Flexural failure mechanism and damage early warning of cracked timber beams: integrating acoustic emission time-varying multifractal and DIC full-field analysis

Cracks parallel to the grain in timber components significantly reduce structural mechanical properties and increase fracture vulnerability, yet the multi-scale fracture mechanisms and quantitative early warning strategies for cracked timber beams remain not fully elucidated.This study conducted four-point bending tests on six groups of Mongolian pine beams with varying crack geometries. By integrating mechanical testing, acoustic emission (AE), digital image correlation (DIC), RA-AF classification and time-varying multifractal theory, the multi-scale fracture evolution was quantitatively characterized.Results show that relative crack depth (h/H) dominates mechanical properties and failure modes: increasing crack size reduces ultimate bearing capacity and initial flexural stiffness by up to 30% and 50%, respectively; when h/H ≥ 0.25, failure shifts from tension-dominated to grain-parallel shear-dominated fracture. RA-AF and DIC mutually verified fracture characteristics across scales. A three-level Δα-based early warning system was established: 0.40–0.60 indicates linear-elastic stability; a 116.2% increase signals early damage propagation; a 308% increase corresponds to critical instability. Time-varying multifractal parameters enable full-process damage quantification. Shear-dominated specimens showed 21.8% higher mean Δα and 18.5% higher Δf(α) than tension-dominated ones, revealing greater shear damage heterogeneity.The proposed multi-scale framework provides a reliable quantitative basis for health monitoring and safety assessment of defective timber components.

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Publication Details

Journal
Nondestructive Testing And Evaluation
Published
2026-09-29
DOI
https://doi.org/10.1080/10589759.2026.2739580
Primary Topic
Wood Treatment and Properties
Type
article
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article

Flexural failure mechanism and damage early warning of cracked timber beams: integrating acoustic emission time-varying multifractal and DIC full-field analysis

Yanhua She, Zao Shen, Zhihang liu, Junjie Huang et al.
Nondestructive Testing And Evaluation
Wood Treatment and Properties
article

Flexural failure mechanism and damage early warning of cracked timber beams: integrating acoustic emission time-varying multifractal and DIC full-field analysis

Yanhua She, Zao Shen, Zhihang liu, Junjie Huang, Xurui Guo
article en

Abstract

Cracks parallel to the grain in timber components significantly reduce structural mechanical properties and increase fracture vulnerability, yet the multi-scale fracture mechanisms and quantitative early warning strategies for cracked timber beams remain not fully elucidated.This study conducted four-point bending tests on six groups of Mongolian pine beams with varying crack geometries. By integrating mechanical testing, acoustic emission (AE), digital image correlation (DIC), RA-AF classification and time-varying multifractal theory, the multi-scale fracture evolution was quantitatively characterized.Results show that relative crack depth (h/H) dominates mechanical properties and failure modes: increasing crack size reduces ultimate bearing capacity and initial flexural stiffness by up to 30% and 50%, respectively; when h/H ≥ 0.25, failure shifts from tension-dominated to grain-parallel shear-dominated fracture. RA-AF and DIC mutually verified fracture characteristics across scales. A three-level Δα-based early warning system was established: 0.40–0.60 indicates linear-elastic stability; a 116.2% increase signals early damage propagation; a 308% increase corresponds to critical instability. Time-varying multifractal parameters enable full-process damage quantification. Shear-dominated specimens showed 21.8% higher mean Δα and 18.5% higher Δf(α) than tension-dominated ones, revealing greater shear damage heterogeneity.The proposed multi-scale framework provides a reliable quantitative basis for health monitoring and safety assessment of defective timber components.

Nondestructive Testing And Evaluation
Yangtze University (CN), China Railway Group (China) (CN)
Openalex Percentile: Top 15%
Wood Treatment and Properties
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