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期刊信息
  • 主管单位:
  • 中国科学技术协会
  • 主办单位:
  • 中国仪器仪表学会、上海光学仪器研究所、中国光学学会工程光学专业委员会
  • 主  编:
  • 庄松林
  • 地  址:
  • 上海市军工路516号上海理工大学《光学仪器》编辑部
  • 邮政编码:
  • 200093
  • 联系电话:
  • 021-55270110
  • 电子邮件:
  • gxyq@usst.edu.cn
  • 国际标准刊号:
  • 1005-5630
  • 国内统一刊号:
  • 31-1504/TH
  • 邮发代号:
  • 单  价:
  • 15.00
  • 定  价:
  • 90.00
基于Frenet-Serret框架的OFDR三维形状重构算法研究
Research on OFDR 3D shape reconstruction algorithm based on Frenet-Serret framework
投稿时间:2022-11-02  
DOI:10.3969/j.issn.1005-5630.2023.002.008
中文关键词:  三芯光纤  分布式形状传感  有限元  光频域反射仪  应变
英文关键词:three-core fiber  distributed shape sensing  finite element  optical frequency domain reflector  strain
基金项目:国家重点研发计划(2021YFF0600902)
作者单位E-mail
辛玮 上海理工大学 光电信息与计算机工程学院,上海 200093  
汪路军 上海理工大学 光电信息与计算机工程学院,上海 200093  
刘煜 上海理工大学 光电信息与计算机工程学院,上海 200093  
张学典 上海理工大学 光电信息与计算机工程学院,上海 200093 xdzhang@usst.edu.cn 
刘学静 上海理工大学 光电信息与计算机工程学院,上海 200093  
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中文摘要:
      为了更深入地研究光频域反射法(optical frequency domain reflectometry, OFDR)在形状检测,有效计算变形监测等应用场景下光纤的形状和位置,设计了一种利用分布式光频域反射技术测得的光纤应变数据来重构三维形状的算法。与已有算法相比,在数据处理环节加入了样条插值,从而使得形状还原精度提高,并利用仿真实验对算法进行了验证。首先设计了通过应变数据得到三芯光纤曲率和弯曲方向采样值的计算方法,结合Frenet-Serret公式构造了曲线方程;然后利用有限元分析软件对空间S形应变数据进行建模并提取,带入已设计的算法求解,在三维空间中重建S形光纤;最后得出位置误差随着光纤长度的增加逐渐增加,均方根误差计算结果为0.996 mm,单位长度误差最大值为0.082 4%。结果表明,该算法能较好地恢复原始曲线,具有一定的工程价值。
英文摘要:
      In order to further study the shape detection of optical frequency domain reflectometry(OFDR), and effectively calculate the shape and position of optical fiber in application scenarios such as deformation monitoring, this paper designed an algorithm to reconstruct three-dimensional shape using the optical fiber strain data measured by distributed optical frequency domain reflection technology. Compared with the existing algorithm, spline interpolation was added to the data processing, which improved the precision of shape reduction, and the simulation experiments were used to verify the algorithm. Firstly, a calculation method was designed to obtain the sampling values of curvature and bending direction of three-core optical fiber from the strain data, and the curve equation was constructed by combining the Frenet-Serret formula. Then the finite element analysis software was used to model and extract the S-shape strain data and the S-shape fiber was reconstructed in the three-dimensional space. The results show that the position error increases with the increase of fiber length. The root mean square error is 0.996 mm, and the maximum error per unit length is 0.0824%. The results show that the algorithm can recover the original curve well.
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