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Strategies for Creating Prescribed Hydraulic Fractures in Cave Mining

机译:在洞穴挖掘中创造规定的液压骨折的策略

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摘要

The cave mining method was traditionally applied to massive low-grade, weak orebodies at shallow depths (less than 500 m) that favour cave propagation under gravity. Currently, this method is being applied to stronger orebodies and is taking place at depths of up to 2000 m below the surface. To ensure continuous cave propagation, preconditioning of the orebody is essential in this latter caving environment to improve rock mass caveability and to decrease fragmentation sizes. Hydraulic fracturing was initiated in the oil industry and is now being used in the cave mining industry as a preconditioning method and for stalled caves reactivation. A limitation of conventional hydraulic fracturing in the cave mining industry is that the hydraulic fracture orientation is uncontrollable and is dictated by the minimum in situ stress orientation. The preconditioning effectiveness of orientation-uncontrollable hydraulic fractures is limited in some geotechnical conditions, and the concept of creating orientation-controllable hydraulic fractures, here termed prescribed hydraulic fractures, is proposed to fill this gap. In this paper, the feasibility of the proposed approaches to creating prescribed hydraulic fractures is presented based on previous studies and numerical modelling. The numerical modelling code reliability in simulating the hydraulic fracture propagation and reorientation process was validated by comparing with laboratory results in the reported literature. In addition, the sensitivity of the prescribed hydraulic fracturing to the in situ stress condition and rock mass properties is examined.
机译:传统上将洞穴挖掘方法应用于浅层深度(小于500米)的大量低级,弱矿石,其在重力下有利于洞穴传播。目前,这种方法正在应用于更强的矿物,并且在表面下方的深度达到高达2000米。为了确保连续的洞穴传播,矿体的预处理在该后腔环境中是必不可少的,以改善岩体质量耐受性并降低碎片尺寸。液压压裂在石油工业中启动,现在正在洞穴矿业作为预处理方法和停滞洞穴再激活。在洞穴挖坑工业中常规液压压裂的限制是液压断裂取向是无法控制的,并且由原位应力取向的最小值决定。取向 - 无法控制的液压骨折的预处理有效性在一些岩土条件下有限,并且提出了在这里被称为规定的液压骨折的创建方向可控液压骨折的概念,以填补这种间隙。本文基于先前的研究和数值模型,提出了所提出的制定规定液压骨折的方法的可行性。通过与报告文献中的实验室结果相比,验证了模拟液压断裂传播和重新定向过程的数值建模代码可靠性。此外,检查规定的液压压裂对原位应力条件和岩石质量特性的敏感性。

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