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The Theoretical Simulation on Electrostatic Distribution of 1st Proximity Region in Proximity Focusing Low-light-level Image Intensifier

机译:邻近聚焦微光图像增强器中第一邻近区域静电分布的理论模拟

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Low-light-level night vision technology is magnifying low light level signal large enough to be seen by naked eye, which uses the photons - photoelectron as information carrier. Until the micro-channel plate was invented, it has been possibility for the realization of high performance and miniaturization of low-light-level night vision device. The device is double-proximity focusing low-light-level image intensifier which places a micro-channel plate close to photocathode and phosphor screen. The advantages of proximity focusing low-light-level night vision are small size, light weight, small power consumption, no distortion, fast response speed, wide dynamic range and so on. It is placed parallel to each other for Micro-channel plate (both sides of it with metal electrode), the photocathode and the phosphor screen are placed parallel to each other. The voltage is applied between photocathode and the input of micro-channel plate when image intensifier works. The emission electron excited by photo on the photocathode move towards to micro-channel plate under the electric field in 1st proximity focusing region, and then it is multiplied through the micro-channel. The movement locus of emission electrons can be calculated and simulated when the distributions of electrostatic field equipotential lines are determined in the 1st proximity focusing region. Furthermore the resolution of image tube can be determined. However the distributions of electrostatic fields and equipotential lines are complex due to a lot of micro-channel existing in the micro channel plate. This paper simulates electrostatic distribution of 1st proximity region in double-proximity focusing low-light-level image intensifier with the finite element simulation analysis software Ansoft maxwell 3D. The electrostatic field distributions of 1st proximity region are compared when the micro-channel plates' pore size, spacing and inclination angle ranged. We believe that the electron beam movement trajectory in 1st proximity region will be better simulated when the electronic electrostatic fields are simulated.
机译:弱光夜视技术是将弱光信号放大到足以用肉眼看到的信号,该技术使用光子-光电子作为信息载体。直到发明了微通道板之前,才有可能实现高性能和小型化的微光夜视设备。该设备是双近距聚焦微光图像增强器,可将微通道板放置在靠近光电阴极和荧光屏的位置。近距离聚焦微光夜视的优点是体积小,重量轻,功耗小,不失真,响应速度快,动态范围广等。对于微通道板,其彼此平行放置(其两侧均带有金属电极),光电阴极和荧光屏彼此平行放置。当图像增强器工作时,在光电阴极和微通道板的输入之间施加电压。在阴极附近的电场作用下,在光电阴极上被光激发的发射电子移向微通道板,然后通过微通道倍增。当在第一邻近聚焦区域中确定静电场等势线的分布时,可以计算和模拟发射电子的运动轨迹。此外,可以确定显像管的分辨率。然而,由于微通道板中存在大量的微通道,所以静电场和等势线的分布很复杂。本文使用有限元模拟分析软件Ansoft maxwell 3D在双近聚焦弱光图像增强器中模拟第一邻近区域的静电分布。当微通道板的孔径,间距和倾斜角度在一定范围内时,比较第一邻近区域的静电场分布。我们相信,当模拟静电场时,将更好地模拟第一邻近区域中的电子束运动轨迹。

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