Hostname: page-component-89b8bd64d-x2lbr Total loading time: 0 Render date: 2026-05-07T14:04:45.553Z Has data issue: false hasContentIssue false

Technological innovation and engineering practice of damage reduction mining and ecosystem restoration in open-pit coal mine

Published online by Cambridge University Press:  03 December 2024

Quansheng Li*
Affiliation:
State Key Laboratory of Water Resource Protection and Utilization in Coal Mining, Beijing, China National Institute of Low Carbon and Clean Energy, Beijing, China National Energy Investment Group Co., Beijing, China
Xiaobin Li*
Affiliation:
State Key Laboratory of Water Resource Protection and Utilization in Coal Mining, Beijing, China National Institute of Low Carbon and Clean Energy, Beijing, China
*
Corresponding author: Quansheng Li; Email: 390529771@qq.com; Xiaobin Li; Email: 20089951@chnenergy.com.cn
Corresponding author: Quansheng Li; Email: 390529771@qq.com; Xiaobin Li; Email: 20089951@chnenergy.com.cn

Abstract

Non-technical summary

To address the issues of declining groundwater levels and the degradation of soil ecological functions caused by open-pit coal mining in China. Based on theoretical analysis, laboratory experiments, on-site monitoring, mathematical modeling, and other means, the concept of coal ecological protection mining of ‘damage reduction mining, three-dimensional protection, systematic restoration’ is proposed. The mining concept has achieved remarkable ecological restoration effects, leading the scientific and technological progress of safe, efficient and green mining in open-pit coal mines.

Technical summary

The mechanism of damage propagation among ‘rock-soil-water’ ecological elements in open-pit coal mining was revealed. Adopting comprehensive damage-reducing mining technology throughout the entire stripping process, mining and drainage, shengli open-pit coal mine has doubled its production capacity, and reduced the land excavation and damage by 60 mu/year, reduced the mining area by 1,128 mu, and raised the groundwater level by 2.6–6 m, and the ecological restoration of the drainage field was advanced by more than 1 year. Adopting the three-dimensional water storage technology involves underground reservoirs, aquifer reconstruction, and near-surface distributed water storage units, baorixile open-pit mine has built the world's first open-pit underground water reservoir, with a water storage capacity of 1.22 million m3, and the speed of groundwater level restoration has been increased by more than 70%. By adopting the systematic restoration technology of geomorphology-soil-vegetation in the discharge site, the soil water content in the demonstration area has been increased by 52%, the survival rate of plants has been increased by 34%, and the vegetation coverage has been increased by more than 40%.

Social media summary

Damage-reducing mining and systematic ecological restoration in open-pit coal mining are essential for the safe, efficient and green development of coal.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
Copyright © The Author(s), 2024. Published by Cambridge University Press
Figure 0

Figure 1. Overall technical route.

Figure 1

Figure 2. Three-dimensional simulation test platform for open-pit mining.

Figure 2

Figure 3. Mechanism of ecological damage conduction in open-pit mining.

Figure 3

Figure 4. Freeze-thaw cycle of slope in Shengli mining area.

Figure 4

Figure 5. Freeze-thaw cycle of slope rock and soil mass (−10 °C).

Figure 5

Figure 6. Early internal drainage method for loose body consolidation and step shaping.

Figure 6

Figure 7. Relationship between grain size and water storage coefficient.

Figure 7

Figure 8. Drawing of dam construction of underground reservoir.

Figure 8

Figure 9. Structural reconstruction model of internal soil dump and nearby natural strata.

Figure 9

Figure 10. Rapid construction equipment and technology of water barrier layer.

Figure 10

Figure 11. Three-dimensional water storage mode of internal soil dump.

Figure 11

Figure 12. Modeling and weighting quantification of multiple drivers of ecological disturbances.

Figure 12

Figure 13. Twin simulation technique for ecological rehabilitation program of open pit mines.

Figure 13

Figure 14. Technical system for systematic restoration of geomorphic soil vegetation.

Figure 14

Figure 15. Effect of ecological mining in Shengli open pit coal mine.

Figure 15

Figure 16. Effect of ecological mining in Baorixile open-pit coal mine. (a) Effectiveness of ecological restoration of soil disposal sites (b) Water storage works at soil disposal sites.