Materials Map

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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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Naji, M.
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Vorontsov, Vassili A.

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University of Strathclyde

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (28/28 displayed)

  • 2023Miniaturised experimental simulation of open-die forging5citations
  • 2022Strengthening κ-carbide steels using residual dislocation content19citations
  • 2022Precipitate dissolution during deformation induced twin thickening in a CoNi-base superalloy subject to creep15citations
  • 2020Generalised stacking fault energy of Ni-Al and Co-Al-W superalloys29citations
  • 2019A nickel based superalloy reinforced by both Ni3Al and Ni3V ordered-fcc precipitates28citations
  • 2018Mechanical behaviour of Ti-Nb-Hf alloys15citations
  • 2017Alloying effects on oxidation mechanisms in polycrystalline Co–Ni base superalloys50citations
  • 2017Functional stability of a ferromagnetic polycrystalline Ni2MnGa high temperature shape memory alloy1citations
  • 2017A high strength Ti–SiC metal matrix composite32citations
  • 2016Coarsening behaviour and interfacial structure of γ′ precipitates in Co-Al-W based superalloys94citations
  • 2016Determination of superlattice stacking fault energies in multi-component superalloyscitations
  • 2016Multi-scale modelling of high-temperature deformation mechanisms in Co-Al-W-based superalloys.citations
  • 2016Understanding the "blue spot"16citations
  • 2016The dislocation mechanism of stress corrosion embrittlement in Ti-6Al-2Sn-4Zr-6Mo17citations
  • 2016Effect of precipitation on mechanical properties in the β-Ti alloy Ti-24Nb-4Zr-8Sn50citations
  • 2015The effect of grain size on the twin initiation stress in a TWIP steel276citations
  • 2015Superelastic load cycling of gum metal38citations
  • 2015Nanoprecipitation in a beta-titanium alloy56citations
  • 2015Segregation at stacking faults within the γ′ phase of two Ni-base superalloys following intermediate temperature creep121citations
  • 2014The dynamic behaviour of a twinning induced plasticity steel45citations
  • 2014Alloying and the micromechanics of Co-Al-W-X quaternary alloys45citations
  • 2014Alloying effects in polycrystalline γ′ strengthened Co-Al-W base alloys180citations
  • 2014Effect of alloying on the oxidation behaviour of Co-Al-W superalloys128citations
  • 2012High-resolution electron microscopy of dislocation ribbons in a CMSX-4 superalloy single crystal128citations
  • 2012Shearing of γ′ precipitates in Ni-base superalloys33citations
  • 2011Prediction of mechanical behaviour in Ni-base superalloys using the phase field model of dislocations10citations
  • 2010Shearing of γ́ precipitates by a (112) dislocation ribbons in Ni-base superalloys66citations
  • 2008Phase field modelling of stacking fault shear in nickel base superalloyscitations

Places of action

Chart of shared publication
Connolly, David
1 / 4 shared
Sivaswamy, Giribaskar
1 / 15 shared
Rahimi, Salah
1 / 44 shared
Kwok, T. W. J.
1 / 2 shared
Dye, D.
13 / 58 shared
Rahman, K. M.
6 / 8 shared
Mcauliffe, Tp
1 / 4 shared
Bantounas, Ioannis
1 / 2 shared
Dye, David
8 / 22 shared
Hardy, Mc
1 / 16 shared
Haynes, P. D.
1 / 2 shared
Mlkvik, P.
1 / 1 shared
Hasan, H.
1 / 1 shared
Knowles, Alexander J.
1 / 8 shared
Reynolds, Lucy
1 / 1 shared
Rakhymberdiyev, A. N.
1 / 1 shared
Yang, R.
1 / 2 shared
Shollock, B. A.
1 / 8 shared
Lindley, T. C.
2 / 8 shared
Hardy, M. C.
1 / 11 shared
Ismail, F. B.
1 / 1 shared
Jones, N. G.
2 / 29 shared
Azeem, M. A.
1 / 2 shared
Raghunathan, S. L.
1 / 2 shared
Rahman, Khandaker Mezanur
1 / 1 shared
Flitcroft, Stephen M.
1 / 1 shared
Midgley, P. A.
1 / 6 shared
Barnard, J. S.
1 / 5 shared
Yan, H. -Y.
1 / 1 shared
Rae, Catherine
1 / 1 shared
Hasan, Hikmatyar
1 / 1 shared
Haynes, Peter
1 / 2 shared
Saunders, E. A.
1 / 1 shared
Walker, A. R. M.
1 / 1 shared
Chapman, T. P.
1 / 1 shared
Rugg, D.
1 / 18 shared
Chater, R. J.
1 / 6 shared
Lindley, Trevor C.
1 / 1 shared
Rugg, David
1 / 3 shared
Chapman, Tamara P.
1 / 1 shared
Sankaran, Ananthi
1 / 2 shared
Ohnuma, Masato
2 / 4 shared
Coakley, James
3 / 3 shared
Rahman, Khandaker M.
1 / 2 shared
Littrell, Kenneth C.
1 / 2 shared
Heenan, Richard K.
1 / 12 shared
Jones, Nicholas G.
2 / 10 shared
Genc, A.
1 / 4 shared
Mills, M. J.
2 / 9 shared
Shi, R.
1 / 4 shared
Rae, C. M. F.
6 / 13 shared
Viswanathan, G. B.
1 / 4 shared
Kovarik, L.
2 / 4 shared
Yan, Hui-Yu
1 / 1 shared
Stone, Howard J.
1 / 11 shared
Yan, H.-Y.
1 / 1 shared
Yan, H. Y.
1 / 1 shared
Voskoboinikov, R. E.
2 / 3 shared
Wang, Y.
2 / 134 shared
Shen, C.
2 / 4 shared
Voskoboinikov, R.
1 / 1 shared
Chart of publication period
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2022
2020
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2018
2017
2016
2015
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2012
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2008

Co-Authors (by relevance)

  • Connolly, David
  • Sivaswamy, Giribaskar
  • Rahimi, Salah
  • Kwok, T. W. J.
  • Dye, D.
  • Rahman, K. M.
  • Mcauliffe, Tp
  • Bantounas, Ioannis
  • Dye, David
  • Hardy, Mc
  • Haynes, P. D.
  • Mlkvik, P.
  • Hasan, H.
  • Knowles, Alexander J.
  • Reynolds, Lucy
  • Rakhymberdiyev, A. N.
  • Yang, R.
  • Shollock, B. A.
  • Lindley, T. C.
  • Hardy, M. C.
  • Ismail, F. B.
  • Jones, N. G.
  • Azeem, M. A.
  • Raghunathan, S. L.
  • Rahman, Khandaker Mezanur
  • Flitcroft, Stephen M.
  • Midgley, P. A.
  • Barnard, J. S.
  • Yan, H. -Y.
  • Rae, Catherine
  • Hasan, Hikmatyar
  • Haynes, Peter
  • Saunders, E. A.
  • Walker, A. R. M.
  • Chapman, T. P.
  • Rugg, D.
  • Chater, R. J.
  • Lindley, Trevor C.
  • Rugg, David
  • Chapman, Tamara P.
  • Sankaran, Ananthi
  • Ohnuma, Masato
  • Coakley, James
  • Rahman, Khandaker M.
  • Littrell, Kenneth C.
  • Heenan, Richard K.
  • Jones, Nicholas G.
  • Genc, A.
  • Mills, M. J.
  • Shi, R.
  • Rae, C. M. F.
  • Viswanathan, G. B.
  • Kovarik, L.
  • Yan, Hui-Yu
  • Stone, Howard J.
  • Yan, H.-Y.
  • Yan, H. Y.
  • Voskoboinikov, R. E.
  • Wang, Y.
  • Shen, C.
  • Voskoboinikov, R.
OrganizationsLocationPeople

document

Determination of superlattice stacking fault energies in multi-component superalloys

  • Vorontsov, Vassili A.
  • Rae, Catherine
Abstract

Superalloy single crystals, used in the manufacture of gas turbine blades, can accumulate a substantial amount of plastic strain in a relatively short time when subjected to conditions that favour primary creep. This presents a challenge when aero engines are operated at full power during take-off, climb to cruising altitude and thrust reversal whereby these materials are subjected to comparatively high stresses. These stresses are not sufficiently high to allow the cutting of the L12 ordered intermetallic phase precipitates by paired a/2&lt;110&gt; dislocations bounding antiphase boundaries, as is observed during macroscopic yield. Instead, the precipitates are sheared by widely extended a&lt;112&gt; dislocations that form low-energy superlattice stacking faults (SSFs). The susceptibility of superalloys to primary creep is strongly dependent on their composition. Understanding of the compositional effects on the SSF energies is therefore of great importance to the design of future alloys. Ab initio calculations can provide limited insight into these effects, but are computationally expensive. In this work we employ Transmission Electron Microscopy (TEM) in conjunction with the Phase Field Model of Dislocations (PFMD) [1] to investigate the formation of SSF nodes [2] on superdislocation networks in Ni- and Co-Al-W-based superalloys. We use PFMD to evaluate the effect of stacking fault energies on the geometry of the SSF nodes and apply this insight to experimental evaluation of SSF energies from TEM imaging of the nodes in order to investigate the compositional dependencies and influence on primary creep behaviour.<br/><br/><br/>

Topics
  • impedance spectroscopy
  • polymer
  • single crystal
  • phase
  • transmission electron microscopy
  • dislocation
  • precipitate
  • intermetallic
  • susceptibility
  • creep
  • superalloy
  • stacking fault