Issue 267048036
Additive Fertigung
- Pulverwerkstoffe
- Prozessanalyse / -simulation
- Funktionsintegration
- Qualitätssicherung
- Medical Rapid Prototyping
Projects:
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader:
Additive manufacturing processes allow maximum geometrical freedom of design without forming tools, due to the layered structure of the components. Additive processes are ideally suited for the production of complex components that are primarily optimized for design and function. Access to industrial applications of additive processes requires a high degree of process and component reproducibility, reliable and designable processes and tailor-made component properties. The CRC 814 is operating in this field and concentrates on the processes of selective laser beam melting of plastics and metals as well as selective electron beam melting. The CRC 814 aims to produce multi-material components from plastics or metals with defined, reproducible and graded properties using powder- and beam-based additive manufacturing processes. This vision requires the analysis of the entire process chain, from powder production through processing to the final components. The simulation of the individual sub-processes on a micro-, meso- and macroscopic level enables the prediction of process behavior and component properties.
In the first funding period of the CRC 814, a basic understanding of powder- and beam-based additive manufacturing processes was created. The modification of the process for the realization of new component properties was the focus of the 2nd funding period. The numerical tools were improved in their efficiency in order to model first complete manufacturing processes and to enable the prediction of component properties in perspective. In the third funding period, the understood processes will be modified to produce components with reproducible, graded and defined properties. In addition, the material design during powder production is carried out with regard to the additive processes. The systematic derivation of correlations between powder, process, structure and the resulting part properties allows an improved process robustness to generate new component properties and multi-material parts. Furthermore, simulations will be qualified to predict the process behavior and component properties on micro- , meso- and macroscopic levels. The consolidation of the simulations implemented in CRC 814 into a virtual laboratory will enable an efficient, computer-aided design of material systems, process strategies and component properties in the future.
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader:
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader: ,
The object of this sub-project is the scientific detection, the quantitative determination and the development of a fundamental understanding of essential material-related process variables, which explicitly describe the solidification behavior and the energy input during the laser melting process of polymers. The manufacturing of components with low internal stresses and high mechanical strength requires optimized process parameters which are derived from the process-oriented characterization of the powder materials with regard to their thermo-mechanical and optical properties.
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader:
The goal of sub-project A6 is to generate graded part properties by local insertion of fillers and polymer blend powders by vibration nozzles in selective laser beam melting. In addition, methods for orientating fibers along z-direction to generate a higher strength will be implemented. In doing so, new degrees of freedom in setting part properties will be enabled. Thereby, the effects of locally inserted as well as oriented particles on process control will be the subject of research.
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader:
Within sub-project B3, the basic influences of the process control of selective laser beam melting of polymers on the resulting part properties are analyzed. Therefore, the sub-processes powder coating, laser exposure and consolidation as well as the temperature control are scientifically investigated. Innovative process strategies, which fulfill the material specific requirements of semi-crystalline thermoplastics, are studied to produce parts with reproducible and defined properties.
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader: ,
Aim of the project is the scientific development of a quality assurance system for polymer powders used in laser beam melting. The quality assurance system is based on two methods. First, an empirical model for ageing of polymers will be established, which considers beside chemical additionally physical ageing mechanism. The model is based on experimentally determined bulk material properties as well as rheological and thermal properties of the present material system. The material model in combination with process data allows the prediction of the ageing state and will lead to a demonstrator software, which will be experimentally validated. Furthermore, a measuring system will be developed, which allows for determination of powder flowability at elevated temperatures and rheological properties of the polymer melt. After validation, the quality assurance system will be transferred to a demonstrator system in close cooperation with the industry partner.
Funding source: DFG / Sonderforschungsbereich (SFB)
Project leader: ,
The aim of the project is the systematic investigation of the process-geometry-interaction of thin-walled components for the production of locally adapted properties as well as the modeling of this effect in finite element simulations and structural optimization. In experimental tests, the main influencing factors are identified and mapped in relation to the building position in the process. New exposure technologies and strategies are used to manipulate the melting pool and homogenize component properties. The findings are incorporated into a wall thickness dependent material model for structural optimization, which is investigated in the project. The participating industrial partners will validate the results over the course of the project. The experimental findings and the wall thickness dependent material model will be used to develop a methodology for the product development of thin-walled structures. In the future, the product development process can be accelerated, and the economic efficiency increased. Based on these findings, new application areas for the selective laser beam melting of plastics can be opened up in the future.
Funding source: Bundesministerium für Wirtschaft und Energie (BMWE)
Project leader:
Funding source: Bundesministerium für Wirtschaft und Energie (BMWE)
Project leader: ,
Funding source: Bundesministerium für Wirtschaft und Energie (BMWE)
Project leader:
Funding source: Bundesministerium für Wirtschaft und Energie (BMWE)
Project leader:
Funding source: DFG / Graduiertenkolleg (GRK)
Project leader: , , , , , , , , ,
A new research training group at FAU is being funded by the German Research Foundation. The research training group entitled „Synthetic Molecular Communications Across Different Scales: From Theory to Experiments“, or SyMoCADS for short, is led by Prof. Robert Schober (as spokesperson) and Prof. Kathrin Castiglione (Chair of Bioprocess Engineering) as co-spokesperson.
This structured training program addresses the highly interdisciplinary field of molecular communication. Molecules are used as information carriers to communicate with objects, cells or organisms in environments that are not suitable for traditional communication systems based on electromagnetic waves. Three different work clusters involving researchers from the Departments of Electrical Engineering, Chemical and Bioengineering, Mechanical Engineering, Chemistry and Pharmacy and Biochemistry as well as the University Hospital are investigating the sensing and control of bioprocesses on a microliter scale, the control of magnetic nanoparticles in blood vessels and molecular communication via volatile odorous objects.
Contact Persons:
Participating Scientists:
Publications:
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Eutectic In Situ Modification of Polyamide 12 Processed through Laser-Based Powder Bed Fusion
In: Materials 16 (2023), Article No.: 2050
ISSN: 1996-1944
DOI: 10.3390/ma16052050 - , , :
Process-Structure-Property Interdependencies in Non-Isothermal Powder Bed Fusion of Polyamide 12
In: Journal of Manufacturing and Materials Processing 7 (2023), Article No.: 33
ISSN: 2504-4494
DOI: 10.3390/jmmp7010033 - , :
Thermal Intra-Layer Interaction of Discretized Fractal Exposure Strategies in Non-Isothermal Powder Bed Fusion of Polypropylene
In: Journal of Manufacturing and Materials Processing 7 (2023), Article No.: 63
ISSN: 2504-4494
DOI: 10.3390/jmmp7020063 - , , , :
Analysis of UV-Assisted direct ink writing rheological properties and curing degree
In: Polymer Testing 105 (2022), Article No.: 107428
ISSN: 0142-9418
DOI: 10.1016/j.polymertesting.2021.107428 - , :
Analysis of UV Curing Strategy on Reaction Heat Control and Part Accuracy for Additive Manufacturing
In: Polymers 14 (2022), Article No.: 759
ISSN: 2073-4360
DOI: 10.3390/polym14040759 - , :
Crystallization behavior under process conditions in Powder Bed Fusion of polymers
12th CIRP Conference on Photonic Technologies, LANE 2022 (Erlangen, DEU, September 4, 2022 - September 8, 2022)
In: M. Schmidt, F. Vollertsen, B.M. Colosimo (ed.): Procedia CIRP 2022
DOI: 10.1016/j.procir.2022.08.108 - , , :
Effects of Fumed Silica on Thixotropic Behavior and Processing Window by UV-Assisted Direct Ink Writing
In: Polymers 14 (2022)
ISSN: 2073-4360
DOI: 10.3390/polym14153107 - , , :
Inline Quality Control through Optical Deep Learning-Based Porosity Determination for Powder Bed Fusion of Polymers
In: Polymers 14 (2022), Article No.: 885
ISSN: 2073-4360
DOI: 10.3390/polym14050885 - , , :
Low Temperature Powder Bed Fusion of Polymers by Means of Fractal Quasi-Simultaneous Exposure Strategies
In: Polymers 14 (2022), Article No.: 1428
ISSN: 2073-4360
DOI: 10.3390/polym14071428 - , , , , , , , :
Neue Werkstoffe und Prozesse für die additive Fertigung
In: Jahresmagazin Ingenieurwissenschaften (2022)
ISSN: 1618-8357
Open Access: https://www.wak-kunststofftechnik.de/fileadmin/downloads/7_ueber-uns/Jahresmagazin_Kunststofftechnik_2022.pdf - , :
Prozessnahe simultane Bestimmung des Kristallisations- und Fließverhaltens von PA 12 im Lasersintern
Rapid.Tech 3D Druck (Erfurt, May 17, 2022 - May 19, 2022)
DOI: 10.3139/9783446475281.004 - , :
Understanding aspect ratio effects in Laser Powder Bed Fusion of polyamide 12 by means of infrared thermal imaging
12th CIRP Conference on Photonic Technologies, LANE 2022 (Erlangen, September 4, 2022 - September 8, 2022)
In: M. Schmidt, F. Vollertsen, B.M. Colosimo (ed.): Procedia CIRP 2022
DOI: 10.1016/j.procir.2022.08.060 - , , :
Structure Development of Semi-crystalline Polymers in Laser Based Powder Bed Fusion
Antec 2023 (Denver, Colorado, March 27, 2023 - March 30, 2023) - , , :
Coalescence behavior of polyamide 12 as function of zero-shear viscosity and influence on mechanical performance
SFF 2022 (Austin, Texas, July 25, 2022 - July 27, 2022) - , , , , :
Tailored Syndiotactic Polypropylene Feedstock Material for Laser-Based Powder Bed Fusion of Polymers: Material Development and Processability
In: ACS Applied Polymer Materials (2023)
ISSN: 2637-6105
DOI: 10.1021/acsapm.2c02112 - , :
Accelerated Powder Bed Fusion of Polypropylene Using Superposed Fractal Exposure Strategies
8th International Conference on Additive Technologies (Maribor, April 19, 2023 - April 22, 2023)
In: Additive Manufacturing in Multidisciplinary Cooperation and Production 2023
DOI: 10.1007/978-3-031-37671-9_1 - , , :
Understanding geometry dependent temperature fields in laser powder bed fusion of PA12 by means of infrared thermal imaging
8th International Conference on Additive Technologies iCAT (Maribor, Slowenien, April 19, 2023 - April 22, 2023)
In: Additive Manufacturing in Multidisciplinary Cooperation and Production, Cham: 2023
DOI: 10.1007/978-3-031-37671-9_2 - , , :
Additive Manufacturing of Functionalized Material Systems for Medical Applications: Potentials and Challenges in Additive Manufacturing
8th International Conference on Additive Technologies iCAT 2023 (Maribor, Slowenien, April 19, 2023 - April 22, 2023)
In: Additive Manufacturing in Multidisciplinary Cooperation and Production, Cham: 2023
DOI: 10.1007/978-3-031-37671-9_23 - , , :
Understanding geometry dependent part behavior of thin walled structures in powder bed fusion of polymers
12th CIRP Conference on Photonic Technologies, LANE 2022 (Erlangen, DEU, September 4, 2022 - September 8, 2022)
In: M. Schmidt, F. Vollertsen, B.M. Colosimo (ed.): Procedia CIRP 2022
DOI: 10.1016/j.procir.2022.08.109 - , , , :
Biomechanische Metamaterialien – Prozesse, Möglichkeiten und Perspektiven
38. Engelberger Kunststofftechnisches Seminar 2024 (Engelberg, March 9, 2024 - March 14, 2024) - , , , , , :
Polyamide 11 nanocomposite feedstocks for powder bed fusion via liquid-liquid phase separation and crystallization
In: Powder Technology 424 (2023), Article No.: 118563
ISSN: 0032-5910
DOI: 10.1016/j.powtec.2023.118563 - , :
Thermal Intra-Layer Interaction of Discretized Fractal Exposure Strategies in Non-Isothermal Powder Bed Fusion of Polypropylene
EMPOrIA - International Joint Conference 2023 (Aachen, May 16, 2023 - May 17, 2023)
DOI: 10.3390/jmmp7020063 - , , , :
Analysis of time dependent thermal properties for high rates in selective laser sintering
In: Rapid Prototyping Journal 24 (2018), p. 894-900
ISSN: 1355-2546
DOI: 10.1108/RPJ-01-2017-0013 - , , , , , , , , , , , , :
Experimental Research in Synthetic Molecular Communications - Part II
In: IEEE Nanotechnology Magazine (2023), p. 1-12
ISSN: 1942-7808
DOI: 10.1109/MNANO.2023.3262377 - , , , , , :
Thin-Walled Part Properties in PBF-LB/P — Experimental Understanding and Nonlocal Material Model
SFF 2022 (Austin, Texas, July 25, 2022 - July 27, 2022)
DOI: 10.26153/tsw/44659 - , , , , , , , , , , , , :
Experimental Research in Synthetic Molecular Communications - Part I
In: IEEE Nanotechnology Magazine (2023), p. 1-12
ISSN: 1942-7808
DOI: 10.1109/MNANO.2023.3262100 - , , , , , , :
From trash to treasure in additive manufacturing: Recycling of polymer powders by acid catalyzed hydrolysis
In: Additive Manufacturing 71 (2023), Article No.: 103591
ISSN: 2214-7810
DOI: 10.1016/j.addma.2023.103591 - , , , , , :
Effect of Ligament Fibers on Dynamics of Synthetic, Self-Oscillating Vocal Folds in a Biomimetic Larynx Model
In: Bioengineering 10 (2023), Article No.: 1130
ISSN: 2306-5354
DOI: 10.3390/bioengineering10101130 - , , , , :
Holistic Characterization of PBF-LB/P Powder Regarding Isothermal Crystallization, Rheology and Optical Properties Under Process Conditions
In: Igor Drstvensek, Snehashis Pal, Nataša Ihan Hren (ed.): Additive Manufacturing in Multidisciplinary Cooperation and Production, Cham: Springer, 2023, p. 43-52
ISBN: 9783031376702
DOI: 10.1007/978-3-031-37671-9_5 - , :
Laser-Based Additive Manufacturing of Polypropylene-Agarose Composites: Processing Properties and Compressive Mechanical Properties
38th International Conference of the Polymer Processing Society (St. Gallen, May 22, 2023 - May 26, 2023)
In: Proceedings of the 38th International Conference of the Polymer Processing Society (PPS-38), College Park, Maryland: 2024
DOI: 10.1063/5.0204523 - , , :
In situ powder height measurement as process signature for quality control in electron beam powder bed fusion
In: Additive Manufacturing 110 (2025), Article No.: 104910
ISSN: 2214-7810
DOI: 10.1016/j.addma.2025.104910