论文标题
用于硬磁性软材料的微极壳模型
A micropolar shell model for hard-magnetic soft materials
论文作者
论文摘要
硬磁性软材料(HMSM)是颗粒复合材料,由嵌入高残余磁性诱导颗粒的软基质组成。由于外部磁通量在HMSM中诱导了一对夫妇,因此这些材料中的cauchy应力张量通常是不对称的。因此,可以使用微极连续理论来捕获这些材料的变形。另一方面,与人体的整体尺寸相比,由HMSM制成的几何形状和结构通常具有较小的厚度。因此,在目前的贡献中,开发了一个10参数的微极壳配方,以建模由HMSM制成的薄结构的有限弹性变形并受到磁性刺激的影响。目前的壳配方允许使用三维本构定律,而无需修改将平面应力假设应用于薄结构中。由于管理方程的高度非线性性质,还开发了数值模拟的非线性有限元公式。为了绕过大扭曲,采用了增强的假定应变公式。在几个数值示例中检查了开发的配方的性能。结果表明,所提出的配方是模拟HMSM制成的薄体的变形的有效工具。
Hard-magnetic soft materials (HMSMs) are particulate composites that consist of a soft matrix embedded with particles of high remnant magnetic induction. Since the application of an external magnetic flux induces a body couple in HMSMs, the Cauchy stress tensor in these materials is asymmetric, in general. Therefore, the micropolar continuum theory can be employed to capture the deformation of these materials. On the other hand, the geometries and structures made of HMSMs often possess small thickness compared to the overall dimensions of the body. Accordingly, in the present contribution, a 10-parameter micropolar shell formulation to model the finite elastic deformation of thin structures made of HMSMs and subject to magnetic stimuli is developed. The present shell formulation allows for using three-dimensional constitutive laws without any need for modification to apply the plane stress assumption in thin structures. Due to the highly nonlinear nature of the governing equations, a nonlinear finite element formulation for numerical simulations is also developed. To circumvent locking at large distortions, an enhanced assumed strain formulation is adopted. The performance of the developed formulation is examined in several numerical examples. It is shown that the proposed formulation is an effective tool for simulating the deformation of thin bodies made of HMSMs.