scholarly journals Ignition of CO2 methanation using DBD-plasma catalysis in an adiabatic reactor

2021 ◽  
pp. 133638
Author(s):  
Martí Biset-Peiró ◽  
Jordi Guilera ◽  
Teresa Andreu
Author(s):  
Niloofar Damyar ◽  
Ali Khavanin ◽  
Ahmad Jonidi Jafari ◽  
Hassan Asilian Mahabadi ◽  
Ramazan Mirzaei ◽  
...  

Author(s):  
Susumu Toko ◽  
Masashi Ideguchi ◽  
Taiki Hasegawa ◽  
Takamasa Okumura ◽  
Kunihiro KAMATAKI ◽  
...  

Abstract CO2 methanation can be a key technology for realizing a sustainable society. CH4 is used as an energy carrier and raw material for chemical products, thereby contributing to the reduction of CO2 emissions. Methanation with plasma catalysis lower the process temperature, which can improve the throughput and stability. In this study, we investigated the effect of the gas flow rate and the discharge volume on CO2 methanation, using a low- pressure CCP reactor. Higher gas flow rates can increase the rate of CO2 throughput, but the CH4 selectivity decreases owing to the reduced transportation rate of the reactants to the catalyst surface. Increasing the discharge volume is effective in improving the transportation rate. This study suggested that the structure of the reactor significantly affect the CH4 generation rate.


2020 ◽  
Vol 10 (14) ◽  
pp. 4532-4543
Author(s):  
Maria Mikhail ◽  
Patrick Da Costa ◽  
Jacques Amouroux ◽  
Siméon Cavadias ◽  
Michael Tatoulian ◽  
...  

Plasma and thermo-catalytic methanation were assayed in the presence of a CeZrOx-supported Ni catalyst. High CO2 conversions and high methane yields were obtained under DBD plasma, and are maintained with time-on-stream over 100 h operating time.


Catalysts ◽  
2019 ◽  
Vol 9 (1) ◽  
pp. 45 ◽  
Author(s):  
Paula Navascués ◽  
Jose M. Obrero-Pérez ◽  
José Cotrino ◽  
Agustín R. González-Elipe ◽  
Ana Gómez-Ramírez

Dielectric barrier discharge (DBD) plasmas and plasma catalysis are becoming an alternative procedure to activate various gas phase reactions. A low-temperature and normal operating pressure are the main advantages of these processes, but a limited energy efficiency and little selectivity control hinder their practical implementation. In this work, we propose the use of isotope labelling to retrieve information about the intermediate reactions that may intervene during the DBD processes contributing to a decrease in their energy efficiency. The results are shown for the wet reforming reaction of methane, using D2O instead of H2O as reactant, and for the ammonia synthesis, using NH3/D2/N2 mixtures. In the two cases, it was found that a significant amount of outlet gas molecules, either reactants or products, have deuterium in their structure (e.g., HD for hydrogen, CDxHy for methane, or NDxHy for ammonia). From the analysis of the evolution of the labelled molecules as a function of power, useful information has been obtained about the exchange events of H by D atoms (or vice versa) between the plasma intermediate species. An evaluation of the number of these events revealed a significant progression with the plasma power, a tendency that is recognized to be detrimental for the energy efficiency of reactant to product transformation. The labelling technique is proposed as a useful approach for the analysis of plasma reaction mechanisms.


2020 ◽  
Vol 45 (17) ◽  
pp. 10423-10432 ◽  
Author(s):  
Dominik Wierzbicki ◽  
Maria Victoria Moreno ◽  
Stéphanie Ognier ◽  
Monika Motak ◽  
Teresa Grzybek ◽  
...  

Fuel ◽  
2021 ◽  
Vol 306 ◽  
pp. 121639
Author(s):  
Maria Mikhail ◽  
Patrick Da Costa ◽  
Jacques Amouroux ◽  
Siméon Cavadias ◽  
Michael Tatoulian ◽  
...  
Keyword(s):  

2018 ◽  
Vol 26 ◽  
pp. 202-211 ◽  
Author(s):  
M.C. Bacariza ◽  
M. Biset-Peiró ◽  
I. Graça ◽  
J. Guilera ◽  
J. Morante ◽  
...  
Keyword(s):  

Catalysts ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 1230
Author(s):  
Yury Gorbanev ◽  
Yannick Engelmann ◽  
Kevin van’t Veer ◽  
Evgenii Vlasov ◽  
Callie Ndayirinde ◽  
...  

N2 fixation into NH3 is one of the main processes in the chemical industry. Plasma catalysis is among the environmentally friendly alternatives to the industrial energy-intensive Haber-Bosch process. However, many questions remain open, such as the applicability of the conventional catalytic knowledge to plasma. In this work, we studied the performance of Al2O3-supported Fe, Ru, Co and Cu catalysts in plasma-catalytic NH3 synthesis in a DBD reactor. We investigated the effects of different active metals, and different ratios of the feed gas components, on the concentration and production rate of NH3, and the energy consumption of the plasma system. The results show that the trend of the metal activity (common for thermal catalysis) does not appear in the case of plasma catalysis: here, all metals exhibited similar performance. These findings are in good agreement with our recently published microkinetic model. This highlights the virtual independence of NH3 production on the metal catalyst material, thus validating the model and indicating the potential contribution of radical adsorption and Eley-Rideal reactions to the plasma-catalytic mechanism of NH3 synthesis.


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