Antingen stödjer din webbläsare inte javascript, eller är javascript inaktiverat. Denna webbplats fungerar bäst om du aktiverar javascript.

SUMAN-NEXT Dissemination: Journal Publications

1. P. Karimi, T. Raza, J. Andersson, L-E Svensson, “Influence of laser exposure time and point distance on 75-μm-thick layer of selective laser melted Alloy 718”, Int J Adv Manuf Technol., vol. 94, pp. 2199-2207, 2017. DOI 10.1007/s00170-017-1019-1.

2. Andreas Segerstark, Joel Andersson, Lars-Erik Svensson and Olanrewaju Ojo “Microstructural Characterization of Laser Metal Powder Deposited Alloy 718”, Materials Characterization, 142, pp. 550-559, 2018.

3. Chamara Kumara, Dunyong Deng, Johan Moverare, Per Nylèn, ‘Modelling of anisotropic elastic properties in alloy 718 built by electron beam melting’, Materials Sci. Technology, vol. 34, pp.529-537, 2017.

4. P. Karimi, D. Deng, H. Gruber, J. Andersson, and P. Nylén “Influence of build layout and orientation on microstructural characteristics of electron beam melted Alloy 718”, Int J Adv Manuf Technol., vol. 99, pp. 2903-2913, 2018. https://doi.org/10.1007/s00170-018-2621-6, published (2018).

5. Tahira Raza, Joel Andersson & Lars-Erik Svensson (2018): Varestraint weldability testing of additive manufactured alloy 718, Science and Technology of Welding and Joining, vol. 23, pp.606-611, 2017. DOI: 10.1080/13621718.2018.1437338.

6. Claes Fredriksson, “Sustainability of metal powder additive manufacturing”, Proc. 6th Global Conference on Sustainable Manufacturing, Lexington, Kentucky, USA, 2-4 October, 2018; Procedia Manufacturing, vol. 33, pp 139-144, 2019.

7. B. Arun Ramanathan et al., “Influence of defects and as-built surface roughness on fatigue properties of additively manufactured Alloy 718,” Mater. Sci. Eng. A, vol. 735, pp. 463–474, Sep. 2018. https://doi.org/10.1016/j.msea.2018.08.072.

8. Paria Karimi, Esmaeil Sadeghi, Pia Åkerfeldt, Joakim Ålgårdh, Joel Andersson, “Influence of Successive Thermal Cycling on Microstructure Evolution of EBM-Manufactured Alloy 718 in Track-by-Track and Layer-by-Layer Design”, Journal of Materials & Design, vol. 160, pp. 427–441, 2018. DOI: 10.1016/j.matdes.2018.09.038.

9. Sneha Goel, Magnus Ahlfors, Fouzi Bahbou, Shrikant Joshi, “Effect of different post-treatments on the microstructure of EBM-built Alloy 718”, Journal of Materials Engineering and Performance, vol. 28, pp. 673-680 (2019).

10. Chamara Kumara, Andreas Segerstark, Fabian Hanning, Nikhil Dixit, Shrikant Joshi, Johan Moverare, Per Nylén, “Microstructure modelling of laser metal powder directed energy deposition of Alloy 718”, Additive Manufacturing, Vol. 25, pp.357-364 (2019).

11. Paria Karimi, Esmaeil Sadeghi, Joakim Ålgårdh, Joel Andersson, “EBM-Manufactured Single Tracks of Alloy 718: Influence of Energy Input and Focus Offset on Geometrical and Microstructural characteristics, Journal of Materials Characterization 148 (2019) 88–99, https://doi.org/10.1016/j.matchar.2018.11.033.

12. Sneha Goel, Anumat Sittiho, Indrajit Charit, Uta Klement, Shrikant Joshi, “Effect of post-treatments under hot isostatic pressure on microstructural characteristics of EBM-built Alloy 718, Additive Manufacturing, vol. 28, pp. 727-737 (2019).

13. B. Arun Ramanathan et al., “Microstructural influence on fatigue crack propagation during high cycle fatigue testing of additively manufactured Alloy 718,” Mater. Charact., vol. 149, pp. 82–94, Mar. 2019 https://doi.org/10.1016/j.matchar.2019.01.018.

14. B. Arun Ramanathan et al., “Additive Manufacturing of Alloy 718 via Electron Beam Melting: Effect of Post-Treatment on the Microstructure and the Mechanical Properties,” Materials, 12, 68, 2019. https://doi.org/10.3390/ma12010068.

15. Chamara Kumara, Dunyong Deng, Fabian Hanning, Morten Raanes, Johan Moverare, Per Nylén, “Prediction of the microstructure evolution in electron beam melting of Alloy 718 with phase-field modelling”, Accepted to Metallurgical and Materials Transactions A, vol. 50, pp. 2527-2537, 2019. 

16. B. Arun Ramanathan et al., “Microstructure tailoring in Electron Beam Powder Bed Fusion additive manufacturing and its potential consequences”, Results in Materials, vol. 1, Article ID 100017, 2019. https://doi.org/10.1016/j.rinma.2019.100017.

17. P. Karimi, E. Sadeghi, J. Ålgårdh, P. Harlin, and J. Andersson, “Effect of build location on microstructural characteristics and corrosion behavior of EB-PBF built Alloy 718”, Int J Adv Manuf Technol., vol. 106, pp. 3597-3607, 2020.

18. Paria Karimi, Christopher Schnur, Esmaeil Sadeghi, and Joel Andersson, “Contour design to improve topographical and microstructural characteristics of Alloy 718 manufactured using electron beam-powder bed fusion”, Journal of Additive Manufacturing, Published, vol. 32, Article ID 101014, 2020, doi.org/10.1016/j.addma.2019.101014.

19. Agnieszka Kisielewicz et al. "In-process spectroscopic detection of chromium loss during Directed Energy Deposition of alloy 718." Materials & Design, vol. 186, Article ID 108317, 2020.

20. Sreekanth, S., Ghassemali, E., Hurtig, K., Joshi, S., Andersson, J., 2020. “Effect of Direct Energy Deposition Process Parameters on Single-Track Deposits of Alloy 718”. Metals 10, 96, 2020. https://doi.org/10.3390/met10010096.

21. S. Goel, K. Bourreau , J. Olsson , U. Klement, and S. Joshi, “Can appropriate thermal post-treatment make defect content in as-built electron beam additively manufactured Alloy 718 irrelevant?,” Materials, vol. 13, pp. 536, 2020.

22. B. Arun Ramanathan et al., “Anisotropic fatigue properties of Alloy 718 manufactured by Electron Beam Powder Bed Fusion”, International Journal of Fatigue, Article ID 105898, 2020. https://doi.org/10.1016/j.ijfatigue.2020.105898.

23. C. Kumara, A. R. Balachandramurthi, S. Goel, F. Hanning, and J. Moverare, “Toward a better understanding of phase transformations in additive manufacturing of Alloy 718,” Materialia, vol. 13, no. June, Article ID 100862, Sep. 2020. https://doi.org/10.1016/j.mtla.2020.100862.

24. T. Gundgire, S. Goel, U. Klement, S. Joshi, “Response of different electron beam melting produced Alloy 718 microstructures to thermal post-treatments”, Mat. Charac., vol. 167, p. 110498, 2020.

25. S. Goel, H. Mehtani, S.-W. Yao, I. Samajdar, U. Klement, S. Joshi, “As-Built and Post-Treated Microstructures of an Electron Beam Melting (EBM) produced Nickel Based Superalloy,” Metal. & Mat. Trans. A, vol. 51, pp. 6546-6559, 2020.

26. S. Goel, E. Zaninelli, J. Gårdstam, U. Klement, S. Joshi, “Microstructure evolution based design of thermal post-treatments for EBM-built Alloy 718,” Journal of Materials Science, vol. 56, pp. 5250-5268, 2020.

Senast uppdaterad