Optimizing ventilation in medium- and short-term mine planning

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-03-09 DOI:10.1007/s11081-023-09871-3
John Ayaburi, Aaron Swift, Andrea Brickey, Alexandra Newman, Daniel Bienstock
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Abstract

Mine planners utilize production schedules to determine when activities should be executed, e.g., blocks of ore should be extracted; a medium-term schedule maximizes net present value associated with activity execution while a short-term schedule reacts to unforeseen events. Both types of schedules conform to spatial precedence and resource restrictions. As a result of executing activities, heat accumulates and activities must be curtailed. Airflow flushes heat from the mining areas, but is limited to the capacity of the ventilation system and operational setup. We propose two large-scale production scheduling models: (i) that which prescribes the start dates of activities in a medium-term schedule while considering airspeed, in conjunction with ventilation and refrigeration; and, (ii) that which minimizes deviation between both medium- and short-term schedules, and production goals. We correspondingly present novel techniques to improve model tractability, and demonstrate the efficacy of these techniques on cases that yield short-term schedules congruent with medium-term plans while ensuring the safety of the work environment. We solve otherwise-intractable medium-term instances using an enumeration technique if the gaps are greater than 10%. Our short-term instances solve in 1,800 seconds, on average, to a 0.1% optimality gap, and suggest varying optimal airspeeds based on the maximum heat load on each level.

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中短期矿山规划中的通风优化
矿山规划人员利用生产计划来确定活动的执行时间,如开采矿石块;中期计划最大限度地提高与活动执行相关的净现值,而短期计划则对意外事件做出反应。这两种计划都符合空间优先顺序和资源限制。活动执行的结果是热量累积,活动必须减少。气流可将热量排出采矿区,但受限于通风系统的能力和操作设置。我们提出了两个大型生产调度模型:(i) 在中期计划中规定活动开始日期,同时考虑风速、通风和制冷;(ii) 尽量减少中期和短期计划与生产目标之间的偏差。我们相应地提出了提高模型可操作性的新技术,并演示了这些技术在确保工作环境安全的同时,使短期计划与中期计划一致的案例中的有效性。如果间隙大于 10%,我们会使用枚举技术解决原本棘手的中期实例。我们的短期实例平均耗时 1,800 秒,优化间隙为 0.1%,并根据每层的最大热负荷提出了不同的最佳风速。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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