Correlation between spatially resolved morphological and crystallographic texture in porous diesel particulate filter ceramics, and its implications on their microcracking behavior
Correlation between spatially resolved morphological and crystallographic texture in porous diesel particulate filter ceramics, and its implications on their microcracking behavior
批准号:
513605987
负责人:
Professor Dr.-Ing. Giovanni Bruno
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
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
这个建议的基本思想是调查的第一次,高度微裂纹和多孔柴油机微粒过滤器(DPF)陶瓷在介观(亚毫米)和宏观(在整个试样)尺度的形态(孔隙空间)和晶体学(域取向)纹理之间的相关性。我们计划结合使用空间分辨X射线折射和衍射形貌。通过使用这种中观和宏观尺度的信息,(即通过整个样品进行整合,并通过中子和常规X射线衍射或计算机断层扫描数据分析获得),我们还旨在模拟机械的演化。(杨氏模量)和物理(热膨胀)性质,分离并包含孔隙率和微裂纹的影响,从而为这些材料制定新的本构律。一般来说,在公共领域很少有关于DPF的工作,其中很大一部分来自申请人。因此,这个项目将填补一个巨大的空白,在公开可用的科学理解的机械和热性能的微裂纹多孔陶瓷。在墨卡托研究员的帮助下,将开发详细的数值和分析模型,以解释通过新型内聚元素(将在项目期间开发,并提供TEM和SEM数据)的微裂纹扩展。这样的内聚元件将能够模拟裂缝愈合、闭合和重新打开。结合实验和数值计算数据,将进一步阐明微裂纹的机制。事实上,该项目的另一个主要目标是制定本组织法(在中观和宏观两个层面)。一个唯象本构模型将建立在一个有代表性的体积单元。开发的数值框架应作为一个“虚拟实验室”,以评估无法直接测量的数量(如颗粒间键的强度)。将研究具有不同程度的微裂纹、孔隙率和晶体学纹理的DPF陶瓷(高度微裂纹的钛酸铝与高度多孔但轻度微裂纹的堇青石和几乎无微裂纹的碳化硅)。经典的高级微观结构表征(3D光学显微镜、透射和扫描电子显微镜、Hg孔隙率测定)和高温杨氏模量测量也将用于为模型提供输入和验证数据。最后,现有的实验数据也将被用作比较。
英文摘要
The basic idea of this proposal is to investigate for the first time, the correlation between morphological (pore space) and crystallographic (domain orientation) texture for highly microcracked and porous diesel particulate filter (DPF) ceramics at meso (sub-mm) and macro (over the whole specimen) scale. We plan to make combined use of spatially resolved X-ray refraction and diffraction topography. By the use of such meso- and macro-scale information (i.e. integrated through the whole specimens and obtained by neutron and conventional X-ray diffraction or from the analysis of computed tomography data), we also aim at modeling the evolution of mechanical (Young’s modulus) and physical (thermal dilation) properties, separating and encompassing the effects of porosity and microcracking, and thereby elaborating new constitutive laws for such materials. In general, very little work on DPFs is available in the public domain, and a significant part of it comes from the applicant. This project will therefore fill an enormous gap in the publicly available scientific understanding of mechanical and thermal properties of microcracked porous ceramics. With the aid of a Mercator Fellow, detailed numerical and analytical models will be developed to account for microcrack propagation through new types of cohesive elements (to be developed during the project and to be fed with TEM and SEM data). Such cohesive elements will be capable of simulating crack healing, closure, and re-opening. Combining experimental and numerical data, the mechanisms of microcracking will be further elucidated. In fact, another main objective of the project is to formulate constitutive laws (both at a meso- and at macro-scale). A phenomenological constitutive model will be built on a representative volume element. The developed numerical framework should serve as a “virtual laboratory” to assess quantities that are not directly measurable (such as the strength of intergranular bonds). DPF ceramics with varying degrees of microcracking, porosity, and crystallographic texture will be studied (highly microcracked aluminum titanate versus highly porous but mildly microcracked cordierite and virtually non-microcracked silicon carbide). Classic advanced microstructural characterization (3D Optical Microscopy, Transmission and Scanning Electron Microscopy, Hg porosimetry) and high-temperature Youngs’ modulus measurements will also be used to feed the models with input and validation data. Finally, existing experimental data will also be used as a comparison.
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批准号:329546524
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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:2017
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负责人:Professor Dr.-Ing. Giovanni Bruno
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资助金额:$0.0万
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项目类别:Research Grants
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财政年份:--
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负责人:Professor Dr.-Ing. Giovanni Bruno
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依托单位:
海外基金