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An anisotropic tertiary creep damage constitutive model for anisotropic materials

机译:各向异性材料的各向异性三次蠕变损伤本构模型

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When an anisotropic material is subject to creep conditions and a complex state of stress, an anisotropic creep damage behavior is observed. Previous research has focused on the anisotropic creep damage behavior of isotropic materials but few constitutive models have been developed for anisotropic creeping solids. This paper describes the development of a new anisotropic tertiary creep damage constitutive model for anisotropic materials. An advanced tensorial damage formulation is implemented which includes both material orientation relative to loading and the degree of creep damage anisotropy in the model. A variation of the Norton-power law for secondary creep is implemented which includes the Hill's anisotropic analogy. Experiments are conducted on the directionally-solidified bucket material DS GTD-111. The constitutive model is implemented in a user programmable feature (UPF) in ANSYS FEA software. The ability of the constitutive model to regress to the Kachanov-Rabotnov isotropic tertiary creep damage model is demonstrated through comparison with uniaxial experiments. A parametric study of both material orientation and stress rotation are conducted. Results indicate that creep deformation is modeled accurately; however an improved damage evolution law may be necessary.
机译:当各向异性材料经受蠕变条件和复杂应力状态时,会观察到各向异性蠕变破坏行为。先前的研究集中在各向同性材料的各向异性蠕变损伤行为上,但很少开发用于各向异性蠕变固体的本构模型。本文描述了一种新的各向异性材料的各向异性三次蠕变损伤本构模型的开发。实施了一种先进的张量损伤公式,其中包括相对于载荷的材料方向以及模型中的蠕变损伤各向异性程度。二次蠕变的诺顿幂定律的一种变型被实现,其中包括希尔的各向异性类比。对定向凝固的铲斗材料DS GTD-111进行了实验。本构模型在ANSYS FEA软件的用户可编程功能(UPF)中实现。通过与单轴实验比较,证明了本构模型回归到Kachanov-Rabotnov各向同性第三蠕变损伤模型的能力。进行了材料取向和应力旋转的参数研究。结果表明,蠕变变形是准确建模的。但是,可能需要改进的损害演化规律。

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