TY - GEN
T1 - Study on the degradation of VOCs in a plasma-catalyst hybrid reactor
AU - Liu, Hongxia
AU - Liu, Yun
PY - 2011
Y1 - 2011
N2 - The performance of a plasma-catalyst hybrid reactor for VOCs removal was studied in this paper. xylene and MnOx were acted as the pollutant and catalyst, respectively. The combinations between reactor and catalyst were conducted in active discharging and post discharging zone, respectively. The parameters investigated included discharge power, discharge gap width, inlet xylene concentration and moisture content in the gas stream. The CO2 selectivity was determined synchronously. Experimental results indicated that, no matter where the catalyst was located, the plasma-catalyst hybrid technology can effectively destroy xylene molecules. For dry gas stream, high removal efficiency of xylene would accompany with the high power and low inlet concentration, and achieved the best at different discharge gap width in different combining zone. Too much or too little water vapor did not favor xylene destruction. An optimal xylene removal was reached at around 1.6% by volume of humidity content. In addition, the more important result obtained from this work was that, despite the changes of experimental conditions, the higher synergetic effect was always occurred when the catalyst was placed in the post discharging zone. The same conclusion was educed on CO2 selectivity, and then, benefit the environment.
AB - The performance of a plasma-catalyst hybrid reactor for VOCs removal was studied in this paper. xylene and MnOx were acted as the pollutant and catalyst, respectively. The combinations between reactor and catalyst were conducted in active discharging and post discharging zone, respectively. The parameters investigated included discharge power, discharge gap width, inlet xylene concentration and moisture content in the gas stream. The CO2 selectivity was determined synchronously. Experimental results indicated that, no matter where the catalyst was located, the plasma-catalyst hybrid technology can effectively destroy xylene molecules. For dry gas stream, high removal efficiency of xylene would accompany with the high power and low inlet concentration, and achieved the best at different discharge gap width in different combining zone. Too much or too little water vapor did not favor xylene destruction. An optimal xylene removal was reached at around 1.6% by volume of humidity content. In addition, the more important result obtained from this work was that, despite the changes of experimental conditions, the higher synergetic effect was always occurred when the catalyst was placed in the post discharging zone. The same conclusion was educed on CO2 selectivity, and then, benefit the environment.
KW - Air pollution control technology
KW - Different reactive zone
KW - Plasma-catalyst hybrid
KW - Xylene removal
UR - https://www.scopus.com/pages/publications/80054825048
U2 - 10.1109/MACE.2011.5988445
DO - 10.1109/MACE.2011.5988445
M3 - 会议稿件
AN - SCOPUS:80054825048
SN - 9781424494392
T3 - 2011 2nd International Conference on Mechanic Automation and Control Engineering, MACE 2011 - Proceedings
SP - 6165
EP - 6168
BT - 2011 2nd International Conference on Mechanic Automation and Control Engineering, MACE 2011 - Proceedings
T2 - 2011 2nd International Conference on Mechanic Automation and Control Engineering, MACE 2011
Y2 - 15 July 2011 through 17 July 2011
ER -