Momentum conserving dynamic variational approach for the modeling of fiber-bending stiffness in fiber-reinforced composites

I. Kalaimani, J. Dietzsch, M. Groß
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引用次数: 1

Abstract

Rotor-dynamical systems made of 3D-fiber-reinforced composites which are subjected to dynamical loads exhibit an increased fiber bending stiffness in numerical simulations. We propose a numerical modeling approach of fiber-reinforced composites that treats this behaviour accurately. Our model uses a multi-field mixed finite element formulation based on a dynamic variational approach, as demonstrated in [1], to perform long-term dynamic simulations that yield numerical solutions with increased accuracy in efficient CPU-time.We extend a Cauchy continuum with higher-order gradients of the deformation mapping as an independent field in the functional formulation, as suggested in [2], to model the bending stiffness of fibers accurately. This extended continuum also takes into account the higher-order energy contributions including the fiber curvature along with popular proven approaches that avoid the numerical locking effect of the fibers efficiently.We apply the proposed approach on Cook’s cantilever beam with a hyperelastic, transversely isotropic, polyconvex material behavior in a transient dynamic analysis. The beam is subjected to bending loads with a strong dependence of the overall stiffness on the fiber orientation. The spatial and temporal convergence as well as the conservation properties are analyzed. It is observed that the model needs an improved numerical treatment to conserve total momenta as well as total energy.REFERENCES M. Groß and J. Dietzsch, "Variational-based locking-free energy–momentum schemes of higher-order for thermo-viscoelastic fiber-reinforced continua", Computer Methods in Applied Mechanics and Engineering, (2019), 631-671, 343. T. Asmanoglo and A. Menzel, “A multi-field finite element approach for the modelling of fibre-reinforced composites with fibre-bending stiffness”, Computer Methods in Applied Mechanics and Engineering, (2017), 1037-1067, 317.
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基于动量守恒的纤维增强复合材料弯曲刚度动态变分方法
在数值模拟中,三维纤维增强复合材料转子动力系统在动力载荷作用下,纤维弯曲刚度增加。我们提出了一种精确处理这种行为的纤维增强复合材料的数值模拟方法。我们的模型使用基于动态变分方法的多场混合有限元公式,如[1]所示,执行长期动态模拟,在有效的cpu时间内获得精度更高的数值解。我们将变形映射的高阶梯度的柯西连续统扩展为泛函公式中的独立场,如[2]所示,以准确地模拟纤维的弯曲刚度。该扩展连续体还考虑了包括光纤曲率在内的高阶能量贡献,以及有效避免光纤数值锁定效应的常用方法。我们将提出的方法应用于具有超弹性、横向各向同性、多凸材料行为的Cook悬臂梁的瞬态动力分析。梁受到弯曲载荷与整体刚度对纤维取向的强烈依赖。分析了该方法的时空收敛性和守恒性。观察到该模型需要改进数值处理,以保持总动量和总能量。M. Groß和J. Dietzsch,“基于变分的热粘弹性纤维增强连续体的无锁定能量-动量格式”,应用力学与工程计算机方法,(2019),631-671,343。T. Asmanoglo, A. Menzel,“基于纤维弯曲刚度的纤维增强复合材料多场有限元建模方法”,应用力学与工程学报,(2017),1037-1067,317。
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