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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Vrije Universiteit Brussel

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (14/14 displayed)

  • 2025Combined computational-experimental investigation of residual stresses and pre-cracking in mode I behaviour of thick adhesively bonded GFRP composite joints1citations
  • 2025Investigation of the Sensitivity of Acoustic Emission to the Differentiation Between Mode I, II, and III Fracture in Bulk Polymer Materials3citations
  • 2024An experimental and analytical study of mode I fracture and crack kinking in thick adhesive joints3citations
  • 2024Investigating the mode-I failure behaviour of thick adhesive joints using a coupled computational/experimental approachcitations
  • 2023NDT of composite components for automotive applicationscitations
  • 2023The impact of multiaxiality on the static and fatigue fracture of carbon/epoxy polymer compositescitations
  • 2022FRACTURE OF STRUCTURAL ADHESIVE UNDER PURE MODE III LOADING CONDITIONS: EXPERIMENTAL STUDY AND CHALLENGEScitations
  • 2022ACOUSTIC EMISSION FOR IDENTIFICATION OF THE DOMINANT STRESS COMPONENT IN POLYMER COMPOSITES AT EARLY LOADS,citations
  • 2021On the use of acoustic emission to identify the dominant stress/strain component in carbon/epoxy composite materials19citations
  • 2020Effect of multiaxiality, stacking sequence and number of off-axis layers on the mechanical response and damage sequence of carbon/epoxy composite laminates under static loading20citations
  • 2020An integrated NDT approach for damage assessment of CFRP composites under complex static and fatigue loadscitations
  • 2020Failure characterisation of CF/epoxy V-shape components using digital image correlation and acoustic emission analyses14citations
  • 2018Exploration of specimen geometry and tab configuration for tensile testing exploiting the potential of 3D printing freeform shape continuous carbon fibre-reinforced nylon matrix composites79citations
  • 2018Multiaxial damage characterization of carbon/epoxy angle-ply laminates under static tension by combining in situ microscopy with acoustic emission19citations

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Chart of shared publication
Hemelrijck, Danny Van
3 / 19 shared
Michaud, Veronique
1 / 7 shared
Vassilopoulos, Anastasios P.
3 / 16 shared
Van Paepegem, Wim
4 / 489 shared
Shivaie Kojouri, Ali
4 / 5 shared
Fan, Jialiang
4 / 8 shared
Paepegem, Wim Van
4 / 64 shared
Michaud, Véronique
4 / 279 shared
Van Hemelrijck, Danny
12 / 126 shared
Sharma, Akash
4 / 5 shared
Kojouri, Ali Shivaie
2 / 2 shared
Karami, Javane
3 / 4 shared
Aggelis, Dimitrios G.
4 / 73 shared
Vassilopoulos, Anastasios
2 / 2 shared
Shivaie Koujouri, Ali
1 / 1 shared
Pyl, Lincy
8 / 60 shared
Hajikazemi, Mohammad
1 / 31 shared
Murray, Brendan R.
1 / 1 shared
Carrella-Payan, Delphine
1 / 1 shared
Cernescu, Anghel
1 / 2 shared
Murray, Brendan
1 / 2 shared
Tsangouri, Eleni
1 / 46 shared
Chart of publication period
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Co-Authors (by relevance)

  • Hemelrijck, Danny Van
  • Michaud, Veronique
  • Vassilopoulos, Anastasios P.
  • Van Paepegem, Wim
  • Shivaie Kojouri, Ali
  • Fan, Jialiang
  • Paepegem, Wim Van
  • Michaud, Véronique
  • Van Hemelrijck, Danny
  • Sharma, Akash
  • Kojouri, Ali Shivaie
  • Karami, Javane
  • Aggelis, Dimitrios G.
  • Vassilopoulos, Anastasios
  • Shivaie Koujouri, Ali
  • Pyl, Lincy
  • Hajikazemi, Mohammad
  • Murray, Brendan R.
  • Carrella-Payan, Delphine
  • Cernescu, Anghel
  • Murray, Brendan
  • Tsangouri, Eleni
OrganizationsLocationPeople

conferencepaper

Investigating the mode-I failure behaviour of thick adhesive joints using a coupled computational/experimental approach

  • Shivaie Koujouri, Ali
  • Kalteremidou, Kalliopi-Artemi
  • Vassilopoulos, Anastasios P.
  • Van Paepegem, Wim
  • Fan, Jialiang
  • Michaud, Véronique
  • Van Hemelrijck, Danny
  • Sharma, Akash

Abstract

Wind turbine blades are manufactured by molding them in two halves and joining them using thick adhesive joints. The failure of these adhesive joints, particularly in the trailing edge of the blades, compromises the structural integrity of the wind turbine. Therefore, comprehending the mechanisms of failure in adhesive joints is critical to designing wind turbine blades efficiently. For this purpose, the present study proposes a novel approach that integrates computational and experimental methods to enhance the overall understanding of the factors that influence the failure of thick adhesive joints. The experimental specimens consist of two cross-ply glass fibre composite laminates bonded with a ~10 mm thick layer of an epoxy-based adhesive. The specimens are cured at 70°C. After curing, a pre-crack is generated within the adhesive layers of each specimen. The specimen is subjected to Double Cantilever Beam (DCB) tests at room temperature to induce mode I failure. The load-displacement curves of the DCB specimens are obtained. The strain in the adhesive layer is determined using the Digital Image Correlation (DIC). Finite Element (FE) models of the DCB specimens having virtually generated pre-cracks are created to predict the experimental load-displacement curves. So far, most researchers have employed the cohesive zone model for the adhesive in such numerical studies. However, epoxy-based adhesives typically exhibit plastic deformation. Hence, the Drucker-Prager plasticity criteria are utilised to model the mechanical response of the adhesive. Also, it is crucial to assess the influence of thermal residual stresses that arise from the thermal mismatch between composites and adhesives, an aspect that has not been adequately addressed in the literature. Thus, appropriate thermal expansion coefficients are assigned to both composites and adhesives. Furthermore, a cool-down is simulated before mechanical loads to mimic the temperature transition from curing to room temperature. A very good agreement is observed between the experimental and numerical results. A satisfying correlation is also observed between the FE analysis and the DIC, further verifying the effectiveness of the proposed modelling strategy.

Topics

  • impedance spectroscopy
  • polymer
  • glass
  • glass
  • crack
  • composite
  • thermal expansion
  • plasticity
  • joining
  • curing