论文标题

Deep-XFCT:深学习3D矿物解放分析,具有微X射线荧光和计算机断层扫描

Deep-XFCT: Deep learning 3D-mineral liberation analysis with micro X-ray fluorescence and computed tomography

论文作者

Tung, Patrick Kin Man, Halim, Amalia Yunita, Wang, Huixin, Rich, Anne, Marjo, Christopher, Regenauer-Lieb, Klaus

论文摘要

X射线微型层析成像(Micro-CT)的快速发展为3D分析粒子和晶粒大小的表征,粒子密度和形状因子的测定,矿物关联以及释放以及锁定的新机会开辟了新的机会。矿物解放分析中的当前实践基于2D表示,导致外推到体积特性的系统错误。因此,迫切需要基于层析成像数据的新定量方法来表征矿藏的表征,矿物质加工,尾矿的特征,岩石打字,地层细化,用于在资源行业,环境和材料科学中应用的储层表征。迄今为止,尚无对3D矿物解放分析的简单非破坏性方法。我们提出了一种新的开发,该开发基于使用深度学习将微CT与Micro-X射线荧光(Micro-XRF)结合起来。我们证明了对晶体岩石岩石的成功半自动多模式分析,其中新技术克服了将Feldspar与Micro-CT数据集区分开的艰难任务。该方法是通用的,可以扩展到任何多模式和多仪器分析以进一步完善。我们得出的结论是,Micro-CT和Micro-XRF的组合已经为野外和实验室应用中的3D矿物解放分析提供了新的机会。

The rapid development of X-ray micro-computed tomography (micro-CT) opens new opportunities for 3D analysis of particle and grain-size characterisation, determination of particle densities and shape factors, estimation of mineral associations and liberation and locking. Current practices in mineral liberation analysis are based on 2D representations leading to systematic errors in the extrapolation to volumetric properties. New quantitative methods based on tomographic data are therefore urgently required for characterisation of mineral deposits, mineral processing, characterisation of tailings, rock typing, stratigraphic refinement, reservoir characterisation for applications in the resource industry, environmental and material sciences. To date, no simple non-destructive method exists for 3D mineral liberation analysis. We present a new development based on combining micro-CT with micro-X-ray fluorescence (micro-XRF) using deep learning. We demonstrate successful semi-automated multi-modal analysis of a crystalline magmatic rock where the new technique overcomes the difficult task of differentiating feldspar from quartz in micro-CT data set. The approach is universal and can be extended to any multi-modal and multi-instrument analysis for further refinement. We conclude that the combination of micro-CT and micro-XRF already provides a new opportunity for robust 3D mineral liberation analysis in both field and laboratory applications.

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