Research on the method of determining the block size for an open-pit mine integrating mining parameters and shovel-truck’s operation efficiency
The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. I...
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Published in | Scientific reports Vol. 14; no. 1; pp. 10119 - 18 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
London
Nature Publishing Group UK
02.05.2024
Nature Publishing Group Nature Portfolio |
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Abstract | The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. Instead of using regular block models, the shell model is directly cut, and the discrete geological body is referred to as the "mining model." Mining parameters and the shovel-truck's performance are integrated into the method. Bench height determines the Z-axis size, bench slope angle determines the inclination angle, and shovel width determines the X-axis size of the block model. The operation efficiency of the shovel-truck considers the probability distribution of simultaneous operations, allowing the determination of the Y-axis size of block models for different types of shovels. The developed "Mining Model" module in the software "Life Cycle Mining System" is used for practical implementation. By comparing the results with traditional block models, the superiority of the proposed method is demonstrated. This study provides a more accurate model for optimizing the production plan of open-pit mines throughout their life cycle. |
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AbstractList | Abstract The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. Instead of using regular block models, the shell model is directly cut, and the discrete geological body is referred to as the "mining model." Mining parameters and the shovel-truck's performance are integrated into the method. Bench height determines the Z-axis size, bench slope angle determines the inclination angle, and shovel width determines the X-axis size of the block model. The operation efficiency of the shovel-truck considers the probability distribution of simultaneous operations, allowing the determination of the Y-axis size of block models for different types of shovels. The developed "Mining Model" module in the software "Life Cycle Mining System" is used for practical implementation. By comparing the results with traditional block models, the superiority of the proposed method is demonstrated. This study provides a more accurate model for optimizing the production plan of open-pit mines throughout their life cycle. The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. Instead of using regular block models, the shell model is directly cut, and the discrete geological body is referred to as the "mining model." Mining parameters and the shovel-truck's performance are integrated into the method. Bench height determines the Z-axis size, bench slope angle determines the inclination angle, and shovel width determines the X-axis size of the block model. The operation efficiency of the shovel-truck considers the probability distribution of simultaneous operations, allowing the determination of the Y-axis size of block models for different types of shovels. The developed "Mining Model" module in the software "Life Cycle Mining System" is used for practical implementation. By comparing the results with traditional block models, the superiority of the proposed method is demonstrated. This study provides a more accurate model for optimizing the production plan of open-pit mines throughout their life cycle. Abstract The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. Instead of using regular block models, the shell model is directly cut, and the discrete geological body is referred to as the "mining model." Mining parameters and the shovel-truck's performance are integrated into the method. Bench height determines the Z-axis size, bench slope angle determines the inclination angle, and shovel width determines the X-axis size of the block model. The operation efficiency of the shovel-truck considers the probability distribution of simultaneous operations, allowing the determination of the Y-axis size of block models for different types of shovels. The developed "Mining Model" module in the software "Life Cycle Mining System" is used for practical implementation. By comparing the results with traditional block models, the superiority of the proposed method is demonstrated. This study provides a more accurate model for optimizing the production plan of open-pit mines throughout their life cycle. The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. Instead of using regular block models, the shell model is directly cut, and the discrete geological body is referred to as the "mining model." Mining parameters and the shovel-truck's performance are integrated into the method. Bench height determines the Z-axis size, bench slope angle determines the inclination angle, and shovel width determines the X-axis size of the block model. The operation efficiency of the shovel-truck considers the probability distribution of simultaneous operations, allowing the determination of the Y-axis size of block models for different types of shovels. The developed "Mining Model" module in the software "Life Cycle Mining System" is used for practical implementation. By comparing the results with traditional block models, the superiority of the proposed method is demonstrated. This study provides a more accurate model for optimizing the production plan of open-pit mines throughout their life cycle.The production plan of an open-pit mine depends on the block model, so it's crucial to determine the appropriate method and size for partitioning it. This study proposes a new method based on a closed shell three-dimensional geological model for determining block model size in open-pit mines. Instead of using regular block models, the shell model is directly cut, and the discrete geological body is referred to as the "mining model." Mining parameters and the shovel-truck's performance are integrated into the method. Bench height determines the Z-axis size, bench slope angle determines the inclination angle, and shovel width determines the X-axis size of the block model. The operation efficiency of the shovel-truck considers the probability distribution of simultaneous operations, allowing the determination of the Y-axis size of block models for different types of shovels. The developed "Mining Model" module in the software "Life Cycle Mining System" is used for practical implementation. By comparing the results with traditional block models, the superiority of the proposed method is demonstrated. This study provides a more accurate model for optimizing the production plan of open-pit mines throughout their life cycle. |
ArticleNumber | 10119 |
Author | Chai, Senlin Guo, Shupeng Guo, Weiqiang Liu, Guangwei Li, Jiaming |
Author_xml | – sequence: 1 givenname: Weiqiang orcidid: 0000-0003-0095-2637 surname: Guo fullname: Guo, Weiqiang organization: School of Mining, Liaoning Technical University – sequence: 2 givenname: Guangwei orcidid: 0000-0002-1678-7472 surname: Liu fullname: Liu, Guangwei email: liuguangwei@lntu.edu.cn organization: School of Mining, Liaoning Technical University – sequence: 3 givenname: Jiaming surname: Li fullname: Li, Jiaming organization: School of Mining, Liaoning Technical University – sequence: 4 givenname: Senlin orcidid: 0000-0002-8464-9522 surname: Chai fullname: Chai, Senlin organization: School of Economics & Management, Yancheng Institute of Technology – sequence: 5 givenname: Shupeng surname: Guo fullname: Guo, Shupeng organization: State Grid Energy Hami Coal and Electricity Co., Ltd |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/38698057$$D View this record in MEDLINE/PubMed |
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Cites_doi | 10.1080/17480930601118947 10.1080/0305215X.2016.1142080 10.1057/s41274-017-0201-z 10.1016/j.ejor.2016.12.014 10.1016/j.resourpol.2020.101634 10.1016/j.ijmst.2014.01.008 10.1016/j.ijmst.2022.10.001 10.1016/j.ejor.2022.04.005 10.1016/j.resourpol.2018.02.006 10.1038/s41598-023-35967-y 10.1016/j.omega.2017.10.008 10.1016/j.ijmst.2021.03.011 10.1007/s11590-011-0306-2 10.3390/su141912338 10.1016/j.asoc.2019.105507 10.1007/s11053-016-9296-1 10.1007/978-3-319-99220-4_10 |
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Title | Research on the method of determining the block size for an open-pit mine integrating mining parameters and shovel-truck’s operation efficiency |
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