Abstract
This study addresses the mechanical behavior of lattice materials based on flexible thermoplastic polyurethane (TPU) with honeycomb and gyroid architecture fabricated by 3D printing. Tensile, compression, and three-point bending tests were chosen as mechanical testing methods. The honeycomb architecture was found to provide higher values of rigidity (by 30%), strength (by 25%), plasticity (by 18%), and energy absorption (by 42%) of the flexible TPU lattice compared to the gyroid architecture. The strain recovery is better in the case of gyroid architecture (residual strain of 46% vs. 31%). TPUs with honeycomb architecture are characterized by anisotropy of mechanical properties in tensile and three-point bending tests. The obtained results are explained by the peculiarities of the lattice structure at meso-and macroscopic level and by the role of the pore space.
Author supplied keywords
Cite
CITATION STYLE
Beloshenko, V., Beygelzimer, Y., Chishko, V., Savchenko, B., Sova, N., Verbylo, D., … Vozniak, I. (2021). Mechanical properties of flexible tpu-based 3d printed lattice structures: Role of lattice cut direction and architecture. Polymers, 13(17). https://doi.org/10.3390/polym13172986
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.