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首页> 外文期刊>International journal of non-linear mechanics >Limit point instability in pressurization of anisotropic finitely extensible hyperelastic thin-walled tube
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Limit point instability in pressurization of anisotropic finitely extensible hyperelastic thin-walled tube

机译:各向异性有限可伸缩超弹性薄壁管增压的极限点不稳定性

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摘要

Mechanical responses of materials undergoing large elastic deformations can exhibit a loss of stability in several ways. Such a situation can occur when a thin-walled cylinder is inflated by an internal pressure. The loss of stability is manifested by a non-monotonic relationship between the inflating pressure and internal volume of the tube. This is often called limit point instability. The results, known from the literature, show that isotropic hyperelastic materials with limiting chain extensibility property always exhibit a stable response if the extensibility parameter of the Gent model satisfies J(m) < 18.2. Our study investigates the same phenomenon but for tubes with anisotropic form of the Gent model (finite extensibility of fibers). Anisotropy, used in our study, increases the number of material parameters the consequence of which is to increase degree of freedom of the problem. It will be shown that, in stark contrast to isotropic material, the unstable response is predicted not only for large values J(m) but also for J(m) approximate to 1 and smaller, and that the existence of limit point instability significantly depends on the orientation of preferred directions and on the ratio of linear parameters in the strain energy density function (this ratio can be interpreted as the ratio of weights by which fibers and matrix contribute to the strain energy density). Especially tubes reinforced with fibers oriented closely to the longitudinal direction are susceptible to a loss of monotony during pressurization. (C) 2015 Elsevier Ltd. All rights reserved.
机译:经受大的弹性变形的材料的机械响应可以几种方式表现出稳定性的损失。当薄壁气缸由于内部压力而膨胀时,会发生这种情况。稳定性的损失通过充气压力和管的内部容积之间的非单调关系来体现。这通常称为极限点不稳定性。从文献中得知的结果表明,如果Gent模型的可扩展性参数满足J(m)<18.2,则具有有限链可扩展性的各向同性超弹性材料始终显示出稳定的响应。我们的研究调查了相同的现象,但对于具有Gent模型的各向异性形式(纤维的有限可扩展性)的管来说。在我们的研究中使用的各向异性增加了材料参数的数量,其结果是增加了问题的自由度。结果表明,与各向同性材料形成鲜明对比的是,不仅对于大值J(m),而且对于近似于1或更小的J(m),都可以预测到不稳定响应,并且极限点不稳定性的存在显着取决于在优选方向的取向上以及在应变能密度函数中线性参数的比率(该比率可以解释为纤维和基质对应变能密度贡献的权重之比)。特别地,用在纵向上紧密定向的纤维增强的管在加压过程中易于失去单调性。 (C)2015 Elsevier Ltd.保留所有权利。

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