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Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates

Polyurethane microcellular elastomers (PUME) are good at impact protection and energy absorption, and belong to rate sensitive- and strain history-dependent materials. In this study, PUME with different densities of 800 kg/m(3), 600 kg/m(3) and 400 kg/m(3) were prepared, then the compressive respons...

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Autores principales: Zhao, Zhiying, Li, Xiaodong, Jiang, Hao, Su, Xing, Zhang, Xudong, Zou, Meishuai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920046/
https://www.ncbi.nlm.nih.gov/pubmed/36772079
http://dx.doi.org/10.3390/polym15030778
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author Zhao, Zhiying
Li, Xiaodong
Jiang, Hao
Su, Xing
Zhang, Xudong
Zou, Meishuai
author_facet Zhao, Zhiying
Li, Xiaodong
Jiang, Hao
Su, Xing
Zhang, Xudong
Zou, Meishuai
author_sort Zhao, Zhiying
collection PubMed
description Polyurethane microcellular elastomers (PUME) are good at impact protection and energy absorption, and belong to rate sensitive- and strain history-dependent materials. In this study, PUME with different densities of 800 kg/m(3), 600 kg/m(3) and 400 kg/m(3) were prepared, then the compressive responses of PUME in the strain rate range of 0.001 s(−1) to 3400 s(−1) were systemically investigated. By studying the energy absorption and efficiency diagram of PUME, the compressive properties of materials with different densities under compressive impact load were described, which showed that PUME with a density of 600 kg/m(3) had better performance. A visco–hyperelasticity–air constitutive model was established to describe the large deformation response of PUME at high strain rates. The model included three components: hyperelastic part, viscoelastic part and gas pressure part. Quasi-static and dynamic compression tests were used to determine the constitutive relations of seven parameters. The samples with a density of 600 kg/m(3) at different strain rates were fitted by MATLAB software, and the constitutive model parameters were obtained. The comparison between the constitutive equation and the experimental results showed that there was a good consistency. The constitutive model can provide data support for simulation analysis and application of PUME as energy absorbing protective facilities.
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spelling pubmed-99200462023-02-12 Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates Zhao, Zhiying Li, Xiaodong Jiang, Hao Su, Xing Zhang, Xudong Zou, Meishuai Polymers (Basel) Article Polyurethane microcellular elastomers (PUME) are good at impact protection and energy absorption, and belong to rate sensitive- and strain history-dependent materials. In this study, PUME with different densities of 800 kg/m(3), 600 kg/m(3) and 400 kg/m(3) were prepared, then the compressive responses of PUME in the strain rate range of 0.001 s(−1) to 3400 s(−1) were systemically investigated. By studying the energy absorption and efficiency diagram of PUME, the compressive properties of materials with different densities under compressive impact load were described, which showed that PUME with a density of 600 kg/m(3) had better performance. A visco–hyperelasticity–air constitutive model was established to describe the large deformation response of PUME at high strain rates. The model included three components: hyperelastic part, viscoelastic part and gas pressure part. Quasi-static and dynamic compression tests were used to determine the constitutive relations of seven parameters. The samples with a density of 600 kg/m(3) at different strain rates were fitted by MATLAB software, and the constitutive model parameters were obtained. The comparison between the constitutive equation and the experimental results showed that there was a good consistency. The constitutive model can provide data support for simulation analysis and application of PUME as energy absorbing protective facilities. MDPI 2023-02-03 /pmc/articles/PMC9920046/ /pubmed/36772079 http://dx.doi.org/10.3390/polym15030778 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhao, Zhiying
Li, Xiaodong
Jiang, Hao
Su, Xing
Zhang, Xudong
Zou, Meishuai
Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates
title Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates
title_full Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates
title_fullStr Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates
title_full_unstemmed Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates
title_short Study on the Mechanical Properties and Energy Absorbing Capability of Polyurethane Microcellular Elastomers under Different Compressive Strain Rates
title_sort study on the mechanical properties and energy absorbing capability of polyurethane microcellular elastomers under different compressive strain rates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920046/
https://www.ncbi.nlm.nih.gov/pubmed/36772079
http://dx.doi.org/10.3390/polym15030778
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