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相关概念视频

Gyroscope: Precession01:24

Gyroscope: Precession

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Precession can be demonstrated effectively through a spinning top. If a spinning top is placed on a flat surface near the surface of the Earth at a vertical angle and is not spinning, it will fall over due to the force of gravity producing a torque acting on its center of mass. However, if the top is spinning on its axis, it precesses about the vertical direction, rather than topple over due to this torque. Precessional motion is a combination of a steady circular motion of the axis and the...
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Gyroscope01:02

Gyroscope

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A gyroscope is defined as a spinning disk in which the axis of rotation is free to assume any orientation. When spinning, the orientation of the spin axis is unaffected by the orientation of the body that encloses it. The body or vehicle enclosing the gyroscope can be moved from place to place, while the orientation of the spin axis remains the same. This makes gyroscopes very useful in navigation, especially where magnetic compasses cannot be used, such as in crewed and crewless spacecraft,...
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Electronic Distance Measuring Instruments01:30

Electronic Distance Measuring Instruments

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Electronic Distance Measuring Instruments (EDMs) are essential tools in modern surveying, offering precise distance measurements by emitting electromagnetic signals and calculating the time required for these signals to travel to a target and return. Two primary types of signals are used in EDMs — light waves and microwaves — each suited to specific environmental and distance requirements. Light-wave-based EDMs utilize either infrared or laser light, providing high accuracy over...
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相关实验视频

Updated: Jan 17, 2026

A Random-displacement Measurement by Combining a Magnetic Scale and Two Fiber Bragg Gratings
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A Random-displacement Measurement by Combining a Magnetic Scale and Two Fiber Bragg Gratings

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非常紧的三轴干涉度光纤光学陀螺仪,基于时间划分多重复合方法.

Yakang Liu, Jichao Jin, Yishi Liu

    Optics letters
    |September 16, 2025
    PubMed
    概括

    一个新的紧型三轴干扰度光纤陀螺仪 (IFOG) 使用时间分割复杂化 (TDM) 提高性能. 这种设计显著降低了尺寸,重量,功率和成本,实现了出色的角随机步行值.

    科学领域:

    • 光子学和光学工程的工程.
    • 惯性导航系统 惯性导航系统
    • 光纤传感器 光纤传感器

    背景情况:

    • 传统的光纤陀螺仪面临着尺寸,重量,功耗和成本方面的挑战.
    • 时间分割复杂化 (TDM) 为小型化和集成提供了一个潜在的解决方案.
    • 现有的TDM方法通常需要复杂的调制序列和单独的组件.

    研究的目的:

    • 开发一个极其紧的三轴干扰度光纤光学陀螺仪 (IFOG).
    • 提高IFOG的尺寸,重量,功耗和成本 (SWaP-C).
    • 为了简化多轴IFOG系统的调制过程.

    主要方法:

    • 为三轴IFOG实施一种新的时间分割复杂化 (TDM) 方法.
    • 光源,光探测器,信号处理电路和多功能集成光学电路 (MIOC) 的同时复合.
    • 使用单一的MIOC调节所有三个轴,通过调整纤维线圈长度比来实现明显的时间段调节.

    主要成果:

    • 一个非常紧的三轴IFOG的演示.
    • 实现显著减少尺寸,重量,功耗和成本.
    • 在三个轴上获得的角随机步行值为0.195°/h,0.031°/h和0.014°/h.

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    结论:

    • 拟议的基于TDM的三轴IFOG有效地集成多个组件并简化调制.
    • 与传统方法相比,这种创新的设计为SWaP-C提供了显著的改进.
    • 取得的性能指标表明该系统可用于各种惯性传感应用的可行性.