Quality optimization of FDM-printed (fused deposition modeling) components based on differential scanning calorimetry

Author:

Roj Robin1ORCID,Blondrath Aileen1,Theiß Ralf1,Dültgen Peter1

Affiliation:

1. Forschungsgemeinschaft Werkzeuge und Werkstoffe e.V. , 42859 Remscheid , Germany

Abstract

Abstract Fused deposition modeling has become the most common 3D printing technology in both the industry and the private sector, due to its easy application and low price. Although some companies provide parameter sets that are perfectly adapted for their machines and filaments, a great variety of materials that can be processed on arbitrary printers are also available. Usually, the operator has to figure out ideal printing parameters in order to achieve high-quality results. In this work, an approach is presented relating the conclusions of differential scanning calorimetry, including the melting and glass transition temperatures and the decomposition points, to the printout quality. To give an overview of the common materials and to correlate the behavior of the printing parameters, 16 different filaments categorized into groups of plastics without additives, metals and carbon, woods, and stones have been investigated. Heat towers have been printed with each filament, whereby the individual floors in 5 °C steps represent the nozzle temperatures and show features for direct comparison. As a main result, it is shown that the optimal printing quality is achieved with temperatures on the colder end of the range between melting and decomposition.

Publisher

Walter de Gruyter GmbH

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

Reference11 articles.

1. R. Roj, R. Theiß, and P. Dültgen, “Mechanical properties of 16 different FDM-plastic types,” Mater. Test., vol. 61, no. 10, pp. 999–1006, 2019, https://doi.org/10.3139/120.111413.

2. R. Roj, J. Nürnberg, R. Theiß, and P. Dültgen, “Comparison of FDM-printed and compression molded tensile samples,” Mater. Test., vol. 62, pp. 985–10992, 2020, https://doi.org/10.3139/120.111575.

3. Plastics – Differential Scanning Calorimetry (DSC) – Part 1: General Principles, 2017, DIN EN ISO 11357-1 [Online]. Available at: https://www.beuth.de/en/standard/din-en-iso-11357-1/264864949.

4. Plastics – Differential Scanning Calorimetry (DSC) – Part 2: Determination of Glass Transition Temperature and Step Height, 2020, DIN EN ISO 11357-2 [Online]. Available at: https://www.beuth.de/en/standard/din-en-iso-11357-2/316989707.

5. Thermal Analysis – Differential Thermal Analysis (DTA) and Differential Scanning Calorimetry (DSC) – General Principles, 2019, DIN 51007 [Online]. Available at: https://www.beuth.de/en/standard/din-51007/299534496.

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