Representation of Graded Materials and Structures to Support Tolerance Specification for Additive Manufacturing Application

Author:

Ameta G.1,Witherell P.2

Affiliation:

1. Dakota Consulting Inc., Silver Spring, MD 20910 e-mail:

2. National Institute of Standards and Technology, Gaithersburg, MD 20899 e-mail:

Abstract

Additive manufacturing (AM) has enabled control over heterogeneous materials and structures in ways that were not previously possible, including functionally graded materials and structures. This paper presents a novel method for representing and communicating heterogeneous materials and structures that include tolerancing of geometry and material together. The aim of this paper is to propose a means to specify nominal materials, nominal structures and allowable material variations in parts, including (a) explicit material and structural transitions (implying abrupt changes) and (b) functional transitions to support single and multiple material and structural behaviors (implying designed function-based gradients). The transition region combines bounded regions (volumes and surfaces) and material distribution and structural variation equations. Tolerancing is defined at two levels, that of the geometry including bounded regions and that of the materials. Material tolerances are defined as allowable material variations from nominal material fractions within a unit volume at a given location computed using material distribution equations. The method is described thorough several case studies of abrupt transitions, lattice-based transitions, and multimaterial and structural transitions.

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Graphics and Computer-Aided Design,Computer Science Applications,Software

Reference66 articles.

1. Computer-Aided Design for Additive Manufacturing of Cellular Structures;Comput.-Aided Des. Appl.,2007

2. A Review of Additive Manufacturing;ISRN Mech. Eng.,2012

3. Brackett, D., Ashcroft, I., and Hague, R., 2011, “Topology Optimization for Additive Manufacturing,” Solid Freeform Fabrication Symposium, Austin, TX, Aug. 8–10, pp. 348–362.http://sffsymposium.engr.utexas.edu/Manuscripts/2011/2011-27-Brackett.pdf

4. Hiller, J. D., and Lipson, H., 2009, “STL 2.0: A Proposal for a Universal Multi-Material Additive Manufacturing File Format,” Solid Freeform Fabrication Symposium,Austin, TX, Aug. 3–5, pp. 266–278.

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