Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves

The bogie frame is an important structure of railway vehicles, transmitting the traction, braking force, lateral force, and vertical force during the traction operation. With the development of high speeds and heavy loads, the appearance of fatigue cracks in the bogie frames is increasing, which red...

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Main Authors: Jiajia Yan, Hashen Jin, Hu Sun, Xinlin Qing
Format: Article
Language:English
Published: MDPI AG 2019-07-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/15/3372
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spelling doaj-35000954f3224402bd680c2f8994d0f02020-11-25T02:20:27ZengMDPI AGSensors1424-82202019-07-011915337210.3390/s19153372s19153372Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided WavesJiajia Yan0Hashen Jin1Hu Sun2Xinlin Qing3School of Aerospace Engineering, Xiamen University, Xiamen 361005, ChinaSchool of Aerospace Engineering, Xiamen University, Xiamen 361005, ChinaSchool of Aerospace Engineering, Xiamen University, Xiamen 361005, ChinaSchool of Aerospace Engineering, Xiamen University, Xiamen 361005, ChinaThe bogie frame is an important structure of railway vehicles, transmitting the traction, braking force, lateral force, and vertical force during the traction operation. With the development of high speeds and heavy loads, the appearance of fatigue cracks in the bogie frames is increasing, which reduces the driving life of railway vehicles and even causes serious traffic accidents. Real-time monitoring on the integrity of the bogie is an inevitable requirement for ensuring the safe operation of railway vehicles. In this paper, ultrasonic guided wave-based active structural health monitoring (SHM) was developed to identify the fatigue crack of the bogie frame. Experiments were conducted on a welded T-shape specimen with a thickness of 12 mm. A total of 10 piezoelectric lead zirconate titanate (PZT) disks were mounted around the weld zone of the specimen, five of which were used as actuators, and the other five were used as sensors. Five-peak modulation narrow-band sine waves were input into the actuators to excite the specimen. From the sensor signals, the advanced damage index (DI) was calculated to identify the propagation of the crack. The experimental results demonstrate that crack damage as small as 2 mm in the weld zone of the bogie frame can be successfully detected. Some practical issues for implementing the SHM in real applications, such as crack quantification and environmental compensation, were also discussed.https://www.mdpi.com/1424-8220/19/15/3372structural health monitoringfatigue cracksensor networkguided wavebogie frame
collection DOAJ
language English
format Article
sources DOAJ
author Jiajia Yan
Hashen Jin
Hu Sun
Xinlin Qing
spellingShingle Jiajia Yan
Hashen Jin
Hu Sun
Xinlin Qing
Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
Sensors
structural health monitoring
fatigue crack
sensor network
guided wave
bogie frame
author_facet Jiajia Yan
Hashen Jin
Hu Sun
Xinlin Qing
author_sort Jiajia Yan
title Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
title_short Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
title_full Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
title_fullStr Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
title_full_unstemmed Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
title_sort active monitoring of fatigue crack in the weld zone of bogie frames using ultrasonic guided waves
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-07-01
description The bogie frame is an important structure of railway vehicles, transmitting the traction, braking force, lateral force, and vertical force during the traction operation. With the development of high speeds and heavy loads, the appearance of fatigue cracks in the bogie frames is increasing, which reduces the driving life of railway vehicles and even causes serious traffic accidents. Real-time monitoring on the integrity of the bogie is an inevitable requirement for ensuring the safe operation of railway vehicles. In this paper, ultrasonic guided wave-based active structural health monitoring (SHM) was developed to identify the fatigue crack of the bogie frame. Experiments were conducted on a welded T-shape specimen with a thickness of 12 mm. A total of 10 piezoelectric lead zirconate titanate (PZT) disks were mounted around the weld zone of the specimen, five of which were used as actuators, and the other five were used as sensors. Five-peak modulation narrow-band sine waves were input into the actuators to excite the specimen. From the sensor signals, the advanced damage index (DI) was calculated to identify the propagation of the crack. The experimental results demonstrate that crack damage as small as 2 mm in the weld zone of the bogie frame can be successfully detected. Some practical issues for implementing the SHM in real applications, such as crack quantification and environmental compensation, were also discussed.
topic structural health monitoring
fatigue crack
sensor network
guided wave
bogie frame
url https://www.mdpi.com/1424-8220/19/15/3372
work_keys_str_mv AT jiajiayan activemonitoringoffatiguecrackintheweldzoneofbogieframesusingultrasonicguidedwaves
AT hashenjin activemonitoringoffatiguecrackintheweldzoneofbogieframesusingultrasonicguidedwaves
AT husun activemonitoringoffatiguecrackintheweldzoneofbogieframesusingultrasonicguidedwaves
AT xinlinqing activemonitoringoffatiguecrackintheweldzoneofbogieframesusingultrasonicguidedwaves
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