Results 141 to 150 of about 196,401 (259)
Selective laser etching fabrication of stacked microporous membranes for multisize particle separation in 3D microfluidics. [PDF]
Duran-Arteaga D +3 more
europepmc +1 more source
Mg–Zn composites with a thickness of 0.21 mm were fabricated using roll bonding of a kirigami‐patterned Mg alloy inlay within a Zn matrix. Thermal activation following this process led to the formation of tailored intermetallic structures, which provided the composite with enhanced flexural strength.
Yaroslav Frolov +4 more
wiley +1 more source
Exploring the limits of magnetic levitation: submicron particle separation and density profiling. [PDF]
Velazquez S, Ashkarran AA.
europepmc +1 more source
Phase‐field simulations coupled with dislocation‐density‐based crystal plasticity modeling reproduce γ′ rafting behavior in single‐crystal Ni‐based superalloys under varied loading conditions. The model captures both macroscopic creep and microscopic morphology evolution, with results matching high‐temperature creep experiments.
Micheal Younan +5 more
wiley +1 more source
Design and Performance Analysis of Spiral Microchannels for Efficient Particle Separation Using Inertial Microfluidics. [PDF]
Ozyilmaz E, Gediz Ilis G.
europepmc +1 more source
Acoustic particle separation [PDF]
Martin B. Barmatz +3 more
openaire +1 more source
Additive manufacturing provides precise control over the placement of continuous fibres within polymer matrices, enabling customised mechanical performance in composite components. This article explores processing strategies, mechanical testing, and modelling approaches for additive manufactured continuous fibre‐reinforced composites.
Cherian Thomas, Amir Hosein Sakhaei
wiley +1 more source
Solute-particle separation in microfluidics enhanced by symmetrical convection. [PDF]
Yao Y +8 more
europepmc +1 more source
Blood Particle Separation Using Dielectrophoresis in A Novel Microchannel: A Numerical Study. [PDF]
Zahedi Siani O +3 more
europepmc +1 more source
Phase Field Failure Modeling: Brittle‐Ductile Dual‐Phase Microstructures under Compressive Loading
The approach by Amor and the approach by Miehe and Zhang for asymmetric damage behavior in the phase field method for fracture are compared regarding their fitness for microcrack‐based failure modeling. The comparison is performed for the case of a dual‐phase microstructure with a brittle and a ductile constituent.
Jakob Huber, Jan Torgersen, Ewald Werner
wiley +1 more source

