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真空环境颗粒检测装置杂散光仿真分析与优化设计方法

Stray Light Simulation Analysis and Optimal Design Method for Vacuum Environment Particle Detection Device

  • 摘要: 为了提升基于光散射法搭建的真空环境颗粒检测装置的信噪比,本文从杂散光分析的角度提出相应的优化方法,借助TracePro光学仿真软件,系统分析了机械结构元件表面吸光率、尾端吸光结构、窗口片透光率及探测面位置对系统杂散光强度的影响,从而为真空环境颗粒检测装置提供优化设计方法。以探测面杂散光通量作为评价指标,仿真结果表明,将机械结构元件表面吸光率从80%提升至98%,探测面杂散光通量能够降低2~3个数量级。对于尾端吸光结构,锥形管和弯管的吸光能力约是直管的20倍。同时,窗口片透光率的提升也能在一定程度上降低杂散光强度。此外,系统信噪比在探测距离100~250 mm范围内呈单调上升趋势,综合装置结构紧凑性考虑,将探测距离控制在250 mm以内。

     

    Abstract: In order to improve the signal-to-noise ratio (SNR) of a vacuum environment particle detection device based on light scattering, this paper proposes corresponding optimization methods from the perspective of stray light analysis. Using TracePro optical simulation software, the effects of the surface absorptivity of mechanical structural components, the terminal light-absorbing structure, the transmittance of the window plate, and the position of the detector on the system’s stray light intensity were systematically analyzed, thereby providing optimization design methods for vacuum environment particle detection devices. Taking the stray light flux on the detector as the evaluation metric, simulation results show that increasing the surface absorptivity of mechanical structural components from 80% to 98% can reduce the stray light flux on the detector by 2 to 3 orders of magnitude. For the terminal light-absorbing structure, the light absorption capability of conical and bent tubes is about 20 times that of straight tubes. At the same time, increasing the transmittance of the window plate can also reduce stray light intensity to a certain extent. In addition, the system's SNR exhibits a monotonically increasing trend within a detection distance range of 100 to 250 mm. Considering the compactness of the device structure, the detection distance is controlled within 250 mm.

     

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