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A MULTISCALE MECHANICAL MODEL FOR MATERIALS BASED ON VIRTUAL INTERNAL BOND THEORY

机译:基于虚拟内键理论的材料多尺度力学模型

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Only two macroscopic parameters are needed to describe the mechanical properties of linear elastic solids, i.e. the Poisson's ratio and Young's modulus. Correspondingly, there should be two microscopic parameters to determine the mechanical properties of material if the macroscopic mechanical properties of linear elastic solids are derived from the microscopic level. Enlightened by this idea, a multiscale mechanical model for material, the virtual multi-dimensional internal bonds (VMIB) model, is proposed by incorporating a shear bond into the virtual internal bond (VIB) model. By this modification, the VMIB model associates the macro mechanical properties of material with the microscopic mechanical properties of discrete structure and the corresponding relationship between micro and macro parameters is derived. The tensor quality of the energy density function, which contains coordinate vector, is mathematically proved. From the point of view of VMIB, the macroscopic nonlinear behaviors of material could be attributed to the evolution of virtual bond distribution density induced by the imposed deformation. With this theoretical hypothesis, as an application example, a uniaxial compressive failure of brittle material is simulated. Good agreement between the experimental results and the simulated ones is found.
机译:只需两个宏观参数即可描述线性弹性固体的机械性能,即泊松比和杨氏模量。相应地,如果线性弹性固体的宏观机械性能是从微观层面得出的,则应该有两个微观参数来确定材料的机械性能。受此想法启发,通过将剪切键合并到虚拟内部键(VIB)模型中,提出了一种材料的多尺度力学模型,即虚拟多维内部键(VMIB)模型。通过这种修改,VMIB模型将材料的宏观机械性能与离散结构的微观机械性能相关联,并得出微观和宏观参数之间的对应关系。数学上证明了包含坐标矢量的能量密度函数的张量质量。从VMIB的角度来看,材料的宏观非线性行为可归因于施加的变形引起的虚拟键分布密度的演变。以此理论假设为应用实例,对脆性材料的单轴压缩破坏进行了模拟。实验结果与模拟结果吻合良好。

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