Academic literature on the topic 'Direct Metal Laser Sintering'
Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles
Consult the lists of relevant articles, books, theses, conference reports, and other scholarly sources on the topic 'Direct Metal Laser Sintering.'
Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.
You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.
Journal articles on the topic "Direct Metal Laser Sintering"
Grünberger, Thomas, and Robert Domröse. "Direct Metal Laser Sintering." Laser Technik Journal 12, no. 1 (January 2015): 45–48. http://dx.doi.org/10.1002/latj.201500007.
Full textBăilă, Diana-Irinel. "Dental Restorations of Co-Cr Using Direct Metal Laser Sintering Process." International Journal of Materials, Mechanics and Manufacturing 6, no. 2 (April 2018): 94–98. http://dx.doi.org/10.18178/ijmmm.2018.6.2.354.
Full textEbersold, Zoran, Nebojsa Mitrovic, Slobodan Djukic, Branka Jordovic, and Aleksandar Peulic. "Defectoscopy of direct laser sintered metals by low transmission ultrasonic frequencies." Science of Sintering 44, no. 2 (2012): 177–85. http://dx.doi.org/10.2298/sos1202177e.
Full textKang, Hyun Goo, Toshiko Osada, and Hideshi Miura. "Density Gradient Materials by Direct Metal Laser Sintering." Advanced Materials Research 89-91 (January 2010): 281–84. http://dx.doi.org/10.4028/www.scientific.net/amr.89-91.281.
Full textMierzejewska, Ż. A. "Process Optimization Variables for Direct Metal Laser Sintering." Advances in Materials Science 15, no. 4 (December 1, 2015): 38–51. http://dx.doi.org/10.1515/adms-2015-0021.
Full textVenkatesh, K. Vijay, and V. Vidyashree Nandini. "Direct Metal Laser Sintering: A Digitised Metal Casting Technology." Journal of Indian Prosthodontic Society 13, no. 4 (February 5, 2013): 389–92. http://dx.doi.org/10.1007/s13191-013-0256-8.
Full textPrasad, Manjunath, U. N. Kempaiah, R. Murali Mohan, and Madeva Nagaral. "Microstructure, Tensile and Compression Behaviour of AlSi10Mg Alloy Developed by Direct Metal Laser Sintering." Indian Journal of Science and Technology 14, no. 45 (December 5, 2021): 3346–53. http://dx.doi.org/10.17485/ijst/v14i45.1705.
Full textZhu, H. H., J. Y. H. Fuh, and L. Lu. "Formation of Fe—Cu metal parts using direct laser sintering." Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 217, no. 1 (January 1, 2003): 139–47. http://dx.doi.org/10.1243/095440603762554686.
Full textCardaropoli, Francesco, Fabrizia Caiazzo, and Vincenzo Sergi. "Evolution of Direct Selective Laser Sintering of Metals." Advanced Materials Research 383-390 (November 2011): 6252–57. http://dx.doi.org/10.4028/www.scientific.net/amr.383-390.6252.
Full textBăilă, Diana Irinel. "Corrosion Behavior in Artificial Saliva of Personalized Dental Crowns of Co-Cr Alloys Manufactured by DMLS Process." Applied Mechanics and Materials 799-800 (October 2015): 515–19. http://dx.doi.org/10.4028/www.scientific.net/amm.799-800.515.
Full textDissertations / Theses on the topic "Direct Metal Laser Sintering"
Girardin, Emmanuelle. "Biomedical metal alloys produced by Direct Metal Laser Sintering." Doctoral thesis, Università Politecnica delle Marche, 2016. http://hdl.handle.net/11566/243150.
Full textDirect Metal Laser Sintering (DMLS), based on a layer-by-layer production process, was used to produce specimens in Co–Cr–Mo–W and Ti-6Al-4V alloys, which are utilized in biomedical applications. The mechanical response and microstructure were investigated in the as-sintered state and after post-production thermal treatments for the Co-Cr-Mo-W samples, and after two post-production treatments for the Ti-6Al-4V ones. Roughness and hardness measurements, as well as tensile and flexural tests, were performed to study the mechanical response, while X-ray diffraction (XRD), electron microscopy (SEM, TEM, STEM) and microanalysis (EDX) were used to investigate the microstructure in different conditions. The anisotropy of the Ti-6Al-4V specimens was also investigated. Results on the Co-Cr-Mo-W samples showed an intricate network of ε-Co (hcp) lamellae in the γ-Co (fcc) matrix, responsible of the high UTS and hardness in the as-sintered state. Thermal treatments increase volume fraction of the ε-Co (hcp) martensite but slightly modify the average size of the lamellar structure. Nevertheless, thermal treatments are capable of producing a sensible increase in UTS and hardness and a strong reduction in ductility. These latter effects were mainly attributed to the massive precipitation of an hcp Co3(Mo,W)2Si phase and the contemporary formation of Si-rich inclusions. Ti-6Al-4V specimens reveal extremely low porosity, high mechanical properties, in particular an elongation higher than the literature data. The results do not evidence any anisotropy between the different orientations. The observed microstructure is very fine. A martensitic α’-Ti phase is detected after the first stress relieving treatment, while the firing cycle induces a phase transformation to a stable α+β-Ti phase with the β phase growing at the α grains boundaries. These results suggest possible innovative applications of the DMLS technique to the production of mechanical parts in the medical and dental fields.
Pozzi, Francesco. "Direct metal laser sintering of steel with high vanadium content." Master's thesis, Alma Mater Studiorum - Università di Bologna, 2017. http://amslaurea.unibo.it/13548/.
Full textDewidar, Montasser Marasy A. "Direct and indirect laser sintering of metals." Thesis, University of Leeds, 2002. http://etheses.whiterose.ac.uk/3973/.
Full textŘíčan, Daniel. "Návrh výroby tělesa plynového analyzátoru s využitím metody Direct Metal Laser Sintering." Master's thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2011. http://www.nusl.cz/ntk/nusl-229527.
Full textChen, Tiebing. "Analysis and modeling of direct selective laser sintering of two-component metal powders." Diss., Columbia, Mo. : University of Missouri-Columbia, 2005. http://hdl.handle.net/10355/5818.
Full textThe entire dissertation/thesis text is included in the research.pdf file; the official abstract appears in the short.pdf file (which also appears in the research.pdf); a non-technical general description, or public abstract, appears in the public.pdf file. Title from title screen of research.pdf file viewed on (November 15, 2006) Vita. Includes bibliographical references.
Xu, Yangzi. "Corrosion Behavior of Direct Metal Laser Sintered Ti-6Al-4V for Orthopedic Applications." Digital WPI, 2017. https://digitalcommons.wpi.edu/etd-dissertations/282.
Full textDas, Suman. "Direct selective laser sintering of high performance metals : machine design, process development and process control /." Digital version accessible at:, 1998. http://wwwlib.umi.com/cr/utexas/main.
Full textCoffy, Kevin. "Microstructure and Chemistry Evaluation of Direct Metal Laser Sintered 15-5 PH Stainless Steel." Master's thesis, University of Central Florida, 2014. http://digital.library.ucf.edu/cdm/ref/collection/ETD/id/6256.
Full textM.S.M.E.
Masters
Materials Science Engineering
Engineering and Computer Science
Materials Science and Engineering
De, Beer N., and A. I. Odendaal. "The geometrical accuracy of a custom artificial intervertebral disc implant manufactured using Computed Tomography and Direct Metal Laser Sintering." Journal for New Generation Sciences, Vol 10, Issue 3: Central University of Technology, Free State, Bloemfontein, 2012. http://hdl.handle.net/11462/613.
Full textRapid Manufacturing (RM) has emerged over the past few years as a potential technology to successfully produce patient-specific implants for maxilla/facial and cranial reconstructive surgeries. However, in the area of spinal implants, customization has not yet come to the forefront and with growing capabilities in both software and manufacturing technologies, these opportunities need to be investigated and developed wherever possible. The possibility of using Computed Tomography (CT) and Rapid Manufacturing (RM) technologies to design and manufacture a customized, patient-specific intervertebral implant, is investigated. Customized implants could aid in the efforts to reduce the risk of implant subsidence, which is a concern with existing standard implants. This article investigates how accurately the geometry of a customized artificial intervertebral disc (CAID) can represent the inverse geometry of a patient's vertebral endplates. The results indicate that the endplates of a customized disc implant can be manufactured to a calculated average error of 0.01mm within a confidence interval of 0.022mm, with 95% confidence, when using Direct Metal Laser Sintering.
Verma, Anoop P. "Minimizing Build Time and Surface Inaccuracy of Direct Metal Laser Sintered Parts: An Artificial Intelligence Based Optimization Approach." University of Cincinnati / OhioLINK, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1249840383.
Full textBook chapters on the topic "Direct Metal Laser Sintering"
Xu, Yangzi, Kristin L. Sundberg, and Richard D. Sisson. "Corrosion Behavior of Ti6Al4V Fabricated by Direct Metal Laser Sintering." In Proceedings of the 13th World Conference on Titanium, 1501–5. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2016. http://dx.doi.org/10.1002/9781119296126.ch252.
Full textKotila, Juha, Tatu Syvänen, Jouni Hänninen, Maria Latikka, and Olli Nyrhilä. "Direct Metal Laser Sintering – New Possibilities in Biomedical Part Manufacturing." In Progress in Powder Metallurgy, 461–64. Stafa: Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-419-7.461.
Full textCader, Maciej, and Dominik Wyszyński. "Application of Direct Metal Laser Sintering for Manufacturing of Robotic Parts." In Recent Advances in Systems, Control and Information Technology, 312–26. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-48923-0_36.
Full textYe, Dongsen, Yingjie Zhang, Kunpeng Zhu, Geok Hong, and Jerry Ying. "Characterization of acoustic signals during a direct metal laser sintering process." In Advances in Energy Science and Equipment Engineering II, 1315–20. Taylor & Francis Group, 6000 Broken Sound Parkway NW, Suite 300, Boca Raton, FL 33487-2742: CRC Press, 2017. http://dx.doi.org/10.1201/9781315116174-89.
Full textDolinsek, Slavko. "Direct Metal Laser Sintering Some Improvements of the Materials and Process." In THERMEC 2006, 2681–86. Stafa: Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-428-6.2681.
Full textShakerin, Sajad, and Mohsen Mohammadi. "Hybrid Additive Manufacturing of MS1-H13 Steels via Direct Metal Laser Sintering." In TMS 2020 149th Annual Meeting & Exhibition Supplemental Proceedings, 277–83. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-36296-6_26.
Full textChoi, Jeongho. "Mechanical Characterization of Hyper-cubic Models Created with Direct Metal Laser Sintering Method." In Proceedings of the 11th International Conference on Porous Metals and Metallic Foams (MetFoam 2019), 59–68. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-42798-6_6.
Full textSamantaray, Mihir, Dhirendra Nath Thatoi, and Seshadev Sahoo. "An Approach to Numerical Modeling of Temperature Field in Direct Metal Laser Sintering." In Lecture Notes on Multidisciplinary Industrial Engineering, 295–314. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-319-96968-8_14.
Full textAhmed, Gulam Mohammed Sayeed, Mengistu Gelaw Perumall, Janaki Ramulu, Belay Brehane, Devendra Kumar Sinha, and Satyam Shivam Gautam. "Web Buckling Investigation of Direct Metal Laser Sintering-Based Connecting Rod with Hexagonal Perforations." In Advanced Manufacturing Processes, 51–77. Boca Raton: CRC Press, 2022. http://dx.doi.org/10.1201/9781003220237-3.
Full textRibamar, Giovani Gonçalves, Luis Paulo Mouráo dos Santos, Hana Livia Coelho, André Jardini, Marcelo José Gomes da Silva, Hamilton Ferreira Gomes de Abreu, and Miloslav Béreš. "Study of Phase Transformation in Ti-6Al-4V Alloy Produced by Direct Metal Laser Sintering." In Proceedings of the 13th World Conference on Titanium, 1295–98. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2016. http://dx.doi.org/10.1002/9781119296126.ch219.
Full textConference papers on the topic "Direct Metal Laser Sintering"
Syvänen, T., O. Nyrhilä, J. Kotila, and J.-E. Lind. "Direct metal laser sintering of complex metal structures." In ICALEO® 2001: Proceedings of the Laser Materials Processing Conference and Laser Microfabrication Conference. Laser Institute of America, 2001. http://dx.doi.org/10.2351/1.5059928.
Full textUtley, Eric. "Designing for 3D printing: direct metal laser sintering." In Laser 3D Manufacturing V, edited by Henry Helvajian, Alberto Piqué, and Bo Gu. SPIE, 2018. http://dx.doi.org/10.1117/12.2286673.
Full textSyvänen, T., O. Nyrhilä, J. Kotila, and J. E. Lind. "Direct metal laser sintering of very fine metal powders." In ICALEO® 2000: Proceedings of the Laser Materials Processing Conference. Laser Institute of America, 2000. http://dx.doi.org/10.2351/1.5059466.
Full textChandra Achinadka, Jagadish. "Study of Condensate Generated During Direct Metal Laser Sintering." In ASME 2017 Gas Turbine India Conference. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/gtindia2017-4900.
Full textSyvänen, T., Martin Heugel, and Robert Domröse. "Diode pumped fiber laser in direct metal laser sintering (DMLS) process." In ICALEO® 2004: 23rd International Congress on Laser Materials Processing and Laser Microfabrication. Laser Institute of America, 2004. http://dx.doi.org/10.2351/1.5060229.
Full textGrewal, G., G. Kaushal, and B. Krishan. "Direct Metal Laser Sintering (DMLS) Technique for Prospective Wear Related Applications." In ITSC2017, edited by A. Agarwal, G. Bolelli, A. Concustell, Y. C. Lau, A. McDonald, F. L. Toma, E. Turunen, and C. A. Widener. DVS Media GmbH, 2017. http://dx.doi.org/10.31399/asm.cp.itsc2017p1013.
Full textMordas, Genrik, Ada Steponavičiūtė, Aušra Selskienė, Jurijus Tretjakovas, and Sergejus Borodinas. "Direct Metal Laser Sintering of stainless steel alloy: microstructure and mechanical properties." In The 13th international scientific conference “Modern Building Materials, Structures and Techniques”. Vilnius Gediminas Technical University, 2019. http://dx.doi.org/10.3846/mbmst.2019.201.
Full textBoschetto, A., F. Veniali, and F. Miani. "Mass Finishing of Parts Produced by Direct Metal Laser Sintering." In ASME 7th Biennial Conference on Engineering Systems Design and Analysis. ASMEDC, 2004. http://dx.doi.org/10.1115/esda2004-58585.
Full textSeyffert, Riley, and Sudhir Kaul. "Experimental Study of Direct Metal Laser Sintering: High Cycle Fatigue Life and Process Parameters." In ASME 2020 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/imece2020-23003.
Full textBuranasiri, Prathan, Setthanun Thongsuwan, Assawin Ranusawas, Pichet Limsuwan, and Saichon Jaiyen. "Investigation of direct metal sintering process of iron powder with low laser power." In Laser 3D Manufacturing V, edited by Henry Helvajian, Alberto Piqué, and Bo Gu. SPIE, 2018. http://dx.doi.org/10.1117/12.2299654.
Full textReports on the topic "Direct Metal Laser Sintering"
Bons, Jeffrey, Ali Ameri, James Gregory, and Arif Hossain. Revolutionizing Turbine Cooling with Micro-Architectures Enabled by Direct Metal Laser Sintering. Office of Scientific and Technical Information (OSTI), May 2020. http://dx.doi.org/10.2172/1630131.
Full textTekalur, Arjun, Jacob Kallivayalil, Jason Carroll, Mike Killian, Benjamin Schultheis, Anil Chaudhary, Zackery McClelland, Jeffrey Allen, Jameson Shannon, and Robert Moser. Additive manufacturing of metallic materials with controlled microstructures : multiscale modeling of direct metal laser sintering and directed energy deposition. Engineer Research and Development Center (U.S.), July 2019. http://dx.doi.org/10.21079/11681/33481.
Full textList, III, Frederick Alyious, Ralph Barton Dinwiddie, Keith Carver, and Joy E. Gockel. Melt-Pool Temperature and Size Measurement During Direct Laser Sintering. Office of Scientific and Technical Information (OSTI), August 2017. http://dx.doi.org/10.2172/1399977.
Full textWatkins, Thomas R., Kinga A. Unocic, Philip J. Maziasz, Jeffrey R. Bunn, Christopher M. Fancher, Alonso Peralta, Suresh Sundarraj, and James Neumann. Residual stress determination of direct metal laser sintered (DMLS) inconel specimens and parts. Office of Scientific and Technical Information (OSTI), January 2018. http://dx.doi.org/10.2172/1415913.
Full textSridharan, Niyanth, Ryan R. Dehoff, Brian H. Jordan, and Sudarsanam Suresh Babu. Development of coatings for ultrasonic additive manufacturing sonotrode using laser direct metal deposition process. Office of Scientific and Technical Information (OSTI), October 2016. http://dx.doi.org/10.2172/1331097.
Full textKing, W., and A. Makinde. Minimization of Spatter During Direct Metal Laser Powder Fusion Additive Manufacturing Process Using ALE3D Coupled with Experiments, CRADA No. TC02254. Office of Scientific and Technical Information (OSTI), March 2022. http://dx.doi.org/10.2172/1860790.
Full textKing, Wayne, and Ade Makinde. Minimization of Spatter During Direct Metal Laser Powder Bed Fusion (LPBF) Additive Manufacturing Process Using ALE3D Coupled with Experiments, (CRADA TC02254 Final Report). Office of Scientific and Technical Information (OSTI), February 2019. http://dx.doi.org/10.2172/1650023.
Full textLeybourne, M. I., J. M. Peter, M A Schmidt, D. Layton-Matthews, A. Voinot, and L. Mathieu. Geochemical evidence for a magmatic contribution to the metal budget of the Windy Craggy Cu-Co(±Zn) volcanogenic massive-sulfide deposit, northwestern British Columbia. Natural Resources Canada/CMSS/Information Management, 2022. http://dx.doi.org/10.4095/328018.
Full text