• 제목/요약/키워드: Exhaust Gas Characteristic

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수소-천연가스 혼합연료 엔진의 삼원촉매 전환효율 특성 연구 (A Study on the Characteristic of Conversion Efficiency for Three-way Catalyst in Hydrogen-Natural Gas Blend Fueled Engine)

  • 박철웅;이의형;김창기;이장희
    • 한국가스학회지
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    • 제20권6호
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    • pp.23-30
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    • 2016
  • 천연가스를 이용한 기존 엔진들은 효율이 우수한 희박연소를 구현하였지만 배기가스의 정화성능이 점차 강화되는 배기규제에 대응하기 위해, 이론공연비 연소 방식으로 관심이 옮겨지고 있다. 이론공연비 연소 방식은 유해 배출가스의 정화효율이 높은 삼원촉매를 사용할 수 있는 장점이 있지만, 높은 연소열 발생에 따른 열 내구성 문제와 연비가 해결과제로 남아 있다. 천연가스에 수소를 혼합한 수소-천연가스 혼합연료(HCNG))는 수소의 빠른 연소속도에 의한 영향으로 연소속도가 증가하고, 희박한계가 증가하여 배기가스재순환(Exhaust gas recirculation; EGR) 률의 공급을 증가할 수 있다. EGR률 상승은 연소온도를 낮추게 되어 엔진 열 내구성에 긍정적인 영향을 줄 수 있고, 압축비를 더욱 증가 시킬 수 있어서 효율적인 연소조건을 형성하도록 도움을 줄 수 있다. 본 연구에서는 기존 대형 가스엔진을 이용하여 개발한 이론공연비 연소 방식의 HCNG 엔진의 배출가스 저감을 최소화하기 위해, 삼원촉매를 개발 및 적용하여 배기가스 특성을 평가하고 분석하고자 하였다. 현재 상용화된 시내버스용 삼원촉매와 HCNG용으로 개발 중인 시제 삼원촉매를 각각 설치하여 정상상태 운전조건 및 과도운전조건에서 실험을 진행하고 모드실험 결과를 비교하였다.

마이크로 가스터빈 발전시스템의 운전성능 분석 (Analysis of Operation Performance of a Micro Gas Turbine Generator System)

  • 이종준;김동섭
    • 한국유체기계학회 논문집
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    • 제8권5호
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    • pp.13-21
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    • 2005
  • This study aims to analyze operating performance of a micro gas turbine with the aid of detailed measurements of various system parameters. In addition to embedded measurements, parameters such as exhaust temperatures, engine inlet temperatures and fuel flow rates are measured. Variations in measured data and estimated performance parameters are analyzed. Those data are processed to calculate losses along the power transmission line and the net gas turbine performance (power and efficiency based on the gas turbine shaft end) is isolated from the overall system performance. A method to estimate characteristic parameters such as component efficiencies, based on the comparison between measured and predicted performance data, is suggested and exemplified for the full load condition.

마이크로 가스터빈 발전시스템의 운전성능 분석 (Analysis of Operation Performance of a Micro Gas Turbine Generator System)

  • 이종준;김동섭
    • 유체기계공업학회:학술대회논문집
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    • 유체기계공업학회 2004년도 유체기계 연구개발 발표회 논문집
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    • pp.132-139
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    • 2004
  • This study aims to analyze operating performance of a micro gas turbine with the aid of detailed measurements of various system parameters. In addition to embedded measurements, parameters such as exhaust temperatures, engine inlet temperatures and fuel flow rates are measured Variations in measured data and estimated performance parameters are analyzed. Those data are processed to calculate losses along the power transmission line and the net gas turbine performance (power and efficiency based on the gas turbine shaft end) is isolated from the overall system performance. On the basis of the measured data, analytical approach is tried to estimate design characteristic and performance parameters such as component efficiencies and unmeasured temperatures.

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시험모드 및 대기온도에 따른 경유자동차의 배출가스 특성에 관한 연구 (Studies on the Exhaust Gas Characteristics of the Vehicle Diesel according to the Test Mode and Ambient Temperature)

  • 이정천;전철환;김기호;오상기;박언영
    • 동력기계공학회지
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    • 제20권6호
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    • pp.93-98
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    • 2016
  • Environmental problems are issued throughout all over the world and which are needed the strength management. In case of the diesel cars are also being developing and studying continuously about various after-treatments device such as EGR, LNT, SCR, DPF and DOC etc. which are used for decreasing $NO_X$ and PM. The air temperature goes up to $39^{\circ}C$ in summer and goes down to $-20^{\circ}C$ in winter because of the location. These changing of the temperature can effect to the engine and harmful exhaust gas discharged and it seems to make the increase - decrease different. The result of the evaluate while changing between the test-mode and the air temperature, which expresses that WLTC-mode is 2.2 times and FTP_75 mode is 4.1~6 times increase to the comparison NEDC-mode of the current regulation. The exhaust characteristic of $NO_X$ by the changing temperature increases in the low temperature and 4.3 times in $14^{\circ}C$ and 21.3 times in $-7^{\circ}C$ with maximum when it compares to $23^{\circ}C$. The fuel efficiency of the different weight car and engine with same data is about 5.7 % in maximum.

UREA의 함량 변화에 따른 배출가스 특성분석 (A study on Property of Emission Gas by the Content Variation of Urea)

  • 강형규;도진우;황인하;임재혁;하종한;나병기
    • 에너지공학
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    • 제24권4호
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    • pp.24-32
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    • 2015
  • 국내외적으로 디젤엔진에 대한 배출가스 규제가 강화되고 있고 다양한 방식의 엔진연소 및 후처리 시스템에 대한 연구가 진행되고 있다. 질소산화물(NOx)의 제거방법으로는 HC-SCR, LNT, Urea-SCR 등이 있으며, Urea-SCR은 높은 변환 효율 및 연비특성으로 향후 NOx의 저감을 위한 유력한 기술로 많은 기술개발이 진행되고 있다. 본 연구에서는 요소함량의 변화에 따른 요소수의 물리적/화학적 특성을 조사하고 배출가스의 특성을 분석하였다. 요소함량의 증가에 따른 요소수의 뷰렛, 알데히드, 인산염 함량은 증가하였으며, 배출가스 중 일산화탄소(CO), 탄화수소(HC) 및 입자상물질(PM)의 배출량 변화는 미미하였다. 질소산화물(NOx)의 배출량은 요소함량이 증가함에 따라 감소하였으며, 30.0 wt%이상의 요소수에서는 질소산화물의 저감효율이 80 %이상을 나타내었다.

가솔린 기관의 공회전 시 밸브 타이밍 변경에 따른 잔류가스 유동 변화에 관한 해석적 연구 (Numerical Analysis of Flow Characteristic of Residual Gas due to Changes in Valve Timings during an Idle Operation in an SI Engine)

  • 이준호;김득상;백두성;조용석
    • 한국자동차공학회논문집
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    • 제14권6호
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    • pp.50-56
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    • 2006
  • Residual gas fraction in a combustion process is very crucial to improve combustion and cyclic variations. Especially, the residual gas fraction is strongly affected by backflow of the residual gas during the valve overlap period in an idle operation. Therefore, it is one of the most interesting that valve timings can affect flow characteristics of gas exchange process, especially during idle operation. This analysis investigates residual gas fraction with respect to valve timing changes which is critical for combustion efficiency and engine performance. Flow characteristics of residual gas by changing intake and exhaust valve timing are calculated by CFD methodology during an idle operation in an SI engine. It is analyzed that retarded EVO and advanced IVO results in the increase of valve overlap period and consequently, residual gas fraction. Futhermore, changes in IVO have stronger effects on variation of residual gas fraction.

흡연집진기 내 스트레이너 및 카본필터 압력투과 해석 (Dust collector strainer and carbon filter pressure permeation analysis)

  • 이치우
    • 동력기계공학회지
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    • 제19권4호
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    • pp.5-10
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    • 2015
  • Dust collector is one of the most widely used equipment among the method of separating particles, it filters exhaust gas having various kinds of dusts through several filters installed on parallel. This research investigated the moving characteristic of Honeycomb-type carbon filter in pressure drop of smoking collector's ventilation system. It also compared pressure transmission coefficient through pressure drop according to flow velocity change.

모형 가스터빈 연소기에서 희박 예혼합 화염의 연소 특성 및 유동 해석에 관한 연구 (A Study on Combustion Characteristics and Flow Analysis of a Lean Premixed Flame in Lab-Scale Gas Turbine Combustor)

  • 유혜연;김규보;전충환;장영준
    • 대한기계학회논문집B
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    • 제32권8호
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    • pp.574-581
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    • 2008
  • The characteristics of combustion and flow for a lean premixed flame in lab-scale gas turbine combustor was studied through experiment and numerical analysis. From the experiment, flame structure and heat release rate were obtained from OH emission spectroscopy. Qualitative comparisons were made line-integrated OH chemiluminescence image and abel-transformed one. NOx analyzer was implemented to get the characteristic of NOx exhaust from the combustor. From the numerical analysis, the thermal distribution and characteristic of recirculation zone with the change of fuel-air mixing degree, the characteristic of methane distribution with equivalence ratio in the combustor respectively. Total heat release rate is increased with increasing equivalence ratio. Thermal Nox is reduced with increasing fuel-air mixing degree. Increasing equivalence ratio results in the decrease of the size of reaction zone and alteration of the position of the reaction zone into the entrance of the combustor.

LPG 엔진의 냉 시동시 시동성 개선 및 배출들 저감을 위한 연구 (A Study for the Improvement of Start Ability and Exhaust Emissions in a Conventional Mixer Type LPG Engine on Cold Start)

  • 김우석;이종화
    • 한국자동차공학회논문집
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    • 제10권1호
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    • pp.84-92
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    • 2002
  • On the cold start of LPG engine, as the engine temperature has not reached its equilibrium temperature, liquid LPG could not be changed perfectly gaseous LPG, although it was passed to the vaporizer. Liquid and gas mixed fuel could influence starting ability and exhaust emission characteristics of LPG engine. In this study, the vaporization characteristic of liquid LPG was investigated with a conventional vaporizer and the vaporizer with heat source(glow plug) installed at preheated chamber inlet, by using the visualization methods and engine test. According to visualization result, even if the engine coolant temperature was $14^{\circ}C$, liquid fuel was supplied to primary chamber over 25 seconds without vaporizing from preheated chamber in such a conventional vaporizer. However, the vaporizer with heat source do not correspond with that, scarcely had been trim on glow plug when LPG began to vaporize. The effectiveness of heat source could be verified by application to the conventional LPG engine.

선박 발전용 4행정 디젤엔진의 IMO 운전모드에 따른 NOx 배출특성에 관한 연구 (A Study on the Characteristic of NOx Emissions by IMO Operating Modes in a Four Stroke Marine Power Generation Diesel Engine)

  • 김현규;김규보;전충환;장영준
    • Journal of Advanced Marine Engineering and Technology
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    • 제28권3호
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    • pp.457-465
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    • 2004
  • Environmental protection on the ocean has been interested and nowadays the International Maritime Organization(IMO) has advanced on the prevention of air pollution from ships. This study presents the performance and the emission characteristics of 4 stroke marine diesel engines for generation application in D2 cycle(IMO mode). The effects of important operating parameters, such as intake air pressure. intake air temperature and maximum combustion pressure on NOx emissions were also described. Emissions measurement and calculation are processed according to IMO Technical Code. The results show that the maximum combustion pressure by fuel injection timing control and intake air temperature has strong influence on NOx emission production. But NOx emission is not affected by intake air pressure and exhaust gas back pressure.