Impact Performance of 3D Printed Spatially Varying Elastomeric Lattices

Author:

Dwyer Charles M.1,Carrillo Jose G.2ORCID,De la Peña Jose Angel Diosdado3ORCID,Santiago Carolyn Carradero1ORCID,MacDonald Eric4ORCID,Rhinehart Jerry5,Williams Reed M.6ORCID,Burhop Mark6,Yelamanchi Bharat1ORCID,Cortes Pedro1ORCID

Affiliation:

1. Advanced Manufacturing Research Center, Youngstown State University, Youngstown, OH 44555, USA

2. Materials Department, Centro de Investigación Científica de Yucatán, Merida 97205, Mexico

3. Material Science and Engineering, Youngstown State University, Youngstown, OH 44555, USA

4. Aerospace and Mechanical Engineering, University of Texas at El Paso, El Paso, TX 79968, USA

5. Aptiv, 4551 Reseach Pkwy, Warren, OH 44483, USA

6. Siemens Corporation Corporate Technology, Princeton, NJ 08540, USA

Abstract

Additive manufacturing is catalyzing a new class of volumetrically varying lattice structures in which the dynamic mechanical response can be tailored for a specific application. Simultaneously, a diversity of materials is now available as feedstock including elastomers, which provide high viscoelasticity and increased durability. The combined benefits of complex lattices coupled with elastomers is particularly appealing for anatomy-specific wearable applications such as in athletic or safety equipment. In this study, Siemens’ DARPA TRADES-funded design and geometry-generation software, Mithril, was leveraged to design vertically-graded and uniform lattices, the configurations of which offer varying degrees of stiffness. The designed lattices were fabricated in two elastomers using different additive manufacturing processes: (a) vat photopolymerization (with compliant SIL30 elastomer from Carbon) and (b) thermoplastic material extrusion (with Ultimaker™ TPU filament providing increased stiffness). Both materials provided unique benefits with the SIL30 material offering compliance suitable for lower energy impacts and the Ultimaker™ TPU offering improved protection against higher impact energies. Moreover, a hybrid lattice combination of both materials was evaluated and demonstrated the simultaneous benefits of each, with good performance across a wider range of impact energies. This study explores the design, material, and process space for manufacturing a new class of comfortable, energy-absorbing protective equipment to protect athletes, consumers, soldiers, first responders, and packaged goods.

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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