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May 10, 2026Case Studies in Construction Materials0 citationsOpen Access

Microwave-Enhanced Cemented Tailings Backfill: Rheological Properties, Mechanical Behaviors, and Physics-Informed Strength Prediction

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PDPengchu DingZLZhen LiLCLiwu Chang

Key Points

  • This research explores how microwave heating influences the rheological and mechanical properties of cemented tailings backfill (CTB) to improve mining safety and sustainability.
  • Laboratory experiments analyzed the effects of microwave heating on rheological properties of slurry and CTB.
  • Theoretical analysis and machine learning methods were utilized to develop a strength prediction model using physics-informed symbolic regression.
  • The study examined varying heating times and their influence on hydration reactions and microstructural characteristics.
  • Microwave heating significantly alters slurry rheology, with 0-2 min reducing apparent viscosity due to electromagnetic effects.
  • Between 2-6 min of heating, viscosity increases as thermal effects expedite hydration reactions.
  • The strength prediction model achieved an accuracy of 99.8%, optimizing CTB performance through microwave technology.

Abstract

This study aims to enhance the safety of goafs and ensure ground pressure stability through energy-saving, clean, low-carbon, and sustainable technologies. Laboratory experiments, theoretical analysis, and machine learning methods were employed in this paper. The effects of microwave heating time on the rheological properties of slurry and the mechanical characteristics of cemented tailings backfill (CTB) were investigated. A strength prediction model was developed using the physics-informed symbolic regression (PISR) method. The findings reveal that microwave heating time significantly influenced the slurry rheology. During 0-2 min of microwave heating, electromagnetic effects dominated, disrupting the flocculation network and reducing the apparent viscosity. When extended to 2-6 min, the thermal effects accelerate hydration reactions, leading to increased viscosity and reduced fluidity. Moreover, microwave heating time enhances the early strength of CTB. accelerates the hydration rate of cementitious materials, and improves the morphology and microstructure of hydration products. However, excessive heating or low cement-sand ratios may impair later strength due to heterogeneous product formation and structural integrity issues. Based on the AI Feynman 2.0 methodology, a novel PISR framework was developed, achieving a strength prediction accuracy of 99.8%, thereby establishing a robust framework for optimizing CTB performance via microwave technology in sustainable mining. • Microwave heating can regulate the rheological properties of slurry. • Microwave heating can enhance the mechanical properties of CTB. • A new symbolic regression model for physical information has been developed. • Microwave heating promotes the hydration reaction and optimizes the microstructure.

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Cite This Study

Ding et al. (2026) studied this question.

synapsesocial.com/papers/6a0021fec8f74e3340f9cf52https://doi.org/10.1016/j.cscm.2026.e06117
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