Share

Understanding Grain Boundary and Stress Concentration Effects on Strengthening Mechanisms in Nanotwinned Metals

Download Understanding Grain Boundary and Stress Concentration Effects on Strengthening Mechanisms in Nanotwinned Metals PDF Online Free

Author :
Release : 2020
Genre : Finite element method
Kind : eBook
Book Rating : /5 ( reviews)

GET EBOOK


Book Synopsis Understanding Grain Boundary and Stress Concentration Effects on Strengthening Mechanisms in Nanotwinned Metals by : Qiongjiali Fang

Download or read book Understanding Grain Boundary and Stress Concentration Effects on Strengthening Mechanisms in Nanotwinned Metals written by Qiongjiali Fang. This book was released on 2020. Available in PDF, EPUB and Kindle. Book excerpt: The superior strength and large tensile plasticity of nanotwinned (nt) face-centered-cubic metals have been explained by different twin size-dependent dislocation mechanisms and their inherent strengthening/softening effects. Grain boundary (GB) plasticity generally induces softening in nanocrystalline metals; however, our current understanding of the role of GBs in plasticity of nt metals remains limited. Contradicting reports exist in literature on how twin size influences stress concentration at GB -- twin boundary (TB) intersections, which facilitates dislocation nucleation. In this thesis, molecular dynamics (MD) simulations and finite element analysis (FEA) were used to study the effects of GB plasticity and stress concentrations, on the mechanical behaviors of four different columnar-grained nt fcc metals. First, the extent of GB plasticity was found to be the same for different TB spacing (TBS). A special GB deformation mechanism, ductile cracking along GB was observed in nt Ni at small TBS, resulting from the higher GB plasticity of nt Ni. In addition, GB plasticity also depends on the strain rate, which contributes to strain rate sensitivity in nt fcc metals. Second, it was found that stress concentration at GB -- TB intersections decreases as TBS decreases in both anisotropic elasticity theory and atomistic simulations, which is contrary to past experimental results. Stress concentration at the intersection of two regions with different TBSs could be estimated simply by geometric average of stress concentrations in adjacent regions with homogeneous CTB distributions, suggesting that the paradox in stress concentration between experiments and our simulation may be related to the uneven TB distribution in experiments. Initial nucleation of twinning partials is predicted to occur at lower strain as TB spacing decreases, when the stress concentrations are smaller, because of a transition from stress-controlled to source-controlled dislocation nucleation. Therefore, this thesis shows that it is necessary to tailor the size and distribution of grains and nanotwins to achieve ideal mechanical properties in columnar-grained nt metals.

Grain Boundaries in Metals

Download Grain Boundaries in Metals PDF Online Free

Author :
Release : 1957
Genre : Technology & Engineering
Kind : eBook
Book Rating : /5 ( reviews)

GET EBOOK


Book Synopsis Grain Boundaries in Metals by : Donald McLean

Download or read book Grain Boundaries in Metals written by Donald McLean. This book was released on 1957. Available in PDF, EPUB and Kindle. Book excerpt:

A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response

Download A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response PDF Online Free

Author :
Release : 2021
Genre :
Kind : eBook
Book Rating : /5 ( reviews)

GET EBOOK


Book Synopsis A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response by :

Download or read book A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response written by . This book was released on 2021. Available in PDF, EPUB and Kindle. Book excerpt: Abstract : Grain boundary segregation is well known to cause significant embrittlement of alloys. But in certain cases, it has also been observed to increase mechanical strength. This project attempts to assess local mechanical behavior of specific grain boundaries with and without segregation in order to understand association between grain boundary chemistry and deformation mechanism utilizing instrumented nanoindentation technique. It is hypothesized that solute segregation strongly affects the grain boundary energy which in turn affects the deformation mechanism processes. This project also utilizes a unique ability provided by the instrumented indentation technique to interrogate local grain boundary strengthening mechanisms proposed by Hall-Petch and Taylor-Ashby using two different indentation geometries. Grain boundary mechanical properties have typically been interpolated from macroscopic mechanical testing on polycrystalline materials, or alternatively, mechanical test procedures carried out on bulk bicrystals. The disadvantages to these types of studies relate to the difficulty in extracting the local response of a particular grain boundary (in the case of polycrystalline materials) or the grain boundary region (in the case of a bicrystal material) from the overall response of the complex interaction between the presence of the grain boundary and the deformation behavior far from the grain boundary. That is, the grain boundary causes a non-local response to the mechanical behavior. This non-local response is particularly evident in bicrystal deformation, where the macroscopic plastic displacement is inconsistent with that observed for single crystal deformation. Moreover, local hardness testing of grain boundary regions in macroscopically deformed materials show that the deformation in the grain boundary region is leads to greater local dislocation density than found in the grain center. This project is designed to use nanoindentation to isolate the mechanical response of the grain boundary as the dependent variable, where indentation geometry, indentation rate, grain boundary misorientation and sample chemistry are the independent experimental variables. It is proposed that this approach can provide insight into long standing hypotheses regarding grain boundary strengthening mechanisms, including the Hall-Petch pile-up theory, grain boundary source theory, grain boundary layer theory and the Ashby-Taylor strain incompatibility theory.

Grain Boundary Mechanics

Download Grain Boundary Mechanics PDF Online Free

Author :
Release : 2007-03-13
Genre : Technology & Engineering
Kind : eBook
Book Rating : 861/5 ( reviews)

GET EBOOK


Book Synopsis Grain Boundary Mechanics by : Myrjam Winning

Download or read book Grain Boundary Mechanics written by Myrjam Winning. This book was released on 2007-03-13. Available in PDF, EPUB and Kindle. Book excerpt:

A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response

Download A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response PDF Online Free

Author :
Release : 2021
Genre : Grain boundaries
Kind : eBook
Book Rating : /5 ( reviews)

GET EBOOK


Book Synopsis A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response by : Prasad Pramod Soman

Download or read book A Resolution of Grain Boundary Strengthening Mechanisms by Nanoindentation Induced Local Mechanical Response written by Prasad Pramod Soman. This book was released on 2021. Available in PDF, EPUB and Kindle. Book excerpt: Grain boundary segregation is well known to cause significant embrittlement of alloys. But in certain cases, it has also been observed to increase mechanical strength. This project attempts to assess local mechanical behavior of specific grain boundaries with and without segregation in order to understand association between grain boundary chemistry and deformation mechanism utilizing instrumented nanoindentation technique. It is hypothesized that solute segregation strongly affects the grain boundary energy which in turn affects the deformation mechanism processes. This project also utilizes a unique ability provided by the instrumented indentation technique to interrogate local grain boundary strengthening mechanisms proposed by Hall-Petch and Taylor-Ashby using two different indentation geometries. Grain boundary mechanical properties have typically been interpolated from macroscopic mechanical testing on polycrystalline materials, or alternatively, mechanical test procedures carried out on bulk bicrystals. The disadvantages to these types of studies relate to the difficulty in extracting the local response of a particular grain boundary (in the case of polycrystalline materials) or the grain boundary region (in the case of a bicrystal material) from the overall response of the complex interaction between the presence of the grain boundary and the deformation behavior far from the grain boundary. That is, the grain boundary causes a non-local response to the mechanical behavior. This non-local response is particularly evident in bicrystal deformation, where the macroscopic plastic displacement is inconsistent with that observed for single crystal deformation. Moreover, local hardness testing of grain boundary regions in macroscopically deformed materials show that the deformation in the grain boundary region is leads to greater local dislocation density than found in the grain center. This project is designed to use nanoindentation to isolate the mechanical response of the grain boundary as the dependent variable, where indentation geometry, indentation rate, grain boundary misorientation and sample chemistry are the independent experimental variables. It is proposed that this approach can provide insight into long standing hypotheses regarding grain boundary strengthening mechanisms, including the Hall-Petch pile-up theory, grain boundary source theory, grain boundary layer theory and the Ashby-Taylor strain incompatibility theory.

You may also like...