基于光学频域反射计 (OFDR) 的长度计的实施
Aleksey Shestakov1, Dmitriy Kambur1,2, Yuri Konstantinov1
1Institute of Continuous Media Mechanics of the Ural Branch of the Russian Academy of Sciences, Academician Korolev St. 1, Perm 614013, Russia.
Sensors (Basel, Switzerland)
|January 28, 2026
概括
这项研究采用光学频域反射计 (OFDR) 进行准确的自由空间距离测量. 一种新的分散补偿方法和校准实现了2μm的精度,扩大了OFDR应用.
科学领域:
- 光学是什么?光学是什么?光学是什么?
- 计量学 计量学 计量学
- 光子学 是一个光子学.
背景情况:
- 光学频域反射计 (OFDR) 已为光纤建立,但在自由空间距离测量中未得到充分利用.
- 在自由空间中测量绝对距离,由于复杂的光学路径和色谱分散,存在挑战.
研究的目的:
- 为准确的自由空间距离测量而调整OFDR.
- 为了应对光线组合和色谱分散的挑战.
- 开发一种高精度反射计校准方法.
主要方法:
- 开发了一个数学框架,以消除使用信号转换和等效相的色谱分散效应.
- 实施了OFDR系统,聚合器和可移动角反射器的实验设置.
- 采用干扰计边缘计数用于校准.
主要成果:
- 开发并测试了一种分散补偿方法,防止峰值扩大并保持宽度在几十微米.
- 校准确定了频率与距离的系数,产生高达2微米的测量精度.
- 证明了OFDR的成功适应在空白空间进行精确的测量.
结论:
- OFDR可以精确地适应在自由空间分布式距离测量.
- 开发的方法显著扩大了OFDR在复杂环境中的应用范围.
- 这项研究为各种环境中的高精度计量学铺平了道路.
关键词:
干涉测量干涉测量干涉测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰测量干扰光学频率域反射计反射计光学频率扫描光学频率扫描光学长度测量仪是指光学长度测量仪.视觉距离测距器 视觉距离测距器相关概念视频
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