EarthCube IA: Digital Rocks Portal: a Sustainable Platform for Sharing, Translation, and Analysis of Volumetric Data of Porous Media
EarthCube IA: Digital Rocks Portal: a Sustainable Platform for Sharing, Translation, and Analysis of Volumetric Data of Porous Media
批准号:
1541088
负责人:
Masa Prodanovic
金额:
$62.91万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-01 至 2018-08-31
中文摘要
高分辨率成像技术的最新进展提供了丰富的三维数据集,揭示了岩石和土壤的微观结构。现在可以进行数值实验并构建详细的模型来模拟这些材料孔隙中的流体流动或机械变形等现象。通常称为数字岩石物理学,这个研究框架可以为环境,土木和石油工程中的重要决策提供信息,并解决关键的地质问题。示例包括:控制毒素或有害细菌在流域的传播;设计安全的水坝;提高碳氢化合物的回收率,以及了解岩石形成的历史。然而,研究人员在存储和共享这些数据集时遇到了麻烦,因为它们的尺寸很大,而且缺乏表征图像类型和相关信息的标准。这阻碍了模拟方法的科学交叉验证,并限制了从微米(百万分之一米,构成岩石的单个孔隙和颗粒的大小)到一公里(地质盆地或含水层的水平)的长度尺度研究的发展。 跨越长度尺度的研究对于表征千米尺度的岩石和流动特性非常重要,而千米尺度的岩石和流动特性往往取决于微米尺度的复杂过程。该项目将继续开发一个可持续、开放和易于使用的知识库,称为数字岩石门户网站(https://pep.tacc.utexas.edu/)。该门户将:a)组织不同多孔材料的图像和相关实验测量; B)改善更广泛的地球科学和工程研究人员社区对多孔介质分析结果的访问,这些研究人员不一定在计算机科学或数据分析方面受过培训;以及c)提高生产力、科学探究和基于数据驱动的工程决策。该门户网站将纳入软件工具和管道,使EarthCube及其他机构的研究人员更容易组织、发布和重复使用数据,并使教育工作者更容易为广大受众快速形象化和说明概念。为了实现数据的可持续性和连续访问,该门户网站在德克萨斯大学奥斯汀分校的德克萨斯高级计算中心(TACC)部署和维护的可靠的高性能计算基础设施内实施,该中心由德克萨斯大学系统研究网络基础设施(UTRC)计划提供支持。我们将与德克萨斯大学奥斯汀分校(UTCT)的高分辨率X射线计算机断层扫描设备协调开发和数据集成,该设备是美国最大的学术成像设备之一。最后,一个重要的贡献将是开发一个商业模式,以维持长期保存从研究投资中获得的重要数据集。
英文摘要
Recent advances in high-resolution imaging techniques have provided a wealth of 3D datasets that reveal the microstructure of rocks and soil. It is now possible to conduct numerical experiments and construct detailed models to simulate phenomena such as fluid flow or mechanical deformation in the pore spaces of these materials. Popularly called digital rock physics, this research framework can inform important decisions in environmental, civil and petroleum engineering, as well as address key geological questions. Examples include: containing the spread of toxins or harmful bacteria in watersheds; designing safe dams; improving recovery of hydrocarbons, and understanding the history of rock formation. Researchers, however, have trouble storing and sharing these datasets due to their large sizes and the lack of standards to characterize image types and associated information about them. This impedes scientific cross-validation of the simulation approaches, and limits the development of studies that span length scales from a micrometer (a millionth of a meter, the size of individual pores and grains making up a rock) to a kilometer (the level of a geological basin or aquifer). Studies spanning length scales are important to characterize rock and flow properties at the kilometer scale that often depend on complex processes on the micrometer scale.This project will continue the development of a sustainable, open and easy-to-use repository called the Digital Rocks Portal (https://pep.tacc.utexas.edu/). The portal will: a) organize the images and related experimental measurements of diverse porous materials; b) improve access to porous media analysis results for a wider community of geoscience and engineering researchers not necessarily trained in computer science or data analysis; and c) enhance productivity, scientific inquiry, and engineering decisions founded on a data-driven basis. The portal will incorporate software tools and pipelines that make it easier for researchers from EarthCube and beyond to organize, publish and reuse data, and for educators to quickly visualize and illustrate concepts for a wide audience. For data sustainability and continuous access, the portal is implemented within the reliable High Performance Computing Infrastructure deployed and maintained at the Texas Advanced Computing Center (TACC) at The University of Texas at Austin, which is supported by The University of Texas System Research Cyberinfrastructure (UTRC) initiative. We will coordinate development and data integration with the High-Resolution X-ray Computed Tomography Facility at The University of Texas at Austin (UTCT), one of the largest academic imaging facilities in the nation. Finally, an important contribution will be the development of a business model for sustaining long-term preservation of important datasets obtained from research investments.
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Collaborative Research: GEO OSE Track 2: Sustainable Open Science Tools to Democratize Use of 3D Geomaterial Data
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批准号:2324786
-
项目类别:Standard Grant
-
资助金额:$117.58万
-
财政年份:2023
-
负责人:Masa Prodanovic
-
依托单位:
CAREER:Advanced interface methods in heterogeneous porous materials: a multi-disciplinary and multi-scale framework
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批准号:1255622
-
项目类别:Standard Grant
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资助金额:$44.91万
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财政年份:2013
-
负责人:Masa Prodanovic
-
依托单位:
国内基金
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