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3D assessment of an underground mine pillar by combination of photogrammetric and geoelectric methods

机译:摄影测量和电气测量方法组合的3D评估地下矿柱

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摘要

The monitoring of underground cavities plays a key role in risk management policies. Mine and underground quarry stakeholders require relevant methodologies and practices to define and assess hazards associated with these structures. To monitor these structures, geophysical methods may offer an interesting compromise among operating cost, invasiveness, and risk assessment reliability. The use of conventional 3D-electric resistivity imaging (ERI) software validated on relatively flat media is not sufficient to efficiently assess complex 3D geometries such as underground mine pillars. We have developed a new approach to evaluate pillar condition by means of a sequential use of two techniques. First, the photogrammetric method yields a detailed 3D model of the pillar geometry from a set of pictures. Second, 3D-ERI is performed based on this suitable geometry. The methodology is tested on a synthetic model to evaluate the effect of various geometry resolutions on the inversion. We also evaluated the combination of the effect of measurement and geometry error. We performed a quasi 3D-ERI survey (three parallel electrode lines) on a real limestone mine pillar to determine the benefits and limitations of the combined procedure. First results revealed the capacity of the photogrammetric methods to obtain a high-precision geometry and its key role during the inversion process. Second results of the real case study revealed that a highly accurate geometry is required to detect accurately conductive anomalies in a complex 3D context.
机译:地下腔的监测在风险管理政策中起着关键作用。矿山和地下采石场利益相关者需要相关的方法和实践来定义和评估与这些结构相关的危害。为了监控这些结构,地球物理方法可以在运营成本,侵犯性和风险评估可靠性之间提供有趣的折衷。在相对平坦的介质上验证的传统3D电阻率成像(ERI)软件的使用不足以有效地评估诸如地下矿柱的复杂的3D几何形状。我们开发了一种通过连续使用两种技术来评估支柱条件的新方法。首先,摄影测量方法从一组图片产生柱几何的详细3D模型。其次,基于该合适的几何形状执行3D-ERI。该方法在合成模型上测试,以评估各种几何分辨率对反转的影响。我们还评估了测量和几何误差效果的结合。我们在真正的石灰石矿山柱上进行了一项准立体化调查(三个平行电极线),以确定组合过程的益处和局限性。第一个结果显示了摄影测量方法的容量,以在反转过程中获得高精度几何形状及其关键作用。实际研究的第二个结果表明,在复杂的3D上下文中检测精确导电的异常需要高度精确的几何形状。

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