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Non-newtonian laminar 2D swirl flow design by the topology optimization method

机译:非牛顿层层2D旋流设计通过拓扑优化方法

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摘要

The performance of fluid devices, such as channels, valves, nozzles, and pumps, may be improved by designing them through the topology optimization method. There are various fluid flow problems that can be elaborated in order to design fluid devices and among them there is a specific type which comprises axisymmetric flow with a rotation (swirl flow) around an axis. This specific type of problem allows the simplification of the computationally more expensive 3D fluid flow model to a computationally less expensive 2D swirl flow model. The topology optimization method applied to a Newtonian fluid in 2D swirl flow has already been analyzed before, however not all fluids feature Newtonian (linear) properties, and can exhibit non-Newtonian (nonlinear) effects, such as shear-thinning, which means that the fluid should feature a higher viscosity when under lower shear stresses. Some fluids that exhibit such behavior are, for example, blood, activated sludge, and ketchup. In this work, the effect of a non-Newtonian fluid flow is considered for the design of 2D swirl flow devices by using the topology optimization method. The non-Newtonian fluid is modeled by the Carreau-Yasuda model, which is known to be able to accurately predict velocity distributions for blood flow. The design comprises the minimization of the relative energy dissipation considering the viscous, porous, and inertial effects, and is solved by using the finite element method. The traditional pseudo-density material model for topology optimization is adopted with a nodal design variable. A penalization scheme is introduced for 2D swirl flow in order to enforce the low shear stress behavior of the non-Newtonian viscosity inside the modeled solid material. The optimization is performed with IPOPT (Interior Point Optimization algorithm). Numerical examples are presented for some 2D swirl flow problems, comparing the non-Newtonian with the Newtonian fluid designs.
机译:通过通过拓扑优化方法设计它们,可以改善流体装置的性能,例如通道,阀,喷嘴和泵。有各种流体流量问题可以阐述以设计流体装置,并且其中存在特定类型,该特定类型包括轴对称流动,轴绕轴旋转(旋流)。该特定类型的问题允许将计算上更昂贵的3D流体流模型简化到计算不那么昂贵的2D旋流流程模型。已经分析了应用于牛顿流体的牛顿流体的拓扑优化方法,但是并非所有流体都具有牛顿(线性)性质,并且可以展示非牛顿(非线性)效应,例如剪切变薄,这意味着在较低剪切应力下,流体应具有更高的粘度。一些表现出这种行为的液体是例如血液,活性污泥和番茄酱。在这项工作中,通过使用拓扑优化方法考虑非牛顿流体流动的效果。非牛顿流体由Carreau-Yasuda模型建模,已知能够精确地预测血流的速度分布。该设计包括考虑粘性,多孔和惯性效应的相对能量耗散的最小化,并通过使用有限元方法来解决。用于拓扑优化的传统伪密度材料模型采用节点设计变量。引入了2D旋流的惩罚方案,以便在模拟的固体材料内实施非牛顿粘度的低剪切应力行为。使用Ipopt(内部点优化算法)执行优化。提出了一些2D旋流问题的数值例子,将非牛顿与牛顿流体设计进行比较。

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