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Article

Influence of High-Frequency Ultrasonic Vibration Load on Pore-Fracture Structure in Hard Rock: A Study Based on 3D Reconstruction Technology

1
State Key Laboratory of Coking Coal Resources Green Exploitation, China Pingmei Shenma Group, Pingdingshan 467000, China
2
Jiangsu Engineering Laboratory of Mine Earthquake Monitoring and Prevention, School of Mines, China University of Mining and Technology, Xuzhou 221116, China
*
Author to whom correspondence should be addressed.
Materials 2024, 17(5), 1127; https://doi.org/10.3390/ma17051127
Submission received: 18 January 2024 / Revised: 22 February 2024 / Accepted: 27 February 2024 / Published: 29 February 2024

Abstract

Rock fracture is a macroscopic fracturing process resulting from the initiation and propagation of microscopic cracks. Therefore, it is crucial to comprehend the damage and fracture mechanism of rock under ultrasonic vibration by investigating the evolutionary pattern of the meso-pore fracture structure in response to high-frequency vibrational loads, as explored in this study. Standard red sandstone samples with a diameter of 50 mm and height of 100 mm were subjected to ultrasonic high-frequency vibration tests. NMR and CT scans were conducted on the rock samples at different stages of ultrasonic vibration excitation to obtain the corresponding transverse relaxation time (T2) spectra and CT scan images for each layer. The NMR test results revealed that smaller pores formed within the rock under high-frequency vibration loads, with a noticeable expansion observed in micropores. Three-dimensional reconstruction analysis based on two-dimensional CT images demonstrated an increase in pore count by 145.56%, 122.67%, and 98.87%, respectively, for the upper, middle, and lower parts of the rock after 120 s of ultrasonic vibration excitation; furthermore, the maximum pore volume increased by 239.42%, 109.16%, and 18.99%, respectively, for these regions during this period as well. These findings contribute towards a deeper understanding regarding the mechanisms underlying rock fragmentation when exposed to high-frequency vibrational loads.
Keywords: high-frequency vibration; nuclear magnetic resonance; CT scanning; three-dimensional reconstruction high-frequency vibration; nuclear magnetic resonance; CT scanning; three-dimensional reconstruction

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MDPI and ACS Style

Zhang, J.; Zhang, L.; Wang, X.; Niu, Z.; Yang, Z. Influence of High-Frequency Ultrasonic Vibration Load on Pore-Fracture Structure in Hard Rock: A Study Based on 3D Reconstruction Technology. Materials 2024, 17, 1127. https://doi.org/10.3390/ma17051127

AMA Style

Zhang J, Zhang L, Wang X, Niu Z, Yang Z. Influence of High-Frequency Ultrasonic Vibration Load on Pore-Fracture Structure in Hard Rock: A Study Based on 3D Reconstruction Technology. Materials. 2024; 17(5):1127. https://doi.org/10.3390/ma17051127

Chicago/Turabian Style

Zhang, Jianguo, Lei Zhang, Xufeng Wang, Zhijun Niu, and Zhanbiao Yang. 2024. "Influence of High-Frequency Ultrasonic Vibration Load on Pore-Fracture Structure in Hard Rock: A Study Based on 3D Reconstruction Technology" Materials 17, no. 5: 1127. https://doi.org/10.3390/ma17051127

APA Style

Zhang, J., Zhang, L., Wang, X., Niu, Z., & Yang, Z. (2024). Influence of High-Frequency Ultrasonic Vibration Load on Pore-Fracture Structure in Hard Rock: A Study Based on 3D Reconstruction Technology. Materials, 17(5), 1127. https://doi.org/10.3390/ma17051127

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