New Advances in High-Entropy Alloys
- ISBN978-3-03943-619-4 (Hardback)
- ISBN978-3-03943-620-0 (PDF)
This is a Reprint of the Special Issue New Advances in High-Entropy Alloys that was published in
100−xMox alloys; high entropy alloy; microstructure; mechanical properties; corrosion behavior; high entropy alloy; gamma double prime nanoparticles; elemental partitioning; atom probe tomography; first-principles calculations; high entropy alloy; bcc; phase stability; CALPHAD; composition scanning; laser cladding; high-entropy alloy coating; AZ91D magnesium alloy; wear; corrosion; high-entropy alloy; phase transformation; kinetics; deformation; thermal expansion; high-entropy alloy; diamond; composite; powder metallurgy; spark plasma sintering; high-entropy alloys; additive manufacturing; microstructure; mechanical properties; low-activation high-entropy alloys (HEAs); high-temperature structural alloys; microstructures; compressive properties; heat-softening resistance; high entropy alloy; tensile creep behavior; microstructural evolution; creep mechanism; high-entropy alloys; first-principles calculation; maximum entropy; elastic property; high-entropy alloys; mechanical property; recrystallization; high-entropy alloy; laser metal deposition; elemental powder; graded material; high-entropy alloys; refractory high-entropy alloys; alloys design; elevated-temperature yield strength; solid solution strengthening effect; bulk metallic glass; complex stress field; shear band; flow serration; deformation mechanism; high entropy alloy; multicomponent; ab initio; configuration entropy; matrix formulation; cluster expansion; cluster variation method; monte carlo; thermodynamic integration; (AlCrTiZrV)-Six-N films; microstructure; mechanical property; nanocomposite structure; refractory high entropy alloys; medium entropy alloys, mechanical properties; microstructure; high-entropy alloy; spark plasma sintering; mechanical alloying; mechanical property; microstructure; high-entropy alloys; thin films; hardness; deformation behaviors; nanocrystalline; high-entropy alloy; diamond; coating; interface; mechanical properties; HEA; high entropy alloys; compositionally complex alloys; mechanical characterization; high pressure; polymorphic transition; high-entropy alloy; high entropy alloys; solidification; alloy design; eutectic dendrites; hierarchical nanotwins; high entropy alloys; precipitation kinetics; strengthening mechanisms; elongation prediction; high-entropy alloys; welding; Hall–Petch (H–P) effect; lattice constants; high-entropy ceramic; solid-state diffusion; microstructure; phase evolution; hardness; high-entropy alloys; mechanical behaviors; high-entropy film; low-activation alloys">
This is a Reprint of the Special Issue New Advances in High-Entropy Alloys that was published in