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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Tampere University

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (10/10 displayed)

  • 2024Effect of Cooling Practice on the Mechanical Properties of Medium-Manganese Aluminum-Alloyed Steels after Intercritical Annealing Quench and Partition Treatment1citations
  • 2023The effect of scrap originating trace elements on the properties of low alloyed steels2citations
  • 2023Effects of strain rate and adiabatic heating on mechanical behavior of medium manganese Q&P steels14citations
  • 2022Quenching and partitioning response of vanadium microalloyed TRIP-assisted steelcitations
  • 2022Occurrence of dynamic strain aging in intercritically annealed low carbon high aluminum medium manganese steels9citations
  • 2022Directed energy deposition of AA7075 - effect of TiC nanoparticles on microstructure13citations
  • 2022Directed energy deposition of AA7075 - effect of TiC nanoparticles on microstructure13citations
  • 2022Dynamic strain aging in multiphase steelscitations
  • 2020Processing map for controlling microstructure and unraveling various deformation mechanisms during hot working of CoCrFeMnNi high entropy alloy45citations
  • 2019Hardfaced wear resistant coatings for mining toolscitations

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Peura, Pasi
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Co-Authors (by relevance)

  • Oja, Olli
  • Kaijalainen, Antti
  • Peura, Pasi
  • Järn, Sanna
  • Penney, David
  • Sabr, Ali
  • Peltola, Ari
  • Soares, Guilherme Corrêa
  • Langi, Veera
  • Hokka, Mikko
  • Jussila, Petri Lauri Einari
  • Patnamsetty, Madan
  • Kuokkala, Veli-Tapani
  • Penttilä, Jani
  • Rämö, Jari
  • Honkanen, Mari Hetti
  • Tuominen, Jari
  • Cobian Gonzalez, Lucia
  • Gonzalez, Lucia Cobian
  • Ghosh, Sumit
  • Somani, Mahesh C.
OrganizationsLocationPeople

document

Dynamic strain aging in multiphase steels

  • Oja, Olli
  • Kuokkala, Veli-Tapani
  • Penttilä, Jani
  • Rämö, Jari
  • Ahmed, Shahroz
  • Honkanen, Mari Hetti
  • Peura, Pasi
Abstract

Mechanical properties and microstructures of a low carbon high aluminium manganese steel was investigated after intercritical annealing and quench and partition (Q&amp;P) treatment. The Q&amp;P heat treatments were conducted using three different intercritical annealing temperatures, two quench stop temperatures and three partitioning times. <br/>Dynamic strain aging (DSA) was observed during tensile tests at room temperature in samples intercritically annealed close to A1 transformation temperature; DSA serrations of the type A and type D were observed in the samples. The onset of DSA has been studied in ferritic steels [1]–[4], aluminium alloys [5]–[7]; it is reported that DSA is due to the interaction between moving dislocations and interstitial solute atomsduring plastic deformation [6]–[9]. But studies related to DSA in multiphase steels are limited [10], [11]. The main focus of this work was to investigate the occurrence of DSA serrations in low carbon manganese steels undergone intercritical annealing and Q&amp;P heat treatment. <br/>Images from Digital Image correlation (DIC) showed Luder’s bands at the start of plastic deformation while Portevin Le-Chatelier (PLC) bands were visible after yielding in the stress strain curve. EBSD micrographs (Fig 1) shows blocky retained austenite morphology in the samples intercritically annealed at low temperature, while the samples annealed at high temperature show lath type morphology. <br/>Transmission electron microscopy (TEM) investigations were conducted to study the dislocation cells before and after tensile testing. TEM micrographs (Fig 2), obtained from the samples before and after tensile testing, show the presence of carbides at the grain boundaries of ferrite. The dislocation movement seen in Figure 2b, shows pinning of dislocations at the areas where there are no carbides. It is hypothesized that these areas are solute rich atmospheres and dislocations are pinned at the solute atoms in these areas. <br/>Simulations from JMaTPro (version 12.4) shows that carbides inside ferrite are in the stage of dissolution between 640°C-750°C annealing temperature. The carbides are of the type M(C,N) and M2(C,N) and upon dissolution they release C and N interstitials which can remain in ferrite. It is therefore speculated that DSA serrations is due to interaction between dislocations and C, N interstitials inside ferrite phase.

Topics
  • impedance spectroscopy
  • morphology
  • polymer
  • Carbon
  • grain
  • phase
  • simulation
  • aluminium
  • carbide
  • steel
  • aluminium alloy
  • transmission electron microscopy
  • dislocation
  • aging
  • annealing
  • electron backscatter diffraction
  • interstitial
  • Manganese
  • aging