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DESIGN OPTIMIZATION OF AN L-SHAPED EXTRUSION DIE

机译:L形挤压模具的设计优化

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It is an important problem in the polymer extrusion of complex profiles to balance the flow at the die exit. In this paper, we employ simulated annealing-kriging meta-algorithm to optimize the geometric parameters of a die channel to obtain a uniform exit velocity distribution. Design variables for our optimization problem involve the suitable geometric parameters for the die design, which are the thickness of the large channel and the length of the narrow channel. Die balance is based on the deviation of the velocity with respect to the average velocity at the die exit. So the cost function for the optimization problem involves the minimization of this deviation. For the design of numerical experiments, we use Latin Hypercube Sampling (LHS) to construct the kriging model. Then, based on the LHS points, the numerical solutions are performed using Polyflow, a commercial software based on the finite element method and is specifically designed to simulate the flow and heat transfer of non-newtonian, viscoelastic fluids. In our simulations, a HDPE (high density polyethylene) is used as extrusion material. Having obtained numerical simulations for N=60 LHS points in two-dimensional parameter space (t and L), the optimization of these parameters is carried out by Simulated Annealing (SA) method in conjunction with kriging model. We show that kriging model employed in SA algorithm can be used to optimize the die geometry.
机译:在复杂型材的聚合物挤出中,平衡模头出口处的流动是一个重要的问题。在本文中,我们采用模拟退火-克里金元算法优化模具通道的几何参数,以获得均匀的出口速度分布。我们优化问题的设计变量包括适合模具设计的几何参数,即大通道的厚度和窄通道的长度。模具平衡基于速度相对于模具出口处平均速度的偏差。因此,优化问题的成本函数涉及该偏差的最小化。对于数值实验的设计,我们使用拉丁超立方体采样(LHS)来构建克里金模型。然后,基于LHS点,使用基于有限元方法的商业软件Polyflow进行数值解,并专门设计用于模拟非牛顿粘弹性流体的流动和传热。在我们的模拟中,将HDPE(高密度聚乙烯)用作挤出材料。获得了二维参数空间(t和L)中N = 60个LHS点的数值模拟,然后通过模拟退火(SA)方法和克里金模型对这些参数进行了优化。我们证明了SA算法中采用的kriging模型可以用来优化模具的几何形状。

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