论文标题
受纯弯曲的超材料梁的尺寸效应:在宽松的微态模型中的边界条件和参数鉴定上
Size-effects of metamaterial beams subjected to pure bending: on boundary conditions and parameter identification in the relaxed micromorphic model
论文作者
论文摘要
在本文中,我们借助宽松的微态连续体对弯曲的超材料梁的尺寸效应进行建模。我们首先分析了受纯弯曲载荷的异质完全离散的非材料梁的尺寸依赖性弯曲刚度。引入了两个等效的载荷方案,导致沿着光束长度恒定矩,没有剪切力。然后采用松弛的微态模型来检索尺寸效应。我们提出了一个基于模型在两个明确定义的尺度之间运行的事实,以确定弛豫的微态模型的材料参数的过程。这些量表是通过微弹性和微弹性张量来给出的,这些弹性分别从上和下面结合了宽松的微态连续体。微弹性张量被指定为假定的超材料表现出的最大可能刚度,而宏弹性张量通过标准的周期性一阶同质化给出。为了鉴定微弹性张量,显示了两种不同的方法,这些方法依赖于候选晶胞变体的仿射和非植物差异边界条件,可能的僵硬响应可能最僵硬。证明一致的耦合条件允许模型在两个加载情况下的宏观和微弹性张量之间的整个预期范围内作用。我们通过控制曲率幅度与样品的尺寸链接后,通过控制曲率幅度来拟合放松的微态模型,以适应完全分辨的超材料溶液。测试了两个额外的负载方案,测试了宽松的微态模型所获得的参数。
In this paper we model the size-effects of metamaterial beams under bending with the aid of the relaxed micromorphic continuum. We analyze first the size-dependent bending stiffness of heterogeneous fully discretized metamaterial beams subjected to pure bending loads. Two equivalent loading schemes are introduced which lead to a constant moment along the beam length with no shear force. The relaxed micromorphic model is employed then to retrieve the size-effects. We present a procedure for the determination of the material parameters of the relaxed micromorphic model based on the fact that the model operates between two well-defined scales. These scales are given by linear elasticity with micro and macro elasticity tensors which bound the relaxed micromorphic continuum from above and below, respectively. The micro elasticity tensor is specified as the maximum possible stiffness that is exhibited by the assumed metamaterial while the macro elasticity tensor is given by standard periodic first-order homogenization. For the identification of the micro elasticity tensor, two different approaches are shown which rely on affine and non-affine Dirichlet boundary conditions of candidate unit cell variants with the possible stiffest response. The consistent coupling condition is shown to allow the model to act on the whole intended range between macro and micro elasticity tensors for both loading cases. We fit the relaxed micromorphic model against the fully resolved metamaterial solution by controlling the curvature magnitude after linking it with the specimen's size. The obtained parameters of the relaxed micromorphic model are tested for two additional loading scenarios.