• Title/Summary/Keyword: Liquefied Petroleum Gas(LPG)

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외장형 연료펌프를 사용한 LPLi시스템에서 연료의 상태량 변화 예측 (Prediction of Fuel Properties on LPLi System with an External Fuel Pump)

  • 김재형;윤여빈;박영준;송춘섭;이성욱;조용석
    • 한국분무공학회지
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    • 제15권1호
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    • pp.38-43
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    • 2010
  • The LPG(Liquefied Petroleum Gas) fuel attracts attention as a clean alternative fuel. In order to further reduce the exhaust emission and improve performance in LPG engines, the LPLi(Liquid Phase LPG Injection) system is used. In LPLi system, the fuel pump performance is important for keeping the LPG over it's saturated vapor pressure. An external fuel pump is needed to improve the durability for LPG engines. This paper predicted the variation of fuel properties on the LPLi system with an external fuel pump. From each component's thermodynamic model, an 1-D simulation is developed for LPLi system with an external fuel pump. Then the 1-D simulation data analyzed and compared with the rig-test. The 1-D simulation and the rig-test produced similar results.

DME-LPG 혼합연료를 사용한 LPG 차량의 실증평가 (Feasibility Test of LPG Vehicles by Using DME-LPG Blends)

  • 연주민;이민호;박천규;황인하;하종한;강용
    • 에너지공학
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    • 제24권4호
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    • pp.33-41
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    • 2015
  • DME는 높은 세탄가와 낮은 배출가스로 인하여 청정 디젤엔진 대체연료로 사용될 수 있고, LPG와 물리적 특성이 유사하기 때문에 혼합사용이 가능하다. 본 연구에서는 DME-LPG 혼합연료를 LPG 차량 연료에 적용한 실증평가를 수행하였다. 평가 차량으로는 LPG 연료 공급방식별로 액상연료공급방식(LPLi), 기상연료공급방식(LPGi), 분배식펌프 방식(Mixer type)의 LPG 자동차를 선택하였다. 배출가스(CO, THC, $NO_X$)와 연료소비효율에 대한 영향을 비교하기 위하여 LPG와 DME-LPG 혼합연료에 대한 성능평가를 수행하였다. 차량의 주행거리가 증가함에 따라 DME-LPG 혼합연료를 사용한 차량의 배출가스와 연료소비효율은 LPG 연료를 사용한 경우와 비교해서 동등한 수준으로 평가되었다.

자동차용 액화석유가스(LPG) 잔류물질의 특성 연구 (A Study on Characteristics of Residue in Liquefied Petroleum Gas using Automotive Fuel)

  • 장윤미;박태성;강형규;임의순;이정민;나병기
    • 한국응용과학기술학회지
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    • 제35권3호
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    • pp.816-825
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    • 2018
  • 액화석유가스(Liquefied Petroleum Gas)를 연료(Fuel)로 하는 차량의 실제 운행단계에서 시동 꺼짐 현상 등이 발생한다는 소비자 민원이 접수 된 바 있으며, 최근 유통과정에서 녹 등의 이물질로 인한 소비자 피해 가능성이 제기되어 LPG 잔류물질(Residue) 항목에 대한 관리 필요성이 대두되었다. 본 연구에서는 LPG 국내생산 및 수입사 제품과 실제로 유통되고 있는 LPG의 잔류물질 특성을 연구하였다. LPG 잔류물질을 GC-MS를 사용하여 정성분석을 하였고, ICP-OES를 이용하여 무기물 성분을 분석하였다. GC-MS 분석결과 고무 제조공정을 용이하게 하기 위해 고무에 소량 배합하는 가소제(Plasticizer) 등이 분석되었다. 또한 ICP-OES를 이용한 무기물 분석결과 주로 LPG 생산 시 사용되는 소포제 등에서 유래된 것으로 추정되는 Si와 충전시설 등에 사용되는 그리스 첨가제 성분 등으로 추정되는 P와 Zn도 일부 검출되었다. 본 연구에서 분석된 LPG 잔류물질에 대해서는 녹 등을 유발할 수 있는 성분이 검출되지 않았지만 가소제 및 그리스 첨가제 성분이 LPG 연료계통에 영향을 줄 수 있으므로 적정품질의 고무류 사용과 저비점 그리스 첨가제 사용 확대가 필요할 것으로 보인다.

Investigation of the LPG Gas Explosion of a Welding And Cutting Torch at a Construction Site

  • Lee, Su-kyung;Lee, Jung-hoon;Song, Dong-woo
    • Korean Chemical Engineering Research
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    • 제56권6호
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    • pp.811-818
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    • 2018
  • A fire and explosion accident caused by a liquefied petroleum gas (LPG) welding and cutting torch gas leak occurred 10 m underground at the site of reinforcement work for bridge columns, killing four people and seriously injuring ten. We conducted a comprehensive investigation into the accident to identify the fundamental causes of the explosion by analyzing the structure of the construction site and the properties of propane, which was the main component of LPG welding and cutting work used at the site. The range between the lower and upper explosion limits of leaking LPG for welding and cutting work was examined using Le Chatelier's formula; the behavior of LPG concentration change, which included dispersion and concentration change, was analyzed using the fire dynamic simulator (FDS). We concluded that the primary cause of the accident was combustible LPG that leaked from a welding and cutting torch and formed a explosion range between the lower and upper limits. When the LPG contacted the flame of the welding and cutting torch, LPG explosion occurred. The LPG explosion power calculation was verified by the blast effect computation program developed by the Department of Defense Explosive Safety Board (DDESB). According to the fire simulation results, we concluded that the welding and cutting torch LPG leak caused the gas explosion. This study is useful for safety management to prevent accidents caused by LPG welding and cutting work at construction sites.

Effect of Hydrogen Enriched LPG Fuelled Engine with Converted from a Diesel Engine

  • Choi, Gyeung-Ho;Lee, Jae-Cheon;Chung, Yon-Jong;Caton, Jerald;Han, Sung-Bin
    • 에너지공학
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    • 제15권3호
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    • pp.139-145
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    • 2006
  • The purpose of this study is to obtain low-emission and high-efficiency in LPG engine with hydrogen enrichment. The objective of this paper is to clarify the effects of hydrogen enrichment in LPG fuelled engine on exhaust emission, thermal efficiency and performance. The compression ratio of 8 was selected to avoid abnormal combustion. To maintain equal heating value of fuel blend, the amount of LPG was decreased as hydrogen was gradually added. The relative air-fuel ratio was increased from 0.8 to 1.3, and the ignition timing was controlled to be at MBT (minimum spark advance for best torque)

LPG충전소 안전장치의 사고방지 효과에 대한 정량적 분석 (Availability Analysis of Safety Devices installed for Preventing Accidental Event in the LPG Refuelling Station)

  • 이진한;유광수;박교식
    • 한국가스학회지
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    • 제10권1호
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    • pp.26-31
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    • 2006
  • LPG충전시설에 설치된 각종 안전장치의 유효성을 평가하기 위해 하역작업 중 탱크로리의 비등액체팽창증기폭발(BLEVE, Boiling Liquid Expanding Vapor Explosion) 시나리오에 대해 빈도분석을 수행하였으며, 분석방법으로는 정량적인 분석법인 결함수목분석(Fault Tree Analysis)법을 사용하였다. 안전장치의 유효성은 안전장치의 부착여부와 용량변화에 따른 빈도변화를 관찰함으로써 간접적으로 평가하였다. 이 분석을 통해 허용 가능한 위험수준을 만족하기 위해 필수적인 안전장치와 설치 우선순위를 도출할 수 있었다.

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LPG 액체분사엔진의 공연비제어에 관한 기초 연구 (A Fundamental Study of Air-Fuel Ratio Control on LPG Liquid Injection Engines)

  • 심한섭;선우명호;송창섭
    • 한국정밀공학회지
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    • 제19권7호
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    • pp.80-87
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    • 2002
  • Liquefied petroleum gas (LPG) is used in spark ignition (SI) engines. Fuel injection rate of an injector is affected by fuel temperature and pressure in LPG liquid injection systems for either a multi-point-injection (MPI) or a direct injection (DI) engine. Even fuel injection conditions are varied, the air-fuel ratio should be accurately controlled to reduce exhaust emissions. In this study, a correction factor fur the fuel injection rate of an injector is derived from density ratio and pressure difference ratio. A compensation method of injected fuel amount is proposed for a fuel injection control system. The experimental results for the LPG liquid injection system in a SI engine show that this system works well fur a full range of engine speed and load condition, and the air-fuel ratio is accurately controlled by the proposed correction factor.

LPG 예혼합 압축 착화 엔진의 배기가스 및 연소 특성 (Emissions and Combustion Characteristics of LPG HCCI Engine)

  • 염기태;장진영;배충식
    • 한국자동차공학회논문집
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    • 제14권4호
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    • pp.149-156
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    • 2006
  • This paper investigates the steady state combustion characteristics of LPG homogeneous charge compression ignition(HCCI) engine with variable valve timing(VVT) and dimethyl ether(DME) direct injection, to find out the benefits in exhaust gas emissions. VVT is one of the attractive ways to control HCCI engine. Hot internal residual gas which is controlled by VVT device, makes fuel is evaporated easily, and ignition timing is advanced. Regular gasoline and liquefied petroleum gas(LPG) were used as main fuel and dimethyl ether(DME) was used as ignition promoter in this research. Operating range and exhaust emissions were compared LPG HCCI engine with gasoline HCCI engine. Operating range of LPG HCCI engine was wider than that of gasoline HCCI engine. The start of combustion was affected by the intake valve open(IVO) timing and the ${\lambda}TOTAL$ due to the latent heat of vaporization, not like gasoline HCCI engine. At rich operation conditions, the burn duration of the LPG HCCI engine was longer than that of the gasoline HCCI engine. CAD at 20% and 90% of the mass fraction burned were also more retarded than that of the gasoline HCCI engine. And carbon dioxide(CO2) emission of LPG HCCI engine was lower than that of gasoline HCCI engine. However, carbon oxide(CO) and hydro carbon(HC) emission of LPG HCCI engine were higher than that of gasoline HCCI engine.

개조된 LPG엔진에서 Mixer와 LPi 연료공급방식의 엔진성능 및 배기특성 (Engine Performance and Emissions Characteristics in an LPG Engine Converted with Mixer and LPi System Fuel Supply Methods)

  • 최경호;김진호;조웅래;한성빈
    • 대한기계학회논문집B
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    • 제28권9호
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    • pp.1075-1080
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    • 2004
  • In this study, performance and emissions characteristics of an liquefied petroleum gas (LPG) engine converted from a diesel engine were examined by using mixer system and liquid propane injection (LPi) system fuel supply methods. A compression ratio for the base diesel engine, 21, was modified into 8, 8.5, 9 and 9.5. The cylinder head and the piston crown were modified to roe the LPG in the engine. Ignition timing was controlled to be at minimum spark advance for best torque (MBT) each case. Engine performance and emissions characteristics are analyzed by investigating engine power, brake mean effective pressure (BMEP), brake specific fuel consumption (BSFC), volumetric efficiency, CO, THC and NOx. Experimental results showed that the LPi system generates higher power and lower emissions than the conventional mixer fuel supply method.

새로운 비황분계 부취제 혼합 LPG 연료의 엔진성능과 배출가스 특성에 관한 연구 (A Study on the Performance and Exhaust Emissions Characteristics of LPG Engine using LPG Fuel with New Sulfur Free Odorant)

  • 김재곤;임의순;민경일;정충섭
    • 에너지공학
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    • 제23권3호
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    • pp.88-95
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    • 2014
  • 일반적으로 황분계 부취제는 연료가스에 인한 가스중독, 발화, 폭발 등의 사고를 방지하고, 배출가스에 의해 연료 가스 누출의 즉각적으로 손쉽게 검출할 수 있도록 LPG, LNG 그리고 도시가스와 같은 연료가스에 첨가 사용하고 있다. 본 연구에서는 새로운 비황분계 부취제(K-Petro S-Free)를 사용한 LPG 혼합연료의 엔진 성능과 배출가스(CO, THC, $CO_2$, $NO_x$, $SO_2$ ) 특성을 살펴보았다. 새로운 비황분계 부취제를 40mg/kg를 혼합한 LPG 연료(여름용, 겨울용)와 현재 사용 중인 황분계 부취제 (EM, ethyl mercaptan)를 혼합한 LPG 연료의 엔진 성능과 배출가스 특성을 실험하였다. 비황분계 부취제를 혼합한 LPG 연료의 엔진 성능은 황분계 부취제를 혼합한 LPG 연료와 비교할 때 비슷한 결과를 보여 주었다. 한편, 비황분계 부취제를 혼합한 LPG 연료의 엔진 배출가스 중 CO, THC, $CO_2$, $NO_x$은 황분계 부취제를 혼합한 LPG 연료와 비교할 때 비슷한 특성을 보였다. 그러나 2,000rpm에서 배출가스 중 $SO_2$은 비황분계 부취제를 혼합한 LPG 연료가 황분계 부취제를 혼합한 LPG 연료보다 83% 감소하는 우수한 결과를 보였다.