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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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (6/6 displayed)

  • 2023Microstructural engineering by heat treatments of multi-principal element alloys via spinodal mediated phase transformation pathwayscitations
  • 2023Underlying factors determining grain morphologies in high-strength titanium alloys processed by additive manufacturing38citations
  • 2020Investigating the real-time dissolution of a compositionally complex alloy using inline ICP and correlation with XPS30citations
  • 2020Real-time dissolution of a compositionally complex alloy using inline ICP and correlation with XPS30citations
  • 2012Early-stage α-phase and Ti2Cu phase formation in a ternary Ti-V-Cu alloycitations
  • 2001Modelling of site occupancies in ternary B2 compounds in Nb-Ti-Alcitations

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Koneru, Shalini Roy
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Wang, Yunzhi
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Mantri, Srinivas A.
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Taylor, Nevin L.
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Viswanathan, Gopal B.
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Banerjee, Rajarshi
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Welk, Brian A.
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Dahotre, Narendra B.
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Thomas, Sebastian
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Co-Authors (by relevance)

  • Koneru, Shalini Roy
  • Wang, Yunzhi
  • Mantri, Srinivas A.
  • Taylor, Nevin L.
  • Viswanathan, Gopal B.
  • Banerjee, Rajarshi
  • Welk, Brian A.
  • Dahotre, Narendra B.
  • Thomas, Sebastian
  • Choudhary, Sanjay
  • Liu, Ruiliang
  • Birbilis, Nick
  • Gengenbach, Thomas
  • Gharbi, Oumaïma
  • Qiu, Yao
  • Nag, Soumya
  • Devaraj, Arun
  • Gibson, Mark
  • Bettles, Colleen
  • Ng, Hoi Pang
  • Muddle, Barry
  • Banerjee, R.
  • Amancherla, S.
  • Banerjee, S.
  • Jones, Ian
OrganizationsLocationPeople

document

Microstructural engineering by heat treatments of multi-principal element alloys via spinodal mediated phase transformation pathways

  • Koneru, Shalini Roy
  • Fraser, Hamish
  • Wang, Yunzhi
Abstract

Nanoscale multi-phase microstructures observed in multi-principal element alloys (MPEAs) such as $ AlMo_{0.5}NbTa_{0.5}TiZr$, $ Al_{0.5}NbTa_{0.8}Ti_{1.5}V_{0.2}Zr$, $ TiZrNbTa$, $ AlCoCrFeNi$ and $ Fe_{15}Co_{15}Ni_{20}Mn_{20}Cu_{30}$ that exhibit promising mechanical or functional properties may have evolved through spinodal-mediated phase transformation pathways (PTPs). The microstructures in such MPEA systems could be further engineered for targeted applications by appropriately designing the alloy composition and heat-treatment schedule. In this study, we investigate systematically how different heat treatment schedules such as single-step isothermal aging, two-step isothermal aging and continuous cooling alter the interplay among the various factors associated with alloy composition, such as volume fraction of individual phases, lattice misfit and modulus mismatch between the co-existing phases. We have determined the degree to which these factors influence significantly the spinodal-mediated PTPs and the corresponding microstructures by use of high-throughput phase-field simulations. In particular, we demonstrate that the microstructural topology (i.e., which phase forms the continuous matrix and which phase forms discrete precipitates) in the same MPEA having an asymmetric miscibility gap could be inverted simply by a continuous cooling heat treatment. Further, we reveal a rich variety of novel hierarchical microstructures that could be designed using two-step isothermal aging heat treatments in MPEA systems with symmetric or asymmetric miscibility gaps. These simulation results may shed light on novel microstructure design and engineering for the above-mentioned MPEA systems.

Topics
  • phase
  • simulation
  • precipitate
  • aging
  • aging
  • alloy composition