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April 18, 2026Buildings0 citationsOpen Access

Damage Evolution and Acoustic Emission Characteristics of Continuously Graded Cemented Gangue Filling Bodies

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WZWeidong ZhaoJGJian GongHJHuazhe Jiao

Key Points

  • The aim is to explore how particle size gradation affects the mechanical properties and failure characteristics of cemented gangue filling bodies.
  • Sieved coal gangue into six particle size groups ranging from 0.05 to 20 mm.
  • Prepared cubic specimens based on Talbot gradation theory with varying gradation indices.
  • Conducted acoustic emission monitoring tests and analyzed the microstructure of the filling body.
  • Maximum compressive strength observed at a gradation index of 0.5.
  • Cumulative acoustic emission data showed a bimodal distribution with surge and fracture points.
  • Gradation adjustments can influence the formation of microcracks and overall stability in the filling body.

Abstract

The particle size of aggregate is a key factor affecting the mechanical properties and deformation capacity of cemented gangue filling body. In this study, coal gangue with a particle size range of (0.05, 20) mm was sieved into six groups of aggregate particles. Based on the Talbot gradation theory, cubic specimens with gradation indices n = 0.3, 0.4, 0.5, 0.6, and 0.7 were prepared for acoustic emission (AE) monitoring tests. The microstructure of the filling body was analyzed, and the failure characteristics and damage evolution laws of the cemented gangue filling body with different gradation indices were explored. The results show that the compressive strength reaches its maximum when n = 0.5. As the gradation index increases, the compressive strength of the specimens first increases and then decreases, and the specimens shift from primarily experiencing cleavage failure to shear failure. The curve of cumulative AE ringing count shows a bimodal distribution pattern, with both surge points and fracture points coexisting. The surge points can be regarded as precursor signals of backfill failure. The spatiotemporal evolution of AE events exhibits complex phased changes. An excessively small gradation index tends to form micropores and striped microcracks, reducing the compactness of the microstructure. An excessively large gradation index can lead to the formation of penetrative weak channels. A reasonable gradation index enables the mutual interlocking of aggregate particles, constructing a stable three-dimensional spatial skeleton structure. The dynamic trend of damage in the filling body can be captured based on AE analysis, and reverse guidance can be provided for parameter optimization of Talbot gradation, achieving a dynamic closed loop of “gradation design-AE monitoring-damage assessment-parameter optimization”. This not only enriches the application scenarios of acoustic emission analysis in graded materials, but also provides a new research approach and technical method for gradation design and safety assessment in scenarios where particle sizes are missing in practical engineering.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69e321aa40886becb6540b5ehttps://doi.org/10.3390/buildings16081572
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