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Self-sustaining discharges in needle-to-plane geometry with hundreds of microns electrode gaps
Institution:1. Department of Physics, University of Lucknow, Lucknow-226007, India;2. UGC-DAE Consortium for Scientific Research, Indore-452017, India;3. Inter University Accelerator Centre (IUAC), New Delhi-110067, India;1. Department of Electrophysics, National Chiao Tung University, Hsinchu 300, Taiwan, ROC;2. Material and Design Engineering Division Engineering Center, SPIL, Taichung 400, Taiwan, ROC;1. Centro Atómico Bariloche, Instituto Balseiro – CNEA & Univ. Nac. de Cuyo, Av. Bustillo 9500, 8400 Bariloche, Rio Negro, Argentina;2. Consejo Nacional de Investigaciones Científicas y Técnicas, Centro Atómico Bariloche, Av. Bustillo 9500, 8400 Bariloche, Rio Negro, Argentina;3. Centro Atómico Constituyentes, 1650 San Martín, Buenos Aires, Argentina;4. Unite Mixte Physique CNRS/Thales, 1 Avenue Augustin Fresnel, 91767 Palaiseau, France;1. Department of Chemistry “Ugo Schiff”, University of Florence, via della Lastruccia, 3, 50019, Sesto Fiorentino, Florence, Italy;2. Norwegian Institute for Air Research (NILU) – FRAM High North Research Centre on Climate and the Environment, Hjalmar Johansens gt. 14, NO-9296 Tromsø, Norway
Abstract:Atmospheric pressure needle-to-plane discharges have been explored experimentally in electrode gaps from 100 μm to 400 μm. These discharges can be self-sustained and follow the form of existing empirical formulae describing the current-voltage characteristics of corona discharge. The discharge can also be self-sustained by its lower sustaining voltage applied between the two electrodes once it is ignited by the initial high output voltage from power supply. The experiments of charging aerosol particles by the self-sustaining discharge operating with a lowered power have shown that for particles with a diameter of 46 nm, the charging efficiency attained 43.6%.
Keywords:Needle-to-plane geometry  Discharge  Self-sustaining  Microplasma
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