• Title/Summary/Keyword: Automotive Fuel

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A study on the injection charateristics of the fuel injection system in a diesel engine (디젤기관 연료분사 시스템의 분사 특성에 관한 연구)

  • 이창식;김정헌
    • Journal of the korean Society of Automotive Engineers
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    • v.14 no.5
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    • pp.54-60
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    • 1992
  • This paper deals with the results of injection characteristics and the influence parameters upon the fuel injection performance of the inline injection system in a diesel engine. In this study, the characteristics of the injection rate, the injection pressure and the injection duration have been investigated by changing the injection parameters. The predicted results and injection performance are compared to the measured data from the injection test system.

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Fueling Options for Fuel Cell Vehicle (연료전지 자동차의 연료 공급)

  • 남석우
    • Journal of the korean Society of Automotive Engineers
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    • v.26 no.3
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    • pp.6-11
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    • 2004
  • 연료전지에서 반응에 참여하는 주된 연료는 수소이며, 따라서 연료전지 자동차에 사용되는 고분자전해질 연료전지(Polymer Electrolyte Membrane Fuel Cell. PEMFC)에도 연료로서 수소를 공급해야 한다. 1㎾급 연료전지의 경우 한 시간에 약 1㎥($25^{\circ}C$, 1기압)의 수소를 필요로 하므로, 수십 ㎾ 용량의 자동차용 연료전지에는 수십 ㎥/h의 빠른 속도로 수소를 공급할 수 있는 장치가 필요하다. 또한 이러한 수소 공급 속도를 유지하면서 1회 연료 충전으로 수백 km를 자동차가 주행할 수 있도록 충분한 양의 연료가 자동차 내에 저장되어 있어야 편리할 것이다. (중략)

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A study on the characteristics of fuel spray for EFI type using the ultrasonic fuel feeding system (초음파 연료 공급장치를 이용한 EFI방식의 연료분무 특성에 관한 연구)

  • 윤면근;류정인
    • Journal of the korean Society of Automotive Engineers
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    • v.16 no.6
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    • pp.16-21
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    • 1994
  • 본 연구에서는 연료의 핵심기술인 분사기술을 향상시키기 위하여 연료의 고압분사와 초음파 에너지 공급기술을 이용하여 연료의 미립화를 시도하고 EFI연료 분사방식에서 초음파 공급장치를 개발하여 추후 직접 분사식 초음파 무화장치의 개발을 위한 기초를 마련하고 직접 분사식에서 문제시되어지는 분사 초기 또는 분사 말기의 분사연료 미립화의 분사 전구간에서의 분사연료의 미립화를 시도하기 위한 기초를 마련하고자 한다.

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Analysis of Fuel Economy Sensitivity for Parallel Hybrid Bus according to Variation of Simulation Input Parameter (병렬형 하이브리드 버스의 시뮬레이션 입력 매개변수 변화에 따른 연비 민감도 분석)

  • Choi, Jongdae;Jeong, Jongryeol;Lee, Daeheung;Shin, Changwoo;Park, Yeong-Il;Lim, Wonsik;Cha, Suk Won
    • Transactions of the Korean Society of Automotive Engineers
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    • v.21 no.6
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    • pp.92-99
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    • 2013
  • High oil price and global warming problem are being continued all over the world. For this reason, fuel economy and emission of greenhouse gas are regulated by law in many countries. Therefore many companies are researching and producing hybrid electric vehicles (HEVs) which substitute conventional internal combustion engine vehicle. However, these researches and productions are restricted to mainly passenger cars. Because of cost and physical problems, commercial vehicles are difficult to evaluate fuel economy. So simulations are important and it is necessary to know how sensitive parameters that enter into simulation affect. In this paper, forward simulations using AVL Cruise were conducted for analysis of fuel economy for parallel hybrid bus and were repeated by changing each parameter. Based on these results, root mean square errors (RMSE) are calculated for analysis of fuel economy sensitivity. The number of target parameters are 15. These parameters were classified with high and low sensitivity parameter relatively.

Experimental and Numerical Assessment of the Effects of Various Coolant Temperature in Gasoline Vehicle on Fuel Consumption and Emissions (냉각수온 변화가 가솔린 차량의 연비 및 배출가스에 미치는 영향에 관한 실험 및 수치적 평가)

  • Jeong, SooJin;Kim, SeoKyu;Lee, GumSu;Jeong, Jinwoo;Kim, MyungHwan
    • Transactions of the Korean Society of Automotive Engineers
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    • v.25 no.3
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    • pp.297-308
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    • 2017
  • One of the major engine thermal management system(TMS) strategies for improving fuel economy is to operate the engine in high temperatures. Therefore, this work performed a numerical and experimental study to examine the effect of several different STOs(Starting Temperature of Opening) of wax-thermostat, ranging from $85^{\circ}C$ to $105^{\circ}C$, of gasoline engine on fuel economy and emission characteristics. In this study, a gasoline car equipped with waxthermostat was tested and simulated under FTP-75 and HWFET mode. CRUISE $M^{TM}$ was used to simulate vehicle dynamics, transient engine performance and TMS. The test results showed fuel savings for both drive cycles due to higher STO of $100^{\circ}C$, which is slightly worse than that of $90^{\circ}C$ and amounts between 0.34 and 0.475 %. These controversial results are attributed to experimental errors and uncertainty. The computational results for three STOs, $85^{\circ}C$, $95^{\circ}C$ and $105^{\circ}C$, showed that fuel savings attributed to the application of higher STOs of $95^{\circ}C$ and $105^{\circ}C$ are relatively small and range from 0.306 to 0.363 %. It is also found that the amount of HC and CO emissions from the tailpipe tends to decrease with higher engine coolant temperature because of faster catalyst light-off and improved combustion.

Emission Characteristics of GTL(Gas to Liquid) Fuel in Diesel Engine (디젤 엔진에서 GTL(Gas to Liquid) 연료의 배출물 특성에 관한 연구)

  • Lee, Yong-Gyu;Moon, Gun-Feel;Choi, Kyo-Nam;Jeong, Dong-Soo;Kim, Byoung-Jun;Cha, Kyung-Ok
    • Transactions of the Korean Society of Automotive Engineers
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    • v.16 no.5
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    • pp.84-91
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    • 2008
  • Due to increasing need for better emission characteristics and lower fuel consumption rate in automotive engines, alternative fuels are drawing more attentions recently. The GTL (gas to liquid) is the one of most favored candidates. In this study, emission characteristics are compared between diesel and GTL fuel in commercial 2.0 liter diesel engine and vehicle with CRDi(Common Rail Direct injection) system. The effects of injection timings on emission and fuel consumption rate are compared at various engine speeds and loads. Noticeable reduction in HC, CO and PM emissions are observed due to higher cetane number and low sulfur and aromatic contents in GTL. On the trade-off curve of NOx and PM(Particulate matter) GTL showed much more benefits than diesel, where about 30% of PM mass decreased at the same operating conditions. On CVS 75 mode test in vehicle, GTL showed an excellent emission enhancement, in which 50% of HC, 21% of PM, and 12% of NOx engine-out emissions are decreased compared to ULSD(Ultra low sulfur diesel) fuel.

Development of DC/DC Converters and Actual Vehicle Simulation Experiment for 150 kW Class Fuel-cell Electric Vehicle (150kW급 수소연료전지 차량용 DC/DC 컨버터 개발 및 실차모사 실험)

  • Kim, Sun-Ju;Jeong, Hyeonju;Choi, Sewan;Cho, Jun-Ho;Jeon, Yujong;Park, Jun-Sung;Yoon, Hye-Sung
    • The Transactions of the Korean Institute of Power Electronics
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    • v.27 no.1
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    • pp.26-32
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    • 2022
  • This paper proposes a power system that includes a 120k W fuel cell DC-DC converter (FDC) and 30 kW bidirectional DC-DC converter (BHDC) for a 150 kW fuel-cell vehicle. With a high DC link voltage of 800 V, the efficiency and power density of the power electronic components are improved. Through the modular design of FDC and BHDC, electric components are shared, resulting in reduced mass production costs. The switching frequency of 30 kHz of full SiC devices and optimal design of coupled inductor reduce the volume, achieving a power density of 8.3 kW/L. Furthermore, a synergetic operation strategy using variable limiter control of FDC and BHDC was proposed to efficiently operate the fuel cell vehicle considering the fuel cell stack efficiency according to the load. Finally, the performance of the prototype was verified by Highway Fuel Economy Driving Schedule testing, EMI test, and the linked operation between FDC and BHDC. The full load efficiencies of the FDC and BHDC prototypes are 98.47% and 98.74%, respectively.

Recyclability Estimation of Fuel Tank Module in Vechicle (자동차 연료탱크 모듈의 재활용성 평가)

  • Lee, Chul-Min;Lee, Eun-Ok;Kim, Ha-Su;Lee, Jun-Su;Kang, Hee-Yong;Yang, Sung-Mo
    • Transactions of the Korean Society of Automotive Engineers
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    • v.14 no.2
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    • pp.127-135
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    • 2006
  • We analyzed recyclability of the fuel tanks made from steel or aluminum alloy. For a comparison of the fuel tank recyclability, first we had analyzed the process of disassembly in a vehicle and evaluated its disassemblability. Then we evaluated the recyclability for reuse and withdrawal. The processes were more or less same owing to the similarity of fastening method of fuel tank and components. However, the fuel tank of the aluminum alloy was easier (about 5%) to disassembly than the fuel tank of steel. This could be attributed to the differences in weight of steel and aluminium. On light of the withdrawal and reuse, the fuel tank made up of steel needed to plate with zinc or lead due to its anti-corrosiveness. Hence, it required additional processes. In this paper, we were explaining the results of our on going research on the recyclability of fuel tanks made of steel and aluminum alloys. The differences that we found between the fuel tank made up of the aluminum alloy and steel were in their weight, recyclability, disassemblability, anticorrosive property, cost and productivity.

PAH and Soot Formation Characteristics of DME/Ethylene Fuel (DME/에틸렌 연료의 PAH 및 매연의 생성 특성)

  • Yoon, Seung-Suk;Lee, Sang-Min;Chung, Suk-ho
    • Transactions of the Korean Society of Automotive Engineers
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    • v.13 no.3
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    • pp.171-177
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    • 2005
  • In order to investigate the effect of dimethyl ether (DME) on PAH and soot formation, the fuel has been mixed to the counter-flow diffusion flames of ethylene. Laser-induced incandescence and laser-induced fluorescence techniques were employed to measure relative concentrations of soot volume fraction and polycyclic aromatic hydrocarbon (PAH) concentration, respectively. Results showed that even though pure DME flame produces the minimal amount of PAH and soot, the mixture fuel of DME and ethylene could increase PAH and soot formation, as compared to those of pure ethylene flame. This implies that even though DME has been known to be a clean fuel for soot formation, the mixture fuel of DME and the hydrocarbon fuel could produce enhanced production of soot. Numerical simulation demonstrated that methyl (CH$_{3}$) radical generated by the initial pyrolysis of DME can be contributed to the enhancement of PAH and soot formation, through the formation of propargyl (C$_{3}$H$_{3}$) radical.