Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control
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Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control
Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control
中国化学工程学报(英文版)2023年53卷第1期 页码:270-279
Affiliations:
1. National Key Laboratory of Science and Technology on Micro/Nano Fabrication, Shanghai Jiao Tong University,Shanghai,China,200240
2. Department of Micro/Nano Electronics, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University,Shanghai,China,200240
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纸质出版:2023
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An Wang, Zhongyu Hou. Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control[J]. 中国化学工程学报(英文版), 2023,53(1):270-279.
An Wang, Zhongyu Hou. Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control[J]. Chinese Journal of Chemical Engineering, 2023, 53(1): 270-279.
An Wang, Zhongyu Hou. Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control[J]. 中国化学工程学报(英文版), 2023,53(1):270-279.DOI:
An Wang, Zhongyu Hou. Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control[J]. Chinese Journal of Chemical Engineering, 2023, 53(1): 270-279.DOI:
Improving the energy efficiency of surface dielectric barrier discharge devices for plasma nitric oxide conversion utilizing active flow control
Improving energy efficiency in plasma NO removal is a critical issue. When the surface dielectric barrier discharge (SDBD) device is considered as a combination of multiple plasma actuators
the induced plasma aerodynamic effect cannot be ignored
which can affect the mass transfer
then affect the chemical reactions. Five SDBD devices with different electrode arrangements are studied for NO conversion. They correspond to different flow patterns. We find that the energy efficiency in an SDBD device with a common structure (Type 1) is 28% lower than that in SDBD devices with a special arrangement (Types 2–5). Two reasons may explain the results. First
fewer active species are produced in Type 1 because the development of discharge is hindered by the mutually exclusive electric field forces caused by the symmetrically distributed charged particles. Second
the plasma wind induced by the plasma actuator can enhance the mass and heat transfer. The mixing of reactants and products is better in Types 2–5 than Type 1 due to higher turbulence kinetic energy.
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相关作者
Yufei Yang
Jieyi Ma
Junyan Wu
Weixia Zhu
Yadong Zhang
Xiao Liang
Xu Jiahui
Dai Jiawei
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School of Chemical Engineering, Zhengzhou University
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