TY - JOUR
T1 - Forced vibration and vibrational energy flow in cracked variable-thickness plates
T2 - A semi-analytical model
AU - Wei, Jiajun
AU - Sen Zhang, Zhang
AU - Wu, Xinwei
AU - Ma, Yongbin
AU - Fan, Junling
AU - Yang, Pengfei
AU - Deng, Zichen
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/12
Y1 - 2026/12
N2 - Variable-thickness plates are widely used in lightweight engineering structures, where thickness gradients improve structural efficiency but also complicate vibration transmission and crack-dependent wave scattering. When a surface crack is present, the local compliance introduced by the crack interacts with the non-uniform impedance caused by thickness variation, leading to forced vibration and energy transfer characteristics that are difficult to capture using conventional uniform-thickness or purely numerical models. This study develops a semi-analytical forward model for the forced vibration and vibrational energy flow of cracked variable-thickness plates under harmonic excitation. The proposed formulation combines an established symplectic wave description for a uniformly cracked segment with a segmented representation of the thickness gradient, so that the coupled effects of crack compliance and impedance variation can be captured within a unified framework. Based on the resulting wave amplitudes, analytical expressions are derived for the input energy flow, transmitted energy flow, kinetic energy, and strain energy. The proposed model is validated directly against finite element simulations for simply supported plates, while experiments under a free boundary test configuration are used to support the finite element reference model employed in the validation chain. The results reveal how crack compliance and thickness gradient jointly govern resonance shifts, wave scattering, energy transmission, and spatial energy redistribution. In particular, the high-frequency response is more sensitive to crack-induced stiffness loss, and the energy transfer characteristics differ markedly between cracks located near the principal transmission path and those close to the plate boundary. Finally, an illustrative contour-based parameter-estimation example using normalized input energy flow is presented to show the estimation potential of the forward model under idealized conditions. The present work provides an efficient forward framework for analysing vibration transmission and energy flow mechanisms in cracked variable-thickness thin plates and offers a useful basis for subsequent model-based studies.
AB - Variable-thickness plates are widely used in lightweight engineering structures, where thickness gradients improve structural efficiency but also complicate vibration transmission and crack-dependent wave scattering. When a surface crack is present, the local compliance introduced by the crack interacts with the non-uniform impedance caused by thickness variation, leading to forced vibration and energy transfer characteristics that are difficult to capture using conventional uniform-thickness or purely numerical models. This study develops a semi-analytical forward model for the forced vibration and vibrational energy flow of cracked variable-thickness plates under harmonic excitation. The proposed formulation combines an established symplectic wave description for a uniformly cracked segment with a segmented representation of the thickness gradient, so that the coupled effects of crack compliance and impedance variation can be captured within a unified framework. Based on the resulting wave amplitudes, analytical expressions are derived for the input energy flow, transmitted energy flow, kinetic energy, and strain energy. The proposed model is validated directly against finite element simulations for simply supported plates, while experiments under a free boundary test configuration are used to support the finite element reference model employed in the validation chain. The results reveal how crack compliance and thickness gradient jointly govern resonance shifts, wave scattering, energy transmission, and spatial energy redistribution. In particular, the high-frequency response is more sensitive to crack-induced stiffness loss, and the energy transfer characteristics differ markedly between cracks located near the principal transmission path and those close to the plate boundary. Finally, an illustrative contour-based parameter-estimation example using normalized input energy flow is presented to show the estimation potential of the forward model under idealized conditions. The present work provides an efficient forward framework for analysing vibration transmission and energy flow mechanisms in cracked variable-thickness thin plates and offers a useful basis for subsequent model-based studies.
KW - Forced vibration
KW - Surface crack
KW - Symplectic method
KW - Variable-thickness plate
KW - Vibrational energy flow
KW - Wave propagation
UR - https://www.scopus.com/pages/publications/105045257419
U2 - 10.1016/j.tws.2026.115438
DO - 10.1016/j.tws.2026.115438
M3 - 文章
AN - SCOPUS:105045257419
SN - 0263-8231
VL - 231
JO - Thin-Walled Structures
JF - Thin-Walled Structures
M1 - 115438
ER -