Characterization of bulk to thin wall mechanical response transition in powder bed AM

Author:

Brown Ben,Everhart Wes,Dinardo Joe

Abstract

Purpose In the development of powder bed additive manufacturing (AM) process parameters, the characterization of mechanical properties is generally performed through relatively large mechanical test samples that represent a bulk response. This provides an accurate representation of mechanical properties for equivalently sized or larger parts. However, as feature size is reduced, mechanical properties transition from a standard bulk response to a thin wall response where lower power border scans and surface roughness have a larger effect. Design/methodology/approach For this study, samples of wall thickness varying between 4.0 and 0.25 mm were built in 304L on the selective laser melting (SLM) platform and Ti-6Al-4V on the electron beam melting (EBM) platform. Samples were then mechanically tested, and fractography was performed for analysis. Findings This study experimentally identifies the threshold between bulk and thin wall mechanical properties for 304L SS on the SLM platform and Ti-6Al-4V on the EBM platform. A possible method for improving those properties and shifting the transition from bulk to thin wall response to smaller wall thicknesses by manipulation of scan pattern was investigated. Originality/value This study is a novel investigation into the effect of reduced wall thickness on the mechanical properties of a part produced by powder bed AM.

Publisher

Emerald

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Reference9 articles.

1. Selective laser melting for manufacturing of thin-walled porous elements;Journal of Materials Processing Technology,2015

2. Developing LBM process parameters for ti-6al-4v thin wall struc- tures and determining the corresponding mechanical characteristics;Physics Procedia,2014

3. Density of additively-manufactured, 316l SS parts using laser powder-bed fusion at powers up to 400 w;The International Journal of Advanced Manufacturing Technology,2013

4. Investigations on manufacturability and process reliability of selective laser melting;Physics Procedia,2013

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