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Crystal Plasticity at Micro- and Nano-scale Dimensions
Crystal Plasticity at Micro- and Nano-scale Dimensions
Autore Armstrong Ronald W
Pubbl/distr/stampa Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021
Descrizione fisica 1 online resource (322 p.)
Soggetto topico Technology: general issues
Soggetto non controllato ab initio calculations
activation volume
alloys
anisotropic elasticity
anode
B2 phase
BCC Fe nanowires
bi-crystal
cohesive strength
compression
conversion reaction
copper single crystal
crack growth
cracking
crystal plasticity simulations
crystal plasticity theory
crystal size dependencies
crystal strength
crystallographic slip
cutting theory
cyclic deformation
de-twinning
discrete dislocation pile-up
dislocation
dislocation emission
dislocation models
dislocation plasticity
dislocations
elastic properties
fatigue
fatigue crack initiation
FeCrAl
fracture
fracture mechanics
free surface
geometrically necessary dislocations
grain boundaries
grain boundary
grain growth
Hall-Petch relation
hardness
HMX
hydrogen embrittlement
in situ electron microscopy
IN718 alloy
indentation creep
indentation size effect
interfacial delamination
intermetallic compounds
internal stress
internal stresses
iron
kitagawa-takahashi diagram
lattice distortive transformations
linear complexions
lithium ion battery
magnesium
mechanical property
metals and alloys
micro-crystals
micro-pillar
micromechanical testing
micropillar
miniaturised testing
molecular dynamics
molecular dynamics simulation
molecular dynamics simulations
multiaxial loading
nano-crystals
nano-indentation
nano-polycrystals
nano-wires
nanocrystalline
nanocutting
nanoflower
nanomaterials
nucleation
persistent slip band
phase-field simulation
pile-ups
pillars
rafting behavior
rapid solidification
size effect
strain hardening
strain hardening behavior
strain rate
strain rate sensitivity
strength
surface hard coating
synchrotron radiation X-ray diffraction
temperature effect
theoretical model
thermal stability
tin sulfide
twin boundaries
twinning
ultrafine-grained materials
void formation
whiskers
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910557446503321
Armstrong Ronald W  
Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Selected Papers from Experimental Stress Analysis 2020
Selected Papers from Experimental Stress Analysis 2020
Autore Kocich Radim
Pubbl/distr/stampa Basel, : MDPI - Multidisciplinary Digital Publishing Institute, 2022
Descrizione fisica 1 online resource (214 p.)
Soggetto topico History of engineering & technology
Technology: general issues
Soggetto non controllato 3D print
ABS-M30
acoustic emission
additive manufacturing
Anand material model
bent crystal analyzer
bent crystal monochromator
billet straightening
biomedical
CFRP
CFRP composite tube
composite
control strategy
crash
curved beam
digital image correlation
digital image correlation method
experimental analysis
failure mechanism
FEM
finite element analysis
finite element method (FEM)
flexible
genetic algorithm
HIC
high resolution
high-cycle fatigue
high-cycle fatigue tests
hill yield criterion
hole-drilling
indentation test
Infrared Nondestructive Testing
infrared thermography
interlaminar strength
isotropic hardening
laser welding
material parameters
mechanics
microstructure
multiaxial fatigue
multiaxial fatigue experiments
multiaxial loading
n/a
NDE
neutron diffraction
PA12
pattern
pedestrian
PhotoStress
plasticity
polyaryletherketone
polyetheretherketone
polyphenylensulfid
pressure vessel steel
residual stresses
S-N curve approximation
simulation
stainless steel 316L
stiffness
straightening process
structure
thermoplastic
three axis setting
three-point bending
tram
unsupervised learning approach
wearable
windshield model
X-ray and neutron diffraction
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910566486703321
Kocich Radim  
Basel, : MDPI - Multidisciplinary Digital Publishing Institute, 2022
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui