The objective of this study is to investigate the exhaust emission characteristics of surrogate e-gasoline fuels reflecting Fischer–Tropsch synthetic fuel properties under real vehicle and chassis dynamometer conditions. Three surrogate e-...

http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.
변환된 중국어를 복사하여 사용하시면 됩니다.
https://www.riss.kr/link?id=A110240044
2026
Korean
KCI등재,ESCI
학술저널
36-44(9쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
The objective of this study is to investigate the exhaust emission characteristics of surrogate e-gasoline fuels reflecting Fischer–Tropsch synthetic fuel properties under real vehicle and chassis dynamometer conditions. Three surrogate e-...
The objective of this study is to investigate the exhaust emission characteristics of surrogate e-gasoline fuels reflecting Fischer–Tropsch synthetic fuel properties under real vehicle and chassis dynamometer conditions. Three surrogate e-gasoline blends were formulated and compared with conventional gasoline using four standard driving cycles (FTP-75, HWFET, SC03, and US06). Regulated emissions (CO2, NOₓ, THC, and CO) and unregulated pollutants, including volatile organic compounds (VOCs) and carbonyl compounds, were simultaneously evaluated. The results show that surrogate e-gasoline fuels produce higher THC and CO emissions during cold-start conditions due to delayed fuel vaporization associated with lower vapor pressure. However, under stabilized and high-temperature operating conditions, improved combustion stability—particularly for fuels with a higher iso-paraffin content—leads to reduced THC and CO emissions compared to gasoline. Fuels containing MTBE exhibit a slight increase in NOx owing to elevated combustion temperatures, while overall CO2 emissions are reduced by approximately 3% as a result of higher heating value. In addition, the removal of aromatic hydrocarbons effectively suppresses hazardous VOC emissions such as benzene and toluene.
램제트 연소기 입구 조건에 따른 연료과농 추진제의 후퇴율 및 연소 특성에 관한 수치해석 연구
Reaction mechanism generator (RMG)를 이용한 고온 환경 질소산화물 합성 메커니즘 생성 및 검증 연구
메탄 스월 화염에서 산화제 조성 변화에 따른 질소산화물 저감 특성 연구