Atomistic Modeling of Dislocation Motion at Experimental Time-scales

Atomistic Modeling of Dislocation Motion at Experimental Time-scales
Author :
Publisher :
Total Pages : 308
Release :
ISBN-10 : OCLC:1014014974
ISBN-13 :
Rating : 4/5 ( Downloads)

Book Synopsis Atomistic Modeling of Dislocation Motion at Experimental Time-scales by : Sepehr Saroukhani

Download or read book Atomistic Modeling of Dislocation Motion at Experimental Time-scales written by Sepehr Saroukhani and published by . This book was released on 2017 with total page 308 pages. Available in PDF, EPUB and Kindle. Book excerpt: An accurate prediction of the rate of dislocation motion is key to the fidelity of multi-scale plasticity models of metals and alloys. In this dissertation, atomistic simulations and rate theories based on statistical mechanics are used to accurately predict the rate of three main dislocation motion mechanisms: 1) Dislocation motion across precipitates 2) Dislocation motion through a field of obstacles 3) Dislocation motion via kink-pair nucleation For these mechanisms, the accuracy of both conventional and modern rate theories is examined by comparing their predictions to benchmarks obtained from MD simulations. Different variants of the Harmonic Transition State Theory, as the most common rate theory in the literature, are found to provide grossly inaccurate predictions for all three problems. It is shown that the inaccuracy of these approaches stems from their assumptions about the entropy barrier. The original version of HTST estimates the entropy barrier by the harmonic vibrational entropy, which is found to be inaccurate for all three problems due to thermal softening. Other versions of HTST based on simple estimates of the attempt frequency consider smaller values for the vibrational entropy, and hence provide even more inaccurate predictions. Furthermore, all variants of HTST neglect the configurational entropy, which turns out to be significant for the kink-pair nucleation problem. The utility of the Finite Temperature string method for computing a reaction coordinate and a free energy profile was examined for the three problems. The method provides an accurate reaction channel for dislocation-obstacle interactions but fails to provide a reasonable free energy profile. The reasons are investigated and discussed in the first paper presented in this dissertation. The original version of the method fails to provide a reaction channel for the kink-pair nucleation problem because it has not been designed for problems with multiple reaction channels. To address this issue, a modification to the approach based on physical intuitions about the problem is proposed and is shown to be effective. Different variants of the Transition Interface Sampling approach, as a modern rate theory, are found to be capable of accurately predicting the rate for all three problems. TIS and its Path Swapping version are found to be effective for dislocation-precipitate interactions. The method is also accurate in the jerky motion regime of dislocation motion through a field of solutes. For the smooth motion regime, however, the Partial Path version of TIS -- designed for diffusive barriers -- had to be used. In order to provide accurate predictions for the kink-pair nucleation problem, TIS had to be modified based on physical intuitions about the problem because the method has not been designed for problems with multiple reaction channels such as the glide of screw dislocations in BCC transition metals. The performance of the Meyer-Neldel (MN) rule, as the most common entropy estimation approach in material mechanics, is examined for the three problems. It is shown that the method accurately predicts the entropy barrier for dislocation-precipitate interactions but fails to fully explain the entropy barrier for the other two problems. The assumptions and the...


Atomistic Modeling of Dislocation Motion at Experimental Time-scales Related Books

Atomistic Modeling of Dislocation Motion at Experimental Time-scales
Language: en
Pages: 308
Authors: Sepehr Saroukhani
Categories:
Type: BOOK - Published: 2017 - Publisher:

GET EBOOK

An accurate prediction of the rate of dislocation motion is key to the fidelity of multi-scale plasticity models of metals and alloys. In this dissertation, ato
Improving Atomistic Simulations to Predict Deformation and Fracture
Language: en
Pages: 150
Authors: Kristopher Learion Baker
Categories:
Type: BOOK - Published: 2012 - Publisher:

GET EBOOK

Atomistic simulations can illuminate detailed mechanisms of brittle and ductile fracture and plasticity. However, there are many limitations to these simulation
Stochastic Dynamics of Crystal Defects
Language: en
Pages: 110
Authors: Thomas D Swinburne
Categories: Science
Type: BOOK - Published: 2015-07-13 - Publisher: Springer

GET EBOOK

This thesis is concerned with establishing a rigorous, modern theory of the stochastic and dissipative forces on crystal defects, which remain poorly understood
Dislocations, Mesoscale Simulations and Plastic Flow
Language: en
Pages: 320
Authors: Ladislas Kubin
Categories: Science
Type: BOOK - Published: 2013-04-18 - Publisher: OUP Oxford

GET EBOOK

In the past twenty years, new experimental approaches, improved models and progress in simulation techniques brought new insights into long-standing issues conc
Handbook of Materials Modeling
Language: en
Pages: 2903
Authors: Sidney Yip
Categories: Science
Type: BOOK - Published: 2007-11-17 - Publisher: Springer Science & Business Media

GET EBOOK

The first reference of its kind in the rapidly emerging field of computational approachs to materials research, this is a compendium of perspective-providing an