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Metals 2017,7, 64 4. Zhang, L.C.; Attar,H. SelectiveLaserMelting of TitaniumAlloys andTitaniumMatrixComposites for BiomedicalApplications:AReview.Adv. Eng.Mater. 2016,4, 463–475. [CrossRef] 5. Frazier,W.E.Metal AdditiveManufacturing: AReview. J.Mater. Eng. Perform. 2014, 23, 1917–1928. [CrossRef] 6. Gu,D.D.;Meiners,W.;Wissenbach,K.;Poprawe,R.Laseradditivemanufacturingofmetallic components: Materials,processesandmechanisms. Int.Mater. Rev. 2012,57, 133–164. [CrossRef] 7. RaïŹ,H.K.;Karthik,N.V.;Gong,H.;Starr,T.L.;Stucker,B.E.Microstructuresandmechanicalpropertiesof Ti6Al4Vparts fabricatedbyselective lasermeltingandelectronbeammelting. J.Mater. Eng. Perform. 2013, 22, 3872–3883. [CrossRef] 8. Liu, Y.J.; Li, S.J.; Wang, H.L.; Hou, W.T.; Hao, Y.L.; Yang, R.; Sercombe, T.B.; Zhang, L.C. Microstructure,defectsandmechanicalbehaviorofbeta-type titaniumporousstructuresmanufacturedby electronbeammeltingandselective lasermelting.ActaMater. 2016,113, 56–67. [CrossRef] 9. Liu, Y.J.; Wang, H.L.; Li, S.J.; Wang, S.G.; Wang, W.J.; Hou, W.T.; Hao, Y.L.; Yang, R.; Zhang, L.C. Compressive and fatiguebehavior of beta-type titaniumporous structures fabricatedby electronbeam melting.ActaMater. 2017,126, 58–66. [CrossRef] 10. Liu, F.; Lin,X.; Yang,G.; Song,M.;Chen, J.;Huang,W.Microstructureandresidual stressof laser rapid formedInconel718nickel-basesuperalloy.Opt. LaserTechnol. 2011,43, 208–213. [CrossRef] 11. Riemer,A.; Leuders, S.; Thöne,M.; Richard,H.A.; Tröster, T.;Niendorf, T.On the fatigue crackgrowth behavior in316Lstainlesssteelmanufacturedbyselective lasermelting.Eng. Fract.Mech. 2013,120, 15–25. [CrossRef] 12. Hao,L.;Dadbakhsh,S.;Seaman,O.;Felstead,M.Selectivelasermeltingofastainlesssteelandhydroxyapatite composite for load-bearing implantdevelopment. J.Mater. Process. Technol. 2009,209, 5793–5801. [CrossRef] 13. Mathisen, M.B. In-Situ Tensile Testing Combined with EBSD Analysis of Ti-6Al-4V Samples from ComponentsFabricatedbyAdditiveLayerManufacture.Master’sThesis,NorwegianUniversityofScience andTechnology,Trondheim,Norway, June2012. 14. Yan,C.;Hao,L.;Hussein,A.;Young,P.; Raymont,D.Advanced lightweight316Lstainless steel cellular latticestructures fabricatedviaselective lasermelting.Mater.Des. 2014,55, 533–541. [CrossRef] 15. Verlee,B.;Dormal,T.;Lecomte-Beckers, J.Densityandporositycontrolof sintered316Lstainlesssteelparts producedbyadditivemanufacturing.PowderMetall. 2012,55, 260–267. [CrossRef] 16. Dewidar,M.;Khalil,A.;Lim, J.K.Processingandmechanicalpropertiesofporous316Lstainlesssteel for biomedicalapplications.Trans.Nonferr.Met. Soc. China2007,17, 468–473. [CrossRef] 17. AlMangour,B.;Grzesiak,D.;Yang, J.M.Selective lasermeltingofTiCreinforced316Lstainlesssteelmatrix nanocomposites: InïŹ‚uenceofstartingTiCparticlesizeandvolumecontent.Mater.Des. 2016,104, 141–151. [CrossRef] 18. AlMangour, B.; Grzesiak, D.; Yang, J.M. Rapid fabrication of bulk-form TiB2/316L stainless steel nanocompositeswithnovel reinforcementarchitectureandimprovedperformancebyselective lasermelting. J.Alloy. Compd. 2016,680, 480–493. [CrossRef] 19. AlMangour,B.;Grzesiak,D.; Yang, J.M.Selective lasermeltingofTiB2/316Lstainless steel composites: Therolesofpowderpreparationandhot isostaticpressingpost-treatment.PowderTechnol. 2017,309, 37–48. [CrossRef] 20. Yasa,E.;Kruth, J.P.Microstructural investigationofSelectiveLaserMelting316Lstainlesssteelpartsexposed to laser re-melting.Proced. Eng. 2011,19, 389–395. [CrossRef] 21. Jinhui,L.;Ruidi,L.;Wenxian,Z.;Liding,F.;Huashan,Y.Studyonformationofsurfaceandmicrostructureof stainlesssteelpartproducedbyselective lasermelting.Mater. Sci. Technol. 2010,26, 1259–1264. [CrossRef] 22. Carter,L.N.;Martin,C.;Withers,P.J.;Attallah,M.M.TheinïŹ‚uenceofthelaserscanstrategyongrainstructure andcrackingbehaviour inSLMpowder-bedfabricatednickel superalloy. J.Alloy. Compd. 2014,615, 338–347. [CrossRef] 23. Thijs,L.;Kempen,K.;Kruth, J.P.;vanHumbeeck, J.Fine-structuredaluminiumproductswithcontrollable texture by selective laser melting of pre-alloyed AlSi10Mg powder. ActaMater. 2013, 61, 1809–1819. [CrossRef] 24. Otsu,N.Athresholdselectionmethodfromgray-levelhistograms. IEEETrans. Syst.Man.Cybern. 1979,9, 62–66. [CrossRef] 128
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3D Printing of Metals
Titel
3D Printing of Metals
Autor
Manoj Gupta
Herausgeber
MDPI
Ort
Basel
Datum
2017
Sprache
englisch
Lizenz
CC BY-NC-ND 4.0
ISBN
978-3-03842-592-2
Abmessungen
17.0 x 24.4 cm
Seiten
170
Schlagwörter
3D printing, additive manufacturing, electron beam melting, selective laser melting, laser metal deposition, aluminum, titanium, magnesium, composites
Kategorien
Naturwissenschaften Chemie
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3D Printing of Metals