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Metal Matrix Composites
Metal Matrix Composites
Autore Gupta Manoj
Pubbl/distr/stampa Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020
Descrizione fisica 1 electronic resource (102 p.)
Soggetto topico History of engineering & technology
Soggetto non controllato Mg-3Al-0.4Ce alloy
nano ZnO particles
uniform distribution
strength
titanium matrix composite
constitutive model
interfacial debonding
high temperature
elastoplastic properties
nano-sized SiCp
aluminum matrix composites
mechanical properties
microstructures
Mg-Al-RE alloy
magnesium alloy
damping
Al11La3 phase
nanosize reinforcement
spark plasma sintering
Cu-TiC
in-situ composites
mechanical milling
iron aluminum alloys
cold/hot PM
compressibility factor
wear resistance
Al-Zn-Cr alloys
powder metallurgy
strengthening
extrusion
dry sliding wear
synthesis of core-shell metal nanoparticles
Cu@Ag composite nanoparticle
metal mesh
screen printing
touch screen panel
tungsten composites
tungsten-fibre-net reinforcement
tensile strength
metal matrix composites
nickel
aluminum
carbon nanotubes
ultrasonication
microstructural characterization
Magnesium
Sm2O3 nanoparticles
compression properties
microstructure
ignition
carbon nanotube
nanocomposite
dispersion
interfacial adhesion
phase transformation
physicomechanical properties
nanoparticles
metal matrix nanocomposite (MMNC)
AlN
magnesium alloy AM60
strengthening mechanisms
in situ titanium composites
microstructure analysis
TiB precipitates
7075 Al alloy
reduced graphene oxide
strengthening mechanism
metal matrix nanocomposite
copper
graphene
thermal expansion coefficient
thermal conductivity
electrical resistance
thixoforging
magnesium-based composite
fracture
magnesium-alloy-based composite
Halpin-Tsai-Kardos model
deformation behavior
composite strengthening
fracture behavior
magnesium
high entropy alloy
composite
hardness
compressive properties
tricalcium phosphate
compression
corrosion
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910557714403321
Gupta Manoj  
Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
New Advances in High-Entropy Alloys
New Advances in High-Entropy Alloys
Autore Zhang Yong
Pubbl/distr/stampa Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021
Descrizione fisica 1 electronic resource (652 p.)
Soggetto topico Research & information: general
Soggetto non controllato high-entropy alloys
alloys design
lightweight alloys
high entropy alloys
elemental addition
annealing treatment
magnetic property
microhardness
in situ X-ray diffraction
grain refinement
thermoelectric properties
scandium effect
HEA
high-entropy alloy
CCA
compositionally complex alloy
phase composition
microstructure
wear behaviour
metal matrix composites
mechanical properties
high-entropy films
phase structures
hardness
solid-solution
interstitial phase
transmission electron microscopy
compositionally complex alloys
CrFeCoNi(Nb,Mo)
corrosion
sulfuric acid
sodium chloride
entropy
multicomponent
differential scanning calorimetry (DSC)
specific heat
stacking-fault energy
density functional theory
nanoscaled high-entropy alloys
nanodisturbances
phase transformations
atomic-scale unstable
mechanical alloying
spark plasma sintering
nanoprecipitates
annealing
phase constituent
ion irradiation
hardening behavior
volume swelling
medium entropy alloy
high-pressure torsion
partial recrystallization
tensile strength
high-entropy alloys (HEAs)
phase constitution
magnetic properties
Curie temperature
phase transition
precipitation
strengthening
coherent microstructure
conventional alloys
nanocrystalline materials
high entropy alloy
sputtering
deformation and fracture
strain rate sensitivity
liquid phase separation
immiscible alloys
HEAs
multicomponent alloys
miscibility gaps
multi-principal element alloys
MPEAs
complex concentrated alloys
CCAs
electron microscopy
plasticity methods
plasticity
serration behavior
alloy design
structural metals
CALPHAD
solid-solution alloys
lattice distortion
phase transformation
(CoCrFeNi)100−xMox alloys
corrosion behavior
gamma double prime nanoparticles
elemental partitioning
atom probe tomography
first-principles calculations
bcc
phase stability
composition scanning
laser cladding
high-entropy alloy coating
AZ91D magnesium alloy
wear
kinetics
deformation
thermal expansion
diamond
composite
powder metallurgy
additive manufacturing
low-activation high-entropy alloys (HEAs)
high-temperature structural alloys
microstructures
compressive properties
heat-softening resistance
tensile creep behavior
microstructural evolution
creep mechanism
first-principles calculation
maximum entropy
elastic property
mechanical property
recrystallization
laser metal deposition
elemental powder
graded material
refractory high-entropy alloys
elevated-temperature yield strength
solid solution strengthening effect
bulk metallic glass
complex stress field
shear band
flow serration
deformation mechanism
ab initio
configuration entropy
matrix formulation
cluster expansion
cluster variation method
monte carlo
thermodynamic integration
(AlCrTiZrV)-Six-N films
nanocomposite structure
refractory high entropy alloys
medium entropy alloys, mechanical properties
thin films
deformation behaviors
nanocrystalline
coating
interface
mechanical characterization
high pressure
polymorphic transition
solidification
eutectic dendrites
hierarchical nanotwins
precipitation kinetics
strengthening mechanisms
elongation prediction
welding
Hall–Petch (H–P) effect
lattice constants
high-entropy ceramic
solid-state diffusion
phase evolution
mechanical behaviors
high-entropy film
low-activation alloys
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910557430203321
Zhang Yong  
Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Structure and Mechanical Properties of Transition Group Metals, Alloys, and Intermetallic Compounds
Structure and Mechanical Properties of Transition Group Metals, Alloys, and Intermetallic Compounds
Autore Czujko Tomasz
Pubbl/distr/stampa MDPI - Multidisciplinary Digital Publishing Institute, 2019
Descrizione fisica 1 electronic resource (222 p.)
Soggetto non controllato delamination
laser metal deposition
metal matrix composites (MMCs)
magnesium alloy
laminate
microstructure
CoCrMoSi alloy coatings
high-pressure torsion
twin roll casting
mechanical characterization
AZ91
solidification thermal parameters
deformation behavior
additive manufacturing
fatigue
Ti-6Al-4V
composite
laser engineered net shaping
tribaloy-type alloy
spark plasma sintering
cross-channel extrusion (CCE)
magnesium alloys
Z-pin reinforcement
creep
metal matrix composites
z-pinning
Ti3SiC2
mechanical properties
ultrafine microstructure
hardness
Cu-Al-Ni-Fe bronze alloys
z-pin reinforcement
high pressure torsion
high energy ball milling
phase dissolution
carbon fiber
MAX phase
honeycomb structure
Ti6Al4V alloy
energy absorption
laser processing
physical modeling technique (PMT)
Mg-Zn-Al-Ca alloy
metal–matrix composites (MMCs)
processing map
titanium alloys
AA2519
LENS
T-800 alloy
numerical simulation (FEM)
Cu–Ag alloy
specific intermetallics
calcium
back pressure (BP)
texture
high pressure die casting
fractography
microhardness
heat treatment
structure
flow curve
dynamic tests
strengthening mechanisms
electron microscopy (in situ SEM)
friction stir welding
Laves phase
Laser Engineered Net Shaping (LENSTM)
Inconel 625
severe plastic deformation (SPD)
ISBN 3-03921-147-1
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910346686703321
Czujko Tomasz  
MDPI - Multidisciplinary Digital Publishing Institute, 2019
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui