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Investigating the Role of Grain Boundaries During the Plastic Deformation of Bicrystalline Nanowires Using Molecular Dynamics

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Release : 2012
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Book Synopsis Investigating the Role of Grain Boundaries During the Plastic Deformation of Bicrystalline Nanowires Using Molecular Dynamics by :

Download or read book Investigating the Role of Grain Boundaries During the Plastic Deformation of Bicrystalline Nanowires Using Molecular Dynamics written by . This book was released on 2012. Available in PDF, EPUB and Kindle. Book excerpt:

Atomistic Simulation of the Mechanical Behavior of Asymetric Tilt Grain Boundaries in AL and CU Bicrystals

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Release : 2018
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Book Synopsis Atomistic Simulation of the Mechanical Behavior of Asymetric Tilt Grain Boundaries in AL and CU Bicrystals by : Farzaneh Sharifi

Download or read book Atomistic Simulation of the Mechanical Behavior of Asymetric Tilt Grain Boundaries in AL and CU Bicrystals written by Farzaneh Sharifi. This book was released on 2018. Available in PDF, EPUB and Kindle. Book excerpt: GB structural evolution including coarsening and emission of intrinsic stacking fault facets, nucleation of partial dislocation on primary and secondary slip planes, and full dislocation nucleation loops are of predominant features which are observed. Grain boundaries energy and the stress required for dislocation nucleation are also calculated which are found in agreement with similar experimental and simulation works.

Multiscale modeling of contact plasticity and nanoindentation in nanostructured FCC metals

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Release : 2008
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Book Synopsis Multiscale modeling of contact plasticity and nanoindentation in nanostructured FCC metals by : Virginie Dupont

Download or read book Multiscale modeling of contact plasticity and nanoindentation in nanostructured FCC metals written by Virginie Dupont. This book was released on 2008. Available in PDF, EPUB and Kindle. Book excerpt: ABSTRACT Nanocrystalline thin films are materials with a grain size less than 100 nm which are commonly used to fabricate microscale electro-mechanical devices. At such small scale, nanoindentation is the only standard experimental technique to study the mechanical properties of thin films. However, it is unclear if the continuum laws commonly used in nanoindentation analysis of polycrystalline materials are still valid for nano-grained metals. It is therefore critical to better understand the behavior of nanocrystalline materials under nanoscale contact. This dissertation summarizes the results of atomistic simulations aimed at modeling the nanoindentation of nanocrystalline metal thin films for which the grain size is smaller than the indenter diameter. The nanoindentation of aluminum thin films was first studied using the Quasicontinuum method, which is a concurrent multiscale model where regions of small gradients of deformations are represented as a continuum medium by finite elements, and regions of high gradients of deformation are fully-treated atomistically. Two embeddedatom- method potentials for aluminum were used in order to study the effect of the potential on the nanoindentation behavior. The aim is to better understand the effects of a grain boundary network on the plasticity and the underlying mechanisms from an atomistic perspective. Our results show that a grain boundary network is the primary medium of plasticity at the nanoscale, via shear banding that causes flow serration. We also show that although the dislocation mechanisms are the same, the mechanisms involving grain boundaries are different depending on the interatomic potential. In a second part, abnormal grain growth in aluminum thin films under nanoindentation is studied using both the Quasicontinuum method and parallel molecular dynamics simulations. The effects of the potential, the nature of the indenter and of its size on the grain growth under nanoindentation are investigated. Our results show that the potential used, which can be related to the purity of the material, can reduce grain growth. We also show that the size and material used for the indenter both have significant effects on grain growth. More specifically, grain growth under the indenter is found to occur via atom diffusion if the indenter is of the same material as the thin film. Finally, the sample size effects were studied using parallel molecular dynamics simulations on nickel thin films and nanowires. Single crystals with different sizes are modeled in order to investigate the effects of the free boundaries as well as of the thickness of the samples. It is shown that the yield point and the incipient plasticity mechanisms are similar for all simulations. However, the hardness of the nanowires is found to decrease with the nanowire size during nanoindentation, due to the interaction of prismatic loops and dislocations with the free boundaries. This dissertation has shed light on the plastic deformation mechanisms under nanoscale contact. The results obtained will help the scientific community gain a better understanding of the behavior of nanomaterials, which will lead to the fabrication of more reliable nanodevices.

Crystal Indentation Hardness

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Release : 2018-07-05
Genre : Science
Kind : eBook
Book Rating : 678/5 ( reviews)

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Book Synopsis Crystal Indentation Hardness by : Ronald W. Armstrong

Download or read book Crystal Indentation Hardness written by Ronald W. Armstrong. This book was released on 2018-07-05. Available in PDF, EPUB and Kindle. Book excerpt: This book is a printed edition of the Special Issue "Crystal Indentation Hardness" that was published in Crystals

Understanding the Mechanistic Role of Grain Boundaries on the Strength and Deformation of Nanocrystalline Metals Using Atomistic Simulations

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Release : 2019
Genre : Grain boundaries
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Book Synopsis Understanding the Mechanistic Role of Grain Boundaries on the Strength and Deformation of Nanocrystalline Metals Using Atomistic Simulations by : Satish Rajaram

Download or read book Understanding the Mechanistic Role of Grain Boundaries on the Strength and Deformation of Nanocrystalline Metals Using Atomistic Simulations written by Satish Rajaram. This book was released on 2019. Available in PDF, EPUB and Kindle. Book excerpt: Nanocrystalline (NC) materials, defined structurally by having average grain sizes less than 100nm, exhibit a number of enhanced mechanical properties such as ultrahigh strength, improved wear resistance and greater resistance to fatigue crack initiation compared to coarser grained polycrystalline (PC) materials. NC materials exhibit these improved properties, in part, due to the increased grain boundary (GB) volume fraction. NC materials strength increases with decreasing grain size, known as the Hall-Petch (HP) effect often resulting in a peak strength between 10-20nm. Studies have shown that NC materials strength decreases due to the shift from dislocation-dominant to GB-dominant deformation mechanisms in the plastic flow regime as average grain size decreases below 10-20nm. While the potential improved properties are of interest, the application of NC materials are hindered due to microstructural instability i.e., grain growth to reduce the total energy of the system, thus degrading desired mechanical properties. Numerous studies have looked at avenues to stabilize NC microstructure, namely through thermodynamics and kinetics, alloying has been one significant strategy used to stabilize NC materials. As these processes are used to stabilize NC microstructures to thermally-induce grain growth, they add additional uncertainty as the deformation and GB behavior of pure NC materials are still not fully understood. Experimental work on NC materials is difficult due to the length scale being investigated as it is difficult to manufacture and can be time consuming to analyze with current technology. Atomistic simulations have shown the potential to investigate fundamental behavior at the nanoscale and provide important insight in the mechanisms that drive the mechanical behavior of NC materials. This thesis will use atomistic simulations to study the structure-property relationship of face-centered-cubic (fcc) metals by focusing on GBs to investigate the strength of NC nickel. During the course of this thesis, four aspects that govern NC behavior will be studied, yielding, plasticity, thermal effects, and GB disorder to elucidate deeper insight into the underlying deformation mechanisms that control the strength of FCC NC metals i.e., flow stress, in the grain size regime 6 to 20nm.

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