Quantifying effects of material extrusion additive manufacturing process on mechanical properties of lattice structures using as-fabricated voxel modeling

During additive manufacturing processes, part geometry is approximated because the layer by layer deposition procedure can yield stair-step irregularities between layers. Moreover, since finite-sized filaments are deposited in the material extrusion process, air gaps are generated among the filaments. These lead to geometrical errors in additively manufacturing parts and degradation of the parts’ mechanical properties, such as elastic modulus and strength, based on slicing and material deposition strategies. Geometric errors that arise during the manufacturing procedure have a particularly significant impact on fabricated lattice structures, which consist of a network of small struts, because they have large bounding surfaces that must be approximated during fabrication. In addition, since the struts in lattice structures are generally small, voids among filaments affect the structures’ mechanical properties significantly even if they are small. In order to avoid property degradation it is necessary to consider these phenomena during lattice structure design. In this paper, an as-fabricated modeling approach for a material extrusion process is proposed, for use in modeling and assessing the effects of geometric degradation on additively fabricated lattice structures. The approach implements a voxel based modeling technique to consider stair steps and deposition paths at each layer. Using the proposed method, numerical models for evaluating mechanical properties are generated. Estimated mechanical properties using the as-fabricated voxel modeling approach are compared with experimental results. The effects of the stair step and deposition path phenomena on mechanical properties are quantified and demonstrate good correspondence with experiments, particularly for elastic modulus.

[1]  A. K. Sood,et al.  Improving dimensional accuracy of Fused Deposition Modelling processed part using grey Taguchi method , 2009 .

[2]  I. Zein,et al.  Fused deposition modeling of novel scaffold architectures for tissue engineering applications. , 2002, Biomaterials.

[3]  Noshir A. Langrana,et al.  Structural quality of parts processed by fused deposition , 1996 .

[4]  Ján Slota,et al.  Influence of printing conditions on structure in FDM prototypes , 2013 .

[5]  Mohsen Badrossamay,et al.  Numerical investigation on mechanical properties of cellular lattice structures fabricated by fused deposition modeling , 2014 .

[6]  Seok-Hee Lee,et al.  Representation of surface roughness in fused deposition modeling , 2009 .

[7]  Debasish Dutta,et al.  Deposition Strategies and Resulting Part Stiffnesses in Fused Deposition Modeling , 1999 .

[8]  Yong He,et al.  Optimization of tool-path generation for material extrusion-based additive manufacturing technology ☆ , 2014 .

[9]  Michael F. Ashby,et al.  The mechanical properties of cellular solids , 1983 .

[10]  Jordi Llumà,et al.  Mechanical property characterization and simulation of fused deposition modeling Polycarbonate parts , 2015 .

[11]  Konrad Wegener,et al.  Understanding error generation in fused deposition modeling , 2015 .

[12]  Ryan B. Wicker,et al.  Fused deposition modeling of patient‐specific polymethylmethacrylate implants , 2010 .

[13]  Norman A. Fleck,et al.  Fabrication and structural performance of periodic cellular metal sandwich structures , 2003 .

[14]  Julie S. Linsey,et al.  The Invention Studio: A University Maker Space and Culture. , 2014 .

[15]  O. Harrysson,et al.  Direct metal fabrication of titanium implants with tailored materials and mechanical properties using electron beam melting technology , 2008 .