High-Accuracy Liquid Flow Monitoring via Triboelectric Nanogenerator Combined with Bionic Design and Common-Mode Interference Suppression

In the development of smart cities, accurate liquid flow monitoring is essential for the efficient operation of water supply systems. Current flow sensors often face limitations in sensitivity and environmental adaptability, affecting measurement accuracy, and restricting their application in smart city infrastructure. To address these challenges, this study proposes a high-accuracy flow monitoring method. Specifically, by combining the bionic design with advanced signal processing techniques, the sensitivity and anti-interference ability are improved, respectively, to enhance the measurement accuracy. Based on this method, a self-powered flow sensor (SPFS) is developed using noncontact triboelectric nanogenerators (NC-TENGs) as the sensing unit. The SPFS achieves a sensitivity of 2.07 Hz L−1 min−1 and improves the signal-to-noise ratio by more than 13 times over the initial sensing signal. In addition, an intelligent system is developed to accurately measure water resources. The maximum flow rate error rate is less than 0.97% compared to commercial flow sensors. The SPFS demonstrates higher sensitivity and accuracy compared to the existing TENG flow sensors. This study addresses the limitations of existing flow sensors and pioneers a novel solution for enhanced water resource management in smart cities.

相关文章

  • A high-adaptability ambient energy harvester enhanced by the canyon effect for smart agriculture
    [Weilin Liao, Xiaosen Su, Huikang Li, Zijian Huang, Bingcheng Li, Jinsong Cai, Fei Fang, Ke Zhang, Xudong Huang, Zhong Lin Wang]
  • Dual-stabilization strategy enabled high-entropy sulfide@carbon spheres for high-performance sodium storage
    [Xinyu Liu, Xingbo Yu, Jianlong Wang, Binbin Zhang, Baixin Han, Guoli Zhang, Kaixi Li, Taotao Guan]
  • Bioinspired twist-hyperbolic metamaterial for impact buffering and self-powered real-time sensing in UAVs
    [Xujiang Chao, Haoteng Hu, Jianjie Lin, Xueyang Ge, Yajun Wang, Linjie Xie, Bofan Hu, Liang Meng, Shudong Yu, Fei Liang, Lehua Qi, Zhong Lin Wang]
  • qq

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    ex

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    yx

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    ph

    成果名称:低表面能涂层

    合作方式:技术开发

    联 系 人:周老师

    联系电话:13321314106

    广告图片

    润滑集