4.5 Article

AltPrint: new filling and slicing process planning based on deposited material with geometry variation

期刊

RAPID PROTOTYPING JOURNAL
卷 29, 期 8, 页码 1702-1714

出版社

EMERALD GROUP PUBLISHING LTD
DOI: 10.1108/RPJ-06-2022-0208

关键词

Additive planning; Slicing algorithm; Complaint mechanisms; Fused filament fabrication; Design for additive manufacturing; Snap-fit; Functional parts

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This paper introduces the development and implementation of AltPrint, a slicing algorithm based on a new filling process planning that enables changes in the extruded material flow toward local variations in stiffness. The technical feasibility was evaluated experimentally using the fused filament fabrication (FFF) process. AltPrint integrates variable fill width with slicing software to vary print parameters in different regions of an object. It provides deposited variable-width segments in an organized and replicable filling strategy, resulting in mechanical properties variations in specific regions of a part. The potential of AltPrint for manufacturing functional parts with local flexibilities was demonstrated through fabrication and experimental evaluations in the field of additive manufacturing.
PurposeThis paper aims to address the development and implementation of AltPrint, a slicing algorithm based on a new filling process planning from a variation in the deposited material geometry. AltPrint enables changes in the extruded material flow toward local variations in stiffness. The technical feasibility evaluation was conducted experimentally by fused filament fabrication (FFF) process of snap-fit subjected to a mechanical cyclical test. Design/methodology/approachThe methodology is based on the estimation of the parameter E from the mathematical relationships among the variation of the material in the material flow, nozzle geometry and extrusion parameters. Calibration, validation and analysis of the printed specimens were divided into two moments, of which the first refers to the material responses (flexural and dynamic mechanical analysis) and the second involves the analysis of the printed components with localized flow properties (for estimating the response to cyclic loading). Finite element analysis assisted in the comparison of two snap-fit geometries, one traditional and one generated by AltPrint. Finally, three examples of compliant mechanisms were developed to demonstrate the potential of the algorithm in the generation of functional prototypes. FindingsThe contribution of AltPrint is the variable fill width integrated with the slicing software that varies the print parameters in different regions of the object. The alternative extrusion method based on material rate variation was conceived as an open software available in GitHub platform, hence, open manufacturing with initial focus on desktop 3D printer based on FFF. The slicing method provides deposited variable-width segments in an organized and replicable filling strategy, resulting in mechanical properties variations in specific regions of a part. It was implemented and evaluated experimentally and indicated potential applications in parts manufactured by the additive process based on extrusion, which requires local flexibilities. Originality/valueThis paper presents a new alternative method for application in an open additive manufacturing context, specifically for additive extrusion techniques that enable local variations in the material flow. Its potential for manufacturing functional parts, which require flexibility due to cyclic loading, was demonstrated by fabrication and experimental evaluations of parts made in acrylonitrile butadiene styrene filament. The changes proposed by AltPrint enable geometric modifications in the response of the printed parts. The proposed slicing and filling control of parameters is inserted in a context of design for additive manufacturing and shows great potential in the area of product design.

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