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A cost-effective and reliable measurement strategy for 3D printed parts by integrating low- and high-resolution measurement systems

机译:集成低分辨率和高分辨率测量系统的3D打印零件的经济高效且可靠的测量策略

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摘要

Metrology data are crucial to quality control of three-dimensional (3D) printed parts. Low-cost measurement systems are often unreliable due to their low resolutions, whereas high-resolution measurement systems usually induce high measurement costs. To balance the measurement cost and accuracy, a new cost-effective and reliable measurement strategy is proposed in this article, which jointly uses two-resolution measurement systems. Specifically, only a small sample of base parts are measured by both the low- and high-resolution measurement systems in order to save costs. The measurement accuracy of most parts with only low-resolution metrology data is improved by effectively integrating high-resolution metrology data of the base parts. A Bayesian generative model parameterizes a part-independent bias and variance pattern of the low-resolution metrology data and facilitates a between-part data integration via an efficient Markov chain Monte Carlo sampling algorithm. This multi-part two-resolution metrology data integration highlights the novelty and contribution of this article compared with the existing one-part data integration methods in the literature. Finally, an intensive experimental study involving a laser scanner and a machine visual system has validated the effectiveness of our measurement strategy in acquisition of reliable metrology data of 3D printed parts.
机译:计量数据对于三维(3D)打印零件的质量控制至关重要。低成本的测量系统由于分辨率低而常常不可靠,而高分辨率的测量系统通常会带来较高的测量成本。为了平衡测量成本和准确性,本文提出了一种新的具有成本效益且可靠的测量策略,该策略联合使用了两分辨率测量系统。具体而言,低分辨率和高分辨率测量系统都仅测量基础部件的一小部分,以节省成本。通过有效集成基础部件的高分辨率计量数据,可以提高大多数仅具有低分辨率计量数据的零件的测量精度。贝叶斯生成模型参数化了低分辨率计量数据的零件无关偏差和方差模式,并通过有效的马尔可夫链蒙特卡洛采样算法促进零件间数据集成。与文献中现有的单部分数据集成方法相比,这种多部分的两分辨率计量数据集成突出了本文的新颖性和贡献。最后,一项涉及激光扫描仪和机器视觉系统的深入实验研究验证了我们的测量策略在获取3D打印零件的可靠计量数据中的有效性。

著录项

  • 来源
    《IIE Transactions》 |2018年第10期|900-912|共13页
  • 作者

    Kai Wang; Fugee Tsung;

  • 作者单位

    Department of Industrial Engineering and Decision Analytics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong;

    Department of Industrial Engineering and Decision Analytics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bayesian generative model; Laser scanner; MCMC; measurement accuracy; measurement cost;

    机译:贝叶斯生成模型;激光扫描仪MCMC;测量精度计量成本;

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