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基于锥形自组装四芯光纤布拉格光栅探头的三维微尺度传感系统的研究。

Investigation of a Three-Dimensional Micro-Scale Sensing System Based on a Tapered Self-Assembly Four-Cores Fiber Bragg Grating Probe.

机构信息

Institute of Ultra-precision Optoelectronic Instrument Engineering, Harbin Institute of Technology, Science Park, No.2 Yikuang Street, Nangang District, Harbin 150080, China.

出版信息

Sensors (Basel). 2018 Aug 27;18(9):2824. doi: 10.3390/s18092824.

Abstract

Three-dimensional micro-scale sensors are in high demand in the fields of metrology, precision manufacturing and industry inspection. To extend the minimum measurable dimension and enhance the accuracy, a tapered four-cores fiber Bragg grating (FBG) probe is proposed. The sensing model is built to investigate the micro-scale sensing characteristics of this method and the design of the tapered stylus is found to influence the accuracy. Therefore, a π/2 phase-shift point is introduced into the FBGs comprised in the probe to suppress spectrum distortion and improve accuracy. Then, the manufacturing method based on capillary self-assembly is proposed to form the probe and the critical length to form a square array for four cylindrical fibers is verified to be effective for the tapered fibers. Experimental results indicate that the design of the tapered stylus can extend the minimum measurable dimension by twofold and has nearly no influence on its sensitivity. The three-dimensional measurement repeatability is better than 31.1 nm and the stability is better than 200 nm within once measuring process. Furthermore, the measurement precision of the three-dimensional micro-scale measurement results is less than 150 nm. It would be widely used in measuring micro-scale features for industry inspection or metrology.

摘要

三维微尺度传感器在计量学、精密制造和工业检测等领域有着很高的需求。为了扩展最小可测尺寸并提高精度,提出了一种锥形四芯光纤布拉格光栅(FBG)探头。建立了传感模型来研究该方法的微尺度传感特性,发现锥形测针的设计会影响精度。因此,在探头中包含的 FBG 中引入了π/2 相移点,以抑制光谱失真并提高精度。然后,提出了基于毛细自组装的制造方法来形成探头,并验证了形成四个圆柱形光纤的正方形阵列的关键长度对于锥形光纤是有效的。实验结果表明,锥形测针的设计可以将最小可测尺寸扩展两倍,并且对其灵敏度几乎没有影响。三维测量重复性优于 31.1nm,在一次测量过程中的稳定性优于 200nm。此外,三维微尺度测量结果的测量精度小于 150nm。它将广泛应用于工业检测或计量学中的微尺度特征测量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c3e3/6165488/629eea4f3555/sensors-18-02824-g001.jpg

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