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The Integrated Intelligence Decision Of Underground Metal Mine Stope Structure and Grade Indices

机译:地下金属矿山采场结构及等级指标的综合智能决策

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摘要

The stope structure parameters and grade indices of underground metal mine are concerned to the safety, economy and sociality of the whole mine. The conventional methods to ascertain above parameters are generally according to experience and analogy, which has artificial blindness. Metal mine exploitation is a complex system engineering, the whole mine system includes many subsystems, and some of them has complex nonlinear characteristics. The paper utilizes sublevel caving simulation system and RFPA numerical program to respectively analyze the recovery index and the surrounding rock stability. The ANN model also is used to fitting the nonlinear subsystems such as concentration ratio model because of its self-learning. ability, considering multi-objects including economic efficiency amount of metal and cash flow, proposes the grade indices optimization method. Combining above means, based on database, model base, knowledge base and inference machine, constructs intelligent decision support system. Using the system to appraise the stope structure parameters and optimize the grade indices of Jinshandian Ore Mine of Wuhan City of Hubei Province. It states the method of the paper is feasible, and the analysis results have guiding mean to the ore mine.
机译:地下金属矿的采场结构参数和品位指标关系到整个矿山的安全,经济和社会。确定上述参数的常规方法通常是根据经验和类比,具有人为盲目性。金属矿山开采是一项复杂的系统工程,整个矿山系统包括许多子系统,其中一些子系统具有复杂的非线性特征。本文利用分段崩落模拟系统和RFPA数值程序分别分析了采收率和围岩稳定性。由于具有自学习功能,因此ANN模型也可用于拟合非线性子系统(例如浓度比模型)。综合考虑金属经济效率和现金流量等多目标因素,提出了等级指标优化方法。结合以上手段,基于数据库,模型库,知识库和推理机,构建了智能决策支持系统。利用该系统评价了湖北省武汉市金山店矿的采场结构参数,优化了品位指标。说明本文方法是可行的,分析结果对矿山具有指导意义。

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