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Massimo Cuomo

Researcher at University of Catania

Publications -  74
Citations -  2469

Massimo Cuomo is an academic researcher from University of Catania. The author has contributed to research in topics: Finite element method & Constitutive equation. The author has an hindex of 26, co-authored 69 publications receiving 2015 citations. Previous affiliations of Massimo Cuomo include University of L'Aquila.

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Pantographic metamaterials: an example of mathematically driven design and of its technological challenges

TL;DR: P pantographic metamaterials undergo very large deformations while remaining in the elastic regime, are very tough in resisting to damage phenomena, and exhibit robust macroscopic mechanical behavior with respect to minor changes in their microstructure and micromechanical properties.
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B-Spline interpolation of Kirchhoff-Love space rods

TL;DR: In this article, an isogeometric analysis via B-splines of space rods under Kirchhoff-love hypotheses is presented for 3D exact curve elements with geometric torsion.
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Advances in pantographic structures: design, manufacturing, models, experiments and image analyses

Francesco dell’Isola, +52 more
TL;DR: An organic scheme of the whole process of design, fabrication, experiments, models, models and image analyses of pantographic metamaterials is presented.
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An implicit multi patch B-spline interpolation for Kirchhoff–Love space rod

TL;DR: In this paper, a multi-patch implicit G 1 formulation for the analysis of Kirchhoff-love space rod elements is presented, which is based on a polar decomposition of the deformation of the first and last segments of the control polygon, allowing to introduce directly the end rotations as degrees of freedom.
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A variational model based on isogeometric interpolation for the analysis of cracked bodies

TL;DR: In this paper, a variational model for the analysis of crack evolution is presented, which considers strong discontinuities that evolve according to the principles of cohesive fracture mechanics, and a method for tracking the discontinuity is also proposed, based on a local distortion of the parametrization of the geometry obtained determining the position of the control points of the isogeometric interpolation.