Laser-Sintern mit Endlosfasern verstehen/Understanding laser-sintering with continuous fibers
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wt Werkstattstechnik online
Volume 115 (2025), Issue 05
- Authors:
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- Publisher
- VDI fachmedien, Düsseldorf
- Copyright Year
- 2025
- ISSN-Online
- 1436-4980
- ISSN-Print
- 1436-4980
Chapter information
Open Access Full access
Volume 115 (2025), Issue 05
Laser-Sintern mit Endlosfasern verstehen/Understanding laser-sintering with continuous fibers
- Authors:
- | |
- ISSN-Print
- 1436-4980
- ISSN-Online
- 1436-4980
- Preview:
The additive manufacturing of continuous fibre-reinforced plastic components (CFRP) enables the cost-effective production of complex components for various industries. Laser sintering as a process has only recently been developed for the production of CFRP. While the integration has been validated, the mechanisms behind the process are not fully understood. This paper presents an approach to investigate the process-structure-property relationships and the optimisation that is possible as a result.
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- [1] Peichl, A.; Sauer, S.; Wohlrabe, K.: Fachkräftemangel in Deutschland und Europa – Historie, Status quo und was getan werden muss. ifo Schnelldienst Nr. 10 (2022), S. 70–75 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [2] Gönnheimer, P.; Netzer, M.; Lange, C. et al.: Datenaufnahme und -verarbeitung in der Brownfield-Produktion: Studie zum Stand der Digitalisierung und bestehenden Herausforderung im Produktionsumfeld. Zeitschrift für wirtschaftlichen Fabrikbetrieb 117 (2022) 5, S. 317–320 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [3] Samochowiec, J.; Bauer, J.; Neumüller, K.: Strategies for dealing with the labour shortage – An overview. SSRN Journal (2023) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [4] Hadad, Y.; Keren, B.: A revised method for allocating the optimum number of similar machines to operators. International Journal of Productivity and Performance Management 65 (2016) 2, pp. 223–244 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [5] Abellan-Nebot, J. V.; Romero Subirón, F.: A review of machining monitoring systems based on artificial intelligence process models. The International Journal of Advanced Manufacturing Technology 47 (2010) 1–4, pp. 237–257 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [6] Hansjosten, M.; Bott, A.; Puchta, A. et al.: Model-Based Diagnosis of Feed Axes with Contactless Current Sensing. In: Liewald, M.; Verl, A.; Bauernhansl, T.; Möhring, H.-C. (Hrsg.): Production at the Leading Edge of Technology. Lecture Notes in Production Engineering. Cham: Springer International Publishing (2023), pp. 314–323 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [7] Mohanraj, T.; Kirubakaran, E. S.; Madheswaran, D. K. et al.: Review of advances in tool condition monitoring techniques in the milling process. Measurement Science and Technology 35 (2024) 9, pp. 092002. Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [8] Möhring, H.-C.; Litwinski, K. M.; Gümmer, O.: Process monitoring with sensory machine tool components. CIRP Annals 59 (2010) 1, pp. 383–386 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [9] Xi, T.; Benincá, I. M.; Kehne, S. et al.: Tool wear monitoring in roughing and finishing processes based on machine internal data. The International Journal of Advanced Manufacturing Technology 113 (2021) 11–12, pp. 3543–3554 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [10] Brillinger, M.; Wuwer, M.; Abdul Hadi, M. et al.: Energy prediction for CNC machining with machine learning. CIRP Journal of Manufacturing Science and Technology 35 (2021), pp. 715–723 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [11] Schmitt, A.-M.; Miller, E.; Engelmann, B. et al.: G-code evaluation in CNC milling to predict energy consumption through Machine Learning. Advances in Industrial and Manufacturing Engineering 8 (2024), pp. 100140 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [12] Netzer, M.; Bach, J.; Puchta, A. et al.: Process Segmented based Intelligent Anomaly Detection in Highly Flexible Production Machines under Low Machine Data Availability. Procedia CIRP 107 (2022), pp. 647–652 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [13] Ströbel, R.; Probst, Y.; Deucker, S. et al.: Time Series Prediction for Energy Consumption of Computer Numerical Control Axes Using Hybrid Machine Learning Models. Machines 11 (2023) 11, pp. 1015 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [14] Ströbel, R.; Mau, M.; Hafez, K. et al.: Training and validation dataset 3 of milling processes for time series prediction. Karlsruher Institut für Technologie (2024) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [15] Geurts, P.; Ernst, D.; Wehenkel, L.: Extremely randomized trees. Machine Learn 63 (2006) 1, pp. 3–42 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-6
- [1] Hirsch, A.; Regel, J.: Werkzeugmaschinen und Vorrichtungen: Anforderungen, Auslegung, Ausführungsbeispiele. Wiesbaden: Springer Fachmedien Wiesbaden 2022 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [2] Conrad, S.; Dietrich, E.: Abnahme von Maschinen und Fertigungseinrichtungen. 4. aktl. Auflage. München: Hanser 2020 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [3] Brecher, C.; Weck, M.: Werkzeugmaschinen Fertigungssysteme. Berlin, Heidelberg: Springer 2017 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [4] VDI/DQG-Richtlinie 3441: Statistische Prüfung der Arbeits- und Positioniergenauigkeit von Werkzeugmaschinen - Grundlagen. VDI/DQG 1971 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [5] DIN ISO 230: Prüfregeln für Werkzeugmaschinen. DIN ISO 2012 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [6] Weck, M.; Brecher, C.: Werkzeugmaschinen 5: Messtechnische Untersuchung und Beurteilung, dynamische Stabilität. Berlin, Heidelberg: Springer Berlin Heidelberg 2006 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [7] VDMA: Anteil der Maschinenbauunternehmen mit offenen Stellen in Deutschland nach Berufen in den Jahren 2019 und 2022. Statista. 18. November 2022 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [8] Loose, T.: Angewandte Regelungs- und Automatisierungstechnik: Ingenieurwissenschaftliche Grundlagen mit Beispielen und industriepraktischen Anwendungen. Berlin, Heidelberg: Springer 2022 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [9] Siemens AG: Sinumerik 840D Inbetriebnahmehandbuch. Siemens 2006 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [10] Brecher, C. (Hrsg.): Realisierung effizienter Zerspanprozesse: Ergebnisbericht des BMBF Verbundprojekts ReffiZ. Aachen: Shaker Verl 2015 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [11] VDI/NCG 5211: Prüfrichtlinien und Prüfwerkstücke für hochdynamische Bearbeitungen (HSC) - Blatt 1 2013 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [12] VDI/NCG 5211: Prüfrichtlinien und Prüfwerkstücke für hochdynamische Bearbeitungen (HSC) - Blatt 2 2013 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [13] Shi, W. et al.: Comprehensive analysis and evaluation of the geometric errors of the rotating axis of five-axis double-pendulum machine tools based on S-shaped samples. Int J Adv Manuf Technol. (2023), S. 5135–5148 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [14] Huang, H.P. et al.: A simple method for tuning cascade control systems. Chemical Engineering Communications (1998), S. 89–121 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [15] Patel, V.V.: Ziegler-Nichols Tuning Method: Understanding the PID Controller. Reson (2020), S. 1385–1397 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [16] Garpinger, O.; Hägglund, T.; Åström, K.J.: Performance and robustness trade-offs in PID control. Journal of Process Control (2014), S. 568–577 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [17] Åström, K.J.; Hägglund, T.: Automatic tuning of simple regulators with specifications on phase and amplitude margins. Automatica (1984), S. 645–651 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [18] Meena, D.C.; Devanshu, A.: Genetic algorithm tuned PID controller for process control. International Conference on Inventive Systems and Control (ICISC) (2017), S. 1–6 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [19] Ivanova, D.; Valov, N.; Deyanov, M.: Application of the genetic algorithm for cascade control of a HVAC system. In: Mastorakis, N.; Mladenov, V.; Bulucea, A. (Hrsg.): MATEC Web Conf. (2019) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [20] Schwenzer, M. et al.: Review on model predictive control: an engineering perspective. Int J Adv Manuf Technol. (2021), S. 1327–1349 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [21] Stemmler, S. et al.: Model Predictive Feed Rate Control for a Milling Machine. IFAC-PapersOnLine (2016), S. 6–11 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [22] Kim, Dong-Il; Kim, Sungkwun: An iterative learning control method with application for CNC machine tools. IEEE Trans on Ind Applicat. (1996), S.66–72 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [23] Jung, H. et al.: Iterative Feedback Tuning of Cascade Control of Two-Inertia System. IEEE Control Syst Lett. (2021), S.785–790 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [24] Song, Z. et al.: Analysis for mapping relationship among CNC machine dynamic performance and S-shaped specimen contour errors. China Mechanical Engineering Magazine Office (2016) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [25] Van De Ven, G.M.; Tuytelaars, T.; Tolias, A.S.: Three types of incremental learning. Nat Mach Intell. (2022), S.1185–1197 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-11
- [1] Backhaus, R.: Zellentwicklungen für die Batterien künftiger Elektrofahrzeuge. ATZ - Automobiltechnische Zeitschrift 125 (2023) 11, S. 10–15 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [2] Fraunhofer Research Institution for Battery Cell Production FFB: Mastering Ramp-up of Battery of Production Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [3] Beuse, T.; Fingerle, M.; Wagner, C. et al.: Comprehensive Insights into the Porosity of Lithium-Ion Battery Electrodes: A Comparative Study on Positive Electrodes Based on LiNi0.6Mn0.2Co0.2O2 (NMC622). Batteries 7 (2021) 4, S. 70 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [4] Yourey, W.: Theoretical Impact of Manufacturing Tolerance on Lithium-Ion Electrode and Cell Physical Properties. Batteries 6 (2020) 2, S. 23 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [5] Kößler, F.; Hertweck, R.; Fleischer, J.: Wechselwirkungserfassung zwischen Walzenrundlauf und Elektrodendicke/Sensor integration in a battery calender for interaction detection between roll concentricity and electrode thickness. wt Werkstattstechnik online 113 (2023) 11-12, S. 469–474 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [6] Diener, A.; Ivanov, S.; Haselrieder, W. et al.: Evaluation of Deformation Behavior and Fast Elastic Recovery of Lithium‐Ion Battery Cathodes via Direct Roll‐Gap Detection During Calendering. Energy Technology 10 (2022) 4, S. 2101033 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [7] Günther, T.; Schreiner, D.; Metkar, A. et al.: Classification of Calendering‐Induced Electrode Defects and Their Influence on Subsequent Processes of Lithium‐Ion Battery Production. Energy Technology 8 (2019) 2, S. 1900026 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [8] Bold, B.; Fleischer, J.: Kalandrieren von Elektroden für Li-Ionen-Batterien. Wechselwirkung zwischen Anlagen- und Materialparameter. ZWF (2018) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [9] Bold, B.: Kompensation der Wrinkle-Bildung beim Kalandrieren von Lithium-Ionen-Kathoden. Dissertation Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [10] Mayr, A.; Schreiner, D.; Stumper, B. et al.: In-line Sensor-based Process Control of the Calendering Process for Lithium-Ion Batteries. Procedia CIRP 107 (2022), S. 295–301 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [11] Kößler, F.; Hertweck, R.; Fleischer, J.: Indentation tests on battery electrodes to estimate the target gap of battery calenders. 2024 1st International Conference on Production Technologies and Systems for E-Mobility (EPTS), Bamberg, Germany, 2024, pp. 1–6 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [12] Wurba, A.-K.; Klemens, J.; Mayer, D. et al.: Methodology for the characterization and understanding of longitudinal wrinkling during calendering of lithium-ion and sodium-ion battery electrodes. Procedia CIRP 120 (2023), S. 314–319 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [13] Anderlik, S.; Kößler, F.; Sawodny, J. et al.: Dashboards in der Batteriezellfertigung : Datenerfassung zur Bedienerunterstützung beim Kalandrieren von Batterieelektroden (2024) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [14] Sangrós Giménez, C.; Finke, B.; Nowak, C. et al.: Structural and mechanical characterization of lithium-ion battery electrodes via DEM simulations. Advanced Powder Technology 29 (2018) 10, S. 2312–2321 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [15] Thornton, C.; Ning, Z.: A theoretical model for the stick/bounce behaviour of adhesive, elastic-plastic spheres. Powder Technology 99 (1998) 2, S. 154–162 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [16] Potyondy, D. O.; Cundall, P. A.: A bonded-particle model for rock. International Journal of Rock Mechanics and Mining Sciences 41 (2004) 8, S. 1329–1364 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [17] Lippke, M.; Ohnimus, T.; Frankenberg, F. et al.: Drying and calendering of Lithium Ion battery electrodes: A combined simulation approach. Powder Technology 444 (2024), S. 119984 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [18] Landesfeind, J.; Hattendorff, J.; Ehrl, A. et al.: Tortuosity Determination of Battery Electrodes and Separators by Impedance Spectroscopy. Journal of The Electrochemical Society 163 (2016) 7, A1373-A1387 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-16
- [1] Bundesministerium für Wirtschaft und Klimaschutz: Schlüsseltechnologie Leichtbau Innovationstreiber und Garant für Ressourcen- und Energieeffizienz, 2019. Accessed: Apr. 24 2024 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [2] Schürmann, H.: Konstruieren mit Faser-Kunststoff-Verbunden. Berlin, Heidelberg: Springer Berlin Heidelberg, 2007. Accessed: Apr. 24 2024. Internet: https://link.springer.com/10.1007/978-3-540-72190-1 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [3] Baumann, F.: Additive Fertigung von endlosfaserverstärkten Kunststoffen mit dem ARBURG Kunststoff-Freiform Verfahren. Düren: Shaker Verlag, 2020 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [4] Dickson, A. N.; Barry, J. N.; McDonnell, K. A.; Dowling, D. P.: Fabrication of continuous carbon, glass and Kevlar fibre reinforced polymer composites using additive manufacturing. Additive Manufacturing, vol. 16, pp. 146–152, 2017, doi: 10.1016/j.addma.2017.06.004 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [5] Vaneker, T.: Material Extrusion of Continuous Fiber Reinforced Plastics Using Commingled Yarn. Procedia CIRP, vol. 66, pp. 317–322, 2017, doi: 10.1016/j.procir.2017.03.367 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [6] Matsuzaki, R.; et al., „Three-dimensional printing of continuous-fiber composites by in-nozzle impregnation,“ Scientific Reports, vol. 6, No. 1, p. 23058, 2016, doi: 10.1038/srep23058 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [7] Akhoundi, B.; Behravesh, A. H.; Bagheri Saed, A.: Improving mechanical properties of continuous fiber-reinforced thermoplastic composites produced by FDM 3D printer. Journal of Reinforced Plastics and Composites, vol. 38, no. 3, pp. 99–116, 2019, doi: 10.1177/0731684418807300 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [8] Lu, Y.; Han, X.; Gleadall, A.; Chen, F.; Zhu, W.; Zhao, L.: Continuous fibre reinforced Vat photopolymerisation (CONFIB-VAT). Additive Manufacturing, vol. 60, p. 103233, 2022, doi: 10.1016/j.addma.2022.103233 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [9] Goh, G. D.; Yap, Y. L.; Agarwala, S.; Yeong, W. Y.: Recent Progress in Additive Manufacturing of Fiber Reinforced Polymer Composite. Advanced Materials Technologies, vol. 4, no. 1, p. 1800271, 2019, doi: 10.1002/admt.201800271 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [10] Karalekas, D.; Antoniou, K.: Composite rapid prototyping: overcoming the drawback of poor mechanical properties,“ Journal of Materials Processing Technology, 153-154, pp. 526–530, 2004, doi: 10.1016/j.jmatprotec.2004.04.019 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [11] Fischer, M.; Josupeit, S.: Material properties of additive manufactured polymer parts. In: Proceedings of the Inside 3D Printing Conference and Expo, Berlin, Germany, 2014, pp. 10–11 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [12] Schmid, M.: Laser Sintering with Plastics: Technology, Processes, and Materials. München: Carl Hanser Verlag GmbH & Co. KG, 2018. Accessed: Apr. 24 2024. Internet: http://www.hanser-elibrary.com/doi/book/10.3139/9781569906842 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [13] Breuninger, J.; Becker, R.; Wolf, A.; Rommel, S.; Verl, A.: Generative Fertigung mit Kunststoffen: Konzeption und Konstruktion für Selektives Lasersintern. Berlin, Heidelberg: Springer, 2013. Accessed: Apr. 24 2024. Internet: https://link.springer.com/10.1007/978-3-642-24325-7 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [14] Baranowski, M.; Rabenseifner, V.; Kößler, F.; Fleischer, J.: Experimental Determination of Mechanical Properties of Additively Manufacturing Continuous Carbon Fibre Reinforced Polymer Parts Produced by a Novel Laser Sintering Process,. In: Proceedings of the SAMPE Europe Conference 2023, 2023, p. 1 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [15] Baranowski, M.; Völger, L.; Friedmann, M.; Fleischer, J.: Experimental Analysis and Optimisation of a Novel Laser-Sintering Process for Additive Manufacturing of Continuous Carbon Fibre-Reinforced Polymer Parts. Applied Sciences, Vol. 13, No. 9, p. 5351, 2023, doi: 10.3390/app13095351 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [16] Baranowski, M.; F. Basalla, F.; M. Friedmann, M.; Fleischer, J.: Thermal Analysis of a Novel Laser Sintering Machine for Additive Manufacturing of Continuous Carbon Fiber Reinforced Polymer Parts. Accessed: Apr. 24 2024 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [17] Baranowski, M.; Beichter, S.; Griener, M.; Coutandin, S.; Fleischer, J.: Additive manufacturing of continuous fibre-reinforced plastic components by a novel laser-sintering process,. In: Proceedings of the SAMPE Europe Conference, 2021 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [18] Baranowski, M.; Shao, Z.; Spintzyk, A.; Kößler, F.; Fleischer, J.: Simulation-Based Identification of Operating Point Range for a Novel Laser-Sintering Machine for Additive Manufacturing of Continuous Carbon-Fibre-Reinforced Polymer Parts,. Polymers, vol. 15, no. 19, p. 3975, 2023, doi: 10.3390/polym15193975 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [19] Voigt, W.: Ueber die Beziehung zwischen den beiden Elasticitätsconstanten isotroper Körper. Annalen der Physik, vol. 274, no. 12, pp. 573–587, 1889, doi: 10.1002/andp.18892741206 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [20] Baranowski,M.: Additive Herstellung endlosfaserverstärkter Kunststoffbauteile mit dem Laser-Sinterprozess: Maschinentechnik, Prozessentwicklung und -modellierung,“ Dissertation, wbk Institut für Produktionstechnik, Karlsruher Institut für Technologie, Karlsruhe, 2024 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [21] Chen, J.; Severson, E. L.: Optimal Design of the Bearingless Induction Motor for Industrial Applications. In: 2019 IEEE Energy Conversion Congress and Exposition (ECCE), Baltimore, MD, USA, 2019, pp. 5265–5272 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-24
- [1] Wohlers Associates: Wohlers report 2023. 3D printing and additive manufac-turing global state of the industry. Wohlers Associates, Fort Collins (Colo.), 2023 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [2] Leyens, C.; Peters, M.: Titanium and titanium alloys - Fundamentals and applications. Weinheim: Wiley-VCH, 2003 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [3] Bartolotta, P; Barrett, J; Kelly, T; Smashey, R.: The use of cast Ti-48Al-2Cr-2Nb in jet engines. JOM; New York Bd. 49, Ausg. 5, (May 1997), S. 48 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [4] Uhlmann, E.; Bergmann, A.; Gridin, W.: Investigation on Additive Manufacturing of Tungsten Carbide-cobalt by Selective Laser Melting. Procedia CIRP 35 (2015), S. 8–15 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [5] Renishaw: RenAm 500Q/T/D/S; Additives Fertigungssystem, Bedienungsanleitung; H-5800-4346-01-C, 2018 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [6] Bergmann, A.: Vorgehensweise zur Auslegung des Laserstrahlschmelzens am Beispiel von Wolframkarbid-Kobalt. Berlin: Fraunhofer Verlag, 2019 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [7] Gokuldoss, P. K.; Kolla, S.; Eckert, J.: Additive Manufacturing Processes: Selective Laser Melting, Electron Beam Melting and Binder Jetting-Selection Guidelines. Materials 10 (2017) 6 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [8] Soliman, H. A.; Elbestawi, M.: Titanium aluminides processing by additive manufacturing – a review. The International Journal of Advanced Manufacturing Technology 119 (2022) 9-10, S. 5.583–5.614 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [9] Ali, H.; Le Ma; Ghadbeigi, H.; Mumtaz, K.: In-situ residual stress reduction, martensitic decomposition and mechanical properties enhancement through high temperature powder bed pre-heating of Selective Laser Melted Ti6Al4V. Materials Science and Engineering: A 695 (2017) 695, S. 211–220 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [10] Caprio, L.; Chiari, G.; Demir, A. G.; Previtali: Development of Novel High Temperature Laser Powder Bed Fusion System for the Processing of Crack-Susceptible Alloys. Milano, Italy, 2018 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [11] Escher, C.; Mutke, C.: Additive Manufacturing of Tool Steels. HTM Journal of Heat Treatment and Materials 77 (2022) 2, S. 143–155 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-30
- [1] Nabavi, S.F.; Dalir, H; Farshidianfar, A.: A comprehensive review of recent advances in laser powder bed fusion characteristics modeling: metallurgical and defects. The International Journal of Advanced Manufacturing Technology 132 (2024) S. 2233–2269 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [2] Dev Singh, D.; Mahender, T.; Raji Reddy, A.: Powder bed fusion process: A brief review. Materials Today: Proceedings 46 (2021) S. 350– 355 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [3] Subramaniyan, A. K.; Reddy, A. S.; Mathias, S.; Shrivastava, A.; Raghupatruni, P.: Influence of post-processing techniques on the microstructure, properties and surface integrity of AlSiMg alloy processed by laser powder bed fusion technique. Surface and Coatings Technology 425 (2021) 127679 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [4] Uhlmann, E.; Braun, T.; Lahoda, C.: Automated Post-Processing of Additively Manufactured Ti5553-Components Using Robot-Guided Blasting. In: Fraunhofer Direct Digital Manufacturing Conference DDMC Conference Proceedings 2023. Berlin, 2023 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [5] Plocher, J.; Panesar, A.: Review on design and structural optimisation in additive manufacturing: Towards next-generation lightweight structures. Materials & Design 41 (2019) 183, S. 1–20 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [6] Abu-Gharbieh, M.; Braun, T.; Schwitalla, A.; Akhmad, R.; Frieß, F.; Barvinska, V.; Uhlmann, E.: Additive Fertigung von Zahnimplantaten: Entwicklung einer innovativen additiv-subtraktiven Prozesskette für die Zahnmedizin mittels Laser Powder Bed Fusion-Verfahren. Zeitschrift für wirtschaftlichen Fabrikbetrieb, 119 (2024) 7-8, S. 539–542 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [7] Li, S.; Essa, K.; Carr, J.; Chiwanga, S.; Norton, A.; Attallah, M.M.: The development of a high-performance Ni-superalloy additively manufactured heat pipe. Advances in Manufacturing 10 (2022) 4, S. 610–624 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [8] Uhlmann, E.; Wagner, M. H.; Gerlitzky, G.: Additives Fertigungsverfahren zur Herstellung von Bauteilen mit Eigenschaftsgradienten. Zeitschrift für wirtschaftlichen Fabrikbetrieb 113 (2018) 5, S. 290–294 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [9] Otto, R.; Kiener, C.; Küsters, Y.; Sørby, K.: Additive manufacturing of open porous functional structures: roadmap from manufacturing to the application. Procedia CIRP 112 (2022) S. 334–339 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [10] Echeta, I.; Feng, X.; Dutton, B.; Leach, R.; Piano, S.: Review of defects in lattice structures manufactured by powder bed fusion. The International Journal of Advanced Manufacturing Technology 106 (2020) 5-6, S. 2649–2668 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [11] Majeed, M.; Khan, H. M.; Wheatley, G.; Situ, R.: Influence of post-processing on additively manufactured lattice structures. Journal of the Brazilian Society of Mechanical Sciences and Engineering 44 (2022) 9 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [12] Ramos, H.; Pickering, E.; AlMahri, S.; Krishnan, K.; Oyebanji, J.; Guan, Z.; Langdon, G.; Santiago, R.: Experimental evaluation of hybrid lattice structures subjected to blast loading. Additive Manufacturing 76 (2023) Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [13] Riva, L.; Ginestra, P. S.; Ceretti, E.: Mechanical characterization and properties of laser-based powder bed-fused lattice structures: a review The International Journal of Advanced Manufacturing Technology 113 (2021) 3-4, S. 649–671 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [14] Sharma, D.; Hiremath, S. S.: Additively manufactured mechanical metamaterials based on triply periodic minimal surfaces: Performance, challenges, and application. Mechanics of Advanced Materials and Structures 29 (2022) 26, S. 5077–5107 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [15] Braun, T.; Kiener, C.: Additive Fertigung multi-funktionaler Bauteile: Methodische Produktentwicklung bei hoher Geometriekomplexität – Fallstudie: Heatpipe. Wt Werkstatttechnik online 110 (2020) 7-8, S. 526– 531 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [16] Schmeiser, F.; Krohmer, E.; Schell, N.; Uhlmann, E.; Reimers, W.: Internal Stress Evolution and Subsurface Phase Transformation in Titanium Parts Manufactured by Laser Powder Bed Fusion – An In Situ X‐Ray Diffraction Study. Advanced Engineering Materials 68 (2021) 23 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [17] Karayagiz, K.; Elwany, A.; Tapia, G.; Franco, B.; Johnson, L.; Ma, J.; Karaman, I.; Arróyave, R.: Numerical and experimental analysis of heat distribution in the laser powder bed fusion of Ti-6Al-4V. IISE Transactions 51 (2019) 2, S. 136–152 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [18] Uhlmann, E.; Krohmer, E.: Nachbearbeitung additiv gefertigter Bauteile mit flüssigem CO2-Hochdruckstrahl. AWT magazin - Magazin des Arbeitskreis Wasserstrahltechnologie (2020) S. 28–30 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [19] Ghio, E.; Cerri, E.: Additive Manufacturing of AlSi10Mg and Ti6Al4V Lightweight Alloys via Laser Powder Bed Fusion: A Review of Heat Treatments Effects. Materials 15 (2022) 6 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-35
- [1] Poprawe, R.; Häfner, C.; Wester, R.: Tailored Light 2. Cham: Springer International Publishing 2024 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [2] Ahn, D.-G.: Directed Energy Deposition (DED) Process: State of the Art. International Journal of Precision Engineering and Manufacturing-Green Technology 8 (2021) 2, S. 703–742 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [3] Bernhard, R.; Neef, P.; Wiche, H.; Wesling, V.; Hoff, C.; Hermsdorf, J.; Kaierle, S.: Entwicklung einer intelligenten Prozessüberwachung und Regelung zum Laserauftragschweißen von Multimaterial-Verbindungen. Düren: Shaker Verlag 2021 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [4] Song, L.; Bagavath-Singh, V.; Dutta, B.; Mazumder, J.: Control of melt pool temperature and deposition height during direct metal deposition process. The International Journal of Advanced Manufacturing Technology 58 (2012) 1-4, S. 247–256 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [5] He, W., Shi, W., Li, J. u. Xie, H.: In-situ monitoring and deformation characterization by optical techniques; part I: Laser-aided direct metal deposition for additive manufacturing. Optics and Lasers in Engineering 122 (2019), S. 74–88 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [6] Gunasegaram, D. R.; Barnard, A. S.; Matthews, M. J.; Jared, B. H.; Andreaco, A. M.; Bartsch, K; Murphy, A. B.: Machine learning-assisted in-situ adaptive strategies for the control of defects and anomalies in metal additive manufacturing. Additive Manufacturing 81 (2024), S. 104013 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [7] Bi, G.: Identifizierung und Qualifizierung von prozessrelevanten Kenngrößen zur Überwachung und Regelung beim Laserstrahlauftragschweißen. Berichte aus der Lasertechnik. Aachen: Shaker 2004 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [8] Welzel, J.; Schuh, S.: Optische Kohärenztomographie bei Pathologien der Haut. Der Ophthalmologe : Zeitschrift der Deutschen Ophthalmologischen Gesellschaft 115 (2018) 6, S. 524–527 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [9] Drexler, W.; Fujimoto, J. G.: Optical Coherence Tomography. Cham: Springer International Publishing 2015 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [10] Kogel-Hollacher M., Strebel M., Staudenmaier C., Schneider H., Regulin D.: OCT Sensor for Layer Height Control in DED using SIEMENS Machine Controller. 11th CIRP Conference on Photonic Technologies 2020 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [11] Kittel, J.; Wendt, F., Hoelters, S., Gasser, A. u. Hackel, M.: Approach for advanced working distance monitoring and control capability in laser metal deposition processing for additive manufacturing. Journal of Laser Applications 35 (2023) 2 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [12] Smoqi, Z.; Bevans, B. D.; Gaikwad, A.; Craig, J.; Abul-Haj, A.; Roeder, B.; Macy, B.; Shield, J. E.; Rao, P.: Closed-loop control of meltpool temperature in directed energy deposition. Materials & Design 215 (2022) 110508 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [13] Freeman, F.; Chechik, L.; Thomas, B.; Todd, I.: Calibrated closed-loop control to reduce the effect of geometry on mechanical behaviour in directed energy deposition. Journal of Materials Processing Technology 311 (2023) 117823 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [14] Ünal-Saewe, T.: Ortsaufgelöste Prozessüberwachung für die Additive Fertigung mittels laserbasierter Directed Energy Deposition. Dissertation. Ergebnisse aus der Lasertechnik. Aachen 2022 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [15] Neumann, G.; Bremer, J.: ProLMD - Prozess und Systemtechnik zur Hybrid-Fertigung großer Bauteile mit dem Laser-Material-Deposition-Verfahren. Aachen: Fraunhofer-Institut für Lasertechnik ILT 2021 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [16] Bremer, J.: Verwendung von Industrierobotern für das Laserauftragschweißen. RWTH Aachen University 2023 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-42
- [1] Kopp, M.; Uhlmann, E.: Potential of Robot-Guided Centrifugal Disc Finishing. In: Behrens, B.-A.; Brosius, A.; Drossel, W.-G.; Hintze, W.; Ihlenfeldt, S.; Nyhuis, P. (Hrsg.): Production at the Leading Edge of Technology. Cham: Springer International Publishing 2022, S. 283–291 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [2] Uhlmann, E.; Kopp, M.; Kröger, R.: Oberflächenfinishing additiv gefertigter Bauteile Effizienzsteigerung durch Einsatz eines Industrieroboters beim Fliehkraftgleitschleifen. wt Werkstattstechnik online 113 (2023) 7–8, S. 321–327. Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [3] Seebach, P. M.: Topologieoptimierte, patientenindividuelle Osteosyntheseplatten für die Rekonstruktion der Mandibula. München: utzverlag 2020 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [4] Brocker, R.: Relativgeschwindigkeiten und Kontaktkräfte beim ungeführten Vibrationsgleitschleifen. Aachen: Apprimus-Verlag 2015 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [5] Neuenfeldt, P.: Modellbildung des Tauchgleitschleifens zur Abtrag- und Topografievorhersage an komplexen Geometrien. Düren: Shaker-Verlag 2022 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [6] Ohlert, M.: Contact between abrasive media and workpiece in robot-guided centrifugal finishing. München: Apprimus-Verlag 2023 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [7] Kopp, M.; Uhlmann, E.: Prediction of the Roughness Reduction in Centrifugal Disc Finishing of Additive Manufactured Parts Based on Discrete Element Method. Machines 10 (2022) 12, S. 1151 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [8] Eulitz, A.: Einsatzverhalten keramisch gebundener Gleitschleifkörper. Stuttgart: Fraunhofer-Verlag 2021 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [9] Uhlmann, E.; Kopp, M.; Braun, T.: Einfluss des Schleifköperverschleißes beim Fliehkraftgleitschleifen additiv gefertigter Ti5553 Werkstücke. In: Hoffmeister, H.-W.; Denkena, B. (Hrsg.): Jahrbuch Schleifen, Honen, Läppen und Polieren. Essen: Vulkan 2022, S. 61–77 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [10] Sutowski, P.; Plichta, J.; Kałduński, P.: Determining kinetic energy distribution of the working medium in a centrifugal disc finishing process - part 1: theoretical and numerical analysis with DEM method. The International Journal of Advanced Manufacturing Technology 104 (2019) 1–4, S. 1345–1355 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [11] Matsumoto, Y.; Yamaguchi, T.; Kitajima, K. et al.: Study on the Flow Pressure of Mass in Centrifugal Disc Finishing. Advanced Materials Research 1017 (2014), S. 559–564 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [12] Kunz, J.: Auslegung von Kunststoffkonstruktionen. Die Querkontraktionszahl in der Konstruktionspraxis. KunststoffXtra 6 (2011), S. 27–30 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [13] Bargel, H.-J.; Schulze, G.: Werkstoffkunde. Berlin, Heidelberg: Springer-Verlag 2008 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [14] Uhlmann, E.; Eulitz, A.; Dethlefs, A.: Discrete Element Modelling of Drag Finishing. Procedia CIRP 31 (2015), S. 369–374 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [15] Uhlmann, E.; Kopp, M.; Fürstenau, J.-P.: Modellierung des Schleifkörperverschleißes beim Fliehkraftgleitschleifen. wt Werkstatts- technik online 112 (2022) 7–8, S. 458–464 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [16] Kopp, M.; Uhlmann, E.; Kneider, C.: Experimental investigations of the workpiece-media-interaction and the surface topography formation in centrifugal disc finishing. Procedia CIRP 115 (2022) 12, S. 24–29 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [17] Archard, J. F.: Contact and Rubbing of Flat Surfaces. Journal of Applied Physics 24 (1953) 8, S. 981–988 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [18] Popov, V. L.: Contact Mechanics and Friction. Berlin, Heidelberg: Springer-Verlag 2017 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [19] Czichos, H.; Habig, K.-H.: Tribologie-Handbuch. Wiesbaden: Springer-Verlag 2015 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-51
- [1] Jambhulkar, N.; Santosh, J.; Raut, A.; Bhoneja, B.: A review on surface modification of dental implants among various implant materials. Materials Today: Proceedings 72 (2023), S. 3209 – 3215 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [2] CeramTec: Keramische Kühler in der E-Mobilität. Plochingen. Firmenschrift. 2021 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [3] Composites United e.V.: Positionspapier Ceramic Composites 2021. Augsburg. Firmenschrift. 2021. Internet: https://composites-united.com/wp-content/uploads/2022/04/Ceramic-Composites_Positionspapier_Web.pdf. Zugriff am: 20.01.2025 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [4] Bulla, B.: Ultrapräzisionszerspanung von Nanokorn-Hartmetall mit monokristallinen Diamantwerkzeugen. Aachen, RWTH Aachen, Diss, Aachen: Apprimus, 2013 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [5] Nath, C.; Rahman, M.: Effect of machining parameters in ultrasonic vibration cutting. International Journal of Machine Tools & Manufacture 48 (2008), S. 965 – 974 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [6] Rinck, P.; Gueray; A.; Kleinwort, R.; Zaeh, M.: Experimental investigations on longitudinal-torsional vibration-assisted milling of Ti-6Al-4V. The Int. Journal of Advanced Manufacturing Technology (2020) 108, S. 3607 – 3618 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [7] Yang, Z.; Zhu, l.; Zhang, G.; Ni, C.; Lin, B.: Review of ultrasonic vibration-assisted machining in advanced materials. Int. Journal of Machine Tools & Manufacture (2020) 156, S. 103 – 138 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-58
- [1] Uhlmann, E.; Hasper, G.; Hoghé, T.; Hübert, C.; Mihotovic, V.; Sammler, C.: Machining and Finishing of Ceramics. Ceramics Science and Technology, 2013, S. 247–266 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [2] List, M.: Ortsabhängiges Verschleißmodell für das Doppelseitenplanschleifen mit Planetenkinematik. Dissertation TU Berlin. Berichte aus dem Produktionstechnischen Zentrum Berlin. Hrsg.: Uhlmann, E. Stuttgart: Fraunhofer Verlag, 2019 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [3] Uhlmann, E.; List, M.; Lichtschlag, L.: Stellgrößen beim Doppelseitenplanschleifen mit Planetenkinematik. Zeitschrift für wirtschaftlichen Fabrikbetrieb, 2016, 111 (7/ 8), S. 399–402 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [4] Ardelt, T.: Einfluss der Relativbewegung auf den Prozess und das Arbeitsergebnis beim Planschleifen mit Planetenkinematik. Dissertation TU Berlin. Berichte aus dem Produktionstechnischen Zentrum Berlin. Hrsg.: Uhlmann, E. Berlin: IPK, 2001 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [5] Janssen, J. M. (2006): Feinschleifen ersetzt Läppen. In: WB Werkstatt + Betrieb (9), S. 30–32 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [6] Uhlmann, E.; List, M.; Patraschkov, M.; Trachta, G.: A new process design for manufacturing sapphire wafers. In: Precision Engineering 53 (2018), S. 146–150 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [7] Rußner, C.: Präzisionsplanschleifen von Al2O3-Keramik unter Produktionsbedingungen. Dissertation TU Dresden. Göttingen: Cuvillier Verlag, 2006 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [8] Uhlmann E, Hoghé T (2012) Wear reduction at double face grinding with planetary kinematics. Prod Eng 6 (3): S. 237–242 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [9] Egger, R.: Planschleifen von Keramik mit zykloidischer Wirkbewegung. Dissertation IFW Hannover. Fortschrittberichte VDI. Düsseldorf: VDI-Verlag, 2001 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [10] Kirchgatter, M.: Einsatzverhalten genuteter CBN-Schleifscheiben mit keramischer Bindung beim Außenrund-Einstechschleifen. Dissertation, TU Berlin, 2010 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
- [11] Uhlmann, E.; Hochschild, L.: Tool optimization for high speed grinding. Production engineering, 2013, 7. Jg., Nr. 2-3, S. 185–193 Open Google Scholar DOI: 10.37544/1436-4980-2025-05-62
