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Interferometric length metrology for the dimensional control of ultra-stable ring laser gyroscopes

机译:干涉式长度计量技术用于超稳定环形激光陀螺仪的尺寸控制

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We present the experimental test of a method for controlling the absolute length of the diagonals of square ring laser gyroscopes. The purpose of this is to actively stabilize the ring cavity geometry and to enhance the rotation sensor stability in order to reach the requirements for the detection of the relativistic Lense-Thirring effect with a ground-based array of optical gyroscopes. The test apparatus consists of two optical cavities 1.32 m in length, reproducing the features of the ring cavity diagonal resonators of large-frame He-Ne ring laser gyroscopes. The proposed measurement technique is based on the use of a single diode laser, injection locked to a frequency stabilized He-Ne/iodine frequency standard, and a single electro-optic modulator. The laser is modulated with a combination of three frequencies, allowing us to lock the two cavities to the same resonance frequency and, at the same time, to determine the cavity free spectral range (FSR). We obtain a stable lock of the two cavities to the same optical frequency reference, providing a length stabilization at the level of 1 part in 10(11), and the determination of the two FSRs with a relative precision of similar to 2.10(-7). This is equivalent to an error of 500 nm on the absolute length difference between the two cavities.
机译:我们介绍了一种用于控制方形环形激光陀螺仪对角线绝对长度的方法的实验测试。这样做的目的是主动稳定环形腔的几何形状并增强旋转传感器的稳定性,以达到使用基于地面的光学陀螺仪阵列检测相对论的Lens-Thirring效应的要求。该测试设备由两个长度为1.32 m的光学腔组成,再现了大型He-Ne环形激光陀螺仪的环形腔对角线谐振器的特征。所提出的测量技术基于使用单个二极管激光器,注入锁定到频率稳定的He-Ne /碘频率标准的注入以及单个电光调制器。激光是通过三个频率的组合来调制的,这使我们可以将两个腔锁定到相同的谐振频率,并同时确定腔的自由光谱范围(FSR)。我们将两个腔稳定锁定到相同的光学频率参考,将长度稳定在10(11)中的1个部分,并确定两个FSR,相对精度类似于2.10(-7) )。这等效于两个空腔之间的绝对长度差的500 nm误差。

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