Affiliation:
1. Institute for Engineering Design, Technische Universität Braunschweig, Hermann-Blenk-Str. 42, 38108 Brunswick, Germany
Abstract
Additive manufacturing of components using the material extrusion (MEX) of thermoplastics enables the integration of multiple materials into a single part. This can include functional structures, such as electrically conductive ones. The resulting functional structure properties depend on the process parameters along the entire manufacturing chain. The aim of this investigation is to determine the influence of process parameters in filament production and additive manufacturing on resistivity. Filament is produced from a commercially available composite of polylactide (PLA) with carbon nanotubes (CNT) and carbon black (CB), while the temperature profile and screw speed were varied. MEX specimens were produced using a full-factorial variation in extrusion temperature, layer height and deposition speed from the most and least conductive in-house-produced filament and the commercially available filament from the same composite. The results show that the temperature profile during filament production influences the resistivity. The commercially available filament has a lower conductivity than the in-house-produced filament, even though the starting feedstock is the same. The process parameters during filament production are the main factors influencing the resistivity of an additively manufactured structure. The MEX process parameters have a minimal influence on the resistivity of the used PLA/CNT/CB composite.
Funder
German Research Foundation
German Federal Ministry of Economics and Technology
German Federal Ministry of Education and Research
Open Access Publication Funds of the Technische Universität Braunschweig
Subject
Polymers and Plastics,General Chemistry
Reference56 articles.
1. Data-driven design support for additively manufactured heating elements;Hilbig;Proc. Des. Soc.,2022
2. Gibson, I., Rosen, D.W., Stucker, B., and Khorasani, M. (2021). Additive Manufacturing Technologies: 3D Printing, Rapid Prototyping and Direct Digital Manufacturing, Springer New York.
3. Deutsches Institut für Normung e. V. (2022). Additive Fertigung–Grundlagen–Terminologie, Beuth Verlag GmbH.
4. Godec, D., Gonzalez-Gutierrez, J., Nordin, A., Pei, E., and Alcázar, J.U. (2022). A Guide to Additive Manufacturing, Springer International Publishing AG.
5. Gkourmpis, T. (2016). Controlling the Morphology of Polymers, Springer.
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献