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Application of the GeoSequencing Module to ensure optimised underground mine schedules with reduced geotechnical risk

机译:Geosequencing模块的应用,确保降低岩土风险的地下矿井时间表

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Conventionally, engineers will impose stope seguencing rules in order to ensure the stability of excavations as mining progresses. Typical rules include fixed direction, primary-secondary and chevron. Using a mine planning software suite, a mine layout is designed, and a set of stope-to-stope precedence links are created, enforcing the applicable rule. The mine planner produces a schedule that meets these and other constraints, in an effort to achieve a high net present value (NPV) for the operation. This time-consuming process limits the planner's ability to assess alternative mining strategies. Further, the process tends to over-constrain the mine schedule, since it is often the case that an alternative set of precedence constraints can enforce the same rule. By over-constraining the schedule, and by not assessing alternative strategies, significant value may be lost.The GeoSequencing Module is software that facilitates the assessment of stope sequencing strategies, through integration with the Schedule Optimization Tool (SOT). The GeoSequencing Module rapidly generates multiple alternative sets of stope-to-stope precedence links that enforce stope sequencing rules selected by the user. Each set of precedence links is referred to as a geosequencing scenario. For each geosequencing scenario, SOT optimises the life-of-mine schedule, allowing the planner to identify the scenario that supports the highest value for the mining operation. Furthermore, the software has been integrated with a boundary element solver, facilitating assessment of the geotechnical stability of the optimised schedules.A case study for an underground mine has been conducted to validate this methodology. The study demonstrates that multiple mining strategies can be conveniently assessed to determine which scenario yields the most desirable outcome for the mining operation in terms of both geotechnical stability and financial assessment.
机译:传统上,工程师将征收Stope SEGECING规则,以确保挖掘的挖掘稳定性。典型规则包括固定方向,初级辅助和雪佛龙。使用矿山规划软件套件,设计了矿井布局,并创建了一组超散的位置链接,强制执行适用的规则。矿山策划师产生符合这些和其他限制的时间表,以实现操作的高净现值(NPV)。这种耗时的过程限制了计划者评估替代采矿策略的能力。此外,该过程倾向于过度约束矿山时间表,因为通常情况是替代的优先约束集可以强制执行相同的规则。通过过度约束时间表,并且不评估替代策略,可能会丢失重大值。地理位置模块是通过与计划优化工具(SOT)集成的促进Stope序列策略评估的软件。 GeoseQuencing模块迅速生成多个替代的超散型优先链路集,该链接强制执行用户选择的Stope排序规则。每组优先级链接被称为地球曲线方案。对于每个Geosequencing方案,SOT优化了矿山寿命的时间表,允许计划员识别支持挖掘操作最高值的场景。此外,该软件已与边界元件求解器集成,促进评估优化的时间表的岩土稳定性。已经进行了对地下矿井的情况研究以验证该方法。该研究表明,可以方便地评估多种采矿策略,以确定哪些方案在岩土稳定性和财务评估方面确定采矿操作的最理想结果。

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