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LEARNING ALGORITHM BASED MODELING AND PROCESS PARAMETERS RECOMMENDATION SYSTEM FOR BINDER JETTING ADDITIVE MANUFACTURING PROCESS

机译:基于学习算法的粘合喷射添加剂制造工艺建模和工艺参数推荐系统

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摘要

Binder Jetting (BJ) process is an additive manufacturing process in which powder materials are selectively joined by binder materials. Products can be manufactured layer by layer directly from 3D model data. It is not always easy for manufacturing engineers to choose proper BJ process parameters to meet the end-product quality and fabrication time requirements. This is because the quality properties of the products fabricated by BJ process are significantly affected by the process parameters. And the relationships between process parameters and quality properties are very complicated. In this paper, a process model is developed by Backward Propagation (BP) Neural Network (NN) algorithm based on 16 groups of orthogonal experiment designed by Taguchi Method to express the relationships between 4 key process parameters and 2 key quality properties. Based on the modeling results, an intelligent parameters recommendation system is developed to predict end-product quality properties and printing time, and to recommend process parameters selection based on the process requirements. It can be used as a guideline for selecting the proper printing parameters in BJ to achieve the desired properties and help to reduce the printing time.
机译:粘合剂喷射(BJ)工艺是一种添加剂制造方法,其中粉末材料通过粘合剂材料选择性地连接。产品可以通过层直接从3D模型数据制造层。制造工程师并不总是容易选择适当的BJ工艺参数以满足最终产品质量和制造时间要求。这是因为BJ过程制造的产品的质量特性受到过程参数的显着影响。过程参数和质量属性之间的关系非常复杂。在本文中,通过基于16组正交实验的基于Taguchi方法设计的16组正交实验来开发过程模型,以表达4个关键过程参数和2个关键质量特性之间的关系。基于建模结果,开发了智能参数推荐系统,以预测最终产品质量特性和打印时间,并根据过程要求建议工艺参数选择。它可以用作选择BJ中正确打印参数的指导,以实现所需的属性并有助于降低打印时间。

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