首页> 外国专利> REAL-TIME ADAPTIVE CONTROL OF ADDITIVE MANUFACTURING PROCESSES USING MACHINE LEARNING

REAL-TIME ADAPTIVE CONTROL OF ADDITIVE MANUFACTURING PROCESSES USING MACHINE LEARNING

机译:机器学习对制造过程的实时自适应控制

摘要

Methods for control of post-design free form deposition processes or joining processes are described that utilize machine learning algorithms to improve fabrication outcomes. The machine learning algorithms use real-time object property data from one or more sensors as input, and are trained using training data sets that comprise: i) past process simulation data, past process characterization data, past in-process physical inspection data, or past post-build physical inspection data, for a plurality of objects that comprise at least one object that is different from the object to be fabricated; and ii) training data generated through a repetitive process of randomly choosing values for each of one or more input process control parameters and scoring adjustments to process control parameters as leading to either undesirable or desirable outcomes, the outcomes based respectively on the presence or absence of defects detected in a fabricated object arising from the process control parameter adjustments.
机译:描述了用于控制设计后自由形式沉积过程或连接过程的方法,这些方法利用机器学习算法来改善制造结果。机器学习算法将来自一个或多个传感器的实时对象属性数据用作输入,并使用包括以下内容的训练数据集进行训练:i)过去的过程模拟数据,过去的过程特征数据,过去的过程中物理检查数据或对于包括至少一个与要制造的物体不同的物体的多个物体的过去的建造后物理检查数据; ii)训练数据,该数据是通过重复过程随机产生的,该重复过程是为一个或多个输入过程控制参数中的每一个随机选择值,并对过程控制参数进行评分调整以导致不良结果或理想结果,这些结果分别基于是否存在由于过程控制参数调整而导致在制造对象中检测到的缺陷。

著录项

  • 公开/公告号EP3635640A1

    专利类型

  • 公开/公告日2020-04-15

    原文格式PDF

  • 申请/专利权人 RELATIVITY SPACE INC.;

    申请/专利号EP20180806932

  • 发明设计人 MEHR EDWARD;ELLIS TIM;NOONE JORDAN;

    申请日2018-05-23

  • 分类号G06N99;B23K9/095;B23K31/12;B29C67;

  • 国家 EP

  • 入库时间 2022-08-21 11:40:13

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