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Research and Design on Orthogonal Diffraction Grating-based 3D Nanometer Displacement Sensor

机译:基于正交衍射光栅的3D纳米位移传感器的研究与设计

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This study concerns an orthogonal diffraction grating-based nanometer displacement sensor. In this study, we performed calculation of displacements in the XYZ directions. In the optical measured path part, we used a two-dimensional orthogonal motion grating and a two-dimensional orthogonal reference grating with the pitch of 0.5um to measure the displacement of XYZ in three directions by detecting ±lst diffraction fringes. The self-collimated structure of the grating greatly extended the Z-axis range. We also simulated the optical path of the sensor with ZEMAX software and verified the feasibility of the scheme. For signal subdivision and processing, we combined large number counting (completed grating line) with small number counting (digital subdivision), realizing high multiples of subdivision of grating interference signals. We used PC to process the interference fringes and greatly improved the processing speed. In the scheme, the theoretical multiples of subdivision could reach 1024 with 10-bit AD conversion, but the actual multiples of subdivision was limited by the quality of the grating interference signals. So we introduced an orthogonal compensation circuit and a filter circuit to improve the signal quality.
机译:这项研究涉及基于正交衍射光栅的纳米位移传感器。在这项研究中,我们进行了XYZ方向上的位移计算。在光学测量路径部分,我们使用间距为0.5um的二维正交运动光栅和二维​​正交参考光栅,通过检测±lst衍射条纹来测量XYZ在三个方向上的位移。光栅的自准直结构大大扩展了Z轴范围。我们还使用ZEMAX软件模拟了传感器的光路,并验证了该方案的可行性。对于信号细分和处理,我们将大数量计数(完整的光栅线)与小数量计数(数字细分)相结合,实现了光栅干扰信号细分的高倍数。我们使用PC处理干涉条纹,大大提高了处理速度。在该方案中,通过10位AD转换,细分的理论倍数可以达到1024,但实际细分的倍数受到光栅干扰信号质量的限制。因此,我们引入了正交补偿电路和滤波电路以改善信号质量。

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