TY - GEN
T1 - Enhanced damage characterization using multiply scattered lamb waves
AU - Zeng, L.
AU - Niu, X. X.
AU - Huang, L. P.
AU - Lin, J.
N1 - Publisher Copyright:
© APWSHM 2018. All rights reserved.
PY - 2018
Y1 - 2018
N2 - Lamb wave inspecting has being a potential solution for structural health monitoring of composite structures. In such applications, the Born (single-scattering) approximation is used, and the signals received after the wave scattered from the target are normally discarded. In reality, however, the structure often contains a variety of known singular features (e.g., edges, welds, reveted-lap joints and adhesive butt joints), and waves can scatter several times before returning to the detector. The information encoded in multiply scattered waves can give more information about the region of interest, because the extra reflections arise waves that interrogate the region from different directions. In this paper, we focus on multiply scattered signals, exploiting information that is usually discarded for damage characterization. Firstly, dispersion compensation is employed to compress the time duration of the multiply scattered waves, separating them in time domain. For each individual transducer, the edge of composite laminate could arise a virtual transducer distributed in a symmetrical position, which enlarges the element-number and the aperture of the sensor array. On this basis, a modified sparse reconstruction algorithm is employed for damage imaging. The experimental results show that the damage could be correctly detected and accurately localized even with a single transmitter-receiver pair through exploiting these multiply scattering waves.
AB - Lamb wave inspecting has being a potential solution for structural health monitoring of composite structures. In such applications, the Born (single-scattering) approximation is used, and the signals received after the wave scattered from the target are normally discarded. In reality, however, the structure often contains a variety of known singular features (e.g., edges, welds, reveted-lap joints and adhesive butt joints), and waves can scatter several times before returning to the detector. The information encoded in multiply scattered waves can give more information about the region of interest, because the extra reflections arise waves that interrogate the region from different directions. In this paper, we focus on multiply scattered signals, exploiting information that is usually discarded for damage characterization. Firstly, dispersion compensation is employed to compress the time duration of the multiply scattered waves, separating them in time domain. For each individual transducer, the edge of composite laminate could arise a virtual transducer distributed in a symmetrical position, which enlarges the element-number and the aperture of the sensor array. On this basis, a modified sparse reconstruction algorithm is employed for damage imaging. The experimental results show that the damage could be correctly detected and accurately localized even with a single transmitter-receiver pair through exploiting these multiply scattering waves.
KW - Damage characterization
KW - Lamb wave
KW - Multiply scattering
KW - Structural health monitoring
UR - https://www.scopus.com/pages/publications/85064676193
M3 - 会议稿件
AN - SCOPUS:85064676193
T3 - Proceedings of the 7th Asia-Pacific Workshop on Structural Health Monitoring, APWSHM 2018
SP - 331
EP - 333
BT - Proceedings of the 7th Asia-Pacific Workshop on Structural Health Monitoring, APWSHM 2018
A2 - Su, Zhongqing
A2 - Yuan, Shenfang
A2 - Sohn, Hoon
PB - NDT.net
T2 - 7th Asia-Pacific Workshop on Structural Health Monitoring, APWSHM 2018
Y2 - 12 November 2018 through 15 November 2018
ER -