• 제목/요약/키워드: BTE (Brake Thermal Efficiency)

검색결과 6건 처리시간 0.018초

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

  • 박현욱;이준순;오승묵;김창업;이용규;강건용
    • 한국분무공학회지
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    • 제25권4호
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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.

Cold EGR 장착 디젤엔진에서의 NOx 저감에 관한 실험적 연구 (An Experimental Study on NOX Reduction in a Diesel Engine with Cold EGR)

  • 부펜더;나빈쿠마르;전용두
    • 한국산학기술학회:학술대회논문집
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    • 한국산학기술학회 2010년도 춘계학술발표논문집 2부
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    • pp.769-772
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    • 2010
  • The objective of the current research work is to investigate the usage of biodiesel combined with the use of EGR in order to reduce the emission of all regulated pollutants from diesel engines. A single cylinder, air cooled, constant speed direct injection diesel engine was used for the experimental work and a cold EGR system was developed and fitted to the engine. Concentrations of HCs, NOx, and CO from the exhaust gas along with the smoke opacity were measured. Engine performance parameters such as the brake thermal efficiency (BTE) and the brake specific energy consumption (BSEC) were also calculated from the measured data. The results from the present investigation suggest that 25-30% EGR rate could give excellent NOx reduction without any significance penalty on smoke opacity or BSEC under the engine load of up to 40%. Under the full load condition, 15% EGR rate was found to be an option while higher EGR rate resulted in inferior performance and heavy smoke.

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Development of intelligent model to predict the characteristics of biodiesel operated CI engine with hydrogen injection

  • Karrthik, R.S.;Baskaran, S.;Raghunath, M.
    • Advances in Computational Design
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    • 제4권4호
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    • pp.367-379
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    • 2019
  • Multiple Inputs and Multiple Outputs (MIMO) Fuzzy logic model is developed to predict the engine performance and emission characteristics of pongamia pinnata biodiesel with hydrogen injection. Engine performance and emission characteristics such as brake thermal efficiency (BTE), brake specific energy consumption (BSEC), hydrocarbon (HC), carbon monoxide (CO), carbon dioxide ($CO_2$) and nitrous oxides ($NO_X$) were considered. Experimental investigations were carried out by using four stroke single cylinder constant speed compression ignition engine with the rated power of 5.2 kW at variable load conditions. The performance and emission characteristics are measured using an Exhaust gas analyzer, smoke meter, piezoelectric pressure transducer and crank angle encoder for different fuel blends (Diesel, B10, B20 and B30) and engine load conditions. Fuzzy logic model uses triangular and trapezoidal membership function because of its higher predictive accuracy to predict the engine performance and emission characteristics. Computational results clearly demonstrate that, the proposed fuzzy model has produced fewer deviations and has exhibited higher predictive accuracy with acceptable determination correlation coefficients of 0.99136 to 1 with experimental values. The developed fuzzy logic model has produced good correlation between the fuzzy predicted and experimental values. So it is found to be useful for predicting the engine performance and emission characteristics with limited number of available data.

6 L급 압축착화 기관에서 천연가스-디젤 반응성 조정 연소 시 부하에 따른 배기 재순환율이 출력 및 열효율에 미치는 영향 분석 (Effects of Exhaust Gas Recirculation on Power and Thermal Efficiency of Reactivity Controlled Compression Ignition in Different Load Conditions with a 6-L Engine)

  • 이선엽;이석환;김창기;이정우
    • 한국가스학회지
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    • 제24권6호
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    • pp.1-10
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    • 2020
  • 반응성 조정 압축착화 (Reactivity Controlled Compression Ignition, RCCI) 연소는 착화원인 디젤 연료를 압축 행정 중 이른 시점에 미리 분사하여, 공기와 미리 섞여 들어온 천연가스 연료뿐만 아니라 디젤 연료 자체도 미리 연소 전에 공기와 혼합하여 착화를 이루는 전체 예혼합 혼소(Dual-fuel combustion) 방식의 일종이다. 따라서 기존의 혼소 방식 중에서도 RCCI 연소는 질소산화물(Nitrogen Oxides, NOx) 및 매연(Smoke)을 획기적으로 줄일 수 있고, 또한 높은 열효율을 유지할 수 있는 장점을 지니고 있다. 특히 연소 중 NOx의 발생은 연소 온도와 국부적인 당량비에 관계된 상황에서 당량비를 낮추기 위해 예혼합율을 높이는 시도뿐만 아니라, 연소 온도 감소를 위한 배기재순환(Exhuast Gas Recirculation, EGR)을 적용하는 것이 효과적이다. 그러나 배기재순환은 대개의 경우 터보차저의 압축기 전단에서 추출하는 HP-EGR(High Pressure-EGR) 방식을 적용하는 경우가 많으므로, EGR율을 높일 경우 터빈으로 공급되는 배기의 양이 줄어 배기 엔탈피 감소로 인해 과급이 줄어드는 악영향을 초래할 수 있다. 따라서 본 연구에서는 서로 다른 두 운전조건에서 천연가스-디젤 RCCI 연소를 시행할 때, EGR율 변화에 따른 엔진 시스템의 제동 출력 및 열효율의 변화에 대하여 실험적으로 분석하였다. 실험 조건은 1,200 rpm/29 kW 수준의 조건과 1,800 rpm/90 kW 이하 조건에서 수행하였으며 NOx와 smoke의 배출조건은 Tier-4 final 배기규제를 기준으로 삼았으며 엔진의 내구성을 고려하여 최고 연소압력은 160 bar를 넘지 않게 제어하였다. 그 결과 1,200 rpm/29 kW 조건에서는 EGR율을 4에서 30 %로 높이더라도 출력 및 열효율의 변화는 미미하였으나, 1,800 rpm 조건에서는 EGR율을 4에서 28 %로 증가할 경우 최대 과급 압력이 2.3에서 1.8 bar로, 최고 출력은 90에서 65 kW로, 열효율은 37에서 33 %로 감소함을 알 수 있었다. 따라서 효과적인 EGR공급을 위해서는 현재 압축기 전단에서 추출하는 EGR을 후단에서 추출하는 LP-EGR (Low Pressure EGR) 시스템이 효과적일 수 있음을 시사한다.

COMBUSTION VISUALIZATION AND EMISSIONS OF A DIRECT INJECTION COMPRESSION IGNITION ENGINE FUELED WITH BIO-DIESOHOL

  • LU X.;HUANG Z.;ZHANG W.;LI D.
    • International Journal of Automotive Technology
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    • 제6권1호
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    • pp.15-21
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    • 2005
  • The purpose of this paper is to experimentally investigate the engine pollutant emissions and combustion characteristics of diesel engine fueled with ethanol-diesel blended fuel (bio-diesohol). The experiments were performed on a single-cylinder DI diesel engine. Two blend fuels were consisted of $15\%$ ethanol, $83.5\%$ diesel and $1.5\%$ solublizer (by volume) were evaluated: one without cetane improver (E15-D) and one with a cetane improver (E15-D+CN improver). The engine performance parameters and emissions including fuel consumption, exhaust temperature, lubricating oil temperature, Bosch smoke number, CO, NOx, and THC were measured, and compared to the baseline diesel fuel. In order to gain insight into the combustion characteristics of bio-diesohol blends, the engine combustion processes for blended fuels and diesel fuel were observed using an Engine Video System (AVL 513). The results showed that the brake specific fuel consumption (BSFC) increased at overall engine operating conditions, but it is worth noting that the brake thermal efficiency (BTE) increased by up to $1-2.3\%$ with two blends when compared to diesel fuel. It is found that the engine fueled with ethanol-diesel blend fuels has higher emissions of THC, lower emissions of CO, NOx, and smoke. And the results also indicated that the cetane improver has positive effects on CO and NOx emissions, but negative effect on THC emission. Based on engine combustion visualization, it is found that ignition delay increased, combustion duration and the luminosity of flame decreased for the diesohol blends. The combustion is improved when the CN improver was added to the blend fuel.

디젤엔진 성능에 미치는 바이오디젤 연료에 관한 연구 (A Study on Biodiesel Fuel of Engine Performance and Emission Characteristics in Diesel Engine)

  • 진뢰;성욱곤;김재덕;송규근
    • 한국자동차공학회논문집
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    • 제22권5호
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    • pp.59-65
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    • 2014
  • Diesel engines have the superior combustion efficiency and fuel economy that they are widely used for industry, heavyduty vehicles, etc. However, its exhaust emissions have become the major concerns due to their environmental impacts. Moreover, the depletion of fossil fuels is the main issue. Therefore, it is important to look for alternative sources of energy. Bio-diesel is one of the ideal energy which has proved to be ecofriendly for more than fossil fuels. The experimental tests analysed the engine performance and emission characteristics of a diesel engine using diesel and biodiesel blended of BD25, BD45 and BD65, in order to study the use of clean fuel to meet the increasingly stringent emission regulations. The engine performance was examined by using engine dynamometer while an exhaust gas analyzer was used to examine the emission characteristics. The effect of biodiesel on engine performance were lower to diesel through comparing their HP and torque but fuel consumption was slightly increased because of biodiesel has lower heating value and higher density than diesel. However, due to the better lubricity, the brake thermal efficiency of biodiesel was higher than diesel. The emission characteristics were strongly affected by the blending ratio of diesel and biodiesel. The results showed that the smoke opacity, hydrocarbons (HC) and carbon monoxide (CO) emissions decreased while the nitrogen oxides (NOX) slightly increased.