Noncontact displacement sensing with high bandwidth and subnanometer resolution based on squeeze film damping effect

Shenghang Zhai, Jialin Shi, Peng Yu, Tie Yang, C. Su, Lianqing Liu
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Abstract

Noncontact displacement measurement with high bandwidth and subnanometer resolution is critical for precision engineering applications. However, the existing displacement sensors with subnanometer resolution either require a special plate to be fixed on the object to be measured or are bulky and inconvenient to integrate with other instruments. The air film height between two plates affects the squeeze film damping coefficient, which has the potential for subnanometer displacement sensing. However, lacking comprehensive analysis, modelling and experimental research, the possibility of the use of the squeeze film damping effect for displacement sensing is still unknown. In this paper, the displacement sensing mechanism based on the squeeze film damping effect is thoroughly analyzed, and the related experiments are conducted. The air film height is converted into the vibration amplitude of a resonant microcantilever. Then, the cantilever vibration amplitude is measured by the optical lever method, and finally, the noncontact sample displacement measurement is realized. The squeeze film damping force on the plate is analyzed, and the model of the vibrated cantilever subject to squeeze film damping force is established. It is found that increasing the driving amplitude can improve the sensitivity of the displacement sensing and reduce the measurement noise. Experimental results show that the resolution of the surface displacement measurement is 0.5nm, the linear region is about 8μm, and the measurement bandwidth of the sensor is 700Hz.
基于挤压膜阻尼效应的高带宽亚纳米分辨率非接触位移传感
具有高带宽和亚纳米分辨率的非接触式位移测量在精密工程应用中至关重要。然而,现有的亚纳米分辨率位移传感器要么需要在被测物体上固定一个特殊的板,要么体积庞大,不方便与其他仪器集成。两板间气膜高度影响挤压膜阻尼系数,具有亚纳米位移传感的潜力。然而,由于缺乏全面的分析、建模和实验研究,利用挤压膜阻尼效应进行位移传感的可能性仍然是未知的。本文对基于挤压膜阻尼效应的位移传感机理进行了深入分析,并进行了相关实验。将气膜高度转换为谐振微悬臂梁的振动幅值。然后,采用光学杠杆法测量悬臂梁的振动幅值,最后实现非接触式试样位移测量。分析了挤压膜阻尼力作用在板上的作用,建立了挤压膜阻尼力作用下振动悬臂梁的模型。研究发现,增大驱动幅值可以提高位移传感的灵敏度,降低测量噪声。实验结果表明,传感器的表面位移测量分辨率为0.5nm,线性区域约为8μm,测量带宽为700Hz。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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