Research on Fracture Characteristics and Energy Dissipation of Hard Rock under the Excitation of Ultrasonic Vibration

Author:

Zhang Lei12,Wang Xufeng13ORCID,Wang Jiyao1,Yang Zhanbiao2

Affiliation:

1. School of Mines, China University of Mining and Technology, Jiangsu Engineering Laboratory of Mine Earthquake Monitoring and Prevention, Xuzhou 221116, China

2. State Key Laboratory of Coking Coal Exploitation and Comprehensive Utilization, China Pingmei Shenma Group, Pingdingshan 467000, China

3. State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology, Xuzhou 221116, China

Abstract

To promote the application of ultrasonic vibration rock crushing technology in underground rock-drilling engineering, it is necessary to investigate the damage and fracture characteristics of hard rock under the excitation of ultrasonic vibration. In this study, the brittle red sandstone was taken as the research object, the rock fracture experiments under the excitation of ultrasonic vibration were carried out, and the macrodeformation of rock samples was monitored by strain gauges. The experimental results show that the strain curve of rock samples under the excitation of ultrasonic vibration can be divided into the compaction stage, elastic deformation stage, and damage stage; with the increase in static load, the maximum intrusion depth and maximum failure depth of rock samples increase exponentially. To study the damage evolution and energy dissipation mechanism of rock samples under the excitation of ultrasonic vibration, a numerical model was established by using particle flow software PFC2D. The results show that the proposed model can effectively simulate the failure characteristics of rock samples under the excitation of ultrasonic vibration. Through the analysis of the displacement field, stress field, and dynamic fracture process of rock samples, the damage and fracture mechanism of rock samples under the excitation of ultrasonic vibration were revealed. In addition, the ultrasonic vibration simulation tests on rock samples were carried out under different static loads, and the number of rock cracks and energy dissipation process were monitored in real time. The results show that static loads can accelerate the initiation and propagation of cracks and improve the utilization rate of rock crushing energy.

Funder

China Pingmei Shenma Group

Publisher

Hindawi Limited

Subject

General Earth and Planetary Sciences

Reference29 articles.

1. Modeling of the ultrasonic/sonic driller/corer: USDC

2. Auto-Gopher: a wire-line rotary-hammer ultrasonic drill;M. Tomizuka

3. Dynamics of ultrasonic percussive drilling of hard rocks;M. Wiercigroch;Journal of Sound and Vibration,2005

4. The mechanical properties and a fatigue-damage model for jointed rock masses subjected to dynamic cyclical loading;N. Li;International Journal of Rock Mechanics and Mining Sciences,2001

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