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Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading

As a result of their cell structures, elastomeric foams exhibit high compressibility and are frequently used as buffer cushions in energy absorption. Foam pads between two surfaces typically withstand uniaxial loads. In this paper, we considered the effects of porosity and cell size on the mechanica...

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Autores principales: Liu, Zhentao, Wang, Chaoyang, Lai, Zhenyu, Guo, Zikang, Chen, Liang, Zhang, Kai, Yi, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180385/
https://www.ncbi.nlm.nih.gov/pubmed/37176356
http://dx.doi.org/10.3390/ma16093474
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author Liu, Zhentao
Wang, Chaoyang
Lai, Zhenyu
Guo, Zikang
Chen, Liang
Zhang, Kai
Yi, Yong
author_facet Liu, Zhentao
Wang, Chaoyang
Lai, Zhenyu
Guo, Zikang
Chen, Liang
Zhang, Kai
Yi, Yong
author_sort Liu, Zhentao
collection PubMed
description As a result of their cell structures, elastomeric foams exhibit high compressibility and are frequently used as buffer cushions in energy absorption. Foam pads between two surfaces typically withstand uniaxial loads. In this paper, we considered the effects of porosity and cell size on the mechanical behavior of random elastomeric foams, and proposed a constitutive model based on an artificial neural network (ANN). Uniform cell size distribution was used to represent monodisperse foam. The constitutive relationship between Cauchy stress and the four input variables of axial stretch λ(U), lateral stretch λ(L), porosity φ, and cell size θ was given by con-ANN. The mechanical responses of 500 different foam structures (20% < φ < 60%, 0.1 mm < θ < 0.5 mm) under compression and tension loads (0.4 < λ(U) < 3) were simulated, and a dataset containing 100,000 samples was constructed. We also introduced a pre-ANN to predict lateral stretch to address the issue of missing lateral strain data in practical applications. By combining physical experience, we chose appropriate input forms and activation functions to improve ANN’s extrapolation capability. The results showed that pre-ANN and con-ANN could provide reasonable predictions for λ(U) outside the dataset. We can obtain accurate lateral stretch and axial stress predictions from two ANNs. The porosity affects the stress and λ(L), while the cell size only affects the stress during foam compression.
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spelling pubmed-101803852023-05-13 Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading Liu, Zhentao Wang, Chaoyang Lai, Zhenyu Guo, Zikang Chen, Liang Zhang, Kai Yi, Yong Materials (Basel) Article As a result of their cell structures, elastomeric foams exhibit high compressibility and are frequently used as buffer cushions in energy absorption. Foam pads between two surfaces typically withstand uniaxial loads. In this paper, we considered the effects of porosity and cell size on the mechanical behavior of random elastomeric foams, and proposed a constitutive model based on an artificial neural network (ANN). Uniform cell size distribution was used to represent monodisperse foam. The constitutive relationship between Cauchy stress and the four input variables of axial stretch λ(U), lateral stretch λ(L), porosity φ, and cell size θ was given by con-ANN. The mechanical responses of 500 different foam structures (20% < φ < 60%, 0.1 mm < θ < 0.5 mm) under compression and tension loads (0.4 < λ(U) < 3) were simulated, and a dataset containing 100,000 samples was constructed. We also introduced a pre-ANN to predict lateral stretch to address the issue of missing lateral strain data in practical applications. By combining physical experience, we chose appropriate input forms and activation functions to improve ANN’s extrapolation capability. The results showed that pre-ANN and con-ANN could provide reasonable predictions for λ(U) outside the dataset. We can obtain accurate lateral stretch and axial stress predictions from two ANNs. The porosity affects the stress and λ(L), while the cell size only affects the stress during foam compression. MDPI 2023-04-29 /pmc/articles/PMC10180385/ /pubmed/37176356 http://dx.doi.org/10.3390/ma16093474 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
Liu, Zhentao
Wang, Chaoyang
Lai, Zhenyu
Guo, Zikang
Chen, Liang
Zhang, Kai
Yi, Yong
Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading
title Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading
title_full Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading
title_fullStr Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading
title_full_unstemmed Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading
title_short Utilizing ANN for Predicting the Cauchy Stress and Lateral Stretch of Random Elastomeric Foams under Uniaxial Loading
title_sort utilizing ann for predicting the cauchy stress and lateral stretch of random elastomeric foams under uniaxial loading
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180385/
https://www.ncbi.nlm.nih.gov/pubmed/37176356
http://dx.doi.org/10.3390/ma16093474
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