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      KCI등재 SCIE SCOPUS

      DEVELOPMENT OF HYDROGEN-COMPRESSED NATURAL GAS BLEND ENGINE FOR HEAVY DUTY VEHICLES

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      https://www.riss.kr/link?id=A104637730

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      다국어 초록 (Multilingual Abstract)

      Natural gas fuel, as an alternative energy source of transportation, has been used widely since it has an advantage of low emission levels. However, new technologies are required in order to meet the reinforced emission regulations. For this purpose, research into the development of hydrogen-compressed natural gas (HCNG) blend engine was carried out to evaluate its feasibility and emission characteristics. The Engine Research Department at the Korea Institute of Machinery and Materials carried out a large number of tests based on various parameter changes that could affect the performance and emission of HCNG engine in different operating conditions. An earlier stage of the research project focused on the lean combustion of a HCNG engine for heavy duty vehicles to meet the EURO-VI standards. An 11-L/6-cylinder CNG engine was used for the test. The effects of the excess air ratio change were assessed based on various content ratios of hydrogen in the natural gas fuel. In the later part of the HCNG research, a stoichiometric mixture operation was suggested to meet reinforced emission regulation without requiring a De-NOx system. Additionally, an exhaust gas recirculation (EGR) system was introduced for the purpose of improving thermal efficiency and durability. The optimal operating conditions were selected to achieve the best thermal efficiency to meet the required emission levels. In this paper, we demonstrate that a HCNG engine can achieve a significant decrease in NOx emissions, as compared to that of a CNG engine, while meeting the requirements of the EURO-VI standards during a transient mode cycle test. EGR can suppress the weakness of stoichiometric mixture combustion strategy, such as the deterioration of the durability and thermal efficiency, while the emission level can be lowered with the use of a three-way catalyst. The possibility of further reduction of emissions and CO2 with EGR was evaluated to access practical application of a HCNG engine in the field. From that evaluation, the HCNG engine with stoichiometric mixture operation for heavy duty vehicles was developed. The emission levels of HCNG engine were 50 % lower when compared to the EURO-VI standards with a greater than 10 % decrease in CO2 compared to that of a natural gas engine.
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      Natural gas fuel, as an alternative energy source of transportation, has been used widely since it has an advantage of low emission levels. However, new technologies are required in order to meet the reinforced emission regulations. For this purpose, ...

      Natural gas fuel, as an alternative energy source of transportation, has been used widely since it has an advantage of low emission levels. However, new technologies are required in order to meet the reinforced emission regulations. For this purpose, research into the development of hydrogen-compressed natural gas (HCNG) blend engine was carried out to evaluate its feasibility and emission characteristics. The Engine Research Department at the Korea Institute of Machinery and Materials carried out a large number of tests based on various parameter changes that could affect the performance and emission of HCNG engine in different operating conditions. An earlier stage of the research project focused on the lean combustion of a HCNG engine for heavy duty vehicles to meet the EURO-VI standards. An 11-L/6-cylinder CNG engine was used for the test. The effects of the excess air ratio change were assessed based on various content ratios of hydrogen in the natural gas fuel. In the later part of the HCNG research, a stoichiometric mixture operation was suggested to meet reinforced emission regulation without requiring a De-NOx system. Additionally, an exhaust gas recirculation (EGR) system was introduced for the purpose of improving thermal efficiency and durability. The optimal operating conditions were selected to achieve the best thermal efficiency to meet the required emission levels. In this paper, we demonstrate that a HCNG engine can achieve a significant decrease in NOx emissions, as compared to that of a CNG engine, while meeting the requirements of the EURO-VI standards during a transient mode cycle test. EGR can suppress the weakness of stoichiometric mixture combustion strategy, such as the deterioration of the durability and thermal efficiency, while the emission level can be lowered with the use of a three-way catalyst. The possibility of further reduction of emissions and CO2 with EGR was evaluated to access practical application of a HCNG engine in the field. From that evaluation, the HCNG engine with stoichiometric mixture operation for heavy duty vehicles was developed. The emission levels of HCNG engine were 50 % lower when compared to the EURO-VI standards with a greater than 10 % decrease in CO2 compared to that of a natural gas engine.

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      참고문헌 (Reference)

      1 Benz, M., "The new euro VI natural gas engine for Mercedes-Benz medium duty commercial vehicles" 2014

      2 Park, C., "The influences of hydrogen on the performance and emission characteristics of a heavy duty natural gas engine" 36 (36): 3739-3745, 2011

      3 Sluder, C. S., "Relentless progress: Emissions regulations and the road ahead" 2014

      4 Park, C., "Power output characteristics of hydrogen-natural gas blend fuel engine at different compression ratios" 37 (37): 8681-8687, 2012

      5 Park, C., "Operating strategy for exhaust gas reduction and performance improvement in a heavy-duty hydrogen-natural gas blend engine" 50 : 262-269, 2013

      6 Karim, G. A., "Methane-hydrogen mixtures as fuels" 21 (21): 625-631, 1996

      7 Saanum, I., "Lean burn versus stoichiometric operation with EGR and 3-way catalyst of an engine fueled with natural gas and hydrogen enriched natural gas"

      8 Lim, G., "Knock and emission characteristics of heavy-duty HCNG engine with modified compression ratios"

      9 Kukkonen, C, "Hydrogen as an alternative automotive fuel"

      10 Hupperich, P, "Exhaust emissions of diesel, gasoline and natural gas fuelled vehicles"

      1 Benz, M., "The new euro VI natural gas engine for Mercedes-Benz medium duty commercial vehicles" 2014

      2 Park, C., "The influences of hydrogen on the performance and emission characteristics of a heavy duty natural gas engine" 36 (36): 3739-3745, 2011

      3 Sluder, C. S., "Relentless progress: Emissions regulations and the road ahead" 2014

      4 Park, C., "Power output characteristics of hydrogen-natural gas blend fuel engine at different compression ratios" 37 (37): 8681-8687, 2012

      5 Park, C., "Operating strategy for exhaust gas reduction and performance improvement in a heavy-duty hydrogen-natural gas blend engine" 50 : 262-269, 2013

      6 Karim, G. A., "Methane-hydrogen mixtures as fuels" 21 (21): 625-631, 1996

      7 Saanum, I., "Lean burn versus stoichiometric operation with EGR and 3-way catalyst of an engine fueled with natural gas and hydrogen enriched natural gas"

      8 Lim, G., "Knock and emission characteristics of heavy-duty HCNG engine with modified compression ratios"

      9 Kukkonen, C, "Hydrogen as an alternative automotive fuel"

      10 Hupperich, P, "Exhaust emissions of diesel, gasoline and natural gas fuelled vehicles"

      11 Collier, K., "Emission results from the new development of a dedicated hydrogen – Enriched natural gas heavy duty engine"

      12 Park, C., "Effects of the ignition timing retard and the compression ratio on the full-load performance and the emissions characteristics of a heavy-duty engine fueled by hydrogen–natural-gas blends" 227 (227): 1295-1302, 2013

      13 Lim, G., "Effects of compression ratio on performance and emission characteristics of heavy-duty SI engine fueled with HCNG" 38 (38): 4831-4838, 2013

      14 Park, C., "Effects of compression ratio and valve overlap on feasibility of HCNG engines for heavy-duty vehicles"

      15 Park, C., "Effect of mixing CO2 with natural gas–hydrogen blends on combustion in heavy-duty spark ignition engine" 102 : 299-304, 2012

      16 Park, C., "Effect of mixer type on cylinder-to-cylinder variation and performance in hydrogen-natural gas blend fuel engine" 38 (38): 4809-4815, 2013

      17 Lim, G., "Effect of ignition timing retard strategy on NOx reduction in hydrogen-compressed natural gas blend engine with increased compression ratio" 39 (39): 2399-2408, 2014

      18 Noble, A, "EURO 7 ENGINEERING-Next Generation Engines"

      19 Park, C. W., "Development of hydrogencompressed natural gas blend engine for heavy duty vechcles" 2016

      20 "Cummins Westport"

      21 Lee, S., "Comparison of the effects of EGR and lean burn on an SI engine fueled by hydrogen-enriched low calorific gas" 39 (39): 1086-1095, 2014

      22 Dickinson, R. R., "Alternative carriers for remote renewable energy sources using existing CNG infrastructure" 35 (35): 1321-1329, 2010

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2005-06-10 학술지명변경 한글명 : 한국자동차공학회 영문논문집 -> International Journal of Automotive Technology
      외국어명 : International Journal of Automotive Tech -> International Journal of Automotive Technology
      KCI등재후보
      2005-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2004-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.14 0.53 0.85
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.71 0.62 0.534 0.03
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