DMREF/Collaborative Research: Multi-Scale Modeling and Characterization of Twinning-Induced Plasticity and Fracture in Magnesium Alloys
DMREF/Collaborative Research: Multi-Scale Modeling and Characterization of Twinning-Induced Plasticity and Fracture in Magnesium Alloys
批准号:
1235259
负责人:
Sean Agnew
金额:
$28.94万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-01 至 2016-08-31
中文摘要
设计材料以革新和工程我们的未来(DMREF)合作研究基金的目标是确定能够预测镁合金失效的基本验证的平均场和全场模型。这是开发材料设计概念的关键步骤,以便在安全关键应用或变形处理策略的开发中使用轻质镁合金。在镁合金变形的理解中,一个关键的、基本的空白涉及位错-位错、位错-孪晶、孪晶-孪晶和孪晶界(GB)相互作用及其对应变硬化和损伤引发的影响。现在人们了解到:(i)孪晶变体之间的相互作用,如“自孪晶”和双孪晶,催化宏观剪切局部化;(ii)裂纹形核发生在孪晶- gb和孪晶-孪晶交叉处。预测和缓解这些行为的能力是滞后的。除非这些问题得到解决,否则镁合金将被降级为非安全关键应用的铸造部件。需要多尺度方法,因为关键机制在不同的长度尺度上运行:原子性(位错核心与其他位错的相互作用、双边界和脱聚);2. 微观(位错-位错,位错-孪生,以及孪生-孪生相互作用);3. 细观(导致背应力和裂纹萌生的双亲晶粒和晶粒相容性相互作用);和4。宏观(应用于成形模拟或结合剪切局部化的性能预测设计)。合作伙伴将采用TEM、原位SEM和电子背散射衍射(EBSD)系列成像技术,以及基于中子和同步加速器X射线的表征来指导和验证相应长度尺度下的行为模型。这些模型将极大地有助于使轻质镁合金“可成形”和“可破碎”,从而使社会能够利用性能和效率方面的优势。这可以通过在运输部门更广泛地应用轻质镁合金来帮助减少潜在的有害温室气体排放。此外,正在开发的多尺度建模概念可以修改以应用于许多其他材料,这些材料通过类似的孪生或马氏体转变机制变形:例如be, Co, Ti, U和Zr合金,高级高强度钢(例如TWIP和TRIP)和形状记忆合金。最后,合作旨在培养年轻的科学家和工程师,训练他们在尖端的研究环境中工作,为未来的工业或学术研究提供良好的准备,这越来越需要理论和实验的工作知识。
英文摘要
The goal of this Designing Materials to Revolutionize and Engineer our Future (DMREF) collaborative research grant is to identify fundamentally validated mean-field and full-field models capable of predicting failure in Mg alloys. This is a critical step for developing materials design concepts to enable the use of lightweight Mg alloys in safety critical applications or development of deformation processing strategies. A critical, fundamental gap in the understanding of Mg alloy deformation relates to dislocation-dislocation, dislocation-twin, twin-twin, and twin-grain boundary (GB) interactions and their effects on strain hardening and damage initiation. It is now understood that (i) interactions between twin variants, such "autotwinning" and double twinning, catalyze macroscopic shear localization and (ii) crack nucleation takes place at twin-GB and twin-twin intersections. The ability to predict and mitigate these behaviors lags. Unless these issues are solved, Mg alloys will be relegated to cast components in non-safety critical applications. A multi-scale approach is required, because key mechanisms operate at different length scales: 1. atomistic (dislocation core interactions with other dislocations and with twin boundaries, and decohesion); 2. microscopic (dislocation-dislocation, dislocation-twin, and twin-twin interactions); 3. mesoscopic (twin-parent grain and grain-grain compatibility interactions leading to backstress and crack initation); and 4. macroscopic (applications to forming simulation or performance prediction design incorporating shear localization). The partners will employ TEM, in situ SEM and electron backscattered diffraction (EBSD) serial imaging techniques, and neutron and synchrotron X ray-based characterization to guide and validate models of the behavior at the corresponding length scales.These models will greatly aid efforts to render lightweight Mg alloys "formable" and "crushable," so that society can exploit performance and efficiency benefits. This could help reduce potentially harmful greenhouse gas emissions by broader application of lightweight Mg alloys in the transportation sector. Additionally, the multiscale modeling concepts under development can be modified for application to numerous other materials, which deform by similar mechanisms of twinning or martensitic transformation: such as Be, Co, Ti, U, and Zr alloys, Advanced High Strength Steels (e.g. TWIP and TRIP), and shape memory alloys. Finally, the collaboration seeks to develop young scientists and engineers, trained to work in a cutting-edge research environment, providing them with an excellent preparation for future industrial or academic research, which increasingly requires a working knowledge of both theory and experiment.
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DMREF/Collaborative Research: Low Cost, High Strength and Ductile Mg Alloys
-
批准号:1921926
-
项目类别:Standard Grant
-
资助金额:$129.92万
-
财政年份:2020
-
负责人:Sean Agnew
-
依托单位:
Accounting for Climb and Cross-slip in the Crystal Plasticity of Non-Cubic Metals
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批准号:1810197
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项目类别:Continuing Grant
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资助金额:$41.26万
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财政年份:2018
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负责人:Sean Agnew
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依托单位:
Designing Materials to Revolutionize and Engineer our Future (DMREF) Grantees' Workshop; Arlington, Virginia; September 8 - 10, 2013
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批准号:1352571
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项目类别:Standard Grant
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资助金额:$2.19万
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财政年份:2013
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负责人:Sean Agnew
-
依托单位:
Workshop: Magnesium Alloys Science and Technology - Fundamental Research Issues; Arlington, Virginia; May 19-20, 2011
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批准号:1121133
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项目类别:Standard Grant
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资助金额:$7.44万
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财政年份:2011
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负责人:Sean Agnew
-
依托单位:
Materials World Network: Developing a New Mg Alloy with Optimized Texture for Enhanced Formability
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批准号:0603066
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项目类别:Continuing Grant
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资助金额:$27.0万
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财政年份:2006
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负责人:Sean Agnew
-
依托单位:
CAREER: Understanding the Anomalous Ductility of Select B2 Intermetallic Compounds: Polycrystal Plasticity Modeling and Validation by In-Situ Diffraction Techniques
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批准号:0547981
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项目类别:Continuing Grant
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资助金额:$50.17万
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财政年份:2006
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负责人:Sean Agnew
-
依托单位:
Collaborative Research: Interdisciplinary Investigation of Warm Forming of Magnesium Alloy Sheet
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批准号:0322917
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项目类别:Continuing Grant
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资助金额:$19.5万
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财政年份:2003
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负责人:Sean Agnew
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依托单位:
海外基金