White Eyes Superlattice Concentric Ring Luminescent Pattern in Dielectric Barrier Discharge
Luminescence Applications and Interdisciplinary Fields|更新时间:2020-08-12
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White Eyes Superlattice Concentric Ring Luminescent Pattern in Dielectric Barrier Discharge
Chinese Journal of LuminescenceVol. 40, Issue 10, Pages: 1311-1317(2019)
作者机构:
河北大学 物理科学与技术学院,河北 保定,071002
作者简介:
基金信息:
Supported by National Natural Science Foundation of China(11875014);Key Basic Research Project in The Application Basic Research Plan of Hebei Province(1596195D)
GUO Li-ting, DONG Li-fang, WANG Zhao-yang etc. White Eyes Superlattice Concentric Ring Luminescent Pattern in Dielectric Barrier Discharge[J]. Chinese Journal of Luminescence, 2019,40(10): 1311-1317
GUO Li-ting, DONG Li-fang, WANG Zhao-yang etc. White Eyes Superlattice Concentric Ring Luminescent Pattern in Dielectric Barrier Discharge[J]. Chinese Journal of Luminescence, 2019,40(10): 1311-1317 DOI: 10.3788/fgxb20194010.1311.
White Eyes Superlattice Concentric Ring Luminescent Pattern in Dielectric Barrier Discharge
The white eyes superlattice concentric ring luminescent pattern is observed in the dielectric barrier discharge for the first time. Its spatiotemporal structure is investigated by using photomultiplier tubes and an intensified charge-coupled device camera. The results show that the pattern is composed by odd-numbered rings and even-numbered white-eye rings. The dots of odd rings are denoted as filaments O(Odd number
O)
the center dots of white eyes in the even rings are denoted as filaments E(Even number
E)
and the white halo is denoted as H(Halo
H). All filaments O discharges at the first pulse of the rising edge of the voltage and partially O discharges at the falling edge of the voltage
H discharges at the current envelope of the rising edge of voltage
E discharges at the falling edge of the voltage. The time correlation measurement of O and E shows that the discharge sequences of O and E are random at the falling of voltage edge. A high-speed video camera was used to take pictures and the result shows that each volume discharges in this pattern induce surface discharges. The H in the odd number rings causes the discharge of partial filament O at the falling edge of the voltage. The rearrangement of the wall charges by the surface discharges results in the randomness of the O and E discharge sequences.
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