Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm

Abstract To efficiently realize backfilling mining with medium-deep hole caving in a gold mine, the rational determination of stope dimensions is essential. The Vlazov plate theory was employed to analyze the stress state and investigate the relationship between roof thickness and maximum tensile st...

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Main Authors: Ming lan, Hanwen Jia, Ju Ma
Format: Article
Language:English
Published: Nature Portfolio 2025-05-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-02221-6
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author Ming lan
Hanwen Jia
Ju Ma
author_facet Ming lan
Hanwen Jia
Ju Ma
author_sort Ming lan
collection DOAJ
description Abstract To efficiently realize backfilling mining with medium-deep hole caving in a gold mine, the rational determination of stope dimensions is essential. The Vlazov plate theory was employed to analyze the stress state and investigate the relationship between roof thickness and maximum tensile stress under varying stope spans. Since the latter serves as a criterion for evaluating roof strength failure, it is imperative to establish the appropriate range of parameters that ensure the rock mechanics stability during mining operations. Through central composite testing, numerical simulations were conducted to obtain mechanical response characteristics under different stope dimensions. Simultaneously, roof stress distributions and stope stability were analyzed. A second-order response surface model was constructed based on these findings, enabling the formulation of a comprehensive optimization framework. The interaction between variables within this framework was carefully considered when defining the objective functions for optimization. By integrating chaotic mapping into genetic algorithms, a multi-objective optimization approach was implemented, yielding 17 Pareto-optimal solutions. Ultimately, the optimized stope geometry was determined to have a chamber span of 31.89 m, a pillar span of 29.14 m, and a roof thickness of 5.35 m. This configuration represents the optimal balance between mechanical performance and mining efficiency in the context of medium-deep hole caving operations within the gold mine.
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spelling doaj-art-39e0d94d29eb40bb8cbe83b47a6319e12025-08-20T03:10:17ZengNature PortfolioScientific Reports2045-23222025-05-0115111410.1038/s41598-025-02221-6Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithmMing lan0Hanwen Jia1Ju Ma2Shandong Gold Group Co., LtdShandong Gold Group Co., LtdSchool of Resource and Safety Engineering, Central South UniversityAbstract To efficiently realize backfilling mining with medium-deep hole caving in a gold mine, the rational determination of stope dimensions is essential. The Vlazov plate theory was employed to analyze the stress state and investigate the relationship between roof thickness and maximum tensile stress under varying stope spans. Since the latter serves as a criterion for evaluating roof strength failure, it is imperative to establish the appropriate range of parameters that ensure the rock mechanics stability during mining operations. Through central composite testing, numerical simulations were conducted to obtain mechanical response characteristics under different stope dimensions. Simultaneously, roof stress distributions and stope stability were analyzed. A second-order response surface model was constructed based on these findings, enabling the formulation of a comprehensive optimization framework. The interaction between variables within this framework was carefully considered when defining the objective functions for optimization. By integrating chaotic mapping into genetic algorithms, a multi-objective optimization approach was implemented, yielding 17 Pareto-optimal solutions. Ultimately, the optimized stope geometry was determined to have a chamber span of 31.89 m, a pillar span of 29.14 m, and a roof thickness of 5.35 m. This configuration represents the optimal balance between mechanical performance and mining efficiency in the context of medium-deep hole caving operations within the gold mine.https://doi.org/10.1038/s41598-025-02221-6Stope dimensionNumerical analysisResponse surface methodChaotic genetic algorithmMulti-objective optimization
spellingShingle Ming lan
Hanwen Jia
Ju Ma
Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm
Scientific Reports
Stope dimension
Numerical analysis
Response surface method
Chaotic genetic algorithm
Multi-objective optimization
title Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm
title_full Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm
title_fullStr Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm
title_full_unstemmed Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm
title_short Optimization of stope dimensions using response surface method coupling a hybrid chaos-genetic algorithm
title_sort optimization of stope dimensions using response surface method coupling a hybrid chaos genetic algorithm
topic Stope dimension
Numerical analysis
Response surface method
Chaotic genetic algorithm
Multi-objective optimization
url https://doi.org/10.1038/s41598-025-02221-6
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AT hanwenjia optimizationofstopedimensionsusingresponsesurfacemethodcouplingahybridchaosgeneticalgorithm
AT juma optimizationofstopedimensionsusingresponsesurfacemethodcouplingahybridchaosgeneticalgorithm