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Blast Optimization Using both the Multiple Blasthole Fragmentation (MBF) and Multiple Seed Waveforms (MSW) Models at an Open Pit Metal Mine

机译:在露天坑金属矿井中使用多个Blasthole碎片(MBF)和多种子波形(MSW)模型进行爆炸优化

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A blast optimization project was carried out at an Open Pit Metal Mine using the Multiple Blasthole Fragmentation (MBF) Model and the Multiple Seed Waveform (MSW) blast vibration model. The aim of the project was to optimize rock fragmentation of the ore blasts to significantly increase metal recoveries while keeping the blast vibration levels at the highwall under control. The project also examined the blasts in the waste rock using the Fragmentation model to expand the blast pattern and select economical explosives for drill and blast cost savings while minimizing any adverse effect on the dig rates. Two sets of near field signature blasthole tests were conducted in both hard ore and relatively soft waste rock. The information from the near-field signature blasthole vibration was used as input to both the MBF and MSW models, as site specific geological information interacting with blasting. The implementation of the full blast design is also input to the MBF and MSW models. A production blast for each rock type was monitored for blast vibration and rock fragmentation. The full blast information and the blast results are used to calibrate and validate the models. The Fragmentation and Vibration model were established for the two rock types at the mine. At each site the Fragmentation modeling was conducted in parallel to the Vibration modeling to ensure blast vibrations were under control while the rock fragmentation was improved. The Fragmentation MBF and MSW are each an integral part of the blast optimization tool. Various scenarios using different explosives, hole delays and blast patterns were modeled for rock fragmentation and blast vibration. The recommendations from the modeling project were to be field trialed at the mine. The implementation of the recommendations was expected to help the mine significantly in terms of the mining economics, and high wall stability and safety.
机译:使用多个Blasthole碎片(MBF)模型和多种子波形(MSW)BLAST振动模型在露天坑金属矿区进行爆炸优化项目。该项目的目的是优化矿石的岩石碎片,以显着增加金属回收,同时保持在控制下的高壁处的爆炸振动水平。该项目还使用碎片模型检查废岩中的爆炸,以扩大爆炸模式,选择钻头和爆炸成本节省的经济爆炸物,同时最大限度地减少对挖掘率的任何不利影响。两套近场签名博萨霍尔测试是在硬矿石和相对柔软的废岩中进行的。来自近场签名博拉索振动的信息用作MBF和MSW模型的输入,作为与爆破相互作用的现场特定地质信息。完整爆炸设计的实施也输入了MBF和MSW模型。监测每种岩石类型的生产爆炸,用于爆炸振动和岩石碎片。完整的爆炸信息和爆炸结果用于校准并验证模型。为矿井两种岩石类型建立了碎片和振动模型。在每个站点,碎片建模平行于振动建模进行,以确保在岩石碎片改善​​时进行爆炸振动。碎片MBF和MSW是BLATE优化工具的组成部分。使用不同爆炸物,孔延迟和爆炸模式的各种场景被建模用于岩石碎片和爆炸振动。建模项目的建议是在矿井中试验。预计建议的实施有望在采矿经济学方面有着大幅度帮助矿井,高墙体稳定性和安全性。

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