Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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in Cooperation with on an Cooperation-Score of 37%

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Publications (10/10 displayed)

  • 2024Circular Economy for Transport Infrastructure: An Overview of the Sustainable Use of Recycled Asphalt Shingles in Asphalt Mixtures3citations
  • 2023Bituminous Binder and Bituminous Mixture Modified with Waste Polyethylene4citations
  • 2023Bituminous Binder and Bituminous Mixture Modified with Waste Polyethylene3citations
  • 2023Bituminous binder and bituminous mixture modified with waste polyethylene3citations
  • 2022Rheological properties of asphalt binder modified with waste polyethylene: an interlaboratory research from the RILEM TC WMR62citations
  • 2022Rheological properties of asphalt binder modified with waste polyethylene : An interlaboratory research from the RILEM TC WMR62citations
  • 2022RILEM interlaboratory study on the mechanical properties of asphalt mixtures modified with polyethylene waste39citations
  • 2022RILEM interlaboratory study on the mechanical properties of asphalt mixtures modified with polyethylene waste39citations
  • 2020Performance-Based Characterization of Bituminous Mortars Prepared With Ladle Furnace Steel Slag26citations
  • 2019Enhanced Meshfree Methods for Numerical Solution of Local and Nonlocal Theories of Solid Mechanicscitations

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Pasquini, Emiliano
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Haider, Safeer
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Hernando, David
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Giancontieri, Gaspare
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Saboo, Nikhil
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Bueche, Nicolas
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Poulikakos, Lily
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Mikhailenko, Peter
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Lo Presti, Davide
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Poulikakos, Lily D.
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Presti, Davide Lo
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Orozco, Gabriel
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Lachance-Tremblay, Éric
4 / 5 shared
Kakar, Muhammad Rafiq
6 / 9 shared
Wang, Di
3 / 23 shared
Baliello, Andrea
5 / 5 shared
Tusar, Marjan
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Navarro, Fernando Moreno
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Skaf, Marta
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Co-Authors (by relevance)

  • Pasquini, Emiliano
  • Haider, Safeer
  • Hernando, David
  • Giancontieri, Gaspare
  • Saboo, Nikhil
  • Vasconcelos, Kamilla
  • Miljković, Miomir
  • Stoop, Jan
  • Pinheiro, Gustavo
  • Porot, Laurent
  • Dalmazzo, Davide
  • Vaillancourt, Michel
  • Moreno Navarro, Fernando
  • Orešković, Marko
  • Riccardi, Chiara
  • Viscione, Nunzio
  • Wouters, Lacy
  • Cannone Falchetto, Augusto
  • Tušar, Marjan
  • Bueche, Nicolas
  • Poulikakos, Lily
  • Mikhailenko, Peter
  • Lo Presti, Davide
  • Poulikakos, Lily D.
  • Presti, Davide Lo
  • Orozco, Gabriel
  • Lachance-Tremblay, Éric
  • Kakar, Muhammad Rafiq
  • Wang, Di
  • Baliello, Andrea
  • Tusar, Marjan
  • Navarro, Fernando Moreno
  • Skaf, Marta
  • Ortega-Lopez, Vanesa
OrganizationsLocationPeople

document

Enhanced Meshfree Methods for Numerical Solution of Local and Nonlocal Theories of Solid Mechanics

  • Pasetto, Marco
Abstract

Achieving good accuracy while keeping a low computational cost in numerical simulationsof problems involving large deformations, material fragmentation and crack propagations stillremains a challenge in computational mechanics. For these classes of problems, meshfreediscretizations of local and nonlocal approaches, have been shown to be effective as they avoidsome of the common issues associated with mesh-based techniques, such as the need for re-meshing due to excessive mesh distortion. Nonetheless, other issues remain.In the framework of local mechanics, the semi-Lagrangian reproducing kernel particlemethod (RKPM) has been proved to be particularly effectively for material damage and frag-mentation, as by reconstructing the field approximations in the current configuration it doesnot require the deformation gradient to be positive definite. This, however, results in a highcomputational cost.Furthermore, for crack propagation problems, the use of classical local mechanics presentsmany challenges, such as the need of accurately representing the singular stress field at crack tips. The peridynamic nonlocal theory circumvents these issues by reformulating solid mechanics in terms of integral equations. In engineering applications, a simple node-based discretization of peridynamics is typically employed. This approach is limited to first order convergence and often lacks the symmetry of interaction of the continuous form. The latter can be recovered through the use of the peridynamic weak form, which however involves costly double integration.First, we first propose, in the context of local mechanics, a blending-based spatial couplingscheme to transition from the computationally cheaper Lagrangian RKPM to the semi-Lagrangian RKPM. Next, we introduce an RK approximation to the field variables in strong form peridynam-ics to increase the order of convergence of peridynamic numerical solutions. Then, we develop an efficient n-th order symmetrical variationally consistent nodal integration scheme for RK enhanced weak form peridynamics.Lastly, we propose a Waveform Relaxation Newmark algorithm for time integration ofthe semi-discrete systems arising from meshfree discretizations of local and nonlocal dynamicsproblems. This scheme retains the unconditional stability of the implicit Newmark scheme withthe advantage of the lower computational cost of explicit time integration schemes.Numerical examples demonstrate the effectiveness of the proposed approaches.

Topics
  • impedance spectroscopy
  • theory
  • crack
  • ion chromatography