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Additive manufacturing of prototype elements with process interfaces for continuously operating manufacturing lines

机译:具有过程接口的原型元素的增材制造用于连续运行的生产线

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摘要

Rapid prototyping based on design and 3D printing enables fast customization of complex geometries to multiple needs. This study utilizes, additive manufacturing for rapid prototyping of elements for continuously operating mixing geometries including interfaces with process analytical technology (PAT) tools, to show that 3D printing can be used for prototyping of both parts of production line and PAT interfacing solution. An additional setup was designed for measuring the dynamic calibration samples for a semi-quantitative near infrared (NIR) spectroscopic model. The powder was filled in a small calibration chamber and in-line NIR spectra of calibration samples were collected from moving material while mimicking the powder flow dynamics in a typical continuous mixer. This dynamic powder mixing system was compared with a static powder calibration model where the NIR probe was placed at different positions on a static sample. Principal component analysis (PCA) revealed that the 3D printed device with dynamic measurement of the NIR spectra had more potential for quantitative analysis. With the prototype continuous mixer, two differently placed process interfaces for NIR spectroscopic monitoring of the powder mixing were evaluated. With this approach, the importance of positioning the process analytical tools to assess the blend uniformity could be demonstrated. It was also observed that with the longer mixing geometry, a better mixing result was achieved due to a larger hold up volume and increased residence time.
机译:基于设计和3D打印的快速原型制作能够快速定制复杂的几何形状以满足多种需求。这项研究利用增材制造技术对元素进行快速原型制作,以连续操作混合几何体,包括与过程分析技术(PAT)工具的接口,以证明3D打印可用于生产线和PAT接口解决方案的原型制作。设计了一种附加设置,用于测量半定量近红外(NIR)光谱模型的动态校准样品。将粉末填充到一个小的校准室中,并从移动的材料中收集校准样品的在线NIR光谱,同时模拟典型的连续混合器中的粉末流动动力学。将该动态粉末混合系统与静态粉末校准模型进行了比较,在该模型中,NIR探针放置在静态样品的不同位置。主成分分析(PCA)显示,具有动态测量NIR光谱的3D打印设备具有更大的定量分析潜力。使用原型连续混合器,对用于NIR光谱监测粉末混合的两个不同放置的过程接口进行了评估。通过这种方法,可以证明定位过程分析工具以评估共混物均匀性的重要性。还观察到,在较长的混合几何形状下,由于较大的滞留体积和增加的停留时间而获得了更好的混合结果。

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