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A novel double dielectric barrier discharge reactor with high field emission and secondary electron emission for toluene abatement

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摘要 Dielectric barrier discharge(DBD)has been extensively investigated in the fields of environment and energy,whereas its practical implementation is still limited due to its unsatisfactory energy efficiency.In order to improve the energy efficiency of DBD,a novel double dielectric barrier discharge(NDDBD)reactor with high field emission and secondary electron emission was developed and compared with traditional DDBD(TDDBD)configuration.Firstly,the discharge characteristics of the two DDBD reactors were analyzed.Compared to TDDBD,the NDDBD reactor exhibited much stronger discharge intensity,higher transferred charge,dissipated power and gas temperature due to the effective utilization of cathode field emission and secondary electron emission.Subsequently,toluene abatement performance of the two reactors was evaluated.The toluene decomposition efficiency and mineralization rate of NDDBD were much higher than that of TDDBD,which were 86.44%-100%versus 28.17%-80.48%and 17.16%-43.42%versus 7.17%-16.44%at 2.17-15.12 W and 1.24-4.90 W respectively.NDDBD also exhibited higher energy yield than TDDBD,whereas the overall energy constant k_(overall)of the two reactors were similar.Finally,plausible toluene decomposition pathway in TDDBD and NDDBD was suggested based on organic intermediates that generated from toluene degradation.The finding of this study is expected to provide reference for the design and optimization of DBD reactor for volatile organic compounds control and other applications.
作者 李世杰 于欣 党小庆 王鹏勇 孟祥康 郑华春 Shijie LI;Xin YU;Xiaoqing DANG;Pengyong WANG;Xiangkang MENG;Huachun ZHENG(School of Environment&Municipal Engineering,Xi'an University of Architecture&Technology,Xi'an 710055,People’s Republic of China;Shaanxi Key Laboratory of Environmental Engineering,Xi'an University of Architecture&Technology,Xi’an 710055,People’s Republic of China;Key Laboratory of Northwest Water Resources,Environment and Ecology,Ministry of Education,Xi'an University of Architecture and Technology,Xi’an 710055,People’s Republic of China)
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2022年第1期118-128,共11页 等离子体科学和技术(英文版)
基金 financially supported by National Key R&D Program of China(No.2017YFC0212204) Key Research and Development Program of Shaanxi Province(No.2018ZDCXL-SF-02-04)。
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