Suppr超能文献

基于实验室的动态 micro-CT 的创新,以加速原位研究。

Innovations in laboratory-based dynamic micro-CT to accelerate in situ research.

机构信息

TESCAN XRE, Bollebergen 2B 9052, Ghent, Belgium.

TESCAN ORSAY HOLDING, Libušina tř. 21, 623 00 Brno - Kohoutovice, Czech Republic.

出版信息

J Microsc. 2020 Mar;277(3):197-209. doi: 10.1111/jmi.12879. Epub 2020 Mar 3.

Abstract

In the past few years, dynamic computed tomography (CT) approaches or uninterrupted acquisitions of deforming materials have rapidly emerged as an essential technique to understand material evolution, facilitating in situ investigations ranging from mechanical deformation to fluid flow in porous materials and beyond. Developments at synchrotron facilities have led this effort, pointing to the future of the technique. In the laboratory, recent developments at TESCAN XRE have made it possible to image, reconstruct and inspect dynamic processes in the laboratory with a temporal resolution below 10 s, meaning that an entire acquisition from 0 to 360° is completed within 10 s. The aim of this study is to explore the challenges and innovations that have led to the ability to perform high speed, dynamic acquisitions. A unique horizontally rotating gantry based micro-CT system was developed to facilitate complex in situ experiments. In doing so, the sample stays fixed while source and detector are uninterruptedly rotating around a vertical axis. In this work, the dynamic CT method with this rotating gantry based system will be described by two application examples: (1) deformation and collapse of a delicate beer foam and (2) in situ baking process of pastry. For the pastry baking process, an oven was needed to reach baking temperature. In a conventional micro-CT system, where the sample rotates, it is not so obvious to rotate an oven with sensor and heating cables. On the other hand, the delicate foam of a collapsing beer head is able to rotate, but because of the tangential convection during fast rotation (<10 s), it could influence the bubble detachment and liquid drainage and thus also the foam degradation. To investigate both processes, a horizontally rotating gantry based micro-CT is required. For both examples it was possible to quantify the key parameters such as pore size and distribution to better understand the rise and fall of porous foams. These examples will highlight the recent progress in adapting micro-CT workflows to accommodate uninterrupted imaging of dynamic events and point to opportunities for future continued development. LAY DESCRIPTION: Micro-CT allows the nondestructive visualisation of internal structures and is being used routinely in the field of Material Science, Geoscience, Life Science and more. Because of its nondestructive aspect, micro-CT is optimal to take repetitive scans of the same sample over time. The combination of taking different scans over time is so called time-resolved CT. By doing so, crucial insights can be obtained on how materials form, deform and perform over time or under certain external conditions. TESCAN XRE have made it possible to image, reconstruct and inspect dynamic processes in the laboratory with a temporal resolution below 10 s. The dynamic CT method will be described through the lens of two application examples: (1) deformation and collapse of a delicate beer foam and (2) in situ baking process of pastry. These examples will highlight the recent progress in adapting micro-CT workflows to accommodate imaging of dynamic events and point to opportunities for future continued development.

摘要

在过去的几年中,动态计算机断层扫描(CT)方法或连续获取变形材料已迅速成为理解材料演化的重要技术,促进了从机械变形到多孔材料中流体流动等原位研究。同步加速器设施的发展推动了这一努力,指向了该技术的未来。在实验室中,TESCAN XRE 的最新发展使得在低于 10 秒的时间分辨率下对实验室中的动态过程进行成像、重建和检查成为可能,这意味着在 10 秒内完成从 0 到 360°的整个采集。本研究的目的是探索导致高速动态采集能力的挑战和创新。开发了一种独特的基于水平旋转架的微 CT 系统,以促进复杂的原位实验。为此,在源和探测器不间断地围绕垂直轴旋转的同时,样品保持固定。在这项工作中,将通过两个应用示例描述基于这种旋转架系统的动态 CT 方法:(1)易碎啤酒泡沫的变形和坍塌,(2)糕点的原位烘焙过程。对于糕点烘焙过程,需要烤箱达到烘焙温度。在样品旋转的传统微 CT 系统中,旋转带有传感器和加热电缆的烤箱并不那么明显。另一方面,快速旋转时(<10 秒),啤酒头的细腻泡沫能够旋转,但由于切向对流,它可能会影响气泡脱离和液体排出,从而也影响泡沫降解。为了研究这两个过程,需要基于水平旋转架的微 CT。对于这两个示例,都可以量化孔径和分布等关键参数,以更好地了解多孔泡沫的上升和下降。这些示例将突出微 CT 工作流程适应连续成像动态事件的最新进展,并指出未来持续发展的机会。

非技术描述

微 CT 允许对内部结构进行非破坏性可视化,并且正在材料科学、地球科学、生命科学等领域得到常规应用。由于其非破坏性的特点,微 CT 非常适合对同一样品进行重复扫描以随时间进行分析。随时间进行多次扫描的组合称为时间分辨 CT。通过这样做,可以获得有关材料随时间或在某些外部条件下如何形成、变形和执行的关键见解。TESCAN XRE 使得在低于 10 秒的时间分辨率下在实验室中对动态过程进行成像、重建和检查成为可能。将通过两个应用示例的视角来描述动态 CT 方法:(1)易碎啤酒泡沫的变形和坍塌,(2)糕点的原位烘焙过程。这些示例将突出微 CT 工作流程适应动态事件成像的最新进展,并指出未来持续发展的机会。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验