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In-situ,real time micro-CT imaging of pore scale processes,the next frontier for laboratory based micro-CT scanning

机译:原位,实时微型CT成像的孔隙尺度过程,下一个用于实验室的微型CT扫描的前沿

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Over the past decade,laboratory based X-ray computed micro-tomography(micro-CT)has given unique insights in the internal structure of complex reservoir rocks,improving the understanding of pore scale processes and providing crucial information for pore scale modelling. Especially in-situ imaging using X-ray optimized Hassler type cells has enabled the direct visualization of fluid distributions at the pore scale under reservoir conditions. While sub-micrometre spatial resolutions are achievable in lab-based micr°CT,the temporal resolutions are still limited to minutes or hours. This time restriction is often a bottleneck for imaging dynamic in-situ processes,thus limiting the applicability to relatively slow pore scale processes occurring in the order of hours to days,or to end points in drainage-imbibition cycles. To overcome this issue,X-ray Engineering(XRE)and Ghent University’s Centre for Xray Tomography(UGCT)have jointly developed a gantry-based micro-CT system. This system’s X-ray tube and detector rotate continuously in a horizontal plane around the fixed sample. The setup still allows to tune the geometrical magnification,with spatial resolutions down to 5 μm. This fixed sample setup is also ideal for in-situ imaging,as the flow cells can be directly connected to high pressure flow tubing and sensor lines,without the need to allow rotational movement relative to the X-ray source and detector. An efficient hardware design with a fast flat panel detector,combined with custom X-ray transparent flow cells to increase X-ray flux and dedicated 4D software tools in acquisition,reconstruction and analysis,allows to reach temporal resolutions in the order of seconds. The possibilities of this new approach in dynamic in-situ imaging are illustrated with flow tests on a carbonate sample. We discuss the challenges in dynamic imaging and present methods to improve X-ray flux and optimize image quality by means of this experiment. Furthermore,we show that the integration of fast imaging experiments with other information from peripheral sensors or from imaging data at different resolutions can help to link behaviour at the pore scale to the effective properties at the core scale,but also facilitates the experimental workflow.
机译:在过去十年中,基于实验室的X射线计算的微型层面(Micro-CT)在复杂的储层岩石的内部结构中具有独特的见解,从而改善了对孔隙率流程的理解,并为孔隙率建模提供了重要信息。特别是使用X射线优化的霍希仑型电池的原位成像使得在储层条件下使孔隙率上的流体分布的直接可视化。虽然在基于实验室的MICR°CT中可以实现亚微米空间分辨率,但时间分辨率仍然限于分钟或数小时。这次限制通常是用于成像动态原位过程的瓶颈,从而将适用性限制于相对慢的孔隙尺度过程,每小时到几天,或者在排水 - 吸入循环中的终点。为了克服这个问题,X射线工程(XRE)和根特大学的X射线断层扫描中心(UGCT)联合开发了一个基于龙门的微型CT系统。该系统的X射线管和检测器在固定样品周围的水平平面中连续旋转。设置仍然允许调节几何放大率,空间分辨率降至5μm。该固定样品设置也是理想的适用于原位成像,因为流动电池可以直接连接到高压流管和传感器线,而无需允许相对于X射线源和检测器的旋转运动。具有快速平板探测器的高效硬件设计,结合自定义X射线透明流量电池,以增加X射线通量和专用的4D软件工具,在采集,重建和分析中,允许按秒的顺序达到时间分辨率。这种新方法在动态原位成像中的可能性被碳酸盐样品上的流动试验说明。我们讨论了动态成像和现有方法的挑战,以通过该实验通过本实验优化图像质量。此外,我们表明快速成像实验与来自外围传感器的其他信息的快速成像实验或不同分辨率的成像数据可以有助于将孔隙尺度的行为链接到核心规模的有效性质,而且还促进了实验工作流程。

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