Coupling of Methane in a DBD Plasma Reactor: Effect of H2 as Co-Feed

被引:3
作者
Maslova, Valeriia [1 ]
Nastase, Raluca [1 ]
Fourre, Elodie [1 ]
Veryasov, Gleb [2 ]
Batiot-Dupeyrat, Catherine [1 ]
机构
[1] Univ Poitiers, UMR CNRS 7285 IC2MP, ENSIP Bat B1,1 Rue Marcel Dore,TSA41105, F-86073 Poitiers 9, France
[2] TotalEnergies One Tech, C7181, Seneffe, Belgium
关键词
Methane coupling; Plasma; Hydrogen; DBD reactor; Hydrocarbons; BARRIER DISCHARGE REACTOR; DIRECT CONVERSION; CATALYTIC CONVERSION; HIGHER HYDROCARBONS; C-2; HYDROCARBONS; CH4; PRESSURE; ETHYLENE; TEMPERATURE; MECHANISM;
D O I
10.1007/s11090-023-10369-0
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The coupling of methane to C2 hydrocarbons by means of non-thermal plasma is a rec-ognized process as it is performed at room temperature, through the generation of radi-cal species, but it still presents a major disadvantage of carbon deposition. The main goal of the study is to better control the chemistry and avoid C deposit. For that purpose, the addition of hydrogen as co-feed in a Dielectric Barrier Discharge plasma reactor was pro-posed. Experiments were carried out at a fixed deposited power of 8 W in the presence and absence of helium. As expected the conversion of methane was low without helium (6.5% for pure CH4 against 22.3% for He/CH4: 30/10 mL min(-1)). A high selectivity into hydro-carbons was achieved by adding H-2 to CH4 (75% for H-2/CH4= 1 against 62% without H-2), the main product being ethane (selectivity of 60%). An increase of the deposited power from 8 to 21 W favoured methane transformation and the hydrocarbons yield reached 9.1%. Surprisingly, the carbon deposition was limited at high deposited power. It could result from the hydrogenation of coke precursor (ethylene, acetylene) or reaction of H-2 with C deposit. The beneficial action of hydrogen on the reaction to reach high C2 selectivity has been demonstrated and a reaction mechanism is proposed.
引用
收藏
页码:177 / 192
页数:16
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