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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Santa-Aho, Suvi Tuulikki

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Tampere University of Technology

in Cooperation with on an Cooperation-Score of 37%

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Publications (22/22 displayed)

  • 2024Magnetic domain wall dynamics studied by in-situ lorentz microscopy with aid of custom-made Hall-effect sensor holder5citations
  • 2024Synergistic effects of heat treatments and severe shot peening on residual stresses and microstructure in 316L stainless steel produced by laser powder bed fusion21citations
  • 2024Magnetic behavior of steel studied by in-situ Lorentz microscopy, magnetic force microscopy and micromagnetic simulationscitations
  • 2023Magnetic Domain Structure of Ferromagnetic Steels Studied by Lorentz Microscopy and Magnetic Force Microscopycitations
  • 2023Multi-instrumental approach to domain walls and their movement in ferromagnetic steels – Origin of Barkhausen noise studied by microscopy techniques12citations
  • 2022Novel utilization of microscopy and modelling to better understand Barkhausen noise signalcitations
  • 2022Comparative study of additively manufactured and reference 316 L stainless steel samples – Effect of severe shot peening on microstructure and residual stresses50citations
  • 2022Surface and subsurface modification of selective laser melting built 316L stainless steel by means of severe shot peeningcitations
  • 2021Additive manufactured 316l stainless-steel samples39citations
  • 2021Mimicking Barkhausen noise measurement by in-situ transmission electron microscopy - effect of microstructural steel features on Barkhausen noise22citations
  • 2021Motion of Domain Walls in Ferromagnetic Steel Studied by TEM – Effect of Microstructural Featurescitations
  • 2020Statistical evaluation of the Barkhausen Noise Testing (BNT) for ground samplescitations
  • 2020Cracking and Failure Characteristics of Flame Cut Thick Steel Plates8citations
  • 2019Role of Steel Plate Thickness on the Residual Stress Formation and Cracking Behavior During Flame Cutting9citations
  • 2019Case Depth Prediction of Nitrided Samples with Barkhausen Noise Measurement18citations
  • 2018Surface layer characterization of shot peened gear specimens2citations
  • 2018Effect of microstructural characteristics of thick steel plates on residual stress formation and cracking during flame cutting4citations
  • 2017Characterization of Flame Cut Heavy Steel12citations
  • 2016Barkhausen noise response of three different welded duplex stainless steels1citations
  • 2016The Characterization of Flame Cut Heavy Steel – The Residual Profiling of Heat Affected Surface Layer5citations
  • 2015Modelling of Material Properties Using Frequency Domain Information from Barkhausen Noise Signal3citations
  • 2012Barkhausen Noise Method for Hardened Steel Surface Characterization - The Effect of Heat Treatments, Thermal Damages and Stressescitations

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Laurson, Lasse
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Kajan, Jaakko
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Vippola, Minnamari
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Palosaari, Mikko
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Kaappa, Sami
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Savolainen, Samuli
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Lukinmaa, Henri
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Honkanen, Mari Hetti
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Azzari, Lucio
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Gundgire, Tejas
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Järvenpää, Antti
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Rautio, Timo
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Ullakko, Kari
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Saren, Andrey
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Jokiaho, Tuomas
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Lindgren, Mari
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Kiviluoma, Mika
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Eslahi, Nasser
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Foi, Alessandro
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Sorsa, Aki
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Lundin, Per
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Tomkowski, Robert
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Peura, Pasi
5 / 56 shared
Leiviskä, Kauko
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Shaw, Brian
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Aylott, Christopher
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Suominen, Lasse
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Wartiainen, Jukka
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Järvinen, Henri
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Isakov, Matti
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Laitinen, A.
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Lehtovaara, Arto
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Saarinen, T.
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Lindgren, M.
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Saarinen, Tuomo
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Nikula, Riku-Pekka
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Co-Authors (by relevance)

  • Laurson, Lasse
  • Kajan, Jaakko
  • Vippola, Minnamari
  • Palosaari, Mikko
  • Kaappa, Sami
  • Savolainen, Samuli
  • Lukinmaa, Henri
  • Honkanen, Mari Hetti
  • Azzari, Lucio
  • Gundgire, Tejas
  • Järvenpää, Antti
  • Rautio, Timo
  • Ullakko, Kari
  • Saren, Andrey
  • Jokiaho, Tuomas
  • Lindgren, Mari
  • Kiviluoma, Mika
  • Eslahi, Nasser
  • Foi, Alessandro
  • Sorsa, Aki
  • Lundin, Per
  • Tomkowski, Robert
  • Peura, Pasi
  • Leiviskä, Kauko
  • Shaw, Brian
  • Aylott, Christopher
  • Suominen, Lasse
  • Wartiainen, Jukka
  • Järvinen, Henri
  • Isakov, Matti
  • Laitinen, A.
  • Lehtovaara, Arto
  • Saarinen, T.
  • Lindgren, M.
  • Saarinen, Tuomo
  • Nikula, Riku-Pekka
OrganizationsLocationPeople

article

Synergistic effects of heat treatments and severe shot peening on residual stresses and microstructure in 316L stainless steel produced by laser powder bed fusion

  • Gundgire, Tejas
  • Järvenpää, Antti
  • Vippola, Minnamari
  • Santa-Aho, Suvi Tuulikki
  • Rautio, Timo
Abstract

This study investigated the post-processing of laser powder bed fusion (LPBF) built 316L stainless steel components to address quality-related issues such as dangerous residual stresses and poor surface finish. Two different heat treatments (HT) at 600 °C and 900 °C, followed by severe shot peening (SSP), were employed to mitigate these concerns. The impact on roughness, residual stresses, microhardness, and microstructure in both as-printed and post-processed states was examined. Results indicate that the 600 °C HT fails to relieve residual stresses, while the 900 °C HT significantly reduces them by 90%. Furthermore, the SSP effectively reduced surface roughness by more than half of the initial values. The initial microstructures and residual stresses of the as-printed, 600 °C HT, and 900 °C HT samples differ, leading to distinct responses to identical SSP treatments. Notably, the 900 °C HT sample exhibited the deepest grain refinement after SSP and experienced the most substantial increase in surface hardness compared to the other samples. This research addressed critical quality issues in LPBF-built components by combining specific heat treatments and SSP. The 900°HT combined with SSP stood out as an effective method for relieving residual stresses and enhancing material properties. The distinct responses of the samples to post-processing highlight the importance of tailored treatments for LPBF components. These findings have significant implications for improving the quality and performance of LPBF components, with potential applications demanding improved fatigue and stress corrosion cracking performance. ; Peer reviewed

Topics
  • surface
  • grain
  • stainless steel
  • fatigue
  • hardness
  • selective laser melting
  • stress corrosion
  • specific heat