Research on Energy Transfer Mechanism and Floor Heave Control Technology of Pressure Relief by Floor Slotting in Deep Roadways
Abstract
1. Introduction
2. Roadway Surrounding Rock Conditions
3. Calculation of Elastic Energy of Roadway Surrounding Rock and Analysis of Pressure Relief Slot Dimensions
3.1. Calculation and Analysis of Elastic Energy of Roadway Surrounding Rock in the Elastic State
3.2. Calculation and Analysis of Elastic Energy of Roadway Surrounding Rock in the Elastoplastic State
3.3. Analysis of Pressure Relief Slot Dimensions
4. Simulation Analysis of Energy Distribution Law of Floor Slotting for Pressure Relief
4.1. Establishment of Numerical Model
4.2. Floor Deformation Characteristics and Energy Distribution After Roadway Excavation
4.3. Analysis of Floor-Slotting Pressure Relief Control Technology
5. Industrial Test
5.1. Design of the Slotting Machine
5.2. Field Test
6. Conclusions
- (1)
- By combining theoretical analysis, numerical simulation, and field tests, it is quantitatively revealed that high-energy accumulation in the floor rock mass is the fundamental cause of floor heave. The study shows that slotting pressure relief forms a weak plane structure, converts the accumulated elastic energy into plastic dissipation energy, and transfers it to deeper strata, thereby verifying the effective control mechanism of “energy release–stress redistribution–deformation suppression”.
- (2)
- Slotting pressure relief technology can significantly change the stress distribution state of the surrounding rock, effectively guide the energy-transfer path, reduce the horizontal stress in the high-stress zone of the floor, narrow the range of vertical stress concentration, and improve the mechanical environment of the surrounding rock.
- (3)
- Field strata-pressure monitoring results show that slotting pressure relief technology provides directional deformation space for floor strata, effectively releases horizontal stress, changes the energy release mode of the surrounding rock, suppresses the abrupt release of elastic energy, and thereby reduces the plastic dissipation energy that causes the surrounding rock’s failure, achieving effective control of roadway floor heave deformation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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| 1 | Machine weight: | >20,000 kg |
| 2 | Motor | Power 55 + 160 kW; voltage 660 V/1140 V |
| 3 | Maximum machine width | Limited by the width of the coal mine roadway, the maximum vehicle width must be less than 1400 mm |
| 4 | Maximum machine height | 1800 mm |
| 5 | Maximum operating advance speed | 2 m/h, with stepless speed regulation |
| 6 | Slot width | Nominal 200 mm |
| 7 | Vertical slotting depth | Nominal 2500 mm |
| 8 | Ground contact pressure | 0.2 MPa |
| 9 | Crawler travel speed (stepless speed regulation) | Maximum no-load travel speed 400 m/h |
| 10 | Maximum climbing angle of the vehicle | ±15° |
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Liu, X.; Hao, B.; Zheng, Z.; Wang, C. Research on Energy Transfer Mechanism and Floor Heave Control Technology of Pressure Relief by Floor Slotting in Deep Roadways. Appl. Sci. 2026, 16, 4165. https://doi.org/10.3390/app16094165
Liu X, Hao B, Zheng Z, Wang C. Research on Energy Transfer Mechanism and Floor Heave Control Technology of Pressure Relief by Floor Slotting in Deep Roadways. Applied Sciences. 2026; 16(9):4165. https://doi.org/10.3390/app16094165
Chicago/Turabian StyleLiu, Xuanqi, Bingyuan Hao, Zhenkai Zheng, and Chao Wang. 2026. "Research on Energy Transfer Mechanism and Floor Heave Control Technology of Pressure Relief by Floor Slotting in Deep Roadways" Applied Sciences 16, no. 9: 4165. https://doi.org/10.3390/app16094165
APA StyleLiu, X., Hao, B., Zheng, Z., & Wang, C. (2026). Research on Energy Transfer Mechanism and Floor Heave Control Technology of Pressure Relief by Floor Slotting in Deep Roadways. Applied Sciences, 16(9), 4165. https://doi.org/10.3390/app16094165
