Yin Jilong, Zhang Huaqing, Liu Mengmeng, Ma Qian
College of River and Ocean Engineering, Chongqing Jiaotong University, Chongqing 400074, China.
National Engineering Research Center of Port Hydraulic Construction Technology, Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin 300456, China.
Sensors (Basel). 2025 Feb 26;25(5):1430. doi: 10.3390/s25051430.
The scouring and sedimentation of wharf bank slopes significantly impact port safety and efficiency. To overcome the limitations of existing monitoring technologies in real-time capability, adaptability, and precision, this study introduces an innovative device based on distributed fiber optic sensing technology. By analyzing changes in the temperature gradient at the water-soil interface, the device enables dynamic monitoring of the results of scouring and sedimentation processes. It employs a modular design, integrating a linear heat source with fiber optic temperature sensing to capture high-resolution changes. Laboratory experiments evaluated variables such as heating duration, pipe material, pipe diameter, and fiber winding pitch. Results show optimal performance with a 20-min heating duration, with PVC sensors offering higher sensitivity and steel sensors providing greater stability. This study presents a high-precision, real-time solution for monitoring wharf bank slopes, offering insights for equipment optimization and engineering applications.
码头岸坡的冲刷和淤积对港口安全与效率有显著影响。为克服现有监测技术在实时性、适应性和精度方面的局限性,本研究引入了一种基于分布式光纤传感技术的创新装置。通过分析水土界面温度梯度的变化,该装置能够对冲刷和淤积过程的结果进行动态监测。它采用模块化设计,将线性热源与光纤温度传感相结合以捕捉高分辨率变化。实验室实验评估了加热时长、管材、管径和光纤缠绕间距等变量。结果表明,加热时长为20分钟时性能最佳,PVC传感器灵敏度更高,钢质传感器稳定性更强。本研究提出了一种用于监测码头岸坡的高精度实时解决方案,为设备优化和工程应用提供了见解。