PSI - Issue 42

Ralf Lach et al. / Procedia Structural Integrity 42 (2022) 3–8 Author name / Structural Integrity Procedia 00 (2019) 000 – 000

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Acknowledgements The authors acknowledge Investitionsbank Sachsen-Anhalt for financial support regarding the project dealing with „Prognose des Einsatzverhaltens 3D -gedruckter Bauteile mittels bruchmechanischer Ansätze“ (acronym: FFD Crack). References Aliheidari, N., Tripuraneni, R., Ameli, A., Nadimpalli, S., 2017. Fracture resistance measurement of fused deposition modeling 3D printed polymers. Polymer Testing 60, 94–101. Arbeiter, F., Spoerk, M., Wiener, J., Gosch, A., Pinter, G., 2018. Fracture mechanical characterization and lifetime estimation of near homogeneous components produced by fused filament fabrication. Polymer Testing 66, 105–113. Blattmeier, M., Witt, G., Wortberg, J., Eggert, J., Toepker, J., 2012. Influence of surface characteristics on fatigue behaviour of laser sintered plastics. Rapid Prototyping Journal 18, 161–171. Clutton, E., 2001. Essential work of fracture. In: Moore, D. R., Pavan, A., Williams, J. G. (Eds.). “Fracture Mechanics Testing Methods for Polymers” . ESIS Publication 28, Elsevier, Amsterdam, pp. 177–195. Cuan - Urquizo, E., Barocio, E., Tejada - Ortigoza, V., Pipes, R. B., Rodriguez, C. A., Roman - Flores, A., 2019. Characterization of the mechanical properties of FFF structures and materials: A review on the experimental, computational and theoretical approaches. Materials 12/895, 25 pages. Es - Said, O. S., Foyos, J., Noorani, R., Mendelson, M., Marloth, R., Pregger, B. A., 2000. Effect of layer orientation on mechanical properties of rapid prototyped samples. Materials and Manufacturing Processes 15, 107–122. Gebhardt, A. Hötter, J. - S., 2016. „Additive Manufacturing: 3D Printing for Prototyping and Manufacturing“ . Carl Hanser, Munich. Gebhardt, A., 2016a. „Generative Fertigungsverfahren: Additive Manufacturing und 3D - Drucken für Prototyping – Tooling – Produktion“ . 5th edition, Carl Hanser, Munich. Gibson, I., Rosen, D. W., Stucker, B., 2010. „ Additive Manufacturing Technologies” . Springer, New York Heidelberg Dordrecht London. Grellmann, W., Seidler, S., Hesse, W., 2016. „Prüfung von Kunststoffen – Instrumentierter Kerbschlagbiegeversuch (IKBV) – Prozedur zur Ermittlung des Risswiderstandsverhaltens aus dem Instrumentierten Kerbschlagbiegeversuch“ . Polymer Service GmbH Merseburg, Merseburg, MPK - Prozedur MPK - IKBV Teil I: Kennwertermittlung als Widerstand gegenüber instabiler Rissausbreitung. Grießbach, S., Lach, R., Grellmann, W., 2010. Structure–property correlations of laser sintered nylon 12 for dynamic dye testing of plastic parts. Polymer Testing 29, 1026–1030. Grießbach, S., 2012. „Korrelation zwischen Materialzusammensetzung, Herstellungsbedingungen und Eigenschaftsprofil von lasergesinterten Polyamid - Werkstoffen“ . Verlag Wissenschaftliche Scripten, Auerbach. Grießbach, V., 2015. „Rapid Technologien: Toleranzmanagement“ , Beuth, Berlin Vienna Zurich. Grießbach, V., 2016. „Rapid Technologien: Verfahrens - und Werkstoffmanagement“ . Beuth, Berlin Vienna Zurich. Hart, K. R., Wetzel, E. D., 2017. Fracture behavior of additively manufactured acrylonitrile butadiene styrene (ABS) materials. Engineering Fracture Mechanics 177, 1–13. Kaut, F., Cepus, V., Grellmann, W., Lach, R., 2018. Struktur - Eigenschafts - Beziehungen additiv gefertigter thermo - plastischer Polymere am Beispiel der ARBURG - Freeformer - Technologie. In: Kynast, M., Eichmann, M., Witt, G. (Eds.). “Rapid.Tech + FabCon 3.D – International Trade Show & Conference for Additive Manufacturing. Proceedings of the 15th Rapid.Tech Conference” . Carl Hanser, Munich, pp. 217–235. Lach, R., Schneider, K., Weidisch, R., Janke, A., Knoll, K., 2005. Application of the essential work of fracture concept to nanostructured polymer materials. European Polymer Journal 41, 383–392. Lach, R., Monami, A., Grießbach, S., Grießbach, V., Grellmann, W., 2018. Lifetime assessment of additive manufactured polymer materials by means of the rolling ring test using cyclically loaded notched ring specimens. Structural Integrity Procedia 13, 34–38. Mautner, A., Steinbauer, B., Orman, S., Russmüller, G., Macfelda, K., Koch, T., Stampfl, J., Liska, R., 2016. Tough photopolymers based on vinyl esters for biomedical applications. Journal of Polymer Science Part A: Polymer Chemistry 54, 1987–1997. Roberson, D. A., Perez, A. R. T., Shemelya, C. M., Rivera, A., MacDonald, E., Wicker, R. B., 2015. Comparison of stress concentrator fabrication for 3D printed polymeric Izod impact test specimens. Additive Manufacturing 7, 1–11. Sauer, A., 2005. „Optimierung der Bauteileigenschaften beim selektiven Lasersintern von Thermoplasten“ . Shaker, Herzogenrath. Tsouknidas, A., Pantazopoulos, M., Katsoulis, I., Fasnakis, D., Maropoulos, S., Michailidis, N., 2016. Impact absorption capacity of 3D - printed components fabricated by fused deposition modelling. Materials & Design 102, 41–44. Van Hooreweder, B., Moens, D., Boonen, R., Kruth, J. - P., Sas, P., 2013. On the difference in material structure and fatigue properties of nylon specimens produced by injection molding and selective laser sintering. Polymer Testing 32, 972–981. Wang, L., Gramlich, W. M., Gardner, D. J., 2017. Improving the impact strength of poly(lactic acid) (PLA) in fused layer modeling (FLM). Polymer 114, 242–248.

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