旋转光学谐振器传感器用于扭振测量

SPIE LASE Pub Date : 2016-04-22 DOI:10.1117/12.2211873
Amir R. Ali, Andrew Gatherer, M. Ibrahim
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引用次数: 1

摘要

旋转球形谐振器在扭转振动应用中会引起其低语通道模式(WGM)的转变。作用在自旋微球谐振器上的向心力将导致这些WGM位移。本文采用不同的聚合物谐振器对这种效应进行了分析和实验。在这个实验中,直流电机对球体施加的向心力引起谐振器的弹性变形。这反过来又引起了球体谐振器的窃窃私语走廊模式的转变。用于球体的材料是剪切模量(G≈1kPa)的聚二甲基硅氧烷(PDMS 60:1,其中60份基硅弹性体与1份聚合物固化剂按体积计算),剪切模量(G≈300kPa)的(PDMS 10:1),聚甲基丙烯酸甲酯(PMMA, G≈2.6×109GPa)和二氧化硅(G≈3×1010 GPa)。所有材料的球体尺寸保持恒定,直径为1mm。球体的光模输出使用与分布式反馈激光器耦合的锥形单模光纤。监测通过光纤的传输频谱以检测WGM位移。结果表明,剪切模量G较小的谐振腔,由于外加向心力引起的机械变形较大,其WGM位移也较大。结果表明,利用该原理可以设计用于扭转振动应用的角速度传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spinning optical resonator sensor for torsional vibrational applications measurements
Spinning spherical resonators in the torsional vibrational applications could cause a shift in its whispering gallery mode (WGM). The centripetal force acting on the spinning micro sphere resonator will leads to these WGM shifts. An analysis and experiment were carried out in this paper to investigate and demonstrate this effect using different polymeric resonators. In this experiment, centripetal force exerted by the DC-Motor on the sphere induces an elastic deformation of the resonator. This in turn induces a shift in the whispering gallery modes of the sphere resonator. Materials used for the sphere are polydimethylsiloxane (PDMS 60:1 where 60 parts base silicon elastomer to 1 part polymer curing agent by volume) with shear modulus (G≈1kPa), (PDMS 10:1) with shear modulus (G≈300kPa), polymethylmethacrylate (PMMA, G≈2.6×109GPa) and silica (G≈3×1010 GPa). The sphere size was kept constant with 1mm in diameter for all above materials. The optical modes of the sphere exit using a tapered single mode optical fiber that is coupled to a distributed feedback laser. The transmission spectrum through the fiber is monitored to detect WGM shifts. The results showed the resonators with smaller shear modulus G experience larger WGM shift due to the larger mechanical deformation induced by the applied external centripetal force. Also, the results show that angular velocity sensors used in the torsional vibrational applications could be designed using this principle.
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