Collaborative Research: Determination of Ni-Fe-Cr Species Dependent Transport Through Control of Temperature, Irradiation, and Grain Size
Collaborative Research: Determination of Ni-Fe-Cr Species Dependent Transport Through Control of Temperature, Irradiation, and Grain Size
批准号:
1105640
负责人:
Dane Morgan
金额:
$37.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2015-08-31
中文摘要
技术概述:Ni-Fe-Cr基fcc合金(例如,ni基和奥氏体钢合金)经常作为结构材料广泛应用于包括核反应堆在内的各种技术中。Ni-Fe-Cr合金显微组织演变的许多方面,特别是在辐照下,是由点缺陷输运控制的,其物种依赖性仍然知之甚少。本项目提出了一种新的方法来确定Ni-Fe-Cr钢合金中与种类相关的扩散系数。它是基于纳米晶体材料的辐射诱导偏析(RIS)的测量和建模。这项工作整合了多种方法来理解Ni-Fe-Cr中的点缺陷输运和RIS,包括晶粒尺寸控制、RIS表征工具(STEM-EDS、聚焦离子束、TEM和原子探针断层扫描)和基于多尺度从头计算的模型(包括簇展开、动力学蒙特卡罗和速率理论建模)。这项工作将为Ni-Fe-Cr物种依赖运输的规模和机制提供新的见解,并为未来的微观结构建模提供信息。非技术概述:Ni-Fe-Cr基钢经常被用作包括核反应堆在内的各种技术的结构材料。这些钢的长期可靠性的基本方面,特别是在辐照下,是由镍,铁和铬的扩散方面仍然知之甚少。pi建议整合材料纳米技术和分子尺度计算机模拟的工具,以提供对极端条件下这些钢中Ni, Fe和Cr如何运输的新见解。这些结果将被整合到更高层次的模型中,以帮助预测钢铁的可靠性和开发新材料。该项目将培养研究生和博士后研究人员在多地点团队中工作,并在材料表征,建模及其相互作用的基础领域工作。这项工作还将进一步促进一些研究人员参与妇女参与核科学组织和先进试验反应堆国家科学用户设施的活动。
英文摘要
TECHNICAL SUMMARY: Ni-Fe-Cr based fcc alloys (e.g., Ni-based and austenitic steel alloys) are frequently used as structural materials in a wide range of technologies, including nuclear reactors. Many aspects of Ni-Fe-Cr alloy microstructural evolution, particularly under irradiation, are controlled by point defect transport with species dependencies that are still poorly understood. In this project a novel approach to determine the species-dependent diffusion coefficients in Ni-Fe-Cr steel alloys is proposed. It is based on measurements and modeling of Radiation Induced Segregation (RIS) of nanocrystalline materials. The proposed work integrates multiple approaches to understanding point defect transport in Ni-Fe-Cr and to RIS, including grain size control, RIS characterization tools (STEM-EDS, Focused Ion Beam, TEM, and Atom Probe tomography), and multiscale ab initio based models (including cluster expansion, kinetic Monte Carlo and rate theory modeling). The work will provide a new level of insight into the magnitude and mechanisms of Ni-Fe-Cr species-dependent transport and inform future microstructural modeling.NON-TECHNICAL SUMMARY: Ni-Fe-Cr based steels are frequently used as structural materials in a wide range of technologies, including nuclear reactors. Essential aspects of the long-term reliability of these steels, particularly under irradiation, are controlled by aspects of Ni, Fe, and Cr diffusion that are still poorly understood. The PIs propose to integrate tools from materials nanotechnology and molecular-scale computer simulation to provide new levels of insight into how Ni, Fe, and Cr are transported in these steels under extreme conditions. The results will be integrated into higher levels models that aid in the prediction of steel reliability and the development of new materials. This project will train graduate students and postdoctoral researchers to work on a multi-location team and in fundamental areas of materials characterization, modeling, and their interaction. This work will also further the involvement by some of the investigators in the Women in Nuclear Science (WINS) organization and activities at the Advanced Test Reactor National Scientific User Facility (NSUF).
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