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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Materials Map under construction

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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Northumbria University

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Publications (23/23 displayed)

  • 2024Stress–strain model for FRP-confined circular concrete columns developing structural softening behavior10citations
  • 2023A novel analytical framework for assessing the impact response of SFRC beam5citations
  • 2023Analytical model to predict axial stress-strain behavior of heat-damaged unreinforced concrete columns wrapped by FRP jacket12citations
  • 2022Modelling the high strain rate tensile behavior of steel fiber reinforced concrete using artificial neural network approach2citations
  • 2021Modelling the High Strain Rate Tensile Behavior of Steel Fiber Reinforced Concrete Using Artificial Neural Network Approach2citations
  • 2021An analytical approach for evaluating the impact response of steel fiber reinforced concrete beamcitations
  • 2021Modeling the compressive behavior of steel fiber reinforced concrete under high strain rate loads3citations
  • 2021Modeling the Compressive Behavior of Steel Fiber Reinforced Concrete Under High Strain Rate Loads3citations
  • 2020Influence of transcrystalline layer on finite element mesoscale modeling of polyamide 6 based single polymer laminate composites6citations
  • 2020Influence of transcrystalline layer on finite element mesoscale modeling of polyamide 6 based single polymer laminate composites6citations
  • 2020Influence of transcrystalline layer on finite element mesoscale modeling of polyamide 6 based single polymer laminate composites6citations
  • 2020Analytical Model to Predict Dilation Behavior of FRP Confined Circular Concrete Columns Subjected to Axial Compressive Loading24citations
  • 2019Mechanical behavior of concrete prisms reinforced with steel and GFRP bar systems20citations
  • 2017A model for the simultaneous prediction of the flexural and shear deflections of statically determinate and indeterminate reinforced concrete structures4citations
  • 2017Shear strengthening of damaged reinforced concrete beams with hybrid composite plates15citations
  • 2017Flexural and shear response predictions of statically determinate and indeterminate RC structures strengthened with fibre reinforced polymercitations
  • 2017A model for the simultaneous prediction of the flexural and shear deflections of statically determinate and indeterminate RC structures4citations
  • 2015Shear strengthening of damaged reinforced concrete beams with hybrid composite plates2citations
  • 2015Design formula for the flexural strengthening of RC beams using prestressed CFRP reinforcementcitations
  • 2015Analytical approach for the flexural analysis of RC beams strengthened with prestressed CFRP42citations
  • 2015Transfer zone of prestressed CFRP reinforcement applied according to NSM technique for strengthening of RC structures13citations
  • 2014Evaluation of the performance of full-scale RC beams prestressed with NSM-CFRP laminatescitations
  • 2014A new hybrid methodology according to near surface mounted carbon fiber reinforced polymer technique for the flexural strengthening of reinforced concrete beams18citations

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Shayanfar, Javad
3 / 5 shared
Barros, Joaquim A. O.
15 / 186 shared
Valente, Isabel B.
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Ramezansefat, Honeyeh
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Bakhshi, Mohammad
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Sefat, Honeyeh Ramezan
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Valente, Isabel
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Barros, Joaquim
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Tohidi, Shafagh D.
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Rocha, Ana Maria
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Zille, Andrea
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Hesseler, Stefan
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Dourado, N.
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Dencheva, Nadya V.
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Quyền, Nguyễn T.
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Gries, Thomas
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Denchev, Zlatan
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Denchev, Z.
1 / 41 shared
Quyen, Nguyen Trong
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Tohidi, Shafagh Dinparast
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Dencheva, Nadya Vasileva
1 / 28 shared
Rocha, Ana Maria A. C.
1 / 9 shared
Dencheva, Zlatan
1 / 1 shared
Barros, Joaquim A.
1 / 1 shared
Gribniak, Viktor
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Rimkus, Arvydas
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Baghi, Hadi
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Laranjeira, João Pedro Santos
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Costa, Inês
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Co-Authors (by relevance)

  • Shayanfar, Javad
  • Barros, Joaquim A. O.
  • Valente, Isabel B.
  • Ramezansefat, Honeyeh
  • Bakhshi, Mohammad
  • Sefat, Honeyeh Ramezan
  • Valente, Isabel
  • Barros, Joaquim
  • Tohidi, Shafagh D.
  • Rocha, Ana Maria
  • Zille, Andrea
  • Hesseler, Stefan
  • Dourado, N.
  • Dencheva, Nadya V.
  • Quyền, Nguyễn T.
  • Gries, Thomas
  • Denchev, Zlatan
  • Denchev, Z.
  • Quyen, Nguyen Trong
  • Tohidi, Shafagh Dinparast
  • Dencheva, Nadya Vasileva
  • Rocha, Ana Maria A. C.
  • Dencheva, Zlatan
  • Barros, Joaquim A.
  • Gribniak, Viktor
  • Rimkus, Arvydas
  • Baghi, Hadi
  • Laranjeira, João Pedro Santos
  • Costa, Inês
OrganizationsLocationPeople

article

Influence of transcrystalline layer on finite element mesoscale modeling of polyamide 6 based single polymer laminate composites

  • Tohidi, Shafagh D.
  • Dencheva, Zlatan
  • Rocha, Ana Maria
  • Zille, Andrea
  • Rezazadeh, Mohammadali
  • Hesseler, Stefan
  • Dourado, N.
  • Dencheva, Nadya V.
  • Quyền, Nguyễn T.
  • Gries, Thomas
Abstract

<p>This study presents a novel approach for finite element modeling of the elastic behavior of a plain-woven reinforced single polymer laminate composites (WSPC) based on polyamide 6 (PA6). These composites are produced via compression molding of PA6 woven textile structures that are powder-coated by anionic PA6 microparticles. Morphological and structural analysis complemented by electron microscopy, image processing and X-ray diffraction suggest the presence of transcrystalline layer (TCL) at the matrix-reinforcement interface. Having in mid this experimental fact, a novel procedure is developed for finite level discretization of TCL in the representative volume element (RVE) during tensile straining. The procedure correlates the material properties with the overall load applied, thus adequately modelling the tensile behavior of the WSPC based on the constituent materials. The stress field along the elements of the RVE model is studied while the tensile loads were applied in two principal directions. A good agreement between the real mechanical behavior and that calculated based on the model was demonstrated.</p>

Topics
  • impedance spectroscopy
  • polymer
  • x-ray diffraction
  • composite
  • electron microscopy
  • woven
  • compression molding