage system in a combined heat and power plant in the Czech Republic, the payback period of 3MW / 3MWh is more favorable than 5MW / 5MWh, considering the local infrastructure and power market. It is estimated to be about 3 years or 5 years from the simple payback period considering the estimated purchase price without subsidies. If you lower the purchase price by 50%, the purchase cost is an important part of the cost for the entire lifetime, so the payback period is about half as short. It can be, but it is impossible to secure profitability through the economy at the scale of 3MWh and 5MWh. If the price of the electricity market falls by 50%, the payback period will be three years longer in P1 mode and two years longer in P2 and P3 modes.

Influence of District Heating Return Temperature on Performance of Steam Turbine in Cogeneration Plant (지역난방 회수온도가 열병합발전소 증기터빈 성능에 미치는 영향 연구)

  • Kim, Jonghyun;Moon, Seung-Jae
    • Plant Journal
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    • v.14 no.3
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    • pp.42-48
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    • 2018
  • If the combined operation of Gwanggyo Cogeneration plant is similar to that of 2017, the CHP return temperature is lowered to $4^{\circ}C$, $6.3^{\circ}C$ and $7.8^{\circ}C$ according to the increase of heat surface area and the electric power is increased by 413 kW and 676 kW from its original 39,025 kW, and when the heat surface area is increased 75% electric power increases by 834 kW, totaling 39,859 kW. NPV, which is an economic analysis standard, is worth 350 million won, 500 million won, and 520 million won, and all measures to increase the heat surface area are proven to be worth the investment. As the heat transfer area increased, the electric power and NPV increased proportionally but the rise amount decreased. The electrical output and NPV were found to be the highest among the three options when the heat transfer area was increased by 75%.

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1kW RPG design and its stack performance model development (1kW급 가정용 연료전지 시스템 설계 및 스택 성능 예측 모델 개발)

  • Kim, Min-Jin;Sohn, Young-Jun;Lee, Won-Yong
    • 한국신재생에너지학회:학술대회논문집
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    • 2009.06a
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    • pp.287-287
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    • 2009
  • 연료전지는 전기에너지와 열에너지를 동시에 사용 할 수 있기 때문에 에너지 효율이 높고 유해 배기물이 거의 없으므로 친환경적이다. 따라서 환경문제가 대두되고 있는 오늘날, 고효율 친환경의 연료 전지는 차세대 에너지원으로 각광받고 있다. 보일러와 계통선에서 열과 전기를 공급받는 기존방식에 비해 연료전지 코제너레이션 시스템의 경우 20%이상 에너지 절감율을 향상시킬 수 있다. 기존 10kW이하의 소용량 발전설비의 경우 대형 발전소와 같은 수준인 30%이상의 전기 효율을 기대할 수 없으나 고분자 전해질 연료전지를 적용할 경우 1kW급에서도 35%의 전기 효율을 기대할 수 있으며 열회수까지 고려할 경우 80%에 가까운 열효율을 달성할 수 있다.(4)연료전지 시스템은 연료전지 스택 이외에, 연료변환장치, 급기설비, 열 및 물관리 설비, 전력변환장치 그리고 제어 장치 등으로 구성된다. 연료전지 시스템 성능은 연료전지 스택의 성능에 가장 의존적인데 연료전지 스택의 성능은 같은 스택이라도 운전 및 제어 방법에 따라서 다양하게 변할 수 있다. 실제로 연료전지 스택 자체의 전기 변환 효율은 최대 40% 까지로 매우 높으나, 다양한 운전 조건에 따라 효율이 30~40% 수준에서 변화는 것이 현실이다. 때문에 시스템을 설계할 때에는 종합화된 시스템 측면에서의 운전까지 고려한 설계와 성능 해석이 필요하다. 그간 연료전지를 활용한 가정용 열병합 발전분야에서는 시스템 설계를 위한 시뮬레이션 기반 성능 해석에 관한 연구가 활발히 진행되어왔다. 하지만 연료전지 스택의 경우 간이화된 성능 모델식을 사용하여 이로 인한 성능 예측모델의 오차가 크게 발생하여 전체 시스템 최적화의 저해요인으로 작용하여왔다. 따라서 본 연구에서는 가정용 연료전지 열병합 발전 시스템을 자체적으로 설계 개발하였으며 이 중 연료전지 스택의 성능모델을 실험기반으로 구축하였다. 먼저 가정용 연료전지 열병합 발전 시스템의 설계는 크게 네 단계로 구분되며 이는 1) 시스템 개념 설계, 2) 연료전지 스택 설계, 3) 주변장치 설계, 4) 제어시스템 설계로 이뤄진다. 연료전지 스택의 성능 모델은 고분자연료전지의 성능에 가장 민감하게 영향을 미치는 온도 및 습도의 변화에 따른 다양한 스택 성능을 예측 가능하도록 개발하였으며 이는 간단한 이론 모델의 구조에 실험 데이터를 기반으로 모델 파라미터를 도출하는 기법으로 이뤄졌다.

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KISA 초대석 - 영원한 무재해 발전소로 기억될 것 - 한국중부발전(주) 서울화력발전소 박형구 소장

  • Im, Dong-Hui
    • The Safety technology
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    • no.178
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    • pp.24-25
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    • 2012
  • 한국중부발전(주) 서울화력발전소는 당인리발전소로 잘 알려진 우리나라 최초의 화력발전소다. 제4호기(137,500kW)가 준공된 1971년 당시에는 서울시 전력수요의 75%를 담당하는 등 우리나라 산업발전의 견인차 역할을 해왔다. 현재는 제4, 5호기 총 설비용량 387,500kW로 수도권 전력 공급의 중추적인 역할을 해오고 있는 것은 물론, 국내 최초 열병합발전소로서 여의도, 동부이촌동, 반포, 마포 지역의 5만 여 세대에 난방열과 온수를 공급하고 있다. 이외에도 1993년부터는 발전연료로 사용해온 유류를 천연가스로 전환하고, 2002년에는 질소산화물 저감설비를 설치해 대기환경오염 수치를 10분의 1로 낮추는 등 에너지 절약 및 환경보전에 대한 노력도 꾸준히 펼치고 있다. 이와 같이 우리나라 최고의 화력발전소로서 명성을 이어온 이곳은 지난 1980년 11월 7일부터 무재해를 이어오면서 무재해 23배수와 무재해일수 11,591일이라는 대기록을 달성했다. 이는 무재해 운동을 벌이고 있는 기업들 중 최장의 무재해기록이기도 하다. 그렇다면 이곳은 어떤 활동을 통해 무재해 사업장의 명맥을 이어나갈 수 있었을까. 한국중부발전(주) 서울화력 발전소의 박형구 소장을 만나 이야기를 나눠봤다.

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Noise and vibration reductions in exhaust duct system of cogeneration power plants (열병합발전소 배기 덕트 시스템의 소음 진동 저감)

  • Kim, W.H.;Joo, W.H.;Bae, J.G.
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2004.11a
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    • pp.641-646
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    • 2004
  • Noise and vibration was encountered in exhaust duct system which is connected with a gas turbine and a heat recovery steam generator(HRSG) of a cogeneration power plants. Especially, these problems occurred when water was added to the fuel injection to reduce NOx contents of the exhaust gas. Through the cavity mode analysis and measurements, It was concluded that these problems occurred due to the acoustic resonance between the duct cavity mode and the excitation force induced by turbulent gas flow during water injection. To reduce the noise and vibration, optimal baffle plate to change the cavity mode was installed inside of duct and noise levels of about 8 dB(A) are reduced in duct system. The effects of baffle plate and guide vane to the HRSG or inlet duct vibration were also evaluated and it was verified that there is no relation to the resonance phenomena. So, vibration of inlet duct was easily reduced by the reinforcement of structures.

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Analysis of the $CO_2$ emission amount and characteristics of combined heat and power plants in industrial complex by using the fuel analysis method (연료분석 방법을 적용한 산업단지 열병합발전소 이산화탄소 배출량 및 배출특성분석)

  • Kang, Seok-Hun;Chung, Dae-Hun
    • Proceedings of the SAREK Conference
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    • 2008.06a
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    • pp.1243-1248
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    • 2008
  • $CO_2$ emission amount and characteristics of combined heat and power (CHP) plant in industrial complex of Korea is evaluated by using the fuel analysis method. Fuel analysis methods of several foreign countries and developed one which is developed considering the operation characteristics of the surveyed CHP plants are used. The operation data is surveyed for all of the CHP plants in industrial complex and is composed of fuel consumption amount, generation, sale and efficiency of heat and electricity, condensed steam enthalpy, and etc of the each CHP.

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