CO2 reduction using non-thermal plasma generated with photovoltaic energy in a fluidized reactor

被引:18
|
作者
Pou, J. O. [1 ]
Colominas, C. [2 ]
Gonzalez-Olmos, R. [2 ]
机构
[1] Univ Ramon Llull, IQS Sch Engn, Dept Ind Engn, Via Augusta 390, Barcelona 08017, Spain
[2] Univ Ramon Llull, IQS Sch Engn, Chem Engn & Mat Sci Dept, Via Augusta 390, Barcelona 08017, Spain
关键词
Non-thermal plasmaa; CO2; conversion; Plasma catalysis; Sustainability; CCU; DIELECTRIC-BARRIER DISCHARGE; CARBON-DIOXIDE; ELECTROCHEMICAL REDUCTION; CORONA DISCHARGE; CONVERSION; METHANOL; DECOMPOSITION; HYDROGEN; CAPTURE; SYSTEM;
D O I
10.1016/j.jcou.2018.08.019
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The aim of this work was to study the efficiency of a fluidized plasma reactor (FPR) coupled to a photovoltaic system to reduce CO2 to CO at atmospheric pressure and low temperatures. The major products of this reaction were CO and O-2, which suggests that the stoichiometric conversion of CO2 into CO and O-2 was achieved. The results indicate that increasing the number of discharge points in the anode, voltage and frequency, the conversion of CO2 to CO increased due to the a higher number of random non-thermal plasma (NTP) discharges generated in the FPR. An increase of the gap between the electrodes resulted also in higher conversions. At higher CO2 flowrate, the CO2 conversion decreased but the energy efficiency increased. The addition of low concentration of copper in the alumina fluidized bed resulted in a slight improvement of the CO2 conversion and energy efficiency. The maximum CO2 conversion and energy efficiency obtained in this study were 41% and 2.1% respectively. From a life cycle assessment approach, it was concluded that the use of photovoltaic energy coupled to the FPR technology improve the sustainability of the process. It was estimated that with the optimal conditions obtained in this work, it would be possible to compensate 67% of the CO2 emissions associated to the process.
引用
收藏
页码:528 / 535
页数:8
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