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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Naji, M.
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Stevens, Nicholas

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (19/19 displayed)

  • 2021Corrosion Electrochemistry with a Segmented Array Bipolar Electrode35citations
  • 2018Relationship Between the Inductive Response Observed During Electrochemical Impedance Measurements on Aluminium and Local Corrosion Processes5citations
  • 2017Finite Element Modelling to Investigate the Mechanisms of CRUD Deposition in PWR1citations
  • 2012Laser surface modification using Inconel 617 machining swarf as coating material19citations
  • 2011Material-efficient laser cladding for corrosion resistancecitations
  • 2010Preliminary evaluation of digital image correlation for in-situ observation of low temperature atmospheric-induced chloride stress corrosion cracking in austenitic stainless steels31citations
  • 2007Modelling intergranular stress corrosion cracking in simulated three-dimensional microstructures2citations
  • 2006Grain Boundary Control for Improved Intergranular Stress Corrosion Cracking Resistance in Austenitic Stainless Steel: New Approach5citations
  • 2006A three-dimensional computational model for intergranular cracking43citations
  • 2006Three dimensional observations and modelling of intergranular stress corrosion cracking in austenitic stainless steel115citations
  • 2006Grain boundary control for improved intergranular stress corrosion cracking resistance in austenitic stainless steels: new approachcitations
  • 2006Intergranular Stress Corrosion Crack Propagation in Sensitised Austenitic Stainless Steel (Microstructure Modelling and Experimental Observation)citations
  • 2006Meso-mechanical model for intergranular stress corrosion cracking and implications for microstructure engineeringcitations
  • 2006A two-dimensional mesoscale model for intergranular stress corrosion crack propagation31citations
  • 2005The roles of microstructure and mechanics in intergranular stress corrosion crackingcitations
  • 2005Computational studies of intergranular stress corrosion crack propagation and the role of bridging ligamentscitations
  • 2005Microstructure engineering for improved intergranular stress corrosion cracking resistance of stainless steelscitations
  • 2005Microstructure engineering for improved intergranular stress corrosion cracking resistance of stainless steelscitations
  • 2005Three dimensional observations and modelling of intergranular stress corrosion cracking in austenitic stainless steelcitations

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Chart of shared publication
Engelberg, Dl
6 / 90 shared
Zhou, Yiqi
1 / 7 shared
Scenini, Fabio
2 / 108 shared
Yang, Yuan Feng
1 / 1 shared
Curioni, Michele
1 / 33 shared
Pegg, Lara-Jane
1 / 2 shared
Powell, Andrew
1 / 1 shared
Connolly, Brian
1 / 13 shared
Banks, Andy
1 / 1 shared
Wu, Jiejie
1 / 1 shared
Pinkerton, Andrew J.
2 / 57 shared
Mahmood, Khalid
2 / 13 shared
Syed, Waheed Ul Haq
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Duff, J.
1 / 14 shared
Lyon, Stuart B.
1 / 56 shared
Cook, A.
1 / 6 shared
Sherry, Andrew H.
2 / 63 shared
Marrow, T. J.
1 / 47 shared
Marrow, T. James
13 / 17 shared
Jivkov, Ap
11 / 60 shared
Engelberg, D. L.
1 / 4 shared
Wood, Paul
7 / 40 shared
Babout, Laurent
7 / 10 shared
Jivkov, A.
1 / 4 shared
Withers, Pj
3 / 103 shared
Newman, R. C.
1 / 8 shared
Anyachor, Nnaemeka
1 / 1 shared
Newman, Roger
2 / 9 shared
Li, Lin
2 / 61 shared
Duff, Jonathan
2 / 20 shared
Govender, Kuvasani
2 / 2 shared
Kuroda, Masatoshi
2 / 5 shared
Sherry, Andrew
1 / 9 shared
Jivkov, Andrey
1 / 5 shared
Preuss, Michael
1 / 101 shared
Engelberg, Dirk
1 / 16 shared
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Co-Authors (by relevance)

  • Engelberg, Dl
  • Zhou, Yiqi
  • Scenini, Fabio
  • Yang, Yuan Feng
  • Curioni, Michele
  • Pegg, Lara-Jane
  • Powell, Andrew
  • Connolly, Brian
  • Banks, Andy
  • Wu, Jiejie
  • Pinkerton, Andrew J.
  • Mahmood, Khalid
  • Syed, Waheed Ul Haq
  • Duff, J.
  • Lyon, Stuart B.
  • Cook, A.
  • Sherry, Andrew H.
  • Marrow, T. J.
  • Marrow, T. James
  • Jivkov, Ap
  • Engelberg, D. L.
  • Wood, Paul
  • Babout, Laurent
  • Jivkov, A.
  • Withers, Pj
  • Newman, R. C.
  • Anyachor, Nnaemeka
  • Newman, Roger
  • Li, Lin
  • Duff, Jonathan
  • Govender, Kuvasani
  • Kuroda, Masatoshi
  • Sherry, Andrew
  • Jivkov, Andrey
  • Preuss, Michael
  • Engelberg, Dirk
OrganizationsLocationPeople

document

Grain boundary control for improved intergranular stress corrosion cracking resistance in austenitic stainless steels: new approach

  • Engelberg, Dl
  • Wood, Paul
  • Stevens, Nicholas
  • Babout, Laurent
  • Marrow, T. James
  • Jivkov, Ap
Abstract

Grain boundaries of special character have resistance to corrosion and intergranular stress corrosion. The character can be described using geometrical schemes such as the coincidence site lattice (CSL) model, in which boundaries with low CSL index (Σ) have lower energy and increased resistance. It has long been recognised that increasing the fraction of such boundaries will increase the resistance of a material to intergranular degradation.This paper describes work which has focussed on the behaviour of special grain boundaries in sensitised austenitic stainless steel. The aim of the work was to develop a general model for stress corrosion cracking, which would ultimately be capable of predicting the effects of the degree of sensitisation, the connectivity of special boundaries and the influence of stress gradients, such as those developed from surface preparation (machining or peening) or due to the stress concentration effect of pit formation.Experimental work using electron backscatter diffraction (EBSD) analysis and in-situ high-resolution computed X-ray tomography has correlated cracking with the microstructure in a Type 304 austenitic stainless steel. In-situ 3D observations demonstrated that annealing twins cause local crack arrest and diversion, leaving non-fractured ligaments in the wake of the cracking path. The mechanical effects of the deformation and failure of these bridges have been modelled, demonstrating that special grain boundaries cause crack tip shielding. Increasing the fraction of special boundaries, and decreasing grain size, are both predicted to increase stress corrosion cracking resistance. Experimental observations, using room temperature intergranular stress corrosion tests and high temperature autoclave tests confirm these predictions for thermo-mechanically processes microstructures. The effects of applied stress and stress gradients are also predicted by the model, which may be extended to include the kinetics of crack growth, clustering of grain boundary types and variation of the degree of sensitisation.

Topics
  • surface
  • grain
  • stainless steel
  • grain size
  • grain boundary
  • tomography
  • crack
  • annealing
  • electron backscatter diffraction
  • clustering
  • stress corrosion