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首页> 外文期刊>Journal of Advanced Mechanical Design, Systems, and Manufacturing >Basic study on automatic determination of injection conditions based on automatic recognition of forming states
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Basic study on automatic determination of injection conditions based on automatic recognition of forming states

机译:基于成型状态自动识别的注射条件自动确定基础研究

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Defects may occur when manufacturing plastic products by injection molding if the injection conditions are not appropriate. Thus, it is extremely difficult to produce products with high-dimensional accuracy and low defects. In addition, injection conditions are determined by experience including trial and error which may involve significant time and costs. This is because the relationship between each injection condition and forming defect is not clear. Injection conditions are interdependent; thus, it is difficult to obtain a quantitative correlation with respect to the forming defects. This study proposes a method to automatically recognize forming defects and determine injection conditions to mold non-defective products, thereby creating a basic system. Focusing on shape defects such as burrs, short shots, uneven color, weld lines, and transfer defects, the system photographs the formed product with a camera, recognizes the forming defects by image data processing, and digitizes the forming state. Then, it determines the appropriate injection conditions based on digitized forming states using a neural network. The usefulness of the proposed method is confirmed through experiments conducted under the injection conditions determined by the proposed method, and optimum injection conditions were determined.
机译:如果注射条件不合适,则通过注射成型制造塑料产品时可能会出现缺陷。因此,生产具有高尺寸精度和低缺陷的产品极其困难。另外,注射条件取决于经验,包括反复试验,可能会花费大量时间和成本。这是因为每种注射条件和成形缺陷之间的关系不清楚。注射条件是相互依赖的;因此,难以获得与成形缺陷有关的定量关系。这项研究提出了一种方法,该方法可以自动识别成形缺陷并确定注塑条件以成型无缺陷的产品,从而创建一个基本系统。该系统着眼于毛刺,短击,颜色不均匀,熔合线和转印缺陷等形状缺陷,用相机拍摄成型产品,通过图像数据处理识别成型缺陷,并对成型状态进行数字化处理。然后,它使用神经网络根据数字化的成形状态确定合适的注射条件。通过在所提出的方法确定的注射条件下进行的实验证实了所提出方法的有用性,并确定了最佳注射条件。

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