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基于超快光纤激光器的旋转有源传感器。

Rotation Active Sensors Based on Ultrafast Fibre Lasers.

作者信息

Kudelin Igor, Sugavanam Srikanth, Chernysheva Maria

机构信息

Aston Institute of Photonic Technologies, Aston University, Birmingham B4 7ET, UK.

School of Computing and Electrical Engineering, IIT Mandi, Kamand, Himachal Pradesh 175075, India.

出版信息

Sensors (Basel). 2021 May 19;21(10):3530. doi: 10.3390/s21103530.

DOI:10.3390/s21103530
PMID:34069464
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8159120/
Abstract

Gyroscopes merit an undeniable role in inertial navigation systems, geodesy and seismology. By employing the optical Sagnac effect, ring laser gyroscopes provide exceptionally accurate measurements of even ultraslow angular velocity with a resolution up to 10-11 rad/s. With the recent advancement of ultrafast fibre lasers and, particularly, enabling effective bidirectional generation, their applications have been expanded to the areas of dual-comb spectroscopy and gyroscopy. Exceptional compactness, maintenance-free operation and rather low cost make ultrafast fibre lasers attractive for sensing applications. Remarkably, laser gyroscope operation in the ultrashort pulse generation regime presents a promising approach for eliminating sensing limitations caused by the synchronisation of counter-propagating channels, the most critical of which is frequency lock-in. In this work, we overview the fundamentals of gyroscopic sensing and ultrafast fibre lasers to bridge the gap between tools development and their real-world applications. This article provides a historical outline, highlights the most recent advancements and discusses perspectives for the expanding field of ultrafast fibre laser gyroscopes. We acknowledge the bottlenecks and deficiencies of the presented ultrafast laser gyroscope concepts due to intrinsic physical effects or currently available measurement methodology. Finally, the current work outlines solutions for further ultrafast laser technology development to translate to future commercial gyroscopes.

摘要

陀螺仪在惯性导航系统、大地测量学和地震学中发挥着不可忽视的作用。通过利用光学萨格纳克效应,环形激光陀螺仪能够对甚至超慢的角速度进行极其精确的测量,分辨率高达10^-11弧度/秒。随着超快光纤激光器的最新进展,特别是实现了有效的双向产生,其应用已扩展到双梳光谱学和陀螺仪领域。超快光纤激光器具有卓越的紧凑性、免维护操作和相当低的成本,使其在传感应用中颇具吸引力。值得注意的是,在超短脉冲产生模式下运行激光陀螺仪,为消除由反向传播通道同步引起的传感限制提供了一种很有前景的方法,其中最关键的是频率锁定。在这项工作中,我们概述了陀螺传感和超快光纤激光器的基本原理,以弥合工具开发与其实际应用之间的差距。本文提供了一个历史概述,突出了最新进展,并讨论了超快光纤激光陀螺仪不断扩展的领域的前景。我们认识到由于内在物理效应或当前可用的测量方法,所提出的超快激光陀螺仪概念存在的瓶颈和不足。最后,当前的工作概述了进一步超快激光技术发展以转化为未来商业陀螺仪的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5c3/8159120/136ed044fc78/sensors-21-03530-g013.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5c3/8159120/e7fe930a5a81/sensors-21-03530-g009.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5c3/8159120/f47d04a807e4/sensors-21-03530-g010.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5c3/8159120/25adfe432318/sensors-21-03530-g011.jpg
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