Tian Meng, Lou Minggan, Zhang Wei, Huang Wenzhu, Yan Kaiqi, Liao Bin, Zhang Wentao
State Key Laboratory of Transducer Technology, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China.
Center of Materials Science and Optoelectronic Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
Sensors (Basel). 2024 Apr 29;24(9):2824. doi: 10.3390/s24092824.
The temperature and strain fields monitoring during the preparation process of buoyancy materials, as well as the health status after molding, are important for mastering the mechanical properties of buoyancy materials and ensuring the safety of operators and equipment. This paper proposes a short and high-density femtosecond fiber Bragg grating (fs-FBG) array based on different temperature coefficients fibers. By optimizing the parameters of femtosecond laser point-by-point writing technology, high-performance fs-FBG arrays with millimeter level gating length and millimeter level spatial resolution were prepared on two types of fibers. These were successfully embedded in buoyancy materials to achieve in-situ online monitoring of the curing process and after molding. The experimental results show that the fs-FBG array sensor has good anti-chirp performance and achieves online monitoring of millimeter-level spatial resolution. Intelligent buoyancy materials can provide real-time feedback on the health status of equipment in harsh underwater environments. The system can achieve temperature monitoring with an accuracy of 0.56 °C and deformation monitoring with sub-millimeter accuracy; the error is in the order of micrometers, which is of great significance in the field of deep-sea exploration.
浮力材料制备过程中的温度和应变场监测以及成型后的健康状态,对于掌握浮力材料的力学性能以及确保操作人员和设备的安全至关重要。本文提出了一种基于不同温度系数光纤的短而高密度飞秒光纤布拉格光栅(fs-FBG)阵列。通过优化飞秒激光逐点写入技术的参数,在两种类型的光纤上制备了具有毫米级栅长和毫米级空间分辨率的高性能fs-FBG阵列。这些阵列被成功地嵌入到浮力材料中,以实现固化过程及成型后的原位在线监测。实验结果表明,fs-FBG阵列传感器具有良好的抗啁啾性能,并实现了毫米级空间分辨率的在线监测。智能浮力材料能够在恶劣的水下环境中对设备的健康状态提供实时反馈。该系统能够实现精度为0.56℃的温度监测和亚毫米精度的变形监测;误差在微米量级,这在深海探测领域具有重要意义。