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Purpose

Fused filament fabrication 3D printers often struggle to achieve precise behavior in actuating mechanisms such as compliant mechanisms. As defined by the pseudo-rigid body model (PRBM), a high mechanical strength and a low modulus (or a high strength-to-modulus ratio) contribute to an effective compliant mechanism. When using fused filament fabrication (FFF) with polymers, these mechanical properties depend on a variety of factors, including process parameters. The purpose of this study is to experimentally demonstrate the effect of FFF process parameters on compliant mechanism performance.

Design/methodology/approach

This paper investigates the impact of printing parameters on strength and modulus of FFF-manufactured mechanisms by systematically varying slicing parameters and subjecting specimens to three-point bending tests.

Findings

The results from these studies indicate that select process parameters have significant impact on the strength-to-modulus ratio. Increasing wall thickness consistently increased the strength-to-modulus ratio and resulted in the largest measured ratio across all parameters. Ironing all layers and selecting a honeycomb or rectilinear infill pattern were also shown to have a statistically significant improvement to the strength-to-modulus ratio. Increasing wall thickness and ironing resulted in an increase in both strength and modulus but an overall increase in the strength-to-modulus ratio, demonstrating that FFF parameters affect compliant mechanism behavior in ways not predicted by traditional rigid-part intuition. The infill density and infill angle parameters showed little impact on strength-to-modulus ratio.

Originality/value

While the mechanical properties of FFF-manufactured parts have been studied extensively to optimize rigid applications, no generalized, quantitative link has connected printing parameters to compliant mechanism performance. This work establishes such a framework by mapping experimentally measured flexural strength-to-modulus ratios to achievable deflection through the PRBM. Designers can combine standardized beam tests with the PRBM to predict how slicer settings shift the usable range of motion of a flexure, independent of its geometry.

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