{"title":"类橡胶固体可压缩性的广义Ogden模型。","authors":"Yin Yao, Shaohua Chen, Zhuping Huang","doi":"10.1098/rsta.2021.0320","DOIUrl":null,"url":null,"abstract":"<p><p>The aim of this paper is to further demonstrate the advantages and effectiveness of the constitutive formulation proposed by Huang (Huang 2014 <i>J. Appl. Mech.</i> <b>59</b>, 902-908 (doi:10.1115/1.2894059)). In this formulation, any strain-energy function for an incompressible material can be easily generalized to include the effect of material compressibility, in which only a few material parameters and material functions to be fitted with the experimental data are required. To this end, the Ogden model for incompressible rubber-like solids is chosen as the starting point. By means of this formulation, the generalized Ogden strain-energy function, which takes into account material compressibility, can conveniently be constructed so long as its incompressible counterpart is given. The obvious advantage shown in this paper is that only a few material parameters and material functions are needed, i.e. in addition to the material parameters used in the original Ogden model for incompressible solids, only one material function depending on the volume ratio is involved to characterize the effect of compressibility. Both the material parameters in the original Ogden model and the material function suggested in this paper can be determined by fitting the experimental data for uniaxially tensile test and hydrostatic deformation test of rubbers, respectively. The present model considering compressibility is general since it can be applied to predict the stress-strain responses of rubber-like materials and porous rubbers in various loading conditions. With the present formulation, the applicable range of the celebrated Ogden model can be further broadened, which should be of practical importance for accurately describing the mechanical behaviour of rubber-like solids. This article is part of the theme issue 'The Ogden model of rubber mechanics: Fifty years of impact on nonlinear elasticity'.</p>","PeriodicalId":286094,"journal":{"name":"Philosophical transactions. Series A, Mathematical, physical, and engineering sciences","volume":" ","pages":"20210320"},"PeriodicalIF":0.0000,"publicationDate":"2022-10-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"1","resultStr":"{\"title\":\"A generalized Ogden model for the compressibility of rubber-like solids.\",\"authors\":\"Yin Yao, Shaohua Chen, Zhuping Huang\",\"doi\":\"10.1098/rsta.2021.0320\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>The aim of this paper is to further demonstrate the advantages and effectiveness of the constitutive formulation proposed by Huang (Huang 2014 <i>J. Appl. Mech.</i> <b>59</b>, 902-908 (doi:10.1115/1.2894059)). In this formulation, any strain-energy function for an incompressible material can be easily generalized to include the effect of material compressibility, in which only a few material parameters and material functions to be fitted with the experimental data are required. To this end, the Ogden model for incompressible rubber-like solids is chosen as the starting point. By means of this formulation, the generalized Ogden strain-energy function, which takes into account material compressibility, can conveniently be constructed so long as its incompressible counterpart is given. The obvious advantage shown in this paper is that only a few material parameters and material functions are needed, i.e. in addition to the material parameters used in the original Ogden model for incompressible solids, only one material function depending on the volume ratio is involved to characterize the effect of compressibility. Both the material parameters in the original Ogden model and the material function suggested in this paper can be determined by fitting the experimental data for uniaxially tensile test and hydrostatic deformation test of rubbers, respectively. The present model considering compressibility is general since it can be applied to predict the stress-strain responses of rubber-like materials and porous rubbers in various loading conditions. With the present formulation, the applicable range of the celebrated Ogden model can be further broadened, which should be of practical importance for accurately describing the mechanical behaviour of rubber-like solids. This article is part of the theme issue 'The Ogden model of rubber mechanics: Fifty years of impact on nonlinear elasticity'.</p>\",\"PeriodicalId\":286094,\"journal\":{\"name\":\"Philosophical transactions. 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引用次数: 1
摘要
本文的目的是进一步论证Huang (Huang 2014 J. appll .)提出的本构公式的优势和有效性。机械学报,59,902-908 (doi:10.1115/1.2894059))。在该公式中,任何不可压缩材料的应变能函数都可以很容易地推广到包括材料可压缩性的影响,其中只需要与实验数据拟合的少数材料参数和材料函数。为此,选择不可压缩橡胶类固体的Ogden模型作为起点。利用该公式,只要给出不可压缩的对应函数,就可以方便地构造考虑材料可压缩性的广义奥格登应变能函数。本文的明显优点是只需要很少的材料参数和材料函数,即除了原始不可压缩固体Ogden模型中使用的材料参数外,只涉及一个取决于体积比的材料函数来表征可压缩性的影响。通过拟合橡胶的单轴拉伸试验数据和静水变形试验数据,可以确定原Ogden模型中的材料参数和本文提出的材料函数。考虑可压缩性的模型具有通用性,可用于预测类橡胶材料和多孔橡胶在各种加载条件下的应力-应变响应。利用本公式,可以进一步扩大著名的奥格登模型的适用范围,这对于准确描述类橡胶固体的力学行为具有实际意义。本文是专题“橡胶力学的奥格登模型:五十年来对非线性弹性的影响”的一部分。
A generalized Ogden model for the compressibility of rubber-like solids.
The aim of this paper is to further demonstrate the advantages and effectiveness of the constitutive formulation proposed by Huang (Huang 2014 J. Appl. Mech.59, 902-908 (doi:10.1115/1.2894059)). In this formulation, any strain-energy function for an incompressible material can be easily generalized to include the effect of material compressibility, in which only a few material parameters and material functions to be fitted with the experimental data are required. To this end, the Ogden model for incompressible rubber-like solids is chosen as the starting point. By means of this formulation, the generalized Ogden strain-energy function, which takes into account material compressibility, can conveniently be constructed so long as its incompressible counterpart is given. The obvious advantage shown in this paper is that only a few material parameters and material functions are needed, i.e. in addition to the material parameters used in the original Ogden model for incompressible solids, only one material function depending on the volume ratio is involved to characterize the effect of compressibility. Both the material parameters in the original Ogden model and the material function suggested in this paper can be determined by fitting the experimental data for uniaxially tensile test and hydrostatic deformation test of rubbers, respectively. The present model considering compressibility is general since it can be applied to predict the stress-strain responses of rubber-like materials and porous rubbers in various loading conditions. With the present formulation, the applicable range of the celebrated Ogden model can be further broadened, which should be of practical importance for accurately describing the mechanical behaviour of rubber-like solids. This article is part of the theme issue 'The Ogden model of rubber mechanics: Fifty years of impact on nonlinear elasticity'.