The Recent Progress China Has Made in the Backfill Mining Method, Part III: Practical Engineering Problems in Stope and Goaf Backfill
Abstract
:1. Introduction
- (1)
- Calculation problems of backfill slurry transportation.
- (2)
- Reliability analysis of backfill pipeline system.
- (3)
- Stope backfill process and technology.
2. Calculation Problems of Backfill Slurry Transportation
2.1. Interference Settlement of Tailings Particles
2.2. Settlement and Plugging of Coarse Tailings
2.3. Transport Flow Pattern of Backfill Slurry
2.4. Selection of Filling Industrial Pump
2.5. Selection of Filling Pipeline
3. Reliability Analysis of Backfill Pipeline System
3.1. Filling Pipe Layout
3.1.1. Borehole and Roadway Layout
3.1.2. Ground Surface and Borehole Layout
3.1.3. Adit and Inclined Shaft Layout Scheme
3.2. Artesian Transportation and Pipe Wear
3.3. Pumping System and Pressure Relief Device
3.4. Emergency Treatment of Underground Filling Pipeline Accident
4. Stope Backfill Process and Technology
4.1. Backfill Retaining Wall Construction
4.2. Stope Drainage Water
4.3. Damage and Failure Characteristics and Bearing Mechanism of Backfill Body
4.4. Evaluation of Stope Backfill Effect
- (1)
- The indoor filling ratio test is one of the most effective means to objectively evaluate the stope filling effect. Uniaxial/triaxial compression tests were carried out to analyze the damage modes and failure modes of backfill under different confining pressures and loading conditions by focusing on the particle size composition, particle size grading, chemical composition, mass concentration, cement–sand ratio, internal friction angle, cohesion, etc., which affect the damage and failure characteristics of backfill. Impact load test was carried out to analyze the energy consumption threshold of filling under different loading rates and to construct the corresponding damage evolution equation. Acoustic emission tests were carried out to analyze the proportional relationship of strain energy released during crack propagation in the backfill. Transient information capture tools such as high-speed camera, ultra-dynamic strain gauge, and infrared imaging were used to analyze and analyze the microstructure changes and mesoscopic damage evolution of backfill.
- (2)
- Numerical simulation. Under the dynamic response of stope excavation and unloading, the rigid surrounding rock deforms and compresses the filling body to release elastic potential energy, while the soft plastic filling body absorbs and accumulates deformation energy continuously, forming a complex system involving stress field, displacement field, and energy field. Combined with the random damage model of cemented backfill and the compression deformation equation of uncemented backfill, numerical simulation software was used to conduct multiphysical field numerical simulation under the coupling action of surrounding rock and backfill, in order to reveal the release, absorption, and dissipation law of strain energy under the coupling action of rigid and flexible media.
- (3)
- Field industrial test. By selecting the typical standard of ore block and stope, according to the specification of two-step mining stope mining process, excavation unloading stope ground pressure monitoring network and real-time monitoring of stope roof and two displacement is established. Through field observation and contrast filling stope stability, real-time deformation monitoring and analysis is carried out, and soft surrounding rock-filling body medium interaction, bearing, and the coupling effect of regional support together are determined.
5. Discussion and Conclusions
- (1)
- Calculation problems of backfill slurry transportation.
- (2)
- Reliability analysis of backfill pipeline system.
- (3)
- Stope backfill process and technology.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Yu, H.; Li, S.; Wang, X. The Recent Progress China Has Made in the Backfill Mining Method, Part III: Practical Engineering Problems in Stope and Goaf Backfill. Minerals 2022, 12, 88. https://doi.org/10.3390/min12010088
Yu H, Li S, Wang X. The Recent Progress China Has Made in the Backfill Mining Method, Part III: Practical Engineering Problems in Stope and Goaf Backfill. Minerals. 2022; 12(1):88. https://doi.org/10.3390/min12010088
Chicago/Turabian StyleYu, Haoxuan, Shuai Li, and Xinmin Wang. 2022. "The Recent Progress China Has Made in the Backfill Mining Method, Part III: Practical Engineering Problems in Stope and Goaf Backfill" Minerals 12, no. 1: 88. https://doi.org/10.3390/min12010088
APA StyleYu, H., Li, S., & Wang, X. (2022). The Recent Progress China Has Made in the Backfill Mining Method, Part III: Practical Engineering Problems in Stope and Goaf Backfill. Minerals, 12(1), 88. https://doi.org/10.3390/min12010088