• Title/Summary/Keyword: Gas Engine Power Generation

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A Study on Applicability to Dual-Fuel Engine of Low Caloric Gas (저발열량 가스의 혼소엔진 적용에 관한 연구)

  • Park, Cheol-Woong;Lee, Sun-Youp;Kim, Chang-Gi;Won, Sang-Yeon;Lee, Jang-Hee
    • Journal of the Korean Institute of Gas
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    • v.14 no.1
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    • pp.15-20
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    • 2010
  • The interest on the utilization of landfill gases and biogases for energy production has been increasing due to environment concerns and global warming caused by burning fossil fuels, renewable nature of these gases. Using those synthesis gases to generate energy with engine encourages more efficient collection reducing emissions into the atmosphere and generates revenues for the operators. However the lower calorific value of synthesis gases than that of LPG or CNG affects the combustion stability and power output. Thus it becomes necessary to address disadvantages involved by studying synthesis gases in technological perspective. This paper discussed synthesis gas as a fuel for 60kW dual-fuel engine to produce power in an effective way. The methane diluted with $N_2$ was used as a fuel and developed ECU and injector driver facilitated the investigations with diesel fuel.

Integrated Building Energy Supply System : An Overview of Technical Trends for Gas Engine Driven Combined Heat and Power System (가스엔진 구동 건물에너지 통합 공급시스템 개발을 위한 기술동향 사례연구)

  • Park, Beungyong;Jeong, Yongdae;Shin, Hyunchul;Cho, Jinkyun
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.29 no.11
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    • pp.612-620
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    • 2017
  • Power consumption in Southeast Asia is steadily increasing due to industrialization and the effects of hot and humid climates. However, there are not enough energy generation facilities and infrastructures to meet the growing demand because it is difficult to secure the construction and operation costs of the transmission and distribution systems. This study aims to develop a gas engine driven heat pump system that supplies heating, cooling and electric power to buildings. This system, besides its normal function to produce heat, has the capacity to generate electricity on a household level. This paper investigates similar cases overseas before developing the system. Through the investigation of commercialized similar systems, the level of technology and market trend of development system were identified. Features and specifications of commercial and industrial systems will be used for system development.

Observation Studies on Field Operation of a Exhausted Heat Recovery System for a 300 kW Class Small Gas Engine Cogeneration System (300 kW급 소형 열병합발전기용 배열회수 시스템의 실증운전 성능분석에 관한 연구)

  • Kim, Min-Sung;Baik, Young-Jin;Park, Seong-Ryong;Ra, Ho-Sang
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.22 no.4
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    • pp.248-257
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    • 2010
  • An exhausted heat recovery system for a small gas engine cogeneration plant was investigated. The system was designed and built in a 300 kW class cogeneration demonstrative system. The basic performance was tested depending on load variation, and installed to a field site as a bottoming heat and power supply system. The exhaust gas heat exchangers (EGHXs) in shell-and-tube type and shell-and-plate type were tested. The entire efficiency of the cogeneration system was estimated between 85 to 90% under the 100% load condition, of which trend appears higher in summer due to the less thermal loss than in winter. Power generation efficiency and thermal efficiency was measured in a range of 31~33% and 54~57%, respectively.

Numerical study on effect of intake valve timing on characteristics of combustion and emission of Natural gas-Diesel engine (발전용 천연가스-디젤 혼소 엔진의 흡기밸브 개폐시기에 따른 연소 및 배출 특성에 대한 수치 해석적 연구)

  • Jung, Jaehwan;Song, Soonho;Hur, Kwang beom
    • Journal of Energy Engineering
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    • v.25 no.2
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    • pp.29-36
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    • 2016
  • In this study, diesel/natural gas dual-fuel engine was studied numerically using DoE method. The engine is CI engine for power generation and modelled by 1-D simulation GT-power. The combustion and emission characteristics were analyzed as a function of IVO, IVC and the ratio of natural gas to total fuel enegy. As the proportion of natural gas increases, the BSFC(Brake specific fuel consumption) is increased and BSNOx(Brake specific NOx) is decreased. If specific valve timing to improve the BSFC is applied to the engine, the BSFC is decreased by 1% and simultaneously BSNOx is decreased by 36%.

Combined Propulsion System Analysis for Naval Combatant Vessels using Diesel and Gas Turbine Engine (디젤 및 가스터빈 엔진을 사용하는 전투함의 복합추진체계 기술 동향 분석)

  • Lee, H.M.
    • Journal of Power System Engineering
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    • v.15 no.5
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    • pp.16-21
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    • 2011
  • The large scale decisive battle will be gradually reduced on the sea in the future and surface combatant ship installed advanced weapon units as well as propulsion system will be continuously increased. The high level of military technology leads to appear state-of-the-art weapon system using high power energy. As a results, fossil fuel powered main prime mover as diesel engine and gas turbine which are composed of mechanical propulsion system should be decreased from combatant ship in the near future. The new building naval combatant ship with the latest technology has electric based propulsion method of the hybrid type combined with mechanical and electrical drive. U.S. and Royal Navy, especially, select the integrated fully electric based propulsion system for the next generation combat ship and play an important roll for developing them. In this context, this paper was focused on the deduction of implications through analyzing the combatant ship propulsion system using diesel and gas turbine engine which are promoted on the worldwide.

Development of a 50kW Micro Gas Turbine Engine (50kW 마이크로 가스터빈 개발)

  • Kim, Sooyong;Park, MooRyong;Choi, Bumseok;Ahn, Kookyoung;Choi, SangKyu
    • 유체기계공업학회:학술대회논문집
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    • 2002.12a
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    • pp.314-319
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    • 2002
  • Performance analysis and test of a 50kW micro gas turbine is carried out. The present study was initiated in 1996 by KIMM researchers to develope a 50kW class turbogenerator gas turbine engine for hybrid vehicle propulsion system. but with its low emission and compactness, it seemed that it can also be applied as a source of distributed power generation. In this study, general description of the KIMM's efforts to acquire performance test skills of the self-made 50kW micro gas turbine engine. At present, non-load performance test up to 615000 rpm was accomplished and is expected to make through 80,000 rpm by the end of year. Several revisions in design and manufacture were made during the course of experiments. The resulting outputs is thought to be valuable for the further refinement of the system for eventual commercialization of the product.

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Performance and Emission Comparisons of a SI Engine Fueled by Syngas with Varying Hydrogen Content (합성가스 연료의 수소 함량 변화가 SI 엔진의 연소특성에 주는 영향)

  • Park, Seung-Hyun;Lee, Sun-Youp;Park, Cheol-Woong;Lee, Jang-Hee
    • Journal of the Korean Institute of Gas
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    • v.15 no.2
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    • pp.63-68
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    • 2011
  • As an effective utilization of biomass, organic wastes and coal, attention has been made to use syngas to a reciprocating engine to generate power. However, significant component variation of syngas depending upon origin and gasification conditions, and its lower heating value than that of LPG and CNG can create difficulties in stable engine operation. Thus it is necessary to address these issues in order to successfully develop power generation engines. As a primary step to resolve these problems, effects of H2 content variation in syngas on engine performance and emission characteristics were discussed in this study. The results show that as H2 % in syngas increases, more stable combustion was achieved with retarded MBT spark timing and engine efficiency becomes maximum with syngas of 10% H2. In addition, NOx emission increased while THC emission decreased as H2 % rises in the syngas.

Analysis for the Economic efficiency of District Heating and Gas Engine Co-generation System comparing with Central Heating System (중앙난방방식을 지역난방.소형열병합난방방식으로 전환시의 경제성 비교 분석)

  • Kim, Kyu-Saeng;Lee, Sang-Hyeok;Hong, Kyung-Pyo;Won, Young-Jae
    • Proceedings of the SAREK Conference
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    • 2007.11a
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    • pp.459-465
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    • 2007
  • This study was conducted to calculate the LCC of a apartment complex with a type of heating system, district heating and cogeneration system. For the purpose of analyzing LCC according to size of apartment complex, 500, 1,500 and 4,000 houses of model apartment selected. This research performs design of heating system and the life cycle cost analysis including an initial cost, energy cost, maintenance and operation cost, replacement cost and renovation cost during the project period(15years). According to the calculated results, 1) Initial cost of cogeneration system with 500, 1500 and 4000 houses is higher than district heating system each of 20%, 13%, 12%. 2) In case of cogeneration system, the payback period by electric generation is 5.21, 4.92 and 4.47 years and saving cost was calculated 29 billion won, 94 billion won and 262 billion won after payback period. 3) Cogeneration system LCC was 1.12, 1.07 and 1.06 times larger than district system with the size of apartment complex. According to the case of this study district heating system is more efficient than cogeneration system in terms of the reduction of LCC. 4) Gas Engine Co-generation System is more efficient than other systems because it can collect progressive part from electric charge progressive stage system. However, the efficiency is decreasing because of raising of fuel bills(LNG) and lowering of power rate for house use. Especially the engine is foreign-made so the cost of maintenance and repair is high and the technical expert is short. 5) District heating is also affected by fuel bills so we should improve energy efficiency through recovering of waste heat(incineration heat, etc.). Also, we should supply district cooling on the pattern of heat using of let the temperature high in winter and low in summer.

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An Experimental and Numerical Analysis on Performance Comparison of a Trigeneration Desiccant System and Conventional Air-conditioning System (Trigeneration 제습공조시스템과 일반공조시스템의 성능 비교 실험 및 수치해석)

  • Kim, Hyoung-Tae;Chae, Jungmin;Cho, Young-Ah;Park, So-jin;Song, Geun-Soo
    • Journal of the Korean Institute of Gas
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    • v.22 no.3
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    • pp.32-37
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    • 2018
  • Recently, the distributed power generation market using natural gas is expected to expand gradually according to the government's future energy conversion policy. Distributed power generation means small power generation source near the power demand site, which has the advantage of reducing the construction costs of the transmission and distribution infrastructure, operating cost and power loss. A typical example of distributed generation using natural gas is the trigeneration system. In this study, we conducted a basic study on the performance analysis of trigeneration desiccant system for dehumidifying / cooling / heating in the air conditioner room by using the cold and engine waste heat energy generated in the trigeneration system. It shows that the system efficiency increases and the energy consumption decreases as the temperature difference between the inlet and outlet of the trigeneration system increases compared with the general air conditioning system.

Analysis of Energy Losses in a Natural Gas Spark Ignition Engine for Power Generation (천연가스 스파크점화 엔진 발전기에서의 에너지 손실 분석)

  • Park, Hyunwook;Lee, Junsun;Oh, Seungmook;Kim, Changup;Lee, Yongkyu;Kang, Kernyong
    • Journal of ILASS-Korea
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    • v.25 no.4
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    • pp.170-177
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    • 2020
  • Stoichiometric combustion in spark ignition (SI) engines has an advantage of meeting future stringent emission regulations. However, the drawback of the combustion is a lower thermal efficiency than that of lean burn. In this study, energy losses in a natural gas stoichiometric SI engine generator were analyzed to establish a strategy for improving the generating efficiency (GE). The energy losses were investigated based on dynamometer and load bank experiments. As the intake manifold pressure increased in the dynamometer experiment, the brake thermal efficiency (BTE) increased mainly due to the reduction in the pumping and mechanical losses. In the load bank experiment, the generating power and GE increased with the increased intake manifold pressure. The generating power and GE were lower than the brake power and BTE due to the cooling fan power and the losses in the generator.