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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Jaensson, Nick O.

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Eindhoven University of Technology

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (9/9 displayed)

  • 2024Numerical simulation of fiber orientation kinetics and rheology of fiber-filled polymers in uniaxial extension3citations
  • 2024In situ experimental investigation of fiber orientation kinetics during uniaxial extensional flow of polymer composites4citations
  • 2021Computational interfacial rheology56citations
  • 2019Modelling flow induced crystallization of IPP:multiple crystal phases and morphologies24citations
  • 2019Surface viscoelasticity in model polymer multilayers22citations
  • 2019Simulation of bubble growth during the foaming process and mechanics of the solid foam15citations
  • 2019Modelling flow induced crystallization of IPP24citations
  • 2018Temperature-dependent sintering of two viscous particles30citations
  • 2018Tensiometry and rheology of complex interfaces135citations

Places of action

Chart of shared publication
Cardinaels, Ruth M.
2 / 19 shared
Anderson, Pd Patrick
6 / 50 shared
Egelmeers, Thijs R. N.
2 / 2 shared
Vermant, Jan
1 / 17 shared
Troisi, Enrico M.
2 / 7 shared
Anderson, Patrick D.
1 / 6 shared
Peters, Gerrit W. M.
1 / 5 shared
Grosso, Giovanna
2 / 3 shared
Tervoort, Theo A.
1 / 14 shared
Alicke, Alexandra
1 / 3 shared
Tregouët, C.
1 / 2 shared
Vermant, J.
2 / 10 shared
Pepicelli, M.
1 / 3 shared
Schroyen, B.
1 / 3 shared
Monteux, C.
1 / 4 shared
Mitrias, C.
1 / 1 shared
Hulsen, Martien A.
2 / 10 shared
Egelmeers, T. R. N.
1 / 1 shared
Peters, Gwm Gerrit
1 / 39 shared
Balemans, C.
1 / 2 shared
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Co-Authors (by relevance)

  • Cardinaels, Ruth M.
  • Anderson, Pd Patrick
  • Egelmeers, Thijs R. N.
  • Vermant, Jan
  • Troisi, Enrico M.
  • Anderson, Patrick D.
  • Peters, Gerrit W. M.
  • Grosso, Giovanna
  • Tervoort, Theo A.
  • Alicke, Alexandra
  • Tregouët, C.
  • Vermant, J.
  • Pepicelli, M.
  • Schroyen, B.
  • Monteux, C.
  • Mitrias, C.
  • Hulsen, Martien A.
  • Egelmeers, T. R. N.
  • Peters, Gwm Gerrit
  • Balemans, C.
OrganizationsLocationPeople

article

Computational interfacial rheology

  • Jaensson, Nick O.
  • Anderson, Pd Patrick
  • Vermant, Jan
Abstract

Fluid–fluid interfaces, laden with polymers, particles or other surface-active moieties, often show a rheologically complex response to deformations, in particular when strong lateral interactions are present between these moieties. The response of the interface can then no longer be described by an isotropic surface tension alone. These “structured” soft-matter interfaces are found in many industrial applications, ranging from foods, cosmetics and pharmaceuticals, to oil recovery. Also many biomedical applications involve such interfaces, including those involving lung surfactants and biofilms. In order to understand, design and optimize processes in which structured interfaces are present, flow predictions of how such multiphase systems deform are of the utmost importance, which is the goal of “computational interfacial rheology”, the main topic of this review. We start by rigorously establishing the stress boundary condition used in the computation of multi-phase flows, and show how this changes when the interface is rheologically complex. Then, constitutive models for the extra stress in interfaces, ranging from 2D generalized Newtonian to hyperelastic and viscoelastic, are reviewed extensively, including common pitfalls when applying these models. This is followed by an overview of different approaches to measure interfacial rheological properties, and a discussion of advanced numerical implementations for deforming interfaces. We conclude with an outlook for this relatively young and exciting field.

Topics
  • impedance spectroscopy
  • surface
  • polymer
  • phase
  • isotropic
  • surfactant