Large strain micromechanics of thermoplastic elastomers with random microstructures

Fuente: arXiv
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Main Authors: Cho, Hansohl, Lee, Jaehee, Moon, Jehoon, Pöselt, Elmar, Veld, Pieter J. in 't, Rutledge, Gregory C., Boyce, Mary C.
Format: Preprint
Published: 2023
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_version_ 1866912019888734208
author Cho, Hansohl
Lee, Jaehee
Moon, Jehoon
Pöselt, Elmar
Veld, Pieter J. in 't
Rutledge, Gregory C.
Boyce, Mary C.
author_facet Cho, Hansohl
Lee, Jaehee
Moon, Jehoon
Pöselt, Elmar
Veld, Pieter J. in 't
Rutledge, Gregory C.
Boyce, Mary C.
contents Thermoplastic polyurethanes (TPU) are block copolymeric materials composed of plastomeric "hard" and elastomeric "soft" domains, by which they exhibit highly resilient yet dissipative large deformation features depending on volume fractions and microstructures of the two distinct domains. Here, we develop a new methodology to address the microscopic deformation mechanisms in TPU materials with highly disordered microstructures. We propose new micromechanical models for randomly dispersed (or occluded) as well as randomly continuous hard domains, each within a continuous soft structure as widely found in representative TPU materials over a wide range of volume fractions, v$_{\mathrm{hard}}$ = 26.9% to 52.2%. The micromechanical modeling results are compared to experimental data on the macroscopic large strain behaviors reported previously (Cho et al. 2017). We explore the role of the dispersed vs. continuous nature of the geometric features of the random microstructures on shape recovery and energy dissipation at the microstructural level in this important class of phase-separated copolymeric materials.
format Preprint
id arxiv_https___arxiv_org_abs_2308_14607
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Large strain micromechanics of thermoplastic elastomers with random microstructures
Cho, Hansohl
Lee, Jaehee
Moon, Jehoon
Pöselt, Elmar
Veld, Pieter J. in 't
Rutledge, Gregory C.
Boyce, Mary C.
Soft Condensed Matter
Materials Science
Thermoplastic polyurethanes (TPU) are block copolymeric materials composed of plastomeric "hard" and elastomeric "soft" domains, by which they exhibit highly resilient yet dissipative large deformation features depending on volume fractions and microstructures of the two distinct domains. Here, we develop a new methodology to address the microscopic deformation mechanisms in TPU materials with highly disordered microstructures. We propose new micromechanical models for randomly dispersed (or occluded) as well as randomly continuous hard domains, each within a continuous soft structure as widely found in representative TPU materials over a wide range of volume fractions, v$_{\mathrm{hard}}$ = 26.9% to 52.2%. The micromechanical modeling results are compared to experimental data on the macroscopic large strain behaviors reported previously (Cho et al. 2017). We explore the role of the dispersed vs. continuous nature of the geometric features of the random microstructures on shape recovery and energy dissipation at the microstructural level in this important class of phase-separated copolymeric materials.
title Large strain micromechanics of thermoplastic elastomers with random microstructures
topic Soft Condensed Matter
Materials Science
url https://arxiv.org/abs/2308.14607