Jiang Ke, Liang Lei, Tong Xiaoling, Zeng Feiyu, Hu Xiaolong
National Engineering Research Center of Fiber Optic Sensing Technology and Networks, Wuhan University of Technology, Wuhan 430070, China.
Sensors (Basel). 2023 Aug 23;23(17):7340. doi: 10.3390/s23177340.
Fiber optic distributed acoustic sensing (DAS) technology is widely used in security surveillance and geophysical survey applications. The response of the DAS system to external vibrations varies with different types of fiber optic cable connections. The mechanism of mutual influence between the cable's characteristics and DAS measurement results remains unclear. This study proposed a dynamic model of the interaction between the optical cable and the soil, analyzed the impact of the dynamic parameters of the optical cable and soil on the sensitivity of the DAS system, and validated the theoretical analysis through experiments. The findings suggest that augmenting the cable's bending stiffness 5.5-fold and increasing its unit mass 4.2-fold result in a discernible reduction of the system's response to roughly 0.15 times of its initial magnitude. Cables with lower unit mass and bending stiffness are more sensitive to vibration signals. This research provides a foundation for optimizing vibration-enhanced fiber optic cables and broadening the potential usage scenarios for DAS systems.
光纤分布式声学传感(DAS)技术广泛应用于安全监控和地球物理勘探应用中。DAS系统对外部振动的响应会因不同类型的光纤电缆连接而有所不同。电缆特性与DAS测量结果之间的相互影响机制尚不清楚。本研究提出了一种光缆与土壤相互作用的动态模型,分析了光缆和土壤的动态参数对DAS系统灵敏度的影响,并通过实验验证了理论分析。研究结果表明,将电缆的弯曲刚度提高5.5倍,单位质量增加4.2倍,会使系统响应明显降低至初始幅度的约0.15倍。单位质量和弯曲刚度较低的电缆对振动信号更敏感。本研究为优化振动增强型光纤电缆和拓宽DAS系统的潜在使用场景提供了基础。