Pressure drop non-linearities in material extrusion additive manufacturing: a novel approach for pressure monitoring and numerical modeling
Sietse de Vries, Tom\'as Schuller, Francisco J. Galindo-Rosales, Paola, Fanzio

TL;DR
This paper presents a novel pressure monitoring method and a numerical model for understanding non-linear pressure drop behaviors in material extrusion 3D printing, enhancing control and predictability of the process.
Contribution
It introduces an innovative pressure measurement technique and applies a viscoelastic rheological model to accurately simulate flow in the nozzle and liquefier.
Findings
Reliable pressure data obtained with the new method
Numerical model accurately predicts flow conditions
Backflow causes significant pressure non-linearities
Abstract
Fused Filament Fabrication is an additive manufacturing technique in which molten thermoplastic polymers are extruded through a nozzle. Therefore, the interplay between the viscoelastic nature of the polymer melt, temperature, printing conditions and nozzle shape may lead to inconsistent extrusion. To improve the extrusion control and optimize the print-head performance, a better understanding of the flow process of the polymer melt both in the nozzle and the liquefier is needed. However, several challenges need to be overcome due to the complexity of gathering experimental data on the melt pressure in the nozzle and the lack of numerical models able to capture the full rheology of the molten polymer. This research introduces an innovative approach for monitoring the pressure within a material extrusion 3D printer's nozzle. This method involves utilizing a pin in direct contact with the…
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Taxonomy
TopicsAdditive Manufacturing and 3D Printing Technologies · Rheology and Fluid Dynamics Studies · Injection Molding Process and Properties
