Ozone Generation Characteristics by Superimposed Discharge in Oxygen-Fed Ozonizer
被引:0
作者:
Ahn, Hee-Sung
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机构:
Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502
Ahn, Hee-Sung
[1
]
Hayashi, Nobuya
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机构:
Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502
Hayashi, Nobuya
[1
]
Ihara, Satoshi
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机构:
Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502
Ihara, Satoshi
[1
]
Yamabe, Chobei
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机构:
Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502
Yamabe, Chobei
[1
]
机构:
[1] Department of Electrical Engineering, Faculty of Science and Engineering, Saga University, Saga 840-8502
来源:
Japanese Journal of Applied Physics, Part 1: Regular Papers and Short Notes and Review Papers
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2003年
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42卷
/
10期
A superposition type ozonizer has been proposed to achieve relatively high ozone concentration and high ozone generation efficiency. A high-pulsed voltage and a 60 Hz ac voltage are simultaneously applied to the same reaction volume in order to improve the ozone generation yield in a wide discharge gap. The ozone concentration of the superimposed discharge consisting of surface discharge and pulsed corona discharge was approximately two times larger than that obtained by an individual discharge. It was observed that the cross-section of the superimposed discharge extended is observed to be approximately 20% at maximum. The emission intensity of the superimposed discharge shows about two times larger than that of the individual discharge at maximum due to the increased electron temperature. The increment of local electric field in the discharge region causes the superposition effect.