Asset Details
MbrlCatalogueTitleDetail
Do you wish to reserve the book?
Microplasticity in polycrystalline materials from thermal cycling
by
Nascimento, Anderson
, Beyerlein, Irene J.
, Bronkhorst, Curt A.
, Pedgaonkar, Akhilesh
in
Classical and Continuum Physics
/ Computational Science and Engineering
/ Crystal dislocations
/ Crystal lattices
/ Dislocation density
/ Elastic anisotropy
/ Engineering
/ Equilibrium equations
/ Heterogeneity
/ Kinematics
/ Lattice design
/ Original Paper
/ Plastic properties
/ Residual stress
/ Rotation
/ Strain rate
/ Stress distribution
/ Temperature dependence
/ Theoretical and Applied Mechanics
/ Thermal cycling
2025
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
Microplasticity in polycrystalline materials from thermal cycling
by
Nascimento, Anderson
, Beyerlein, Irene J.
, Bronkhorst, Curt A.
, Pedgaonkar, Akhilesh
in
Classical and Continuum Physics
/ Computational Science and Engineering
/ Crystal dislocations
/ Crystal lattices
/ Dislocation density
/ Elastic anisotropy
/ Engineering
/ Equilibrium equations
/ Heterogeneity
/ Kinematics
/ Lattice design
/ Original Paper
/ Plastic properties
/ Residual stress
/ Rotation
/ Strain rate
/ Stress distribution
/ Temperature dependence
/ Theoretical and Applied Mechanics
/ Thermal cycling
2025
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Microplasticity in polycrystalline materials from thermal cycling
by
Nascimento, Anderson
, Beyerlein, Irene J.
, Bronkhorst, Curt A.
, Pedgaonkar, Akhilesh
in
Classical and Continuum Physics
/ Computational Science and Engineering
/ Crystal dislocations
/ Crystal lattices
/ Dislocation density
/ Elastic anisotropy
/ Engineering
/ Equilibrium equations
/ Heterogeneity
/ Kinematics
/ Lattice design
/ Original Paper
/ Plastic properties
/ Residual stress
/ Rotation
/ Strain rate
/ Stress distribution
/ Temperature dependence
/ Theoretical and Applied Mechanics
/ Thermal cycling
2025
Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
Microplasticity in polycrystalline materials from thermal cycling
Journal Article
Microplasticity in polycrystalline materials from thermal cycling
2025
Request Book From Autostore
and Choose the Collection Method
Overview
In this work, we present a finite deformation, fully coupled thermomechanical crystal plasticity framework. The model includes temperature dependence in the kinematic formulation, constitutive law and governing equilibrium equations. For demonstration, we employ the model to study the evolution and formation of residual stresses, residual statistically stored dislocation density and residual lattice rotation due solely to solid state thermal cycling. The calculations reveal the development of microplasticity within the microstructure provided that the temperature change in the thermal cycle is sufficiently large. They also show, for the first time, that the thermal cycling generates an internally evolving strain rate, where the contributions of mechanical strain and plasticity depend on temperature change. The calculations suggest a strong connection between the maximum temperature of a given cycle and the magnitude of the residual stresses generated after the cycle. A pronounced influence of elastic anisotropy on the heterogeneity of the residual stress distribution is also demonstrated here. Finally, we calculate lattice rotation obtained from thermal cycling ranging from
±
0
.
4
∘
and show the relation between changes in predominant slip systems with short range intragranular lattice rotation gradients. The model can benefit metal process design, especially where large strains and/or large temperature changes are involved, such as bulk forming and additive manufacturing.
Publisher
Springer Berlin Heidelberg,Springer Nature B.V
This website uses cookies to ensure you get the best experience on our website.