用于多目标高灵敏度和精确旋转测速的全光学补偿策略

Yanxiang Zhang, Zijing Zhang, Qingfeng Wang, Yuan Zhao
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引用次数: 0

摘要

旋转多普勒测速仪在实际应用中潜力巨大。然而,现有系统的灵敏度和精度受到旋转目标表面的不同姿态导致的旋转多普勒频谱变宽的限制。在此,我们基于光学旋转多普勒效应和特征模式叠加与分解原理,首次提出并证实了一种能够克服这一限制的全光学补偿方案。它依赖于将对齐表面和错位表面之间的模式内相位差扩大到发射光场的轨道-角动量相位频谱中的迭代补偿。与未补偿的情况相比,我们所演示的系统不仅能显著提高信噪比,最高可达大约一个数量级,而且能在一定的偏移和旋转速度范围内将相对误差降低到 1.5% 以下,从而为多用途目标的旋转测速建立了一条高灵敏度和精确的途径。经过验证的方法和研究结果可应用于各种实际旋转场景,如天文观测、工业制造和体内生物医学工程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
All-optical compensation strategy for high-sensitive and precise rotating velocimetry of a multi-pose target
Rotational Doppler velocimetry holds immense potential for practical applications. However, the sensitivity and precision of existing systems are restricted by the broadening of rotational Doppler spectrum caused by the varied postures of a rotating target surface. Herein, we present and attest to an all-optical compensation scheme for the first time capable of overcoming this restriction, based upon the optical rotational Doppler effect and the eigenmode superposition and decomposition principle. It relies on the iterative compensations of broadening intramode phase differences between aligned and misaligned surfaces into the orbital-angular-momentum phase spectrum of emitted light field, correspondingly. In contrast to uncompensated situations, our demonstrated system can not only achieve the considerable improvement of signal-to-noise ratio up to roughly orders of magnitude and reduce the relative error below 1.5% under a certain offsets and rotating velocity range, which thus highlights the establishment of a high-sensitive and precise pathway for rotating velocimetry of a multi-pose target. The validated approach and findings may be applied in various real-world spinning scenarios, such as astronomical observations, industrial manufacturing and in-vivo biomedical engineering.
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