Modeling High Temperature Materials Behavior for Structural Analysis : Part I: Continuum Mechanics Foundations and Constitutive Models / by Konstantin Naumenko, Holm Altenbach
By: Naumenko, Konstantin
Contributor(s): SpringerLink (Online service)
| Altenbach, Holm
Material type:
E-bookSeries: (Advanced Structured Materials, 1869-8433; 28).Publisher: Cham : Springer International Publishing, 2016Description: 1 recurso en línea (XIII, 371 páginas) : 107 ilustraciones, 5 ilustraciones en color.ISBN: 9783319316291.Subject: Mecánica de medios continuos
| Item type | Current library | Collection | Call number | Copy number | Status | Date due | Barcode | Item holds | |
|---|---|---|---|---|---|---|---|---|---|
LIBRO-E NO PRÉSTAMO
|
Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | TA418.24 .N386 2016 EB (Browse shelf(Opens below)) | .i11614547 | Acceso electrónico | eBOOK .i11614547 |
Browsing Madrid Digital shelves, Shelving location: Acceso Electrónico (UEM) Close shelf browser (Hides shelf browser)
| No cover image available | ||||||||
| TA418.14 B763 2018 EB Plasticity and Fracture | TA418.14 M378 2018 EB Strain Gradient Plasticity-Based Modeling of Damage and Fracture | TA418.2 2019 EB Lectures on Visco-Plastic Fluid Mechanics | TA418.24 .N386 2016 EB Modeling High Temperature Materials Behavior for Structural Analysis : Part I: Continuum Mechanics Foundations and Constitutive Models | TA418.24 S567 2015 EB Thermal Integrity in Mechanics and Engineering | TA418.26 ES Refractories and Industrial Ceramics | TA418.36 2020 EB Stochastic Approach to Rupture Probability of Short Glass Fiber Reinforced Polypropylene based on Three-Point-Bending Tests |
Introduction -- ContinuumMechanics in One Dimension -- Elementary Uni-Axial Constitutive Models -- Three-Dimensional ContinuumMechanics -- Constitutive Models -- Examples of Constitutive Equations for Various Materials -- Appendix: Basic Operations of Tensor Algebra -- Elements of Tensor Analysis.
This monograph presents approaches to characterize inelastic behavior of materials and structures at high temperature. Starting from experimental observations, it discusses basic features of inelastic phenomena including creep, plasticity, relaxation, low cycle and thermal fatigue. The authors formulate constitutive equations to describe the inelastic response for the given states of stress and microstructure. They introduce evolution equations to capture hardening, recovery, softening, ageing and damage processes. Principles of continuum mechanics and thermodynamics are presented to provide a framework for the modeling materials behavior with the aim of structural analysis of high-temperature engineering components.
There are no comments on this title.