Li Xue-chen, Di Cong, Bao Wen-ting, Zhang Chun-yan, Li Ji-yuan
Guang Pu Xue Yu Guang Pu Fen Xi. 2016 Apr;36(4):934-8.
With a discharge device in a hollow-needle and plate electrode configurations, an atmospheric pressure uniform plasma plume is generated by DC voltage excitation in the ambient air with argon as working gas. The plasma plume is a pulsed discharge despite a direct current voltage is applied through measurements by optical and electrical methods. In order to explain the formation mechanism of the pulse, spatially resolved signals emitted from the plume were detected. It was found that the plasma plume denoted as the luminous layer propagates (a plasma bullet) from the hollow needle to the plate electrode except for the corona discharge in the vicinity of the hollow needle tip. Optical emission spectroscopy is used to investigate the excited electron temperature of the plasma plume as a function of the applied voltage or the spatial distribution of the excited electron temperature. The results show that the excited electron temperature (about 3 eV) increases with increasing applied voltage. Moreover, it increases with the increasing distance along the gas flow under constant voltage.
在空心针 - 平板电极配置下使用放电装置,以氩气作为工作气体,通过直流电压激发在环境空气中产生大气压均匀等离子体羽流。尽管通过光学和电学方法测量施加的是直流电压,但等离子体羽流是脉冲放电。为了解释脉冲的形成机制,检测了羽流发射的空间分辨信号。发现被称为发光层的等离子体羽流(等离子体子弹)从空心针向平板电极传播,除了空心针尖附近的电晕放电。利用发射光谱研究等离子体羽流的激发电子温度随施加电压的变化或激发电子温度的空间分布。结果表明,激发电子温度(约3电子伏特)随施加电压的增加而升高。此外,在恒定电压下,它随着沿气流方向距离的增加而升高。