D-Index & Metrics Best Publications

D-Index & Metrics

Discipline name D-index D-index (Discipline H-index) only includes papers and citation values for an examined discipline in contrast to General H-index which accounts for publications across all disciplines. Citations Publications World Ranking National Ranking
Engineering and Technology D-index 35 Citations 3,596 72 World Ranking 3403 National Ranking 101

Overview

What is he best known for?

The fields of study he is best known for:

  • Composite material
  • Mathematical analysis
  • Geometry

His primary areas of investigation include Mathematical analysis, Metamaterial, Mathematical model, Homogenization and Process. His Mathematical analysis study integrates concerns from other disciplines, such as Continuum, Lattice, Buckling, Moment of inertia and Anisotropy. His studies deal with areas such as Normal mode, Plane, Slipping and Nonlinear system as well as Buckling.

His Metamaterial study incorporates themes from Mechanical engineering, Numerical integration and Structural material. Resorption, Time evolution, Redistribution, Bone tissue and Biological system are fields of study that overlap with his Mathematical model research. He has researched Homogenization in several fields, including Nonlinear beam, Length scale, Stiffness and Geometry.

His most cited work include:

  • Large deformations of planar extensible beams and pantographic lattices: Heuristic homogenization, experimental and numerical examples of equilibrium (236 citations)
  • Pantographic metamaterials: an example of mathematically driven design and of its technological challenges (163 citations)
  • Dynamic problems for metamaterials: Review of existing models and ideas for further research (148 citations)

What are the main themes of his work throughout his whole career to date?

Metamaterial, Mathematical analysis, Mechanics, Composite material and Nonlinear system are his primary areas of study. His Metamaterial research is multidisciplinary, incorporating elements of Mechanical engineering, Finite element method and Deformation. His Mathematical analysis study combines topics from a wide range of disciplines, such as Anisotropy, Buckling and Homogenization.

His work carried out in the field of Mechanics brings together such families of science as Amplitude, Displacement, Longitudinal wave and Substructure. His Composite material research incorporates elements of Twist, Bone tissue and Lattice. His Nonlinear system research also works with subjects such as

  • Classical mechanics and related Constitutive equation,
  • Discrete modelling, which have a strong connection to Nonlinear beam.

He most often published in these fields:

  • Metamaterial (29.91%)
  • Mathematical analysis (21.50%)
  • Mechanics (22.43%)

What were the highlights of his more recent work (between 2019-2021)?

  • Metamaterial (29.91%)
  • Finite element method (14.02%)
  • Bone remodeling (15.89%)

In recent papers he was focusing on the following fields of study:

His primary areas of study are Metamaterial, Finite element method, Bone remodeling, Mathematical analysis and Bone biomechanics. His work deals with themes such as Nanotechnology and Deflection, which intersect with Metamaterial. The Finite element method study combines topics in areas such as Fiber-reinforced composite, Low resistance, Composite material and Lattice.

His biological study spans a wide range of topics, including Euler angles and Nonlinear model, Nonlinear system. He interconnects Biot number, Boundary value problem and Finite strain theory in the investigation of issues within Nonlinear system. The various areas that Ivan Giorgio examines in his Bone tissue study include Porosity and Human–computer interaction.

Between 2019 and 2021, his most popular works were:

  • A Lagrangian Hencky-type non-linear model suitable for metamaterials design of shearable and extensible slender deformable bodies alternative to Timoshenko theory (17 citations)
  • A Biot–Cosserat two-dimensional elastic nonlinear model for a micromorphic medium (15 citations)
  • A discrete formulation of Kirchhoff rods in large-motion dynamics: (14 citations)

In his most recent research, the most cited papers focused on:

  • Composite material
  • Geometry
  • Mathematical analysis

Ivan Giorgio mainly focuses on Mathematical analysis, Finite element method, Metamaterial, Euler angles and Lagrange multiplier. His research in Mathematical analysis intersects with topics in Biot number, Nonlinear system and Strain energy density function. Ivan Giorgio regularly links together related areas like Boundary value problem in his Finite element method studies.

The concepts of his Metamaterial study are interwoven with issues in Orthotropic material, Fiber-reinforced composite, Composite number, Lattice and Low resistance. Orthotropic material and Composite material are commonly linked in his work. His Euler angles research includes elements of Space, Nonlinear model and Dynamics.

This overview was generated by a machine learning system which analysed the scientist’s body of work. If you have any feedback, you can contact us here.

Best Publications

Large deformations of planar extensible beams and pantographic lattices: Heuristic homogenization, experimental and numerical examples of equilibrium

F. Dell'Isola;I. Giorgio;M. Pawlikowski;Nicola Luigi Rizzi.
Proceedings of The Royal Society A: Mathematical, Physical and Engineering Sciences (2016)

236 Citations

Dynamic problems for metamaterials: Review of existing models and ideas for further research

Dionisio Del Vescovo;Ivan Giorgio.
International Journal of Engineering Science (2014)

182 Citations

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

Francesco dell’Isola;Pierre Seppecher;Pierre Seppecher;Jean Jacques Alibert;Tomasz Lekszycki;Tomasz Lekszycki;Tomasz Lekszycki.
Continuum Mechanics and Thermodynamics (2019)

163 Citations

Homogenization à la Piola produces second gradient continuum models for linear pantographic lattices

Y. Rahali;Y. Rahali;I. Giorgio;J.F. Ganghoffer;F. dell'Isola.
International Journal of Engineering Science (2015)

158 Citations

Reflection and transmission of plane waves at surfaces carrying material properties and embedded in second-gradient materials

Luca Placidi;Giuseppe Rosi;Ivan Giorgio;Angela Madeo.
Mathematics and Mechanics of Solids (2014)

144 Citations

Identification of two-dimensional pantographic structure via a linear D4 orthotropic second gradient elastic model

Luca Placidi;Ugo Andreaus;Ivan Giorgio.
Journal of Engineering Mathematics (2017)

137 Citations

Linear pantographic sheets: Asymptotic micro-macro models identification

Claude Boutin;Francesco dell’Isola;Ivan Giorgio;Luca Placidi.
Mathematics and Mechanics of Complex Systems (2017)

129 Citations

Higher-gradient continua: The legacy of Piola, Mindlin, Sedov and Toupin and some future research perspectives

Francesco dell’Isola;Alessandro Della Corte;Ivan Giorgio.
Mathematics and Mechanics of Solids (2017)

112 Citations

Advances in pantographic structures: design, manufacturing, models, experiments and image analyses

Francesco dell’Isola;Pierre Seppecher;Mario Spagnuolo;Mario Spagnuolo;Emilio Barchiesi;Emilio Barchiesi.
Continuum Mechanics and Thermodynamics (2019)

111 Citations

Multimode vibration control using several piezoelectric transducers shunted with a multiterminal network

Ivan Giorgio;Antonio Culla;Dionisio Del Vescovo.
Archive of Applied Mechanics (2009)

108 Citations

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