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基于全导波场图像目标识别的损伤检测研究

冯侃 闫静 姚雨 李容 胡旭 任梦凡 励争

北京大学学报(自然科学版)2026,Vol.62Issue(1):21-28,8.
北京大学学报(自然科学版)2026,Vol.62Issue(1):21-28,8.DOI:10.13209/j.0479-8023.2025.099

基于全导波场图像目标识别的损伤检测研究

Research on Damage Detection Based on Guided-Wave Field Object Identification

冯侃 1闫静 1姚雨 1李容 1胡旭 1任梦凡 1励争2

作者信息

  • 1. 江苏大学土木工程与力学学院,镇江 212013
  • 2. 北京大学力学与工程科学学院,北京 100871
  • 折叠

摘要

Abstract

A guided wave damage identification method based on the deep learning target detection algorithm is proposed.According to the wave number variation characteristics at the local damage of the structure,the image recognition algorithm is used to detect the full-field wave field images of the structure,thereby achieving damage location and identification.In the process of acquiring training image samples,a series of numerical models of aluminum plates with blind-hole damages at different positions are established,and through multi-frequency excitation,the steady-state wave field images of the structure are obtained,and the sample database is expanded by means of image enhancement technology.YOLOv5s network is selected for model training,and detection is performed on the time-domain guided wave fields of the simulation model and the experimental structure respectively.The results show that when the guided wave propagates through the damaged area,the guided wave field exhibits local distortion at the damage location,and the damage detection box is consistent with the actual damage characteristics of the structure,therefore,the target detection algorithm can avoid the image features of the excitation points and effectively capture the image features of blind-hole damages.

关键词

损伤检测/导波场识别/深度学习/图像目标识别

Key words

damage detection/guided-wave recognition/deep learning/image object detection

引用本文复制引用

冯侃,闫静,姚雨,李容,胡旭,任梦凡,励争..基于全导波场图像目标识别的损伤检测研究[J].北京大学学报(自然科学版),2026,62(1):21-28,8.

基金项目

国家自然科学基金(11702118,12232001,52475190)资助 (11702118,12232001,52475190)

北京大学学报(自然科学版)

0479-8023

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