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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Materials Map under construction

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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Pinomaa, Tatu

  • Google
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VTT Technical Research Centre of Finland

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (38/38 displayed)

  • 2024OpenPFC:An open-source framework for high performance 3D phase field crystal simulations2citations
  • 2024OpenPFC2citations
  • 2024Influence of laser beam shaping on the cracking behavior of tungsten at single weld lines2citations
  • 2023Modelling of the Solidifying Microstructure of Inconel 7183citations
  • 2023Chromium-based bcc-superalloys strengthened by iron supplements19citations
  • 2023Modelling of the Solidifying Microstructure of Inconel 718: Quasi-Binary Approximation3citations
  • 2023Modelling of the Solidifying Microstructure of Inconel 718:Quasi-Binary Approximation3citations
  • 2022Dislocation density in cellular rapid solidification using phase field modeling and crystal plasticity39citations
  • 2022An atomistic simulation study of rapid solidification kinetics and crystal defects in dilute Al–Cu alloys17citations
  • 2022Numerical Design Of High Entropy Super Alloy Using Multiscale Materials Modeling And Deep Learningcitations
  • 2022Multiscale analysis of crystalline defect formation in rapid solidification of pure aluminium and aluminium–copper alloys14citations
  • 2022Single-Track Laser Scanning as a Method for Evaluating Printability: The Effect of Substrate Heat Treatment on Melt Pool Geometry and Cracking in Medium Carbon Tool Steel5citations
  • 2022Multiscale analysis of crystal defect formation in rapid solidification of pure aluminium and aluminium-copper alloyscitations
  • 2022Laser Powder Bed Fusion Of High Carbon Tool Steelscitations
  • 2022Experimental and Calphad Methods for Evaluating Residual Stresses and Solid-State Shrinkage after Solidification3citations
  • 2022Opportunities Of Physics-Based Multi-Scale Modeling Tools In Assessing Intra-Grain Heterogeneities, Polycrystal Properties And Residual Stresses Of AM Metalscitations
  • 2021Micromechanical modeling approach to single track deformation, phase transformation and residual stress evolution during selective laser melting using crystal plasticity27citations
  • 2021Quantitative phase field simulations of polycrystalline solidification using a vector order parameter4citations
  • 2021Orientation Gradients in Rapidly Solidified Pure Aluminum Thin Films25citations
  • 2020Development and validation of coupled erosion-corrosion model for wear resistant steels in environments with varying pH15citations
  • 2020Modelling selective laser melting machine configurationscitations
  • 2020Phase field modeling of rapid resolidification of Al-Cu thin films47citations
  • 2020The significance of spatial length scales and solute segregation in strengthening rapid solidification microstructures of 316L stainless steel129citations
  • 2020Phase field modeling of rapid solidification for thin films and additive manufacturing ; Nopean jähmettymisen faasikenttämallinnusta ohutkalvoille ja materiaalia lisäävälle valmistukselle60citations
  • 2019Data-Driven Optimization Of Metal Additive Manufacturing Solutionscitations
  • 2019On The Linking Performance Evaluation Toolset To Process-structure-properties Mapping Of Selective Laser Melting 316L Stainless Steel Using Micromechanical Approach With A Length-scale Dependent Crystal Plasticitycitations
  • 2019Quantitative phase field modeling of solute trapping and continuous growth kinetics in quasi-rapid solidification79citations
  • 2019Process-Structure-Properties-Performance Modeling for Selective Laser Melting39citations
  • 2018Process-to-structure mapping of selective laser melting of a nickel based superalloy via phase field modellingcitations
  • 2018Micromechanical model for fatigue limit of metal AM parts and materialscitations
  • 2017Micromechanical modeling of failure behavior of metallic materials5citations
  • 2016Effective interface model for design and tailoring of wc-co microstructures13citations
  • 2016Modeling chloride ingress under freeze-thaw loading – 3D fem approachcitations
  • 2016Modeling chloride ingress under freeze-thaw loading – 3D fem approachcitations
  • 2016Component scale process model for metal additive manufacturingcitations
  • 2015Effective interface model for design and tailoring of wc-co microstructurescitations
  • 2015Mesoscale modelling of short crack initiation in metallic selective laser melting microstructurescitations
  • 2015Phase field analysis of solidification structures and interface composition in WC-Co hard metalscitations

Places of action

Chart of shared publication
Laukkanen, Anssi
32 / 144 shared
Suviranta, Jaarli
2 / 2 shared
Jreidini, Paul
5 / 5 shared
Provatas, Nikolas
15 / 18 shared
Aho, Jukka
2 / 2 shared
Neu, Rudolf
1 / 5 shared
Grünewald, Jonas
1 / 3 shared
Stoll, Thomas
1 / 2 shared
Wudy, Katrin
1 / 10 shared
Müller, Alexander V.
1 / 1 shared
Lürbke, Robert
1 / 1 shared
Lohr, Lukas
1 / 1 shared
Schmitt, Maximilian
1 / 1 shared
Lippmann, Stephanie
3 / 11 shared
Galenko, Peter K.
3 / 7 shared
Seyring, Martin
3 / 14 shared
Fang, Yindong
3 / 5 shared
Freiberg, Katharina
3 / 9 shared
Kropotin, Nikolai
3 / 5 shared
Yu, Chu
3 / 5 shared
Kerbstadt, Michael
1 / 1 shared
Magnussen, Jp
1 / 1 shared
Ma, Kan
1 / 6 shared
Knowles, Alexander J.
1 / 8 shared
Moody, Mp
1 / 32 shared
Ferreirós, Pedro A.
1 / 16 shared
Bagot, Paul A. J.
1 / 15 shared
Hofer, Christina
1 / 18 shared
Galetz, Mc
1 / 1 shared
Day, Sj
1 / 4 shared
Hopkinson, Dg
1 / 2 shared
Blackburn, Thomas
1 / 1 shared
Ammar, Kais
3 / 18 shared
Forest, Samuel
3 / 142 shared
Lindroos, Matti
16 / 61 shared
Wang, Lei
3 / 23 shared
Haapalehto, Matias
3 / 3 shared
Kaipainen, Joni
1 / 2 shared
Andersson, Tom
17 / 51 shared
Suhonen, Tomi
3 / 50 shared
Lindroos, Tomi
6 / 55 shared
Reijonen, Joni
5 / 14 shared
Lagerbom, Juha
5 / 66 shared
Antikainen, Atte
5 / 13 shared
Ofori-Opoku, Nana
2 / 2 shared
Wiezorek, Jörg M. K.
1 / 2 shared
Mckeown, Joseph T.
1 / 2 shared
Lindgren, Mari
1 / 14 shared
Mckeown, Joseph
1 / 2 shared
Wiezorek, Jörg
1 / 2 shared
Walbrühl, Martin
1 / 3 shared
Yashchuk, Ivan
3 / 3 shared
Verho, Tuukka
1 / 13 shared
Holmberg, Kenneth
2 / 66 shared
Ferreira, Rui Miguel
1 / 21 shared
Bohner, Edgar
2 / 10 shared
Ferreira, Miguel
1 / 11 shared
Puukko, Pasi
1 / 10 shared
Laakso, Petri
1 / 14 shared
Laitinen, Tarja
2 / 7 shared
Jokinen, Antero
1 / 5 shared
Vaajoki, Antti
1 / 16 shared
Gurevich, Sebastian
1 / 1 shared
Chart of publication period
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2023
2022
2021
2020
2019
2018
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2016
2015

Co-Authors (by relevance)

  • Laukkanen, Anssi
  • Suviranta, Jaarli
  • Jreidini, Paul
  • Provatas, Nikolas
  • Aho, Jukka
  • Neu, Rudolf
  • Grünewald, Jonas
  • Stoll, Thomas
  • Wudy, Katrin
  • Müller, Alexander V.
  • Lürbke, Robert
  • Lohr, Lukas
  • Schmitt, Maximilian
  • Lippmann, Stephanie
  • Galenko, Peter K.
  • Seyring, Martin
  • Fang, Yindong
  • Freiberg, Katharina
  • Kropotin, Nikolai
  • Yu, Chu
  • Kerbstadt, Michael
  • Magnussen, Jp
  • Ma, Kan
  • Knowles, Alexander J.
  • Moody, Mp
  • Ferreirós, Pedro A.
  • Bagot, Paul A. J.
  • Hofer, Christina
  • Galetz, Mc
  • Day, Sj
  • Hopkinson, Dg
  • Blackburn, Thomas
  • Ammar, Kais
  • Forest, Samuel
  • Lindroos, Matti
  • Wang, Lei
  • Haapalehto, Matias
  • Kaipainen, Joni
  • Andersson, Tom
  • Suhonen, Tomi
  • Lindroos, Tomi
  • Reijonen, Joni
  • Lagerbom, Juha
  • Antikainen, Atte
  • Ofori-Opoku, Nana
  • Wiezorek, Jörg M. K.
  • Mckeown, Joseph T.
  • Lindgren, Mari
  • Mckeown, Joseph
  • Wiezorek, Jörg
  • Walbrühl, Martin
  • Yashchuk, Ivan
  • Verho, Tuukka
  • Holmberg, Kenneth
  • Ferreira, Rui Miguel
  • Bohner, Edgar
  • Ferreira, Miguel
  • Puukko, Pasi
  • Laakso, Petri
  • Laitinen, Tarja
  • Jokinen, Antero
  • Vaajoki, Antti
  • Gurevich, Sebastian
OrganizationsLocationPeople

article

OpenPFC

  • Laukkanen, Anssi
  • Suviranta, Jaarli
  • Pinomaa, Tatu
  • Jreidini, Paul
  • Provatas, Nikolas
  • Aho, Jukka
Abstract

<p>We present OpenPFC (https://github.com/VTT-ProperTune/OpenPFC), a state-of-the-art phase field crystal (PFC) simulation platform designed to be scalable for massive high-performance computation environments. OpenPFC can efficiently handle large-scale simulations, as demonstrated by our strong and weak scaling analyses up to an 8192<sup>3</sup> grid on 65 536 cores. Our results indicate that meaningful PFC simulations can be conducted on grids of size 2048<sup>3</sup> or even 4096<sup>3</sup>, provided there is a sufficient number of cores and ample disk storage available. In addition, we introduce an efficient implementation of moving boundary conditions that eliminates the need for copying field values between MPI processes or adding an advection term to the evolution equations. This scheme enhances the computational efficiency in simulating large scale processes such as long directional solidification. To showcase the robustness of OpenPFC, we apply it to simulations of rapid solidification in the regime of metal additive manufacturing using a recently developed quantitative solid-liquid-vapor PFC model, parametrized for pure tungsten (body-centered cubic) and aluminum (face-centered cubic).</p>

Topics
  • impedance spectroscopy
  • phase
  • simulation
  • aluminium
  • tungsten
  • additive manufacturing
  • directional solidification
  • rapid solidification