Micromechanisms of the electro-plastic effect in magnesium alloys investigated by means of electron microscopy
Micromechanisms of the electro-plastic effect in magnesium alloys investigated by means of electron microscopy
批准号:
319282412
负责人:
Dr. Gregory Gerstein
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
“电塑性效应”是多种同时作用的物理效应的结果,其中一些在量级上相当小。该项目的目标是深入了解各种个体效应对整体观测的相对贡献。这种详细的了解是这种效应未来可能的技术应用的先决条件。主要效应是由施加到样品上的强电流脉冲引起的焦耳加热。虽然由于脉冲持续时间短,宏观温升相对较小,但104 K/s量级的加热速率会导致试样中产生显著的热应力。研究这种贡献将通过提高应变速率试验和载荷路径的变化来完成,以区分由于试样的受限膨胀而引起的快速热应力的影响。将采用原位电子显微镜观察来观察特定微观结构特征的发展,例如由多个电流脉冲引起的孪晶形成。位错相互作用对整体效应有相关贡献,通过试样的电流的方向将改变,同时保持机械载荷并因此保持位错运动恒定。这些实验将可能允许建立这种效应的大小的上限。这将通过观察所有位错运动的宏观响应来实现,这些位错运动是由耦合的机电载荷引起的,以及直接观察统计上显著数量的单独观察到的位错过程。所有这些观察都将使用高灵敏度的微观结构观察工具和通过测量显著更大的数据集来进行。为了提高直接位错观察使用电子通道对比成像(ECCI)的钛实验将包括在内。研究钛还将进一步了解晶格结构与成分的影响。所有研究都将通过晶体塑性模拟和基于机器学习的新图像处理工具进行补充。总的来说,这些建议的实验,支持位错动力学模拟,将允许区分均匀加热,不均匀加热(即。e.形成所谓的“热点”)和剩余的对电塑性效应的非热贡献。
英文摘要
The “electroplastic effect” is the result of a variety of concurrently acting physical effects, some of which are quite small in magnitude. The goal of this project is to gain insights into the relative contributions of the various individual effects to the overall observations. This detailed understanding is a prerequisite for possible future technological applications of this effect.The dominating effect is Joule heating caused by the intense current pulses applied to the specimen. While the macroscopic temperature rise is relatively small due to the short pulse duration, heating rates in the magnitude of 104 K/s lead to significant thermal stresses in the specimen. Investigating this contribution will be accomplished by elevated strain rate testing and variation in load paths to distinguish the effects of fast thermal stresses due to constrained expansion of the specimen.In-situ electron microscopy observations will be employed to observe the development of specific microstructural features such as twin formations resulting from multiple current pulses.To investigate whether direct electron-dislocation interactions have a relevant contribution to the overall effect, the direction of the current through the specimen will be varied while keeping the mechanical loading and therefore the dislocation motion constant. These experiments will likely allow for establishing an upper bound on the magnitude of this effect. This will be accomplished by both observing the macroscopic response of all dislocation motion resulting from the coupled electro-mechanical loading as well as the direct observation of a statistically significant number of individually observed dislocation processes.All these observations will be conducted using highly sensitive microstructure observation tools and by the measurement of significantly larger data sets. To improve direct dislocation observation using electron channelling contrast imaging (ECCI) experiments on titanium will be included. Investigating titanium will also allow further insights into the effect of lattice structure vs. composition. All investigations will be complemented by crystal plasticity simulations and new image processing tools based on machine learning. In total these proposed experiments, supported by dislocation dynamics simulations, will allow to distinguish between effects of homogeneous heating, inhomogeneous heating (i. e. the formation of so-called “hot spots”) and the remaining non-thermal contributions to the electroplastic effect.
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会议论文
Effects of High Current Density Impulses on the Properties and Microstructure of Nickelbase Superalloys
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批准号:264020728
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2015
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负责人:Dr. Gregory Gerstein
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依托单位:
Characterization of the Creep Behavior of a Nickelbase Superalloy under Non-Isothermal Conditions and Modification of the Creep Life by Means of High Current Density Impulses
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批准号:449967666
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:--
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负责人:Dr. Gregory Gerstein
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依托单位:
国内基金
海外基金
蒽醌/石墨烯纳米复合材料电极的电催化氧还原性能及其在异相electro-Fenton-like体系中的应用研究
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批准号:21177017
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项目类别:面上项目
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资助金额:60.0万元
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批准年份:2011
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负责人:张国权
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依托单位:
气体中电爆金属丝制备纳米粉体的机制研究
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批准号:50677034
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项目类别:面上项目
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资助金额:30.0万元
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批准年份:2006
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负责人:邹晓兵
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依托单位: