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Analyse multiéchelle des mécanismes de déformation du sel gemme par mesures de champs surfaciques et volumiques / Micromechanics of halite investigated by 2D and 3D multiscale full field measurementsGaye, Ababacar 20 March 2015 (has links)
Dans ce travail est proposée une méthodologie générale de micromécanique expérimentale multi-échelle des polycristaux. Elle a été appliquée dans le cas d'un polycristal de sel gemme, qui en plus d'avoir des applications industrielles de stockage d'énergie et de déchets, constitue un matériau modèle de micromécanique présentant une déformation plastique aussi bien à l'ambiante qu'à haute température. La déformation ductile à l'échelle de la microstructure opère par la plasticité cristalline intra-granulaire traditionnelle, mais aussi des mécanismes de déformation inter-granulaires, tels que le glissement aux joints de grains. Nous avons dans un premier temps quantifié précisément la part de chacun de ces mécanismes locaux dans la déformation macroscopique du sel en se basant sur la technique de corrélation d'images numériques (CIN), obtenues au cours d'un essai de compression uni-axiale in-situ dans la chambre d'un microscope électronique à balayage (MEB). Afin d'augmenter la précision de cette quantification, des motifs spéciaux gravés aux interfaces des grains par micro-lithograhie ont été proposés. Ensuite, les observations surfaciques (par MEB) ont été étendues au cœur du matériau grâce à la micro-tomographie à rayons X et à la technique de corrélation d'images volumiques (CIV). Pour ce faire, des particules micrométriques de cuivre (3 % en volume) ont été dispersées dans le matériau lors de son élaboration, afin d'avoir un marquage local volumique adapté pour la CIV. Différentes microstructures (en termes de taille moyenne de grain) ont été considérées. De nouvelles procédures de CIV ont permis d'accéder à la répartition tridimensionnelle de la déformation ductile à l'échelle de la microstructure polycristalline avec une précision inferieure à la taille moyenne de grain. Les mécanismes de déformation observés à cœur d'échantillon sous chargement uni-axial sont cohérents avec ceux identifiés par les observations surfaciques. L'importance des mécanismes inter-granulaires dans la déformation ductile et dans l'endommagement diffus du sel a été confirmée. Une caractérisation tridimensionnelle de la microstructure par DCT (Diffraction Contrast Tomography) a été effectuée et comparée à des mesures surfaciques d'orientation cristalline par EBSD (Electron BackScattered Diffraction). Enfin, la comparaison des champs de déformation surfacique et volumique obtenus sur les mêmes échantillons a permis de retrouver les mêmes organisations et développements des localisations de déformation ductile en surface et en volume, et de les relier aux conditions de chargement et à la microstructure / We develop in this study new experimental methodologies for the multi-scale experimental investigation of the micromechanics of polycrystalline materials. These methodologies are applied to synthetic halite (NaCl), which is a convenient model polycristal due to its viscoplastic behavior at both ambient and high temperatures (350°C). In addition, halite is used for industrial applications such as underground energy and waste storage. The ductile deformation at the scale of the microstructure operates not only through conventional intra-granular plasticity, but also through inter-granular deformation mechanisms, such as grain-boundary sliding (GBS). First, we precisely quantify the relative contribution of each of these local mechanisms to the macroscopic deformation of halite. For this purpose, we apply digital image correlation (DIC) technique to high resolution images obtained during uniaxial compression tests in the chamber of a scanning electron microscope (SEM). The DIC algorithms have been modified to account for the discontinuous kinematics at grain boundries. We also propose a method to improve accuracy of GBS quantification, which consists in creating specific artificial patterns across grain-boundaries by electron beam lithography. The results show that GBS is present from the beginning of plastic deformation of the polycrystal. The 2D observations (using SEM) are complemented by 3D volume investigations using X-ray computed microtomography and Digital Volume Correlation (DVC) techniques. In order to obtain local volume markers differing in contrast (density) from NaCl and adapted to DVC, micrometric copper particles (3 % in volume) are dispersed into the material during its elaboration. Various microstructures (in terms of average grain size) are considered. New DVC protocols allow us to obtain the three-dimensional distribution of ductile deformation at the scale of the polycrystalline microstructure, with a spatial resolution finer than the average grain size. 3D and 2D local mechanical fields are compared on the same samples submitted to uniaxial compression. The strain patterns and the deformation mechanisms observed in depth of the sample are consistent with those identified by 2D observations. The results show the same organization and development of strain localization bands in relation with the loading conditions and microstructure, both at the surface and in volume. The importance of inter-granular mechanisms for the plastic deformation and diffuse damage of halite is also confirmed in 3D. Finally, in view of a further numerical model of the plasticity of the polycrystal, the three-dimensional polycrystalline microstructure is characterized by diffraction contrast tomography and compared to 2D measurements obtained by electron BackScattered diffraction
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Creep And Grain Boundary Sliding In A Mg-0.7% Al AlloyKottada, Ravi Sankar 04 1900 (has links) (PDF)
No description available.
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Destabilisation and Failure of Cylindrical Nanopores : A Phase Field StudyJoshi, Chaitanya January 2016 (has links) (PDF)
Phase field models have played an important role in shaping our understanding of a variety of micro structural phenomena in materials. Their attractive features include (a) their ability to capture instabilities in microstructures, and (b) their ability to handle topological transitions { such as splitting or coalescence { gracefully. Therefore, we have chosen to use a phase field model in our study of instabilities in cylindrical pores in nanoporous membranes which eventually lead to their failure. Our study is motivated by recent studies on thermal stability of nanoporous membranes of alumina, titania and zirconia.
The key feature in our model is its ability to incorporate surface discussion as the mechanism for mass transport. We first benchmark the model through a critical comparison of our results on early stages of surface evolution during Rayleigh instability and grain boundary grooving with those from linear theories of these phenomena. We have then used longer simulations (which go beyond early stages, and therefore, can incorporate non-lineare effects) to study instabilities in a hollow cylinder in three different systems: single crystal or amorphous solid (which fails through Rayleigh instability), a model sys-tem with parallel grain boundaries (which fails through grain boundary grooving), and a polycrystal (whose failure depends on a combination of grain growth and grooving). In all the cases, the surface energy is assumed to be isotropic, and the operative mechanism for mass transport is assumed to be surface discussion.
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Ultrafine grained nickel processed by powder metallurgy : microstructure, mechanical properties and thermal stability / Nickel à grains ultrafins : microstructure, propriétés mécaniques et stabilité thermiqueGarcia de la Cruz, Lucia 14 October 2019 (has links)
La synthèse par métallurgie des poudres de nickel à grains ultrafins (UFG) a été effectuée, et l’effet de l’affinement de la microstructure sur le comportement mécanique et les propriétés physiques a été étudié. La possibilité de coupler le broyage et le frittage flash est étudiée avec des résultats prometteurs. Des échantillons de haute densité avec des tailles de grains d = 0.65 – 4 µm, caractérisés par une fraction élevée des joints de grains Σ3 et un faible niveau de contrainte ont été synthétisés. Les propriétés mécaniques des échantillons UFG montrent une bonne combinaison ductilité-résistance mécanique, avec un impact mineur des porosités présentes. L’étude de l’influence de la taille de grain dans le régime UFG sur les propriétés mécaniques montre une limite d’élasticité supérieure à celle attendue et une capacité d’écrouissage plus faible. Ces observations sont cohérentes avec la microstructure déformée à rupture, étudiée par diffraction d’électrons rétrodiffusés et microscopie électronique en transmission. Une haute diffusivité, mesurée par des expériences de traceurs radioactifs, montrent des profils de pénétration très différents liés aux structures de porosités diverses présents dans les échantillons. Ces différentes structures sont aussi responsables de la densification rétrograde observée, uniquement pour les échantillons frittés à partir de poudres broyées. / The present manuscript concerns the synthesis of ultrafine grained (UFG) Ni by powder metallurgy, and the study of the influence of UFG microstructures on the mechanical behavior and physical properties. The possibilities of coupling ball milling and Spark Plasma Sintering are presented showing promising results. Highly dense homogeneous specimens are obtained, with average grain sizes d = 0.65 - 4 µm, and microstructures highlighted by a high fraction of Σ3 grain boundaries dependent on grain size. The mechanical properties in tensile testing for UFG samples are evaluated showing a good combination of strength and ductility, with little impact from porosities, the major drawback of powder metallurgy. The influence of grain size in the UFG regime on the mechanical properties is investigated, showing strength values that deviate from the expected behavior for grain refinement. Likewise, a reduced strain hardening capacity is depicted which correlates to the microstructural observations performed on the deformed state. High diffusivity measured by means of radiotracer experiments is observed in the sintered samples, displaying different penetration profiles that relate to diverse porosity structures. Such structures are also responsible for retrograde sintering observed exclusively in samples processed from BM powders.
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INVESTIGATION OF DEFECT-ASSISTED MATERIAL TRANSPORT IN MAGNESIUM OXIDE BY MOLECULAR SIMULATIONSRiet, Adriaan Anthony 07 September 2020 (has links)
No description available.
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<b>Data-driven prediction of the structure-property relationships for grain boundaries in metallic alloys</b>amirreza kazemi (7045022) 09 January 2024 (has links)
<p dir="ltr">Nanocrystalline materials have unique properties such as high ultimate strength and superior hardness. However, they also exhibit some disadvantages, such as low thermal stability. An effective strategy to address this issue is alloying with other materials. Grain boundaries play a pivotal role in property prediction due to their orientation between grains and the complexity of their structure. The prediction of structure-property relationships for GBs with microstructural complexity represents a difficult challenge.</p><p dir="ltr">To understand the effects of dopants on the material properties of grain boundaries, we constructed some bicrystal models for Al and Mg-doped Al (Al-Mg) alloys. Findings from shearing simulations of these GBs indicate that the GB structure and dopant distribution can influence GB migration. Dopants inhibit GB migration at certain GBs, effectively reinforcing these GBs. Shear-coupled GB migration in pure Al, as well as dopant inhibition of GB Al-Mg alloys, both contribute to the mechanisms of GB migration.</p>
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The effect of recycling and processing routes on recrystallization in a secondary 3xxx aluminium alloyRolseth, Anton January 2023 (has links)
Aluminium alloys have the possibility to be infinitely recycled. By only generating 5% of the emissions compared to primary aluminium, great CO2 savings can be made. One of the issues in manufacturing components entirely from post-consumer scrap is the presence of trace elements and impurities. Such elements can be Fe, Cu, Cr, P and Pb. In sheet metal manufacturing, these elements can also react with process agents such as Ti, B, Na and Sr and affect the recrystallization behavior and in turn mechanical properties.In this work, a derivative of the 3003 alloy made entirely from post-consumer scrap has been analysed. The alloy achieved insufficient formability due to lack of recrystallization and grain growth. With the use of scanning electron microscopy (SEM) equipped with energy dispersive spectroscopy (EDS) and electron backscatter diffraction (EBSD) together with focused ion beam (FIB) lamella preparation, the microstructure was characterized.The characterization shows both larger particles of α-Al15Si2M4 (M=Mn,Fe,Cr) from solidification and dispersoids from heat treatment, pinning the grain boundary movement together with Q-AlCuMgSi. With the use of high throughput computational thermodynamics, Thermo-Calc was used to effectively screen compositions lowering the amount of α-Al15Si2M4 and removing the Q-AlCuMgSi phase. The new alloy was cast using directional solidification at different cooling rates to study the particle morphology, which in turn plays a role in the particle break up and distribution during cold working as the interparticle spacing affects the grain growth.Varying cooling rates was seen to affect morphology and distribution. Hot compression was utilized to examine the particle redistribution before cold work. It was however shown that hot compression was not sufficient in redistributing the particles as would be the case in rolling.
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Atomic-scale calculations of interfacial structures and their properties in electronic materialsTao, Liang 10 October 2005 (has links)
No description available.
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Exfoliation corrosion kinetics of high strength aluminum alloysZhao, Xinyan 15 March 2006 (has links)
No description available.
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Understanding the formation of the metastable ferroelectric phase in hafnia–zirconia solid solution thin filmsPark, Min Hyuk, Lee, Young Hwan, Kim, Han Joon, Kim, Yu Jin, Moon, Taehwan, Kim, Keum Do, Hyun, Seung Dam, Mikolajick, Thomas, Schroeder, Uwe, Hwang, Cheol Seong 11 October 2022 (has links)
Hf₁₋ₓZrₓO₂ (x ∼ 0.5–0.7) has been the leading candidate of ferroelectric materials with a fluorite crystal structure showing highly promising compatibility with complementary metal oxide semiconductor devices. Despite the notable improvement in device performance and processing techniques, the origin of its ferroelectric crystalline phase (space group: Pca2₁) formation has not been clearly elucidated. Several recent experimental and theoretical studies evidently showed that the interface and grain boundary energies of the higher symmetry phases (orthorhombic and tetragonal) contribute to the stabilization of the metastable non-centrosymmetric orthorhombic phase or tetragonal phase. However, there was a clear quantitative discrepancy between the theoretical expectation and experiment results, suggesting that the thermodynamic model may not provide the full explanation. This work, therefore, focuses on the phase transition kinetics during the cooling step after the crystallization annealing. It was found that the large activation barrier for the transition from the tetragonal/orthorhombic to the monoclinic phase, which is the stable phase at room temperature, suppresses the phase transition, and thus, plays a critical role in the emergence of ferroelectricity.
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