• 제목/요약/키워드: Biogas engine

검색결과 32건 처리시간 0.031초

바이오 가스 이륜차 기관의 성능 특성 연구 (An Investigation of Performance Characteristics of A Biogas-Fueled Motorcycle Engine)

  • 현탄 콩;치엠트란 람;부티김 차우
    • 한국수소및신에너지학회논문집
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    • 제23권4호
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    • pp.373-381
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    • 2012
  • To determine the performance characteristics of motorcycle engine using biogas for practical use, the intake system of a 110 cc motorcycle engine is properly modified to operate with biogas as a fuel. Biogas is a potentially renewable fuel for replacing gasoline in future, but it has high percentage of $CO_2$ that could lead to slow the burning rate of biogas-air mixture and cause instability in combustion. Thus, the performance characteristics of biogas-fueled motorcycle engines could be different from those of gasoline motorcycle engines. In this paper, the important parameters of performance characteristics (such as: power output, thermal efficiency, fuel consumption, exhaust emission,${\cdots}$) of biogas-fueled motorcycle engine are studied and estimated with change of engine speed and load. The obtained results when operating with biogas are used to compare with that of gasoline fuel under the same operating conditions. Engine speed in the experimental is changed from 1500 rpm (idle-mode) up to 3500 rpm by a step of 500 rpm. Engine load is changed from zero to maximum load with the help of an exciting voltage device from generator-type dynamometer. The experimental results show that the tested engine operated with richer biogas-air mixture than that of gasoline-air mixture under the same test conditions. Biogas-fueled engine gives a higher fuel consumption and lower thermal efficiency under the same power output. Brake thermal efficiency of biogas engine is found to be about 3% lower than gasoline-fueled motorcycle engine for whole range of speed. Exhaust emission of biogas-fueled motorcycle engine (such as: CO, HC) is found to be lower than the limitation level of the emission standards of Vietnam for motorcycle engines (CO <4.5% HC <1200 ppm).

바이오스가스를 이용한 열병합 발전용 엔진 개발 (Development of a Biogas Engine for Cogeneration System)

  • 김영민;이장희;주성호
    • 연구논문집
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    • 통권30호
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    • pp.33-42
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    • 2000
  • We must stabilize quickly increasing waste matters in urban life and livestock industry. Biogas including landfill gas and digester gas is byproduct of anaerobic decomposition of organic waste matter and contains 40%-70% methane, which can be used for energy purposes. Utilization of biogas reduce the emission of methane into the atmosphere to minimize greenhouse effect and the carbon dioxide (CO2) emitted when biogas is converted to energy has been taken out of the atmosphere by growing plant. Recently, bioenergy is world-widely noticeable as all contributing to the greenhouse effect. This paper presents development process of a biogas engine for cogeneration system and results of application to digester gas and landfill gas in site. The biogas engine is a dual fuel engine operated on biogas with a diesel pilot. At present, the engine can substitute biogas for diesel fuel up to 85%. but it can be said that there is a possibility of improvement in performance.

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국내의 바이오가스엔진 기술개발 현황 (Status of Development of Biogas Engine in Korea)

  • 이장희
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2005년도 춘계학술대회
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    • pp.472-475
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    • 2005
  • Genenrally, biogas contained methane contents of $40-75\%$, was made in anaerobic compost facilities, landfill site, etc. And it is very useful for gas engine as a fuel. So, many imported biogas engines for electrical generation, are installed and operating now at landfill sites and anaerobic compost facilites. And KIMM has studied on and developed biogas engines with the aids of engine maker and parts companies for several years. Some results are shown here.

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디젤 분사 특성이 Biogas-디젤 혼소엔진 성능에 미치는 영향 (Effect of Diesel Injection Characteristics on Biogas-Diesel Dual Fuel Engine Performance)

  • 이선엽;김영민;이장희
    • 한국분무공학회지
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    • 제15권4호
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    • pp.195-201
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    • 2010
  • Due to its carbon-neutral nature, biogas generated from anaerobic digestion or fermentation of biodegradable wastes is one of the important renewable energy sources to reduce global warming. It is mainly composed of methane and various inert gases such as $CO_2$ and $N_2$, and the actual composition of biogas significantly varies depending on the origin of anaerobic digestion process. Therefore, in order to effectively utilize this fuel as an energy source for electricity, it is important to develop power generation engines which can successfully apply biogas with significant composition variations. In this study, efforts have been made to develop a diesel-biogas duel fuel engine as a way to achieve such a stable power generation. The effects of diesel fuel injection quantity and pressure on stable combustion and engine performance were investigated, and an impact of diesel fuel atomization was discussed. The engine test results show that there exists a 2 stage combustion which consists of diesel pilot fuel burning and premixed biogas/air mixture burning in dual fuel engine operation and optimum diesel injection parameters were suggested for biogases with various compositions and heating values.

합성 바이오가스를 이용한 상용 가스엔진 발전기의 구동 특성 (Testing a Commercial Gas Engine using Synthetic Biogas)

  • 심재훈;홍성구;권순국
    • 한국농공학회:학술대회논문집
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    • 한국농공학회 2005년도 학술발표논문집
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    • pp.592-597
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    • 2005
  • Biogas is widely accepted as one of renewable energy. Raw biogas can be used in internal combustion engines either spark ignition or diesel engines. Since the gas has relatively low calorific values, engine power also is lower than rated power values. Modified engines or biogas-specific engines have been utilized in order to increase efficiency. Recently, gas engine/generators are provided for various purposes. They are mostly for LPG or natural gas. When biogas is fueled to the gas engines, de-rating is inevitable due to its lower calorific values. Meanwhile, massively produced commercial gas engines are more competitive in terms of initial investment for engines, compared to biogas-specific engines. Then, the characteristics of the commercial engine and power generation should be understood for better operation. A 5kW gas engine/generator(natural gas) was tested for determining an allowable maximum concentration of $CO_2$ in synthetic biogas, with respect to engine stating, power generation. Experimental results indicated that about 65% of methane concentration is required to start the gas engine. At this condition, the power generated was about 3 kW. It is about 60% of the nominal power, which is similar to the ratio of calorific values.

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바이오가스를 이용한 가스엔진 발전기의 발전효율 및 질소산화물 배출 특성 (Generating efficiency and NOx emissions of a gas engine generator fuelled with biogas)

  • 이경택;차효석;전광민;송순호
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2009년도 추계학술대회 논문집
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    • pp.306-309
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    • 2009
  • Concern for new and renewable energy is growing globally. Biogas is one of the alternative fuels and consists of methane and carbon dioxide. It is difficult to achieve efficient engine operation due to a lower heating value of biogas compared to that of natural gas. In order to improve generating efficiency, finding an optimum point of ignition timing and excess air ratio is important. From this fact, generating efficiency and pollutant emissions of 2300cc gas engine generator operated by biogas as functions of ignition timings and excess air ratios were investigated in this study. As a test result, the generating efficiency of the gas engine generator using biogas was 27.34 % in the condition of the BTDC of $16^{\circ}$ and the excess air ratio of 1.4.

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하수처리장 바이오가스를 이용한 발전시 가스엔진의 고장원인 분석 (Analysis of cause of engine failure during power generation using biogas in sewage treatment plant)

  • 김길정;김래현
    • 에너지공학
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    • 제25권4호
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    • pp.13-29
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    • 2016
  • 본 연구에서는 실제 난지 하수처리장에서 바이오가스를 연료로 사용하여 발전할 때, 가스엔진에서 발생하는 고장 사례에 대한 조사와 분석을 통해 바이오가스 플랜트의 주요 고장원인을 분석하고, 그 대책을 제시하였다. 바이오 가스엔진에 유입되는 바이오 가스 속의 황화수소와 수분 제거설비의 간헐적인 오작동으로 인한 수분이 바이오 가스엔진의 인터쿨러 부식을 초래하였다. 또한 바이오가스 속의 실록산이 이산화규소와 규산염 화합물을 형성하여 피스톤 표면 및 실린더라이너 내벽의 긁힘과 마모 등의 손상을 유발하였다. 연소실과 배기가스 설비에 부착된 물질들은 황화수소와 다른 불순물질이 결합한 것으로 분석되었다. 이러한 원인으로는 바이오 가스 속의 고함량(50ppm이상)의 황화수소가 탈황설비에 장기간 공급되었고, 탈황설비내 활성탄의 파과점 도달에 따른 제거효율 저하 때문에 황화수소가 엔진으로 유입됨으로써 발생한 것으로 사료된다. 또한, 황화수소는 흡착탑의 실록산 제거용 활성탄 기능을 저하시킴으로써 제거되지 않은 실록산 화합물이 엔진으로 유입되어 다양한 형태의 엔진고장을 유발한 것으로 판단된다. 따라서, 황화수소와 실록산, 수분은 바이오 가스엔진 고장의 주요 원인으로 볼 수 있으며, 이 중 황화수소는 고장을 일으키는 다른 물질과 반응하며, 전처리 공정에 중대한 영향을 미치는 물질로 볼 수 있다. 결과적으로, $H_2S$ 제거방법의 최적화가 안정적인 바이오 가스엔진 운영을 위한 필수적인 대책으로 사료된다.

A Study on Characteristics of Power Generation System Using Biogas from the Waste of Pig Farm

  • Huynh, Thanh-Cong;Pham, Xuan-Mai;Nguyen, Dinh-Hung;Tran, Minh-Tien
    • 한국수소및신에너지학회논문집
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    • 제21권5호
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    • pp.435-441
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    • 2010
  • To verify the possibility of a power generation system using biogas from the waste of pig farm for rural electric production, a SI gasoline engine is modified to use biogas fuel and was installed in a 20 KVA power generation system. An electronic speed regulation unit is developed to keep the system speed at 1500 rpm. Experimental investigations have been carried out to examine the performance characteristics of power generation system (such as: system frequency, phase output voltage,$\ldots$). In addition, the operating parameters and output emissions ($NO_x$, HC, and $CO_2$) of biogas-fueled engine are preliminary evaluated and analyzed for the change of system load. Results indicated that the researched power generation system shows a high stability of output voltage and frequency with help of speed regulator. Biogas fuel (mainly $CH_4$ and $CO_2$) has an environmental impact and potential as a green alternative fuel for SI engine and they would not require significant modification of existing engine hardware. Output emissions of biogas-fueled engine are found to be relative low. $NO_x$ emission increases with the increase of output electric power of the power generation system.

Energy and exergy analysis of CI engine dual fuelled with linseed biodiesel and biogas

  • S. Lalhriatpuia;Amit Pal
    • Advances in Energy Research
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    • 제8권4호
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    • pp.213-222
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    • 2022
  • Our overdependence on the limited supply of fossil fuel with the burden of emission as a consequence of its utilization has been a major concern. Biodiesel is emerging as a potential diesel substitution for its similar performance, with the additional benefits of emitting lesser emissions. Due to the easy availability of feedstock for Biogas production, Biogas is studied for its use in CI engines. In this study, we considered Linseed Biodiesel and Biogas to run on dual fuel mode in a CI engine. An energy and exergy analysis was conducted to study the rate of fuel energy and exergy transformation to various other processes. Exergy relocation to exhaust gases was observed to be an average of 5% more for dual fuel mode than the diesel mode, whereas exergy relocation to the diesel mode was observed to be more than the dual fuel modes. Also, exergy loss to exhaust gas is observed to be more than the exergy transferred to cooling water or shaft. The exergy efficiency observed for biodiesel-biogas mode is only lesser by 3% compared to diesel-biogas mode, suggesting Biodiesel can be a substitute fuel for diesel.

소형 가스엔진 발전기의 배기가스 폐열을 이용한 바이오가스 개질 가능성에 관한 실험적 연구 (An Experimental Study on the Possibility of Biogas Reforming using the Waste Heat of a Small-Sized Gas Engine Generator)

  • 차효석;김태수;엄태준;정충수;전광민;송순호
    • 한국수소및신에너지학회논문집
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    • 제23권3호
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    • pp.236-242
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    • 2012
  • This study has been carried out the experiment for the possibility of biogas reforming using waste heat. The source of this waste heat is the exhaust gas from a small-sized gas engine generator. For recovering the waste heat, Two-stage heat exchanger is manufactured. The two-stage heat exchanger is composed of a heat exchanger for the exhaust gas and a heat exchanger for the water. This two-stage heat exchanger is used for reforming the biogas by means of on-site hydrogen production at the small-sized gas engine generator. The two-stage heat exchanger is coupled with the biogas reformer which is a kind of catalytic reformer. To confirm a heat recovery efficiency of the two-stage heat exchanger, temperature differences of inlet and outlet locations are measured. Also, the variations of syngas concentrations with various biogas flow rates are investigated. As a result using manufactured two-stage heat exchanger, the biogas can be reformed from waste heat recovery. This experiment suggests that the exhaust gas heat exchanger is available for reforming the biogas.