期刊文献+

Regeneration of C_4H_(10) dry reforming catalyst by nonthermal plasma 被引量:1

Regeneration of C_4H_(10) dry reforming catalyst by nonthermal plasma
在线阅读 下载PDF
导出
摘要 Carbon deposition via coke formation is one of the critical problems causing catalyst deactivation during the reforming of hydrocarbons. An effort was made to regenerate the catalyst (Ni/γ-alumina) by oxidation methods. Two approaches were carded out for the regeneration of the deactivated catalyst. The first one involves the plasma treatment of the deactivated catalyst in the presence of dry air over a temperature range of 300-500℃, while the second one only the thermal treatment in the same temperature range. The performance of the regenerated catalyst was evaluated in terms of C4H10 and CO2 conversions and the physicochemical characteristics were examined using a surface area analyzer, an elemental analyzer, scanning electron microscopy (SEM) and transmission electron microscopy (TEM). It was observed that the carbon deposit (coke) on the catalyst was about 9.89 wt% after reforming C4H10 for 5 h at 540℃. The simple thermal treatment at 400 ℃ reduced carbon content to 6.59 wt% whereas it was decreased to 3.25 wt% by the plasma and heat combination. The specific surface area was fully restored to the original state by the plasma-assisted regeneration at 500℃. As far as the catalytic activity is concerned, the fresh and regenerated catalysts exhibited similar C4H10 and CO2 conversion efficiencies. Carbon deposition via coke formation is one of the critical problems causing catalyst deactivation during the reforming of hydrocarbons. An effort was made to regenerate the catalyst (Ni/γ-alumina) by oxidation methods. Two approaches were carded out for the regeneration of the deactivated catalyst. The first one involves the plasma treatment of the deactivated catalyst in the presence of dry air over a temperature range of 300-500℃, while the second one only the thermal treatment in the same temperature range. The performance of the regenerated catalyst was evaluated in terms of C4H10 and CO2 conversions and the physicochemical characteristics were examined using a surface area analyzer, an elemental analyzer, scanning electron microscopy (SEM) and transmission electron microscopy (TEM). It was observed that the carbon deposit (coke) on the catalyst was about 9.89 wt% after reforming C4H10 for 5 h at 540℃. The simple thermal treatment at 400 ℃ reduced carbon content to 6.59 wt% whereas it was decreased to 3.25 wt% by the plasma and heat combination. The specific surface area was fully restored to the original state by the plasma-assisted regeneration at 500℃. As far as the catalytic activity is concerned, the fresh and regenerated catalysts exhibited similar C4H10 and CO2 conversion efficiencies.
出处 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2013年第3期394-402,共9页 能源化学(英文版)
基金 supported by Basic Science Research Program through the National Research Foundation of Korea(NRF) funded by the Ministry of Education,Science and Technology(Grant number 2012-0007231)
关键词 dry reforming coke formation REGENERATION PLASMA CATALYST dry reforming coke formation regeneration plasma catalyst
  • 相关文献

参考文献12

  • 1Vladimir Demidyuk,J. Christopher Whitehead.Influence of Temperature on Gas-Phase Toluene Decomposition in Plasma-Catalytic System[J].Plasma Chemistry and Plasma Processing.2007(1)
  • 2Young Sun Mok,Yil Jeong Huh.Simultaneous Removal of Nitrogen Oxides and Particulate Matters from Diesel Engine Exhaust using Dielectric Barrier Discharge and Catalysis Hybrid System[J].Plasma Chemistry and Plasma Processing.2005(6)
  • 3Huang AM,Xia GG,Wang JY,et al.CO2 reforming of CH4 by atmospheric pressure ac discharge plasmas[].Journal of Catalysis.2000
  • 4Miessner H,Francke K P,Rudolph R.Plasma-enhanced HC-SCR of NOX in the presence of excess oxygen[].Applied Catalysis.2002
  • 5Lee D H,Kim K T,Cha M S,Song Y H. Int J Hydrog Energy . 2010
  • 6Wang Q,Yan B H,Jin Y,Cheng Y.Dry Reforming ofmethane in a dielectric barrier discharge reactor with Ni/Al2O3 catalyst:Interaction of catalyst and plasma[].Energy and Fuels.2009
  • 7Kim J H,Suh D J,Park T J,Kim K L. Applied Catalysis A General . 2000
  • 8Stefan Broer,Thomas Hammer.Selective catalytic reduction of nitrogen oxides by combining a non-thermal plasma and a V2O5-WO3/TiO2 catalyst[].Applied Catalysis.2000
  • 9Dunford HB.Horseradish peroxidase: Structure and kinetic properties[].Peroxidases in Chemistry and Biology.1991
  • 10Greene TW,Peter GM.Protective Groups in Organic Synthesis[]..1999

同被引文献13

引证文献1

二级引证文献8

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部