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Quality control using a multivariate injection molding sensor

机译:使用多元注塑传感器进行质量控制

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摘要

Injection molding part quality is modeled using a multivariate sensor. Melt pressure and temperature are respectively obtained through the incorporation of a piezo-ceramic element and infrared thermopile within the sensor head. Melt velocity is derived from the transient response of the melt temperature as the polymer melt flows across the sensor's lens. The apparent melt viscosity is then derived based on the melt velocity and the time derivative of the increasing melt pressure given the cavity thickness. Quality metrics taken into account are finished part thickness, width, length, weight, and tensile strength. A 12-run, blocked half-fractional design of experiments was performed to derive predictive models for part mass, dimensions, and structural properties. Several predictive part quality models were created using data from the machine, a suite of commercial sensors, the multivariate sensor, and combinations thereof. The results indicate that multiple orthogonal streams of process data yield higher-fidelity models with coefficients of determination approaching one. Furthermore, best subset analysis indicates that the most important process data are gathered from in-mold sensors, where the acquired information is closest to the states of the polymer forming the final product.
机译:注塑零件的质量使用多变量传感器建模。熔体压力和温度分别通过在传感器头内结合压电陶瓷元件和红外热电堆获得。熔体速度是由聚合物熔体流过传感器透镜时熔体温度的瞬态响应得出的。然后根据熔体速度和给定型腔厚度,增加熔体压力的时间导数得出表观熔体粘度。考虑到的质量指标是成品零件的厚度,宽度,长度,重量和拉伸强度。进行了12次运行,封闭的半分数实验设计,以得出零件质量,尺寸和结构特性的预测模型。使用来自机器,一组商业传感器,多元传感器及其组合的数据创建了几个预测零件质量模型。结果表明,过程数据的多个正交流产生了更高的保真度模型,其确定系数接近于1。此外,最佳子集分析表明,最重要的过程数据是从模内传感器收集的,其中所获取的信息最接近于形成最终产品的聚合物的状态。

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