节点文献

旋转式惯性导航系统的三次序整圈旋转自对准方法

Three-stage full-circle rotation self-alignment method for rotational inertial navigation systems

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 江一夫; 邓志红; 徐兵华;

【Author】 JIANG Yifu;DENG Zhihong;XU Binghua;College of Automation,Beijing Institute of Technology;Xi’an Aerospace Precision Electromechanical Institute;

【机构】 北京理工大学自动化学院; 西安航天精密机电研究所;

【摘要】 针对旋转惯性导航系统双位置对准确定性误差大于预期的问题,开展了基于速度误差变化率的旋转对准航向误差理论分析,提出三次序整圈旋转对准方案。通过建立时变条件下等效北向加速度计误差变化率模型,阐明天向角速度测量误差是航向对准不可忽视的误差源。对双位置方案和正反整圈旋转方案开展详尽的误差分析,正反整圈旋转方案可消除加速度计杆臂误差与非正交误差,抑制陀螺安装角误差,但会放大陀螺标度因数误差;而三次序整圈旋转方案兼容两种方案的优势。基于旋转式光纤惯导验证了所提方案的优越性,其航向效应误差与综合对准误差分别由双位置方案的25.74″和23.25″减小至4.86″和14.74″。

【Abstract】 To address the issue that deterministic errors in two-position alignment of rotational inertial navigation systems exceed expectations, a theoretical analysis of heading alignment errors is conducted based on the rate of velocity error variation, and a three-stage full-circle rotation alignment scheme is proposed. By establishing a model for the equivalent northward accelerometer error variation rate under time-varying conditions, it is revealed that celestial-axis angular velocity measurement error constitutes a non-negligible error source for heading alignment. Comprehensive error analysis has been conducted for the commonly used two-position scheme and the forward-backward full-circle rotation scheme. The forward-backward rotation scheme can effectively eliminate accelerometer lever arm errors and non-orthogonality errors while suppressing gyro mounting angle errors, though it amplifies gyro scale factor errors; whereas the three-stage full-circle rotation scheme combines the advantages of both approaches. The superiority of the proposed scheme is verified using a rotary fiber optic inertial navigation system. The heading effect error and the comprehensive alignment error are reduced from 25.74″ and 23.25″ in the two-position scheme to 4.86″ and 14.74″ in the three-stage full-circle rotation scheme, respectively.

【基金】 国家自然科学基金资助项目(62303060);中国博士后科学基金资助项目(2024M754091)
  • 【文献出处】 中国惯性技术学报 ,Journal of Chinese Inertial Technology , 编辑部邮箱 ,2025年06期
  • 【分类号】TN96
  • 【下载频次】34
节点文献中: 

本文链接的文献网络图示:

本文的引文网络