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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Delft University of Technology

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (7/7 displayed)

  • 2021Phase-transformation and precipitation kinetics in vanadium micro-alloyed steels by in-situ, simultaneous neutron diffraction and SANS17citations
  • 2021Phase-transformation and precipitation kinetics in vanadium micro-alloyed steels by in-situ, simultaneous neutron diffraction and SANS17citations
  • 2020Furnace for in situ and simultaneous studies of nano-precipitates and phase transformations in steels by SANS and neutron diffraction4citations
  • 2020Evolution of the precipitate composition during annealing of vanadium micro-alloyed steels by in-situ SANS23citations
  • 2019Interaction of precipitation with austenite-to-ferrite phase transformation in vanadium micro-alloyed steels53citations
  • 2019Interaction of precipitation with austenite-to-ferrite phase transformation in vanadium micro-alloyed steelscitations
  • 2019Interaction of precipitation with austenite-to-ferrite phase transformation in vanadium micro-alloyed steels53citations

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Van Well, Ad A.
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Sietsma, Jilt
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Rijkenberg, Arjan
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Zhang, Xukai
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Geerlofs, Nico
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Dalgliesh, Robert M.
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Ioannidou, Chrysoula
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Pappas, Catherine
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Offerman, S. Erik
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Van Well, Ad
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Dalgliesh, R. M.
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Wal, E. M. Van Der
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Geerlofs, N.
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Oever, R. Van Den
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Akeroyd, F. A.
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Koelling, Sebastian
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Kölling, Sebastian
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Bliznuk, Vitaliy
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Well, Ad A. Van
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Arechabaleta, Zaloa
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Kölling, S. Sebastian
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Bliznuk, V.
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Co-Authors (by relevance)

  • Van Well, Ad A.
  • Sietsma, Jilt
  • Rijkenberg, Arjan
  • Zhang, Xukai
  • Geerlofs, Nico
  • Dalgliesh, Robert M.
  • Ioannidou, Chrysoula
  • Pappas, Catherine
  • Offerman, S. Erik
  • Kooi, Bart
  • Van Well, Ad
  • Dalgliesh, R. M.
  • Arechabaleta, Z.
  • Verleg, M. N.
  • Wal, E. M. Van Der
  • Geerlofs, N.
  • Oever, R. Van Den
  • Ioannidou, C.
  • Sykora, J.
  • Akeroyd, F. A.
  • Koelling, Sebastian
  • Guenechea, Zaloa Arechabaleta
  • Kölling, Sebastian
  • Bliznuk, Vitaliy
  • Well, Ad A. Van
  • Arechabaleta, Zaloa
  • Kölling, S. Sebastian
  • Bliznuk, V.
OrganizationsLocationPeople

article

Interaction of precipitation with austenite-to-ferrite phase transformation in vanadium micro-alloyed steels

  • Van Well, Ad
  • Guenechea, Zaloa Arechabaleta
  • Sietsma, Jilt
  • Rijkenberg, Arjan
  • Kölling, Sebastian
  • Dalgliesh, Robert M.
  • Ioannidou, Chrysoula
  • Pappas, Catherine
  • Bliznuk, Vitaliy
  • Navarro-López, Alfonso
  • Offerman, S. Erik
Abstract

The precipitation kinetics of vanadium carbides and its interaction with the austenite-to-ferrite phase transformation is studied in two micro-alloyed steels that differ in vanadium and carbon concentrations by a factor of two, but have the same vanadium-to-carbon atomic ratio of 1:1. Dilatometry is used for heat-treating the specimens and studying the phase transformation kinetics during annealing at isothermal holding temperatures of 900, 750 and 650 °C for up to 10 h. Small-Angle Neutron Scattering (SANS) and Atom Probe Tomography (APT) measurements are performed to study the vanadium carbide precipitation kinetics. Vanadium carbide precipitation is not observed after annealing for 10 h at 900 and 750 °C, which is contrary to predictions from thermodynamic equilibrium calculations. Vanadium carbide precipitation is only observed during or after the austenite-to-ferrite phase transformation at 650 °C. The precipitate volume fraction and mean radius continuously increase as holding time increases, while the precipitate number density starts to decrease after 20 min, which corresponds to the time at which the austenite-to-ferrite phase transformation is finished. This indicates that nucleation and growth are dominant during the first 20 min, while later precipitate growth with soft impingement (overlapping diffusion fields) and coarsening take place. APT shows gradual changes in the precipitate chemical composition during annealing at 650 °C, which finally reaches a 1:1 atomic ratio of vanadium-to-carbon in the core of the precipitates after 10 h.

Topics
  • density
  • impedance spectroscopy
  • Carbon
  • phase
  • carbide
  • steel
  • chemical composition
  • precipitate
  • precipitation
  • annealing
  • small-angle neutron scattering
  • vanadium
  • atom probe tomography
  • dilatometry