Non-thermal plasma treatment of volatile organic compounds: A predictive model based on experimental data analysis

被引:23
作者
Nobrega, P. H. Affonso [1 ]
Rohani, V [1 ]
Fulcheri, L. [1 ]
机构
[1] PSL Res Univ, MINES ParisTech, PERSEE Ctr Proc Renewable Energy & Energy Syst, CS 10207 Rue Claude Daunesse, F-06904 Sophia Antipolis, France
关键词
Non-thermal plasma; Volatile organic compounds; Linear regression; DIELECTRIC BARRIER DISCHARGE; PULSED CORONA DISCHARGE; BY-PRODUCTS FORMATION; COMPOUNDS DECOMPOSITION; CATALYTIC ABATEMENT; ACETONE REMOVAL; NITRIC-OXIDE; GAS STREAMS; REACTOR; AIR;
D O I
10.1016/j.cej.2019.01.100
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Non-thermal plasma is an emerging alternative for removing VOC from polluted air streams. This technique has been studied in laboratory for more than twenty years and experimental data is abundant. However, mostly qualitative information has been obtained from that data and no model has been developed for predicting the treatment performance from a given set of parameters. In this paper, we establish such a model, based on experimental data extracted from 69 scientific publications. This model, obtained through a linear regression, uses both quantitative and qualitative variables to predict the energy yield of the treatment. In 80% of the data points, the measured energy yield lies between 0.6 and 1.75 times the predicted value. We also used the model to evaluate quantitatively the impact of several parameters of the treatment, such as the initial concentration, the presence of a catalyst or the reactor type. Being so, the model presented here is an invaluable tool for both scientists and engineers interested in the treatment of VOC by non-thermal plasma.
引用
收藏
页码:37 / 44
页数:8
相关论文
共 87 条
[51]  
Mericam-Bourdet N., 2012, THESIS
[52]   Industrial applications of atmospheric non-thermal plasma in environmental remediation [J].
Mizuno, Akira .
PLASMA PHYSICS AND CONTROLLED FUSION, 2007, 49 (5A) :A1-A15
[53]   Modeling of pulsed corona discharge process for the removal of nitric oxide and sulfur dioxide [J].
Mok, YS ;
Nam, IS .
CHEMICAL ENGINEERING JOURNAL, 2002, 85 (01) :87-97
[54]  
Mok YS, 2002, IEEE T PLASMA SCI, V30, P408, DOI 10.1109/TPS.2002.1003889
[55]   Non thermal plasma assisted catalysis of methanol oxidation on Mn, Ce and Cu oxides supported on γ-Al2O3 [J].
Norsic, Caroline ;
Tatibouet, Jean-Michel ;
Batiot-Dupeyrat, Catherine ;
Fourre, Elodie .
CHEMICAL ENGINEERING JOURNAL, 2016, 304 :563-572
[56]   Decomposition of gaseous organic contaminants by surface discharge induced plasma chemical processing SPCP [J].
Oda, T ;
Yamashita, R ;
Haga, I ;
Takahashi, T ;
Masuda, S .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1996, 32 (01) :118-124
[57]   Decomposition of Toluene Using Nanosecond-Pulsed-Discharge Plasma Assisted With Catalysts [J].
Ogasawara, Akihiko ;
Han, Junkai ;
Fukunaga, Kengo ;
Wang, Jinlong ;
Wang, Douyan ;
Namihira, Takao ;
Sasaki, Mitsuru ;
Akiyama, Hidenori ;
Zhang, Pengyi .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2015, 43 (10) :3461-3469
[58]   Performance of an Ozone Decomposition Catalyst in Hybrid Plasma Reactors for Volatile Organic Compound Removal [J].
Ogata, Atsushi ;
Saito, Keiichi ;
Kim, Hyun-Ha ;
Sugasawa, Masami ;
Aritani, Hirofumi ;
Einaga, Hisahiro .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2010, 30 (01) :33-42
[59]  
Perktold J., ABOUT STATSMODELS
[60]   The Chemistry of Gaseous Dodecane Degradation in a BaTiO3 Packed-Bed Plasma Reactor [J].
Prantsidou, Maria ;
Whitehead, J. Christopher .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2015, 35 (01) :159-172