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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Ullah, Zahur

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in Cooperation with on an Cooperation-Score of 37%

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Publications (23/23 displayed)

  • 2024Effects of ply hybridisation on delamination in hybrid laminates at CorTen steel/M79LT-UD600 composite interfacescitations
  • 2024Experimental and numerical investigation of fracture characteristics in hybrid steel/composite and monolithic angle-ply laminatescitations
  • 2024Finite fracture mechanics fracture criterion for free edge delaminationcitations
  • 2023A three-dimensional Finite Fracture Mechanics model for predicting free edge delaminationcitations
  • 2023A computational framework for crack propagation along contact interfaces and surfaces under load2citations
  • 2023Three-dimensional semi-analytical investigation of interlaminar stresses in composite laminatescitations
  • 2023Maritime applications of fibre reinforced polymer compositescitations
  • 2023A semi-analytical method for measuring the strain energy release rates of elliptical crackscitations
  • 2023Studies on the impact and compression-after-impact response of ‘Double-Double’ carbon-fibre reinforced composite laminatescitations
  • 2023Failure analysis of unidirectional composites under longitudinal compression considering defectscitations
  • 2023Exploring the elastic properties of woven fabric composites: a machine learning approach for improved analysis and design1citations
  • 2021On the importance of finite element mesh alignment along the fibre direction for modelling damage in fibre-reinforced polymer composite laminates13citations
  • 2020Hierarchical finite element-based multi-scale modelling of composite laminates7citations
  • 2020Investigation of the free-edge stresses in composite laminates using three-dimensional hierarchic finite elementscitations
  • 2020A three-dimensional hierarchic finite element-based computational framework for the analysis of composite laminates6citations
  • 2019A unified framework for the multi-scale computational homogenisation of 3D-textile composites38citations
  • 2018Mortar Contact Formulation Using Smooth Active Set Strategy Applied to 3D Crack Propagationcitations
  • 2018Multiscale Computational Homogenisation of 3D Textile-based Fiber Reinforced Polymer Compositescitations
  • 2017Multi-scale Computational Homogenisation to Predict the Long-Term Durability of Composite Structures.29citations
  • 2016Multi-Scale Computational Homogenisation of the Fibre-Reinforced Polymer Composites Including Matrix Damage and Fibre-Matrix Decohesioncitations
  • 2015Hierarchical Finite Element Based Multiscale Computational Homogenisation of Coupled Hygro-Mechanical Analysis for Fibre-Reinforced Polymerscitations
  • 2015Multiscale computational homogenisation to predict the long-term durability of composite structurescitations
  • 2014Computational homogenisation of fibre reinforced compositescitations

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Burhan, Mohammad
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Sands, Caitlin
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Kazancı, Zafer
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Catalanotti, Giuseppe
5 / 29 shared
Scalici, Tommaso
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Falzon, Brian George
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Scalici, Tommasso
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Kaczmarczyk, Łukasz
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Athanasiadis, Ignatios
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Lewandowski, Karol
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Pearce, Chris J.
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Shvarts, Andrei G.
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Wan, Lei
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Millen, Scott
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Aravand, M. Ali
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Falzon, Brian
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Allegri, Giuliano
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Hayat, Khazar
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Ahmad, Zeshan
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Siddique, Shafaqat
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Pearce, Chris
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Zhou, Xiaoyi
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Kaczmarczyk, Lukasz
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Kaczmarczyk, Ł.
1 / 2 shared
Pearce, C. J.
2 / 4 shared
Harkin-Jones, Eileen
2 / 46 shared
Zhou, X.-Y.
1 / 1 shared
Archer, Edward
2 / 15 shared
Mcilhagger, Alistair
2 / 18 shared
Pearce, Christopher
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Evernden, M. C.
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Grammatikos, S. A.
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Kaczmarczyk, L.
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Co-Authors (by relevance)

  • Burhan, Mohammad
  • Mccreight, T.
  • Sands, Caitlin
  • Kazancı, Zafer
  • Catalanotti, Giuseppe
  • Scalici, Tommaso
  • Falzon, Brian George
  • Scalici, Tommasso
  • Kaczmarczyk, Łukasz
  • Athanasiadis, Ignatios
  • Lewandowski, Karol
  • Pearce, Chris J.
  • Shvarts, Andrei G.
  • Wan, Lei
  • Millen, Scott
  • Aravand, M. Ali
  • Falzon, Brian
  • Allegri, Giuliano
  • Hayat, Khazar
  • Ahmad, Zeshan
  • Siddique, Shafaqat
  • Pearce, Chris
  • Zhou, Xiaoyi
  • Kaczmarczyk, Lukasz
  • Kaczmarczyk, Ł.
  • Pearce, C. J.
  • Harkin-Jones, Eileen
  • Zhou, X.-Y.
  • Archer, Edward
  • Mcilhagger, Alistair
  • Pearce, Christopher
  • Evernden, M. C.
  • Grammatikos, S. A.
  • Kaczmarczyk, L.
OrganizationsLocationPeople

article

A computational framework for crack propagation along contact interfaces and surfaces under load

  • Ullah, Zahur
  • Kaczmarczyk, Łukasz
  • Athanasiadis, Ignatios
  • Lewandowski, Karol
  • Pearce, Chris J.
  • Shvarts, Andrei G.
Abstract

We present the first implicit computational framework for simulating crack propagation along contact interfaces and surfaces under load in three-dimensional bodies, which is distinct from modelling the contact interaction associated with crack closure. We restrict ourselves to brittle fracture and frictionless contact and focus on numerical challenges associated with the coupling of unilateral constraints emerging from the Griffith’s criterion and the contact conditions. The formulation is based on the configurational mechanics framework and is solved using the finite element method. The approach utilises a monolithic Arbitrary Lagrangian–Eulerian formulation permitting simultaneous resolution of crack propagation and unilateral contact constraints. Contact is embedded in the model using the well-known mortar contact formulation. Evolving cracks are explicitly modelled as displacement discontinuities within the mesh. Heterogeneous approximation of arbitrary order is used to discretise spatial displacements, enabling hp-adaptive refinement around the crack front and the contact interfaces traversed by the crack. The result is a holistic approach which handles issues associated with thermodynamic consistency, numerical accuracy and robustness of the computational scheme. Several numerical examples are presented to verify the model formulation and implementation; they also highlight how contact pressure and load applied on surfaces traversed by cracks influence their propagation. The robustness of the approach is validated by comparison of our simulations with existing numerical results and an industrial experiment involving cracks of complex morphologies propagating along contact interfaces between multiple deformable bodies.<br/>

Topics
  • impedance spectroscopy
  • surface
  • experiment
  • simulation
  • crack