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Importance and sensitivity of variables defining throw and flyrock in surface blasting by artificial neural network method

机译:人工神经网络方法在表面爆破中定义抛掷物和飞石的变量的重要性和敏感性

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摘要

Rock breakage by explosives is followed by throw or heaving the broken material and occasional flyrock. Heaving is a desired feature of blasting for efficient mucking. However, flyrock is a rock fragment that travels beyond the designated distance from a blast in surface mines, and poses a threat to adjacent habitats. Here, we decipher the importance and sensitivity of the variables and factors used to establish the predictive regime of throw with more emphasis on flyrock. The data collected were modelled using artificial neural network approach. The importance and sensitivity of variables and factors were delineated so that they are in tune with the rationale of the outcome of the blast. A combinatory approach was devised to arrive at minimal variables and factors to reduce the statistical redundancy, and to propose a rational predictive regime for throw and flyrock in surface mines.
机译:炸药使岩石破损后,将破碎的材料抛掷或抛起,并偶而飞石。隆起是高效率抛丸的理想功能。但是,飞石是一块岩石碎片,它从地雷中的爆炸波中飞过指定的距离,并对邻近的栖息地构成威胁。在这里,我们破译了用于建立投掷预测机制(更着重于飞石)的变量和因素的重要性和敏感性。使用人工神经网络方法对收集的数据进行建模。描述了变量和因素的重要性和敏感性,以使其与爆炸结果的原理保持一致。设计了一种组合方法来获得最小的变量和因素,以减少统计上的冗余,并为地雷的投掷和飞石提出合理的预测机制。

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