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The experimental results were also used to inform computational studies designed to predict the mesoscale deformation behavior of lattice structures.
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In principle, the strengthening of metals is accomplished by increasing the resistance of lattice structures to the motion of dislocations.
The deformation behavior of metal lattice structures is extremely complex and challenging to predict, especially since strain is not uniformly distributed throughout the structure.
In comparison with physical compression test results, the proposed methodology of linking the uncertainty quantification with the multi-level stochastic upscaling method enabled an accurate prediction of the elastic behavior of the lattice structure with minimal experimental cost by accounting for the uncertainties induced by the additive manufacturing process.
The compression behavior of Ti 6Al 4V lattice structure with a cell shape of rhombic dodecahedron, which was fabricated by electron beam melting, was investigated at different temperatures.
The mechanical properties and failure behavior of X-type lattice structures are investigated based on theoretical and experimental methods.
The band is a rubbery silicone, peppered with small holes that alternate in rows of one and three in a sort of lattice-structure.
A study of the mechanical fatigue behavior of a Ti 6Al 4V lattice structure designed to exhibit controlled thermal expansion has been performed.
This work describes the theoretical, numerical and experimental in-plane and out-of-plane elastic behavior of a class of anti-tetrachiral lattice structures with in-plane negative Poisson's ratios and anisotropic behavior.
The chapter presents in detail the impact of the reactor lattice structures on the neutronic behavior and in particular on the determination of the multiplication.
To determine the mechanical behavior of the lattice and bulk material, lattice structures as well as compression test specimens are fabricated using fused deposition modeling.
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