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首页> 外文期刊>Journal of Applied Polymer Science >A physical model for a quality control concept in injection molding
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A physical model for a quality control concept in injection molding

机译:注塑成型中质量控制概念的物理模型

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In this work, a model is presented, which is the basis of a quality control concept for the injection molding process. Contrary to statistical methods, this model uses physical dependencies of two quality parameters on four influencing parameters. The influences of holding pressure, holding time, melt temperature, and mold temperature on part mass and dimensions are described based on the fundamental material behavior such as pvT-data or energy equation. Furthermore, the influence of viscosity changes is indirectly taken into account using the injection work. Assuming only small deviations of the influencing parameters around an optimized operating point, the four parameters are treated as being independent from each other. With this assumption, a product ansatz was chosen with different functions for each influencing factor. Applying basic algebra, the starting equation was transformed into a form that describes either the change in part mass or characteristic part dimensions as a function of the influencing factors. The final equation for the part mass contains six model parameters, whereas nine model parameters are necessary for the equation for the part length. To obtain those model parameters some systematic experiments are required. Once the parameters are known, the model is able to calculate the change of the target values when the influencing factors vary around the operating point. The model was tested experimentally with focus on dimensions using a plastic cover made of an acrylonitrile butadiene styrene (ABS) grade. For the investigated part geometry and material grade, the process behavior was described well by the model.
机译:在这项工作中,提出了一个模型,该模型是注塑过程质量控制概念的基础。与统计方法相反,此模型使用两个质量参数对四个影响参数的物理依赖性。基于基本材料行为(例如pvT数据或能量方程式),描述了保压压力,保压时间,熔融温度和模具温度对零件质量和尺寸的影响。此外,通过注入工作间接地考虑了粘度变化的影响。假设影响参数在优化的工作点附近只有很小的偏差,则将这四个参数视为彼此独立。在此假设下,为每个影响因素选择了具有不同功能的产品ansatz。应用基本代数,将起始方程式转换为一种形式,该形式描述零件质量或特征零件尺寸随影响因素的变化。零件质量的最终方程式包含六个模型参数,而零件长度方程式则需要九个模型参数。为了获得那些模型参数,需要一些系统的实验。一旦知道了参数,当影响因素在工作点附近变化时,模型就可以计算目标值的变化。使用由丙烯腈丁二烯苯乙烯(ABS)级制成的塑料盖,以尺寸为重点进行了实验测试。对于所研究零件的几何形状和材料等级,该模型很好地描述了过程行为。

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