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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Mostafavi, Mahmoud

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (58/58 displayed)

  • 2024Investigating grain-resolved evolution of lattice strains during plasticity and creep using 3DXRD and crystal plasticity modelling2citations
  • 2024Modelling the Effect of Residual Stresses on Damage Accumulation Using a Coupled Crystal Plasticity Phase Field Fracture Approachcitations
  • 2024A correlative approach to evaluating the links between local microstructural parameters and creep initiated cavities4citations
  • 2024Effect of grain boundary misorientation and carbide precipitation on damage initiation:A coupled crystal plasticity and phase field damage study45citations
  • 2024Productive Automation of Calibration Processes for Crystal Plasticity Model Parameters via Reinforcement Learning1citations
  • 2024Calibration and surrogate model-based sensitivity analysis of crystal plasticity finite element modelscitations
  • 2024Towards a Data-Driven Evolutionary Model of the Cyclic Behaviour of Austenitic Steelscitations
  • 2024Effect of grain boundary misorientation and carbide precipitation on damage initiation45citations
  • 2023Validation of Deformation in Crystal Plasticity When Modelling 316H Stainless Steel for Use in Pressure Vesselscitations
  • 2023A novel unified constraint parameter based on plastic strain energy6citations
  • 2023The inclusion and role of micro mechanical residual stress on deformation of stainless steel type 316L at grain level9citations
  • 2023Bridging Length Scales Efficiently Through Surrogate Modelling1citations
  • 2022A method to extract slip system dependent information for crystal plasticity models1citations
  • 2022The effects of internal stresses on the creep deformation investigated using in-situ synchrotron diffraction and crystal plasticity modelling7citations
  • 2022Investigating the mechanical behaviour of Fukushima MCCI using synchrotron Xray tomography and digital volume correlation4citations
  • 2021Investigating the microstructure and mechanical behaviour of simulant "lava-like" fuel containing materials from the Chernobyl reactor unit 4 meltdown11citations
  • 2021An Experimental Approach to the Application of Digital Image Correlation to Small Punch Creep Testing1citations
  • 2021Evaluation of fracture toughness and residual stress in AISI 316L electron beam welds9citations
  • 2021In-situ Measurements of Stress During Thermal Shock in Clad Pressure Vessel Steel Using Synchrotron X-ray Diffraction8citations
  • 2020Unifying the effects of in and out-of-plane constraint on the fracture of ductile materials28citations
  • 2020Microstructure-informed, predictive crystal plasticity finite element model of fatigue-dwells17citations
  • 2020A novel insight into the primary creep regeneration behaviour of a polycrystalline material at high-temperature using in-situ neutron diffraction7citations
  • 2020A novel insight into the primary creep regeneration behaviour of a polycrystalline material at high-temperature using in-situ neutron diffraction7citations
  • 2020Measurement of strain evolution in overloaded roller bearings using time-of-flight neutron diffraction7citations
  • 2019Residual stress in laser cladded rail35citations
  • 2019Validating 3D two-parameter fracture mechanics models for structural integrity assessments4citations
  • 2019Application of neutron imaging to detect and quantify fatigue cracking25citations
  • 2019Effects of In-Plane and Out-of-Plane Constraint on Fracture Toughness in Austenitic Stainless Steelcitations
  • 2019Study of the Fracture Toughness in Electron Beam Weldscitations
  • 2019Development of Fatigue Testing System for in-situ Observation of Stainless Steel 316 by HS-AFM & SEM9citations
  • 2019Repeat stress relaxation of notched bars and the dependence of creep damage on relaxation rate2citations
  • 2019Redistribution of residual stress by thermal shock in reactor pressure vessel steel clad with nickel alloy11citations
  • 2018Influence of prior cyclic plasticity on creep deformation using crystal plasticity modelling17citations
  • 2018Correlative optical and X-ray imaging of strain evolution during double-torsion fracture toughness measurements in shale17citations
  • 2018Mapping of axial plastic zone for roller bearing overloads using neutron transmission imaging11citations
  • 2018Temperature Driven Failure of Carbon Epoxy Composites:A Quantitative Full-field Study11citations
  • 2018Temperature Driven Failure of Carbon Epoxy Composites11citations
  • 2018The effect of creep strain rate on damage accumulation in Type 316H austenitic stainless steel3citations
  • 2018Development of Residual Stresses During Laser Cladding2citations
  • 2018Correlative Optical and X‐Ray Imaging of Strain Evolution During Double‐Torsion Fracture Toughness Measurements in Shale17citations
  • 2018Fabrication of micro-scale fracture specimens for nuclear applications by direct laser writingcitations
  • 2018Measurements of stress during thermal shock in clad reactor pressure vessel material using time-resolved in-situ synchrotron X-ray diffraction4citations
  • 2017An autonomous surface discontinuity detection and quantification method by digital image correlation and phase congruency64citations
  • 2017Synchrotron X-ray characterization of crack strain fields in polygranular graphite50citations
  • 2017In-situ X-ray computed tomography characterisation of 3D fracture evolution and image-based numerical homogenisation of concrete208citations
  • 2016Observation and simulation of indentation damage in a SiC-SiC fibre ceramic matrix composite25citations
  • 2016Obtaining the J-integral by diffraction-based strain mapping14citations
  • 2016Observation and simulation of indentation damage in a SiC-SiCfibre ceramic matrix composite25citations
  • 2016Characterisation of overloads in fatigue by 2D strain mapping at the surface and in the bulk31citations
  • 2016Obtaining the J-integral by diffraction-based crack-field strain mapping14citations
  • 2016Quantifying yield behaviour in metals by X-ray nanotomography22citations
  • 2015A synchrotron X-ray diffraction study of in situ biaxial deformation54citations
  • 2015Yield behaviour beneath hardness indentations in ductile metals, measured by three-dimensional computed X-ray tomography and digital volume correlation73citations
  • 2014A quantitative three-dimensional in situ study of a short fatigue crack in a magnesium alloy35citations
  • 2013Three-dimensional crack observation, quantification and simulation in a quasi-brittle material67citations
  • 2013Three-dimensional observation and image-based modelling of thermal strains in polycrystalline alumina17citations
  • 2011In situ observation of crack nuclei in poly-granular graphite under ring-on-ring equi-biaxial and flexural loading35citations
  • 20091Constraint influence on the micromechanics of the Al2024 fracture behaviourcitations

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Co-Authors (by relevance)

  • Ball, James A. D.
  • Knowles, David
  • Demir, Eralp
  • Ramadhan, Ranggi S.
  • Collins, David M.
  • Ashraf, Farhan
  • Mamun, Abdullah Al
  • Connolley, Thomas
  • Yankova, Maria
  • Smith, Mike C.
  • Salvini, Michael
  • Flint, Thomas F.
  • Truman, Christopher E.
  • Grilli, Nicolò
  • Larrosa, Nicolas O.
  • Esmati, Parsa
  • Vasileiou, Anastasia N.
  • He, Siqi
  • Knowles, David M.
  • Fernandez-Caballero, Antonio
  • Martin, Tomas L.
  • Thomas, Peter J.
  • Flewitt, Peter E. J.
  • Moore, Stacy R.
  • Horton, Edward W.
  • Galliopoulou, Eirini C.
  • Elmukashfi, E.
  • Truman, Christopher
  • Martin, Tomas
  • Flewitt, Peter
  • Tasdemir, Burcu
  • Das, Suchandrima
  • Martin, Michael
  • Lee, Jonghwan
  • Dorward, Hugh M. J.
  • Peel, Matthew J.
  • Pickering, Ed J.
  • Smith, Albert D.
  • Connolly, Brian
  • Donoghue, Jack M.
  • Spadotto, Julio C.
  • Hadley, Isabel
  • Coules, Harry E.
  • Kulka, Rob
  • Chen, Zeng
  • Kouzoumis, Konstantinos
  • Agius, Dylan
  • Horton, Ew
  • Kareer, Anna
  • Collins, Dm
  • Rissaki, Dimitra
  • Kumar, Dinesh
  • Vasileiou, Anastasia
  • Mokhtarishirazabad, Mehdi
  • Wilcox, Paul
  • Agius, Dylan J.
  • Reinhard, Christina
  • Simpson, Chris A.
  • Liu, Dong
  • Hallam, Kr
  • Scott, Thomas Bligh
  • Forna-Kreutzer, Joachim Paul
  • Paraskevoulakos, Charilaos
  • Jones, Cp
  • Gausse, Clemence
  • Corkhill, Claire L.
  • Bailey, D. J.
  • Liu, Lilly
  • Kreutzer, Joachim Forna
  • Paraskevoulakos, Haris
  • Simpson, Christopher A.
  • Gausse, C.
  • Reinhard, C.
  • Becker, Thorsten
  • Van Rooyen, Melody
  • Horne, Graeme
  • Kabra, Saurabh
  • Palmer, Iain
  • Moffat, Andrew
  • Oliver, Sam
  • Pavier, Mj
  • Tonge, Sm
  • Sherry, Ah
  • Marrow, Tj
  • Wang, Yiqiang
  • Lee, Tung Lik
  • Lik Lee, Tung
  • Simpson, Chris
  • Connolley, T.
  • Marshall, M.
  • Reid, A.
  • Moorby, S.
  • Martinez, I.
  • Kabra, S.
  • Pirling, Thilo
  • Lewis, Roger
  • Peel, Matthew
  • Narayanan, Aditya
  • Tonge, S.
  • Kockelmann, Winfried
  • James, Andrew
  • Minniti, T.
  • Marrow, T. J.
  • Payam, Amir Farokh
  • Payton, Oliver
  • Picco, Loren
  • Warren, A. D.
  • Hares, Edward
  • Bradford, Richard
  • Truman, Chris
  • Oliver, Sam J.
  • Hosseinzadeh, Foroogh
  • Venkata, K. Abburi
  • Erinosho, T. O.
  • Truman, C. E.
  • Lee, Peter
  • Mecklenburgh, Julian
  • Kim, Ho Kyeom
  • May, Steven
  • Chandler, Mr
  • Ma, Lin
  • Marussi, Sebastian
  • Azeem, Mohammed
  • Fauchille, Annelaure
  • Atwood, Robert
  • Rutter, Ernie
  • Taylor, Kevin
  • Rizzo, Roberto
  • Marshall, M. B.
  • Kockelmann, W.
  • Meredith, J.
  • Cinar, A. F.
  • Wilson, P. R.
  • Bradford, Richard A. W.
  • Rutter, Ernest
  • Chandler, Michael
  • Fauchille, Anne-Laure
  • Huang, Chung-Che
  • Morgan, Katrina Anne
  • Taverne, Mike P. C.
  • Zeng, Xu
  • Ho, Ying-Lung Daniel
  • Zeimpekis, Ioannis
  • Shterenlikht, Anton
  • Collins, David
  • Pavier, Martyn
  • Hollis, David
  • Tomlinson, Rachel
  • Marrow, James
  • Flansbjer, Mathias
  • Barhli, S. M.
  • Cinar, Ahmet
  • Jordan, M. S. L.
  • Saucedo-Mora, L.
  • Ren, W.
  • Mcdonald, S.
  • Vertyagina, Y.
  • Sharma, R.
  • Yang, Z.
  • Marrow, Thomas James
  • Saucedo-Mora, Luis
  • Khoshkhou, Danial
  • Zhao, Shuang
  • Becker, T.
  • Simpson, C.
  • Withers, Philip
  • Lopez-Crespo, P.
  • Withers, P. J.
  • Buslaps, T.
  • Kelleher, J. F.
  • Steuwer, A.
  • Armstrong, D. E. J.
  • Bradley, R.
  • Todd, R. I.
  • Wilkinson, A. J.
  • Galano, Marina
  • Cai, B.
  • Lee, P. D.
  • Collins, D. M.
  • Bradley, Robert
  • Atwood, R. C.
  • Jiang, Xia
  • Hashimoto, T.
  • Thompson, G. E.
  • Mcdonald, S. A.
  • Tarleton, E.
  • Korsunsky, A. M.
  • Baimpas, N.
  • King, A.
  • Ludwig, W.
  • Roscoat, S. Rolland Du
  • Fonseca, J. Quinta Da
  • Reischig, P.
  • Gonzalez, D.
  • Smith, D. J.
OrganizationsLocationPeople

document

Development of Residual Stresses During Laser Cladding

  • Mostafavi, Mahmoud
  • Peel, Matthew
  • Pavier, Mj
  • Narayanan, Aditya
Abstract

Laser cladding rail steel with a hard-wearing martensitic stainless-steel coating is a possible technique for improving the track durability of rail networks. However, the cladding process induces significant residual stresses in the clad material, due to the thermal mismatch between the two materials and the shape changes during the martensitic phase transformation. Predictions of the residual stress remain poorly verified as the process is complex and measurements made on final clad parts can be influenced by multiple parameters. <br/><br/>A cladded and heat-treated rail section was subject to sequential laser-pulses representative of the actual cladding process. The thermal cycle of these pulses is much simpler than real clads, easing the task of validating the component parts of simulations. Synchrotron X-ray diffraction was used to determine the phase selective residual stresses around the heated region before and after each pulse. In this manner it was possible to determine the change in stress due to a pulse and the degree of relaxation that is possible due to a neighbouring thermal cycle.

Topics
  • impedance spectroscopy
  • phase
  • x-ray diffraction
  • simulation
  • steel
  • durability