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Simultaneous Application of Platinum-Supported Alumina Catalyst and Ozone Oxidant for Low-temperature Oxidation of Soot

백금담지 알루미나 촉매와 오존 산화제 동시 적용에 의한 탄소 입자상 물질의 저온 산화반응

  • Lee, Jin Soo (Department of Chemical Engineering and Bioengineering, Kangwon National University) ;
  • Lee, Dae-Won (Department of Chemical Engineering and Bioengineering, Kangwon National University)
  • 이진수 (강원대학교 화학생물공학부) ;
  • 이대원 (강원대학교 화학생물공학부)
  • Received : 2018.06.05
  • Accepted : 2018.06.29
  • Published : 2018.10.01

Abstract

The lowering of temperature for combustion of diesel particulate matters (or diesel soot) is one of the important tasks in automotive industry that is searching for a way to meet up "high-fuel efficiency, low-emission" standard. In this study, it was discussed how the use of ozone over platinum-based catalyst promotes a low-temperature soot oxidation occurred at $150^{\circ}C$. The use of platinum catalyst did not increase oxidation rate largely but was very effective in improving the selectivity of carbon dioxide. The pre-oxidation of NO into $NO_2$ using ozone was rather crucial in improving the oxidation rate of soot at $150^{\circ}C$.

경유자동차에서 배출되는 탄소 입자상 물질 연소 온도구간을 낮추는 것은 미세먼지 배출 저감과 내연기관 자동차의 고연비 저배출 성능 구현이라는 측면에서 매우 중요한 기술적 과제 중 하나이다. 본 논문에서는 탄소 입자상 물질의 산화를 위해 오존을 산화제로 이용하고 백금계 산화촉매를 동시에 적용했을 때 관찰되는 $150^{\circ}C$ 부근 저온영역에서의 탄소 입자상 물질 연소반응에 관하여 논했다. 백금계 산화촉매를 적용했을 때 오존에 의한 탄소 입자상 물질의 산화속도를 크게 개선시키지 못했지만 연소반응의 이산화탄소 선택도를 향상시켰으며, 탄소 입자상 물질의 선택적 산화를 위해 고려된 NO의 $NO_2$로의 사전 전환($NO_2$-rich 조건)은 $NO_2$와 오존의 상호 상승작용에 의해 $150^{\circ}C$ 부근 온도영역에서의 탄소상 입자물질 연소성능을 높이는데 효과가 있었다.

Keywords

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