基于固液摩擦纳米发电机的法兰泄漏监测技术

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  • (1.大连中远海运重工有限公司 技术中心,辽宁  大连  116113;2.大连海事大学 轮机工程学院,辽宁  大连  116026) 
徐新(1982 — ),男,工程师,研究方向:船舶及海洋工程项目技术管理工作/新能源船舶及海工项目研发;石岳功(1998 — ),男,硕士生,研究方向:海洋物理参数感知;徐敏义*(1984 — ),男,博士,教授,博士生导师,研究方向:海洋能摩擦纳米发电、海洋智能装备, E-mail:xuminyi@dlmu.edu.cn

收稿日期: 2023-06-27

  修回日期: 2023-07-17

  录用日期: 2023-07-17

  网络出版日期: 2023-09-12

基金资助

科技部国家重点研发项目(2021YFA1201604);国家自然科学基金资助项目(51879022;52101345);大连市杰出青年科技人才项目(021RJ11);辽宁省应用研究计划(2022JH2/01300219)

Pipeline flange leakage monitoring technology based on solid-liquid triboelectric nanogenerator 

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  • (1. Technical Institute, COSCO SHIPPING Heavy Industry (Dalian) Co., Ltd, Dalian 116113,  China;2. Marine Engineering College, Dalian Maritime University, Dalian 116026, China)

Received date: 2023-06-27

  Revised date: 2023-07-17

  Accepted date: 2023-07-17

  Online published: 2023-09-12

摘要

基于固液摩擦纳米发电机(TENG)技术,研究并开发一种能够监测法兰泄漏的传感器,其由PTFE介电材料和金属电极组成,并通过实验研究其在不同条件下的输出性能,从而确定传感器构型及监测参数设计。为实现泄漏监测信号传输和报警的可视化,本文研制一个适配传感器的单片机电路板,可采集泄漏信号,并通过无线传输形式发送到利用LabVIEW程序开发的终端泄漏报警单元,实现了船舶法兰泄漏的实时监测。

本文引用格式

徐新, 石岳功, 徐敏义, 郭新阳, 杜恒旭, 张皓轩, 崔记豪, 王赫 . 基于固液摩擦纳米发电机的法兰泄漏监测技术[J]. 大连海事大学学报, 2023 , 49(3) : 114 -121 . DOI: 10.16411/j.cnki.issn1006-7736.2023.03.012

Abstract

Based on the solid-liquid friction nanogenerator (TENG) technology, a sensor capable of monitoring flange leakage was studied and developed. It was composed of polytetrafluoroethylene (PTFE) dielectric material and metal electrodes, and the output performance under different conditions was studied by experiments to determine the sensor configuration and monitoring parameter design. In order to achieve the visualization of leakage monitoring signal transmission and alarm, a single-chip microcomputer circuit board adapted to sensors was developed, which can collect leakage signals and send to the terminal leakage alarm unit developed by using LabVIEW program through wireless transmission, achieving real-time monitoring of ship flange leakage.

参考文献

[1]李光正,王涛,张国勇.基于物联网体系的智能船舶设计[J].船舶工程,2012,34(6):59-62.
LI G Z, WANG T, ZHANG G Y. Study of intelligent ship design based on internet of things[J]. Ship Engineering, 2012,34(6):59-62.(in Chinese)
[2]佚名.中国船级社(CCS)发布《智能船舶规范》(2023)[J].船舶标准化工程师,2023,56(2):1. 
ANONYMOUS. China classification society (CCS) releases the code for intelligent ships (2023)[J]. Ship Standardization Engineer,2023,56(2):1.(in Chinese)
[3]王海.船舶管系泄漏中检测技术的应用及分析[J].科技视界,2018(26):31-32. 
WANG H. Application and analysis of detection technology in ship pipeline leakage [J]. Science & Technology Vision,2018(26):31-32.(in Chinese)
[4]马一凡. 基于声学传感器的管道泄漏定位研究[D].华北电力大学,2015. 
MA Y F. Pipeline leakage detection based on acoustic emission techniques[D]. North China University of Water Resources and Hydropowery,2015.(in Chinese)
[5]谭靖,陈伟民,朱永,王丁.单轴分布式光纤传感器管线泄漏探测方法及定位理论分析[J].光子学报,2006(2):228-231.
TAN J, CHEN W M, ZHU Y, et al. The monitoring system and the analysis of locating theory for pipeline leakage detection based on single distributed optical Fiber Sensor[J] Acta Photonica Sinica, 2006(2):228-231.(in Chinese) 
[6]左汝宽, 乔军, 崔鹏,等. 一种红外油料泄漏传感器. CN208937255U[P]. 2019. 
ZUO R K, QIAO J, CUI P, et al. An infrared oil leakage sensor. CN208937255U [P] 2019.(in Chinese)
[7]王琼佩,江庆.基于超声波传感器的泄漏检测仪的设计[J].仪表技术与传感器,2018(9):37-39+70. 
WANG Q P, JIANG Q. Design of leak detector based on ultrasonic sensor[J]. Instrument Technique and Sensor, 2018(9):37-39+70.(in Chinese)
[8]张弛,付贤鹏,王中林.摩擦纳米发电机在自驱动微系统研究中的现状与展望[J].机械工程学报,2019,55(7):89-101.
ZHANG C, FU X P, WANG Z L. Review and prospect of triboelectric nanogenerators in self-powered microsystems [J]. Journal of Mechanical Engineering, 2019,55(7):89-101.(in Chinese)
[9]李小石. 基于摩擦纳米发电机的柔性可穿戴多功能压力传感器[D].重庆:重庆大学,2017.
LI X S. Flexible wearable multi-function pressure sensor based on triboelectric nanogenerator[D].Chongqing:Chongqing University,2017. (in Chinese)
[10]郑海务, 基于声音能量的摩擦纳米发电机的速度传感器及其应用. 开封:河南大学,2019-09-24. 
ZHENG H W, Chen F Q, Wu Y H, et al. Speed sensor of triboelectric nanogenerator based on sound energy and its application. Kaifeng:Henan University, 2019-09-24.(in Chinese)
[11]杨朔, 吴川, 文国军,等. 一种基于摩擦纳米发电机的振动传感器.CN202210031458.8[P]. 2022. 
YANG S, WU C, WEN G J, et al. A vibration sensor based on triboelectric nanogenerator. CN202210031458.8 [P]. 2022.(in Chinese) 
[12]XU M, WANG S, ZHANG L S, et al. A highly-sensitive wave sensor based on liquid-solid interfacing triboelectric nanogenerator for smart marine equipment[J]. Nano Energy,2019,57.
[13]ZHANG X, YU M, MA Z, et al. Self‐powered distributed water level sensors based on liquid-solid triboelectric nanogenerators for ship draft detecting[J]. Advanced Functional Materials, 2019, 29(41): 1900327. 
[14]LI X, ZHANG L, FENG Y, et al. Reversible temperature-sensitive liquid-solid triboelectrification with polycaprolactone material for wetting monitoring and temperature sensing[J]. Advanced Functional Materials, 2021, 31(17): 2010220. 
[15]ZENG Y, LUO Y, LU Y, et al. Self-powered rain droplet sensor based on a liquid-solid triboelectric nanogenerator[J]. Nano Energy, 2022, 98: 107316. 
[16]WANG Z L. On the first principle theory of nanogenerators from Maxwell’s equations[J]. Nano Energy,2020,68:104272. 
[17]WANG Z L. On Maxwell’s displacement current for energy and sensors: the origin of nanogenerators[J]. Materials Today,2017,20(2):74-82. 
[18]XU W, LI X H, et al. Study of the enhanced electricity output of a sliding droplet-based triboelectric nanogenerator for droplet sensor design[J]. Nano Energy, 2022, 98: 107166.2.
[19]XU W H, ZHENG H X, LIU Y, et al. A droplet-based electricity generator with high instantaneous power density[J]. Nature, 2020, 578(7795): 392-396.
[20]禹健,郭艳婕,杨雷.固-液摩擦纳米发电机[J].机械工程学报,2021,57(21):160-181.
YU J, GUO Y J, YANG L. Solid-Liquid Triboelectric Nanogenerator[J]. Journal of Mechanical Engineering, 2021,57(21):160-181.(in Chinese)

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