Applying graded material transitions with low-cost additive manufacturing

Author:

Brauer Cole,Aukes Daniel

Abstract

Purpose Multimaterial components possess material boundaries that introduce potential points of failure. Graded material transitions can help mitigate the impact of these abrupt property changes. This approach is becoming increasingly accessible through three-dimensional (3D) printing, but it has yet to be extensively studied for rapid prototyping processes that are limited in resolution or number of material types. This study aims to investigate methods for applying graded transitions when using manufacturing processes with these limitations. Design/methodology/approach This study introduces a series of transition types that have graded properties and are produced using a finite number of discrete materials. This study presents a workflow for generating, fabricating and testing these transition types. This study uses this workflow with two different manufacturing processes to characterize the impact of each transition type on the ultimate tensile strength of a component. Findings Graded transitions can improve the performance of a component if the proper transition type is used. For high-fidelity processes, the best performing transitions are those closest to a true gradient. For low-fidelity processes, the best performing transitions are those which provide a balance of graded properties and mechanical connection. Research limitations/implications The presented performance trends are specific to the studied processes and materials. Future work using different fabrication parameters can use the presented workflow to assess process-specific trends. Originality/value This work comprehensively compares different methods of creating graded transitions using discrete materials, including several novel approaches. It also provides a new design workflow that allows the design of graded transitions to be easily integrated into a 3D printing workflow.

Publisher

Emerald

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Reference30 articles.

1. A voxel-based method of constructing and skinning conformal and functionally graded lattice structures suitable for additive manufacturing;Additive Manufacturing,2017

2. ASTM-D638-14 (2014), “Standard test method for tensile properties of plastics”, ASTM Standards.

3. Strengthening of 3D printed fused deposition manufactured parts using the fill compositing technique;Plos One,2015

4. Design by composition for layered manufacturing;Journal of Mechanical Design,2000

5. Brauer, C., Aukes, D., Brauer, J. and Jeffries, C. (2020), “VoxelFuse (1.2.2)”, available at: https://github.com/cdbrauer/VoxelFuse

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