Optimization and Quality Evaluation of the Interlayer Bonding Performance of Additively Manufactured Polymer Structures.

additively manufactured polymer structures computed tomography infrared preheating interlayer tensile strength material extrusion void distribution

Journal

Polymers
ISSN: 2073-4360
Titre abrégé: Polymers (Basel)
Pays: Switzerland
ID NLM: 101545357

Informations de publication

Date de publication:
19 May 2020
Historique:
received: 06 04 2020
revised: 15 05 2020
accepted: 16 05 2020
entrez: 23 5 2020
pubmed: 23 5 2020
medline: 23 5 2020
Statut: epublish

Résumé

The application of additive manufacturing changes from prototypes to series production. In order to fulfill all requirements of series production, the process and the material characteristics must be known. The machine operator of additive manufacturing systems is both a component and a material producer. Nevertheless, there is no standardized procedure for the manufacturing or testing of such materials. This includes the high degree of anisotropy of additively manufactured polymers via material extrusion. The interlayer bonding performance between two layers in the manufacturing direction z is the obvious weakness that needs to be improved. By optimizing this interlayer contact zone, the overall performance of the additively manufactured polymer is increased. This was achieved by process modification with an infrared preheating system (IPS) to keep the temperature of the interlayer contact zone above the glass transition temperature during the manufacturing process. Combining destructive and non-destructive testing methods, the process modification IPS was determined and evaluated by a systematic approach for characterizing the interlayer bonding performance. Thereby, tensile tests under quasi-static and cyclic loading were carried out on short carbon fiber-reinforced polyamide (SCFRP). In addition, micro-computed tomography and microscopic investigations were used to determine the process quality. The IPS increases the ultimate interlayer tensile strength by approx. 15% and shows a tendency to significantly improved the fatigue properties. Simultaneously, the analysis of the micro-computed tomography data shows a homogenization of the void distribution by using the IPS.

Identifiants

pubmed: 32438656
pii: polym12051166
doi: 10.3390/polym12051166
pmc: PMC7284967
pii:
doi:

Types de publication

Journal Article

Langues

eng

Références

Addit Manuf. 2017 Aug;16:162-166
pubmed: 29242783
Sci Adv. 2018 Dec 14;4(12):eaat4967
pubmed: 30555914
Polymers (Basel). 2018 Mar 13;10(3):
pubmed: 30966348

Auteurs

Patrick Striemann (P)

Laboratory of Material Testing, University of Applied Sciences Ravensburg-Weingarten, Doggenriedstraße 42, D-88250 Weingarten, Germany.

Daniel Hülsbusch (D)

Department of Materials Test Engineering (WPT), TU Dortmund University, Baroper Str. 303, D-44227 Dortmund, Germany.

Michael Niedermeier (M)

Laboratory of Material Testing, University of Applied Sciences Ravensburg-Weingarten, Doggenriedstraße 42, D-88250 Weingarten, Germany.

Frank Walther (F)

Department of Materials Test Engineering (WPT), TU Dortmund University, Baroper Str. 303, D-44227 Dortmund, Germany.

Classifications MeSH