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April 13, 2026Scientific Reports0 citationsOpen Access

Study on the mechanical response mechanism and constitutive model of black sandstone under uniaxial cyclic loading–unloading with medium–high temperature cycles

LWLing WangJZJiuling ZhangFLFuping Li

Key Points

  • To explore the mechanical response and develop a model for black sandstone under cyclic loading and elevated temperatures.
  • Conducted temperature cycling experiments on black sandstone at 100-200 °C for 4-8 cycles.
  • Performed uniaxial cyclic loading-unloading tests with varying loading rates (0.3-1.0 MPa/s).
  • Analyzed stress-strain evolution and energy dissipation characteristics post-testing.
  • Developed a novel constitutive model that incorporates temperature-mechanical coupling effects.
  • Temperature increase and cycle accumulation significantly reduced rock strength, with temperature being the dominant factor.
  • Elastic modulus increased with loading rate and improved through cyclic loading.
  • Energy dissipation showed critical dependence on final-cycle input energy, revealing the relationship between thermal damage and mechanical response.

Abstract

During deep roadway blasting excavation, surrounding rock experiences transient thermal impacts from explosive detonation characterized by short duration (< 8 h intervals) and moderate peak temperatures (100–200 °C). To investigate sandstone mechanical behavior under such conditions, black sandstone specimens were subjected to medium–high temperature cycles (100–200 °C, 4–8 cycles, with a single cycle consisting of 2 h of isothermal heating and 6 h of natural cooling) in a constant-temperature chamber, followed by uniaxial cyclic loading–unloading tests with gradient loading rates (0.3–1.0 MPa/s) using a servo-controlled testing machine until specimen failure, with stress–strain evolution and energy dissipation characteristics systematically analyzed. Experimental results show that temperature elevation and cycle accumulation synergistically reduce rock strength, with temperature effects dominating over cycle count, while elastic modulus exhibits distinct behavior by increasing with loading rate and demonstrating progressive enhancement through cyclic loading. Post-thermal treatment energy evolution reveals critical dependence on final-cycle input energy, and a novel damage constitutive model incorporating temperature-mechanical coupling effects was developed to improve prediction accuracy for sandstone strength degradation under cyclic blasting conditions. This work establishes quantitative relationships between thermal damage accumulation, loading rate sensitivity, and energy dissipation mechanisms, providing computational foundations for deep roadway stability evaluation and blasting parameter optimization.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69dc887f3afacbeac03ea599https://doi.org/10.1038/s41598-026-47140-2
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