Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units

Lead Zirconate Titanate (PZT) sensors have become popular in structural health monitoring (SHM) using the electromechanical impedance (EMI) technique for damage identification. The vibrations generated during the casting process in concrete structures substantially impact the conductance signature’s...

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Main Authors: Himanshi Gayakwad, Jothi Saravanan Thiyagarajan
Format: Article
Language:English
Published: MDPI AG 2022-03-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/22/6/2296
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author Himanshi Gayakwad
Jothi Saravanan Thiyagarajan
author_facet Himanshi Gayakwad
Jothi Saravanan Thiyagarajan
author_sort Himanshi Gayakwad
collection DOAJ
description Lead Zirconate Titanate (PZT) sensors have become popular in structural health monitoring (SHM) using the electromechanical impedance (EMI) technique for damage identification. The vibrations generated during the casting process in concrete structures substantially impact the conductance signature’s (real part of admittance) magnitude and sensitivity. The concept of smart sensing units (SSU) is presented, composed of a PZT patch, an adhesive layer, and a steel plate. It is embedded in the concrete structure to study the impact of damage since it has high sensitivity to detect any structural changes, resulting in a high electrical conductance signature. The conductance signatures are obtained from the EMI technique at the damage state in the 10–500 kHz high-frequency range. The wave propagation technique proposes implementing the novel embedded SSUs to detect damage in the host structure. The numerical simulation is carried out with COMSOL multiphysics, and the received voltage signal is compared between the damaged and undamaged concrete beam with the applied actuation signal. A five-cycle sine burst modulated by a Hanning window is employed as the transient excitation signal. For numerical investigation, six cases are explored to better understand how the wave travels when a structural discontinuity is accounted for. The changes in the received signal during actuator–receiver mode in the damage state of the host structure are quantified using time of flight (TOF). Furthermore, the numerical studies are carried out by combining the EMI-WP technique, which implies synchronous activation of EMI-based measurements and wave stimulation. The fundamental idea is to implement EMI-WP to improve the effectiveness of SSU patches in detecting both near-field and far-field damage in structures. One SSU is used as an EMI admittance sensor for local damage identification. Meanwhile, the same EMI admittance sensor is used to acquire elastic waves generated by another SSU to monitor damages outside the EMI admittance sensor’s sensing area. Finally, the experimental validation is carried out to verify the proposed methodology. The results show that combining both techniques is an effective SHM method for detecting damage in concrete structures.
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spelling doaj.art-28d3d4c485a64dbca788eca36022ea342023-11-30T22:18:57ZengMDPI AGSensors1424-82202022-03-01226229610.3390/s22062296Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing UnitsHimanshi Gayakwad0Jothi Saravanan Thiyagarajan1School of Infrastructure, Indian Institute of Technology Bhubaneswar, Argul, Khordha 752050, Odisha, IndiaSchool of Infrastructure, Indian Institute of Technology Bhubaneswar, Argul, Khordha 752050, Odisha, IndiaLead Zirconate Titanate (PZT) sensors have become popular in structural health monitoring (SHM) using the electromechanical impedance (EMI) technique for damage identification. The vibrations generated during the casting process in concrete structures substantially impact the conductance signature’s (real part of admittance) magnitude and sensitivity. The concept of smart sensing units (SSU) is presented, composed of a PZT patch, an adhesive layer, and a steel plate. It is embedded in the concrete structure to study the impact of damage since it has high sensitivity to detect any structural changes, resulting in a high electrical conductance signature. The conductance signatures are obtained from the EMI technique at the damage state in the 10–500 kHz high-frequency range. The wave propagation technique proposes implementing the novel embedded SSUs to detect damage in the host structure. The numerical simulation is carried out with COMSOL multiphysics, and the received voltage signal is compared between the damaged and undamaged concrete beam with the applied actuation signal. A five-cycle sine burst modulated by a Hanning window is employed as the transient excitation signal. For numerical investigation, six cases are explored to better understand how the wave travels when a structural discontinuity is accounted for. The changes in the received signal during actuator–receiver mode in the damage state of the host structure are quantified using time of flight (TOF). Furthermore, the numerical studies are carried out by combining the EMI-WP technique, which implies synchronous activation of EMI-based measurements and wave stimulation. The fundamental idea is to implement EMI-WP to improve the effectiveness of SSU patches in detecting both near-field and far-field damage in structures. One SSU is used as an EMI admittance sensor for local damage identification. Meanwhile, the same EMI admittance sensor is used to acquire elastic waves generated by another SSU to monitor damages outside the EMI admittance sensor’s sensing area. Finally, the experimental validation is carried out to verify the proposed methodology. The results show that combining both techniques is an effective SHM method for detecting damage in concrete structures.https://www.mdpi.com/1424-8220/22/6/2296piezoelectric sensorimpedanceembedded sensorconductancedamage detectionCOMSOL multiphysics
spellingShingle Himanshi Gayakwad
Jothi Saravanan Thiyagarajan
Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units
Sensors
piezoelectric sensor
impedance
embedded sensor
conductance
damage detection
COMSOL multiphysics
title Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units
title_full Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units
title_fullStr Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units
title_full_unstemmed Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units
title_short Structural Damage Detection through EMI and Wave Propagation Techniques Using Embedded PZT Smart Sensing Units
title_sort structural damage detection through emi and wave propagation techniques using embedded pzt smart sensing units
topic piezoelectric sensor
impedance
embedded sensor
conductance
damage detection
COMSOL multiphysics
url https://www.mdpi.com/1424-8220/22/6/2296
work_keys_str_mv AT himanshigayakwad structuraldamagedetectionthroughemiandwavepropagationtechniquesusingembeddedpztsmartsensingunits
AT jothisaravananthiyagarajan structuraldamagedetectionthroughemiandwavepropagationtechniquesusingembeddedpztsmartsensingunits