首页> 外文期刊>International Journal of Material Forming: Official Journal of the European Scientific Association for Material Forming - ESAFORM >Application of a response surface method to the optimal design of the wall temperature profiles in extrusion die
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Application of a response surface method to the optimal design of the wall temperature profiles in extrusion die

机译:响应面法在挤压模壁温曲线优化设计中的应用

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摘要

A new approach to the optimal design of the die wall temperature profile in polymer extrusion processes is presented. In this approach, optimization of the design variables is conducted by a Response Surface Method (RSM) and the Sequential Quadratic Programming (SQP) algorithm. Design of experiment (DoE) needed for the construction of the response surface is used to evaluate the objective and the constraint functions on the basis of a finite element method (FEM). Two designs of experiments are used and the performances of the optimization results are compared with respect to efficiency and ability to obtain a global optimum. Typically, for extrusion die design, the objective function states that the average velocity across the die exit is uniform. Constraints are used to limit the pressure drop in the die. For this purpose, we optimize the wall temperature profile of a coat hanger die in a heterogeneous way, (i.e. the wall temperature may not be constant in the entire die). The melt temperature enables us to locally control the viscosity, which influences the flows in the various zones. The effect of the design variables in the objective and constraint functions is investigated using Taguchi method. The flow analysis results are then combined with an automatic optimization algorithm to provide a new profile of the die wall temperature distributions.
机译:提出了一种在聚合物挤出工艺中优化模具壁温度曲线设计的新方法。在这种方法中,通过响应面方法(RSM)和顺序二次规划(SQP)算法对设计变量进行优化。构造响应面所需的实验设计(DoE)用于基于有限元方法(FEM)评估目标和约束函数。使用两种设计的实验,并就效率和获得全局最优的能力对优化结果的性能进行了比较。通常,对于挤出模头设计,目标函数表明模头出口的平均速度是均匀的。约束用于限制模具中的压降。为此,我们以一种异质方式优化了衣架模具的壁温曲线(即壁温在整个模具中可能不是恒定的)。熔体温度使我们能够局部控制粘度,从而影响各个区域的流动。使用Taguchi方法研究了设计变量在目标函数和约束函数中的作用。然后将流分析结果与自动优化算法结合起来,以提供模具壁温度分布的新曲线。

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