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Blasting Improvements by Using Most Active Rock Variations on Blast

机译:通过在爆破中使用最活跃的岩石变化来改善爆破效果

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Rock mass variations have a huge influence on explosives efficiency and on blasting results. Numerous blasting improvements could be gained by taking into account rock mass and its variations. However, extracted rock mass is generally considered as statistically homogenous. The development of a panel of pre-blast survey procedures that every blaster can use, consists in the realization of a process integrated into every day work: for example as well as toe burden or blast hole depth, discontinuities spacing or the weathering expanse have to enter in rule book, if it provides blasting efficiency and security improvements. The first step is to determine influences of every rock mass characteristics on blast. Texture, density or type of porosity imply a particular mechanical behavior, but rock discontinuities have an essential influence on decomposition and work of explosives: sedimentary structures, chemical weathering, fractures and their varied filling, strike and dip, may have contrasting effects on blasting. Next step consist in an estimation of local variations of given rock mass characteristics: it means to make an exhaustive collection of acting discontinuities to understand their relative importance in blasting. The exploited rock is then considered as a variable object. The previous survey procedure allows a better understanding of the system "pre-blast variations of rock mass characteristics / explosives chemical decomposition / blast results". So, blocks structure in the muck-pile and back-breaks are observed to define a hierarchy between different discontinuities influences on blast efficiency: the purpose is to relate the existence of variations among some rock mass characteristics and differences in blasting results (post-blast face geometry, muck-pile rock size...). Blocks in the muck-pile show indices of the cause of their formation: cuts along joints, alterations areas or "pure" fractures directly due to explosive and characterized by fractographic features. Post-blast face survey provides an evaluation of explosives energy dissipation: wasted (blast malfunction), through solely gases action or through a combination of shock waves and gases action. In 2002, this procedure has been used during an optimization program of a stone production on quarry: this Experimental Design based on Statistical process control required to find out the most active rock mass parameters on blast efficiency. This example shows how this rock analysis allows adapting blasting parameters, knowing origin of blast dysfunctions due to rock mass heterogeneities. This methodology already enables to predict blasting malfunctions as poor face movement, poor fragmentation and explosive desensitizing.
机译:岩体变化对炸药效率和爆破效果有很大影响。考虑到岩体及其变化,可以获得许多爆破效果。但是,提取的岩体通常被认为在统计上是同质的。每个爆破人员都可以使用的爆破前勘测程序面板的开发,包括实现集成到日常工作中的流程:例如,脚趾负担或爆破孔深度,不连续间距或风化范围必须如果可以提供爆破效率和安全性改进,请输入规则手册。第一步是确定每种岩体特征对爆炸的影响。质地,密度或孔隙类型暗示着特定的力学行为,但岩石的不连续性对炸药的分解和功用具有至关重要的影响:沉积结构,化学风化,裂缝及其变化的填充,走向和倾角可能对爆破产生相反的影响。下一步包括估算给定岩体特征的局部变化:这意味着详尽收集作用不连续点,以了解其在爆破中的相对重要性。然后,被开采的岩石被视为可变对象。先前的勘测程序可以更好地理解系统“岩体特征的爆炸前变化/爆炸物化学分解/爆炸结果”。因此,观察到了堆桩和反折中的块状结构,以定义不同间断性对爆破效率的影响之间的等级关系:目的是将某些岩体特征之间的变化存在与爆破结果的差异(后爆破)联系起来。面部几何形状,碎屑堆岩石大小...)。渣土堆中的块显示出其形成原因的指标:沿接头,蚀变区的切口或直接由于炸药造成的“纯”裂缝,并具有分形特征。爆炸后面部调查提供了爆炸物能量耗散的评估:仅通过瓦斯作用或通过冲击波和瓦斯作用的组合而造成的浪费(爆炸故障)。在2002年,此程序已用于采石场石材生产的优化程序中:此实验设计基于统计过程控制,需要找出爆破效率方面最活跃的岩体参数。该示例说明了这种岩石分析如何了解岩石质量异质性引起的爆炸功能失调的原因,从而能够适应爆破参数。这种方法已经能够预测爆破故障,例如不良的面部移动,不良的破碎和炸药脱敏。

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