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    数字矿山软件(QuantyMine)若干关键技术的研发和应用

    张夏林 ,  吴冲龙 ,  翁正平 ,  李章林 ,  綦广 ,  陈国旭 ,  田宜平

    张夏林, 吴冲龙, 翁正平, 李章林, 綦广, 陈国旭, 田宜平, 2010. 数字矿山软件(QuantyMine)若干关键技术的研发和应用. 地球科学, 35(2): 302-310. doi: 10.3799/dqkx.2010.031
    引用本文: 张夏林, 吴冲龙, 翁正平, 李章林, 綦广, 陈国旭, 田宜平, 2010. 数字矿山软件(QuantyMine)若干关键技术的研发和应用. 地球科学, 35(2): 302-310. doi: 10.3799/dqkx.2010.031
    ZHANG Xia-lin, WU Chong-long, WENG Zheng-ping, LI Zhang-lin, QI Guang, CHEN Guo-xu, TIAN Yi-ping, 2010. Research and Application of the Digital Mine Software QuantyMine. Earth Science, 35(2): 302-310. doi: 10.3799/dqkx.2010.031
    Citation: ZHANG Xia-lin, WU Chong-long, WENG Zheng-ping, LI Zhang-lin, QI Guang, CHEN Guo-xu, TIAN Yi-ping, 2010. Research and Application of the Digital Mine Software QuantyMine. Earth Science, 35(2): 302-310. doi: 10.3799/dqkx.2010.031

    数字矿山软件(QuantyMine)若干关键技术的研发和应用

    doi: 10.3799/dqkx.2010.031
    基金项目: 

    国家青年自然科学基金项目 No.40802082/D0215

    详细信息
      作者简介:

      张夏林(1975-),男,副教授,主要从事地学信息技术和数字矿山方面的教学和科研工作.E-mail: zhangxialin@cug.edu.cn

    • 中图分类号: P628;TE19

    Research and Application of the Digital Mine Software QuantyMine

    • 摘要: 数字矿山软件系统的研发是实现数字矿山建设的关键.新近自主开发的国产数字矿山软件QuantyMine系统由7个子系统构成,能基本满足数字矿山建设的要求.该系统在开发中重点研究解决了3个方面的关键技术,包括矿山三维可视化建模技术、快速市场响应机制下的动态资源储量估算技术和支持矿山信息化全程计算机辅助的系统集成化技术.解决上述关键技术问题后,该系统全面实现了矿区综合信息管理、矿山地质图件编绘、矿山三维可视化、多方法的储量估算、矿山开采方案辅助编制、矿山信息网络应用、冶炼厂生产管理等功能.系统开发完成后,在紫金集团下属矿山得到了成功应用.

       

    • 图  1  QuantyMine软件的总体系统组成

      Fig.  1.  Architecture and subsystems of QuantyMine

      图  2  矿山三维实体模型(紫金金铜矿矿体模型)

      Fig.  2.  Three-dimensional ore body model

      图  3  矿体三维块体模型(紫金金铜矿金矿体)

      Fig.  3.  Three-dimensional block model of ore body

      图  4  矿山建模技术的体系结构

      Fig.  4.  System architecture of mine modeling technology

      图  5  数字矿山中虚拟平硐分析(紫金山金铜矿)

      Fig.  5.  Virtual drift analysis in digital mine

      图  6  动态资源储量估算支持下的快速市场响应技术框架图

      Fig.  6.  Work flow of changing market response based on the dynamic reserve estimation technology

      图  7  根据市场价格及成本动态计算边界品位(a)和品位与利润间关系图示例(b)

      Fig.  7.  Cut-off calculating according to the metal price and mine cost (a) and visualizing the relation between grade and profit (b)

      图  8  边界品位为0.40 g/t时的矿体品位模型

      Fig.  8.  Ore body block model under cut-off 0.40 g/t

    • [1] Bi, S.W., Yin, Z.R., He, X.Q., et al., 2004. Conception, frame, connotation and demonstrating applications of digital mine. Science & Technology Review, 6: 39-41, 63 (in Chinese).
      [2] Cai, W.L., Gao, X., Ren, J.G., 2001. Computerized mine modeling and planning at Jiangxi Copper Company Limited Mines. Computer Applications in the Minerals Industries, 29: 179-182. http://www.airitilibrary.com/Publication/Index/WFHYXW3711
      [3] Chen, G.X., Wu, C.L., Zhang, X.L., et al., 2009. Study on realization of mineral resources and reserves estimation system supporting polymetal. China Mining Magazine, 18(4): 99-101 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-ZGKA200904028.htm
      [4] Chen, S.P., 1999. A hundred questions about digital earth. Science Press, Beijing, 179 (in Chinese).
      [5] Duskey, M.R., 2006. Digital-control updates let old shovels give new models a run for their money. Engineering and Mining Journal, 207(5): 66-69. http://www.researchgate.net/publication/293725462_Digital-control_updates_let_old_shovels_give_new_models_a_run_for_their_money
      [6] Fuchs, H., Kedem, Z.M., Naylor, B.F., 1980. On visible surface generation by a priori tree structures. Computer Graphics, 14(3): 124-133. doi: 10.1145/965105.807481
      [7] Lai, Z.H., Liu, X.G., Hua, W.H., et al., 2009. Application of 3D data field visualization technology in digital mines. Metal. Mine., 12: 131-134, 138 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-JSKS200812042.htm
      [8] Li, J., 2007. Design of management information system in rare-earth mine. Geospatial Information, 5(1): 55-57 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DXKJ200701020.htm
      [9] Samal, A.R., Sarangi, P., 2001. Micromine in the world of mineral exploration and mining. Indian Conference on Computer Applications in Mineral Industry, 123-134.
      [10] Scoble, M., 1995. Canadian mining automation evolution: the digital mine en route to minewide automation. CIM Bulletin, 88(990): 30-37. http://www.ingentaconnect.com/content/els/01489062/1995/00000032/00000007/art92600
      [11] Seng, D.W., Li, Z.X., Zhang, S.T., et al., 2005. Framework and key techniques for digital mine operation system. Metal. Mine., 12: 47-50 (in Chinese with English abstract).
      [12] Trenczek, S., Wasilewski, S., 2008. Innovativeness of power supply systems, computer technologies and automation involved in technological processes of coal mining. Gospodarka Surowcami Mineralnymi-Mineral Resources Management, 24(1): 89-102. http://www.researchgate.net/publication/294539439_Innovativeness_of_power_supply_systems_computer_technologies_and_automation_involved_in_technological_processes_of_coal_mining
      [13] Wu, C.L., 1998. Development and applications of geological and mineral resources point-source information system (GMPIS). Earth Science—Journal of China University of Geosciences, 23(2): 193-198 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DQKX802.018.htm
      [14] Wu, C.L., Liu, G., Tian, Y.P., et al., 2005. Discussion on geological information science. Geological Science and Technology Information, 24(3): 1-8 (in Chinese with English abstract).
      [15] Wu, L.X., 2000. The digital earth, digital China and digital mine. Mine Surveying, 1: 6-9 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-KSCL200001001.htm
      [16] Wu, L.X., Shi, W.Z., Gold, C., 2003a. Spatial modeling technologies for 3D GIS and 3D GMS. Geography and Terrtorial Research, 19(1): 5-11 (in Chinese with English abstract). http://dlgt.chinajournal.net.cn/WKC/WebPublication/paperDigest.aspx?paperID=63687317-35D2-4D6E-A6FE-2287CB145729
      [17] Wu, L.X., Yin, Z.R., Zhong, Y.P., 2003b. Restudy on digital mine: characteristics, framework and key technologies. Journal of China Coal Society, 28(1): 1-7 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-MTXB200301000.htm
      [18] Xiang, Z.L., Wang, Y., Wang, R.H., et al., 2009.3D geological modeling and visualization process of mines based on borehole data. Geology and Exploration, 45(1): 75-81 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZKT200901013.htm
      [19] Xiong, Z.Q., 2007. Study on the technology of 3D engineering geological modeling and visualization (Dissertation). Institute of Rock & Soil Mechanics, Chinese Academy of Sciences, Wuhan, 16-17 (in Chinese).
      [20] Zhao, P.D., Chi, S.D., Li, Z.D., et al., 2001. Theories and methods for mineral exploration. China University of Geosciences Press, Wuhan, 245 (in Chinese).
      [21] 毕思文, 殷作如, 何晓群, 等, 2004. 数字矿山的概念、框架、内涵及应用示范. 科技导报, 6: 39-41, 63. https://www.cnki.com.cn/Article/CJFDTOTAL-KJDB200406010.htm
      [22] 陈国旭, 吴冲龙, 张夏林, 等, 2009. 支持多金属的矿产资源储量估算方法研究. 中国矿业, 18(4): 99-101. doi: 10.3969/j.issn.1004-4051.2009.04.028
      [23] 陈述彭, 1999. 数字地球百问. 北京: 科学出版社, 179.
      [24] 赖朝辉, 刘修国, 花卫华, 等, 2009. 三维数据场可视化技术在数字矿山中的应用. 金属矿山, 12: 131-134, 138. https://www.cnki.com.cn/Article/CJFDTOTAL-JSKS200812042.htm
      [25] 李婧, 2007. 稀土矿山管理信息系统设计与研究. 地理空间信息, 5(1): 55-57. doi: 10.3969/j.issn.1672-4623.2007.01.020
      [26] 僧德文, 李仲学, 张顺堂, 等, 2005. 数字矿山系统框架与关键技术研究. 金属矿山, 12: 47-50. https://www.cnki.com.cn/Article/CJFDTOTAL-JSKS200512013.htm
      [27] 吴冲龙, 刘刚, 田宜平, 等, 2005. 论地质信息科学. 地质科技情报, 24(3): 1-8. https://www.cnki.com.cn/Article/CJFDTOTAL-DZKQ200503002.htm
      [28] 吴冲龙, 1998. 地质矿产点源信息系统的开发与应用. 地球科学——中国地质大学学报, 23(2): 193-198. https://www.cnki.com.cn/Article/CJFDTOTAL-DQKX802.018.htm
      [29] 吴立新, 史文中, Gold, C., 2003a. 3D GIS与3D GMS中的空间构模技术. 地理与地理信息科学, 19(1): 5-11. https://www.cnki.com.cn/Article/CJFDTOTAL-TRQG201312026.htm
      [30] 吴立新, 殷作如, 钟亚平, 2003b. 再论数字矿山: 特征、框架与关键技术. 煤炭学报, 28(1): 1-7. https://www.cnki.com.cn/Article/CJFDTOTAL-MTXB200301000.htm
      [31] 吴立新, 2000. 数字地球、数字中国与数字矿区. 矿山测量, 1: 6-9. https://www.cnki.com.cn/Article/CJFDTOTAL-KSCL200001001.htm
      [32] 向中林, 王妍, 王润怀, 等, 2009. 基于钻孔数据的矿山三维地质建模及可视化过程研究. 地质与勘探, 45(1): 75-81. https://www.cnki.com.cn/Article/CJFDTOTAL-DZKT200901013.htm
      [33] 熊祖强, 2007. 工程地质三维建模及可视化技术研究(学位论文). 武汉: 中国科学院岩土力学研究所, 16-17.
      [34] 赵鹏大, 池顺都, 李志德, 等, 2001. 矿产勘查理论与方法. 武汉: 中国地质大学出版社, 245. https://www.cnki.com.cn/Article/CJFDTOTAL-DQKX201805012.htm
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    • 收稿日期:  2009-09-26
    • 刊出日期:  2010-03-01

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