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仿鱼侧线摩擦电式水下多方向流速感知技术

刘建华 于爱强 王思远 徐鹏 徐敏义

刘建华, 于爱强, 王思远, 等. 仿鱼侧线摩擦电式水下多方向流速感知技术[J]. 水下无人系统学报, xxxx, x(x): x-xx doi: 10.11993/j.issn.2096-3920.2026-0065
引用本文: 刘建华, 于爱强, 王思远, 等. 仿鱼侧线摩擦电式水下多方向流速感知技术[J]. 水下无人系统学报, xxxx, x(x): x-xx doi: 10.11993/j.issn.2096-3920.2026-0065
LIU Jianhua, YU Aiqiang, WANG Siyuan, XU Peng, XU Minyi. Bionic Fish Lateral-Line Triboelectric Underwater Multidirectional Flow Velocity Sensing Technology[J]. Journal of Unmanned Undersea Systems. doi: 10.11993/j.issn.2096-3920.2026-0065
Citation: LIU Jianhua, YU Aiqiang, WANG Siyuan, XU Peng, XU Minyi. Bionic Fish Lateral-Line Triboelectric Underwater Multidirectional Flow Velocity Sensing Technology[J]. Journal of Unmanned Undersea Systems. doi: 10.11993/j.issn.2096-3920.2026-0065

仿鱼侧线摩擦电式水下多方向流速感知技术

doi: 10.11993/j.issn.2096-3920.2026-0065
基金项目: 国家自然科学基金项目资助(52371345, 52401399); 汉江国家实验室开放基金项目资助(KF2024018).
详细信息
    作者简介:

    刘建华(1998-), 男, 博士, 主要研究方向为水下智能感知和水下机器人

    通讯作者:

    徐敏义(1984-), 男, 博士, 主要研究方向为海上基础设施与载运装备的水下运维保障.

  • 中图分类号: TJ630.32; U662

Bionic Fish Lateral-Line Triboelectric Underwater Multidirectional Flow Velocity Sensing Technology

  • 摘要: 受鱼类侧线系统中的表皮神经丘结构启发, 文中提出一种基于摩擦纳米发电机的仿生鱼类侧线传感器(BFLS)。当外部流场作用于传感器时, 其圆顶结构发生偏转并驱动内部球形触发器使感知单元中的导电织物和氟化乙烯丙烯薄膜发生接触分离运动, 从而产生对应的电信号输出。通过对传感器的碳纤维连接杆和感知单元背部弹簧等结构参数优化, 显著提升BFLS的感知性能。水下实验结果表明, BFLS能够实现以22.5°为间隔完成对水下流速和流向的有效感知。BFLS的输出电信号与流速之间的线性拟合决定系数超过0.9, 流速检测灵敏度约为3.2 V/ms−1, 说明BFLS对水下流速具有可靠的感知能力。此外, BFLS还具有结构简单、制造成本低以及自供电等优势。该传感器有望在海洋环境中的水下流场监测领域发挥重要作用。

     

  • 图  1  鱼类侧线结构及传感器结构示意图

    Figure  1.  Schematic diagram of the fish lateral line structure and sensor structure

    图  2  BFLS理论模型

    Figure  2.  BFLS theoretical model

    图  3  BFLS工作原理

    Figure  3.  Working principle of the BFLS

    图  4  BFLS仿真

    Figure  4.  Simulation of the BFLS

    图  5  线性电机实验装置

    Figure  5.  Schematic diagram of linear motor experimental device

    图  6  弹簧数量对输出性能的影响

    Figure  6.  Effect of spring quantity on output performance

    图  7  碳纤维连接杆长度对输出性能的影响

    Figure  7.  Effect of carbon fiber connecting rod length on output performance

    图  8  循环水洞实验装置示意图

    Figure  8.  Schematic diagram of circulating water tunnel experimental device

    图  9  流速感知信号状态图

    Figure  9.  Flow rate sensing signal state diagram

    图  10  传感器在不同流速下的输出电压

    Figure  10.  Output voltage of sensor at different flow rates

    图  11  传感器的输出电压与流速之间的关系

    Figure  11.  Relationship between output voltage of sensor and flow rate

    图  12  来流方向示意图

    Figure  12.  Schematic diagram of inflow direction

    图  13  传感器在不同流向下的输出电压

    Figure  13.  Output voltage of sensor in different flow directions

    图  14  感知单元1的输出电压与流向之间的关系

    Figure  14.  Relationship between output voltage and flow direction of sensing unit 1

    图  15  流速突变下BFLS的响应能力

    Figure  15.  Response capability of bfls under sudden change of flow velocity

    表  1  基于TENG的仿生侧线传感器特点对比

    Table  1.   Characteristics comparison of bionic lateral line sensor based on TENG

    工作 检测对象 感知单
    元数量
    适用
    环境
    方向识
    别能力
    文中工作 流速、机械载荷 4 水下、空气
    FLLF-TENG 机械载荷 1 空气
    TVS 机械载荷 1 空气
    BLLS 振荡流 1 水下
    TBLS 振荡流、尾流 1 水下
    下载: 导出CSV
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出版历程
  • 收稿日期:  2026-04-01
  • 修回日期:  2026-05-09
  • 录用日期:  2026-05-10
  • 网络出版日期:  2026-09-15
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