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Inspection des pieces flexibles sans gabarit de conformation.

机译:不使用模板检查柔性零件。

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In this thesis, we focus on the automation of the fixtureless geometric inspection of non-rigid (or compliant) parts. The primary objective of this project is to handle virtually this type of component and their point cloud, which represents a scan taken in a Free State condition, by eliminating the use of very expensive and complicated specialized fixtures posing productivity problems for manufacturing companies. This topic is a very high interest in the transport sector and, more specifically, in the aerospace one in order to significantly improve its productivity and its degree of competitiveness. The thesis is organized by articles. The study is divided over four phases. The first three phases will be represented by three journal papers and the fourth phase is presented as an appendix.;The first phase of this work is intended to improve the identification module of an existing inspection mathematical tool " IDI: The Iterative Displacement Inspection " which has been developed by the research team working under the supervision of professor Tahan at ETS. The identification module aims to distinguish between defects that are due to the manufacturing process and deformations that are due to the flexibility of the part (gravity and residual stress effects). We propose to replace the original module with a new one which is based on the extreme value statistical analysis. We demonstrate that the new module remarkably reduces the type I and type II errors. In addition, unlike the identification method of the IDI, the proposed one does not require a user-specified threshold based on a trial and error process.;In the second phase of this study, we propose an original approach to measure the flexibility/rigidity of the mechanical components. We introduce a factor that represents the ratio between the maximum displacement resulting from the deformation of the part and its profile tolerance and we present the results in a logarithmic scale. Three different regions were defined as giving a clear idea to the manufacturing industry about the situation of the parts on the flexibility scale. Subsequently, we propose a new fixtureless inspection method for compliant parts: the IDB-CTB " Inspection of Deformable Bodies by Curvature and Thompson-Biweight " method. This approach combines the Gaussian curvature estimation, one of the intrinsic properties of the surface which is invariant under isometric transformations, with an identification method based on the extreme value statistics ( Thompson-Biweight Test). The low percentage of error in defect areas and in profile deviations estimated reflects the effectiveness of our approach.;In the third phase of this thesis, we propose a novel method that can be considered as complementary to the IDB-CTB approach. In addition to the profile deviations, we aim to detect the localization defects. We introduce two criteria that correspond to the specification of compliant parts: the conservation of the curvilinear distance and the minimization between two objects (Hausdorff Distance). We adapt and automate the Coherent Point Drift; a powerful non-rigid registration algorithm widely used in medical imagery and animation, for satisfying these two criteria. We obtain satisfying results by applying the third approach on a typical aerospace sheet metal.;The conclusion of this thesis summarizes the scientific contributions through our work on the fixtureless inspection of compliant parts and the perspective related with it. In the appendix, we introduce a graphical user interface (GUI) created to handle the proposed approaches as well as the case studies bank developed in the training at Bombardier Aerospace Inc.
机译:在本文中,我们着重于对非刚性(或顺应性)零件进行无夹具几何检测的自动化。该项目的主要目标是通过消除对制造公司造成生产率问题的非常昂贵和复杂的专用夹具的使用,来处理这种类型的组件及其点云,这代表了在自由状态下进行的扫描。为了显着提高其生产率和竞争力,该主题在运输部门,尤其是在航空航天领域具有很高的兴趣。论文是按文章组织的。该研究分为四个阶段。前三个阶段将由三篇期刊论文代表,而第四阶段将作为附录呈现。该工作的第一阶段旨在改进现有检查数学工具“ IDI:迭代位移检查”的识别模块,由ETS Tahan教授指导下的研究团队开发。识别模块旨在区分由于制造过程引起的缺陷和由于零件的柔韧性(重力和残余应力效应)引起的变形。我们建议将新模块替换为基于极值统计分析的新模块。我们证明了新模块显着减少了I型和II型错误。此外,与IDI的识别方法不同,提出的方法不需要基于反复试验过程的用户指定阈值。在本研究的第二阶段,我们提出了一种测量灵活性/刚度的原始方法。机械组件。我们引入一个因数,该因数表示由零件变形引起的最大位移与其轮廓公差之间的比率,并以对数标度表示结果。定义了三个不同的区域,以使制造商可以灵活地了解零件的状况。随后,我们提出了一种新的无夹具检测方法:IDB-CTB“通过曲率和汤普森比重检测可变形物体”方法。这种方法将高斯曲率估计(在等轴测变换下不变的表面的固有特性之一)与基于极值统计量的识别方法(汤普森比重测试)结合在一起。在缺陷区域和轮廓偏差中估计的错误率低反映了我们方法的有效性。在本论文的第三阶段,我们提出了一种可以被认为是对IDB-CTB方法的补充的新方法。除了轮廓偏差外,我们还旨在检测定位缺陷。我们引入了两个与顺应零件规范相对应的标准:曲线距离的守恒和两个对象之间的最小化(豪斯多夫距离)。我们调整并自动化相干点漂移;一种强大的非刚性配准算法,广泛用于医学图像和动画中,可以满足这两个条件。通过在典型的航空航天钣金件上应用第三种方法,我们获得了满意的结果。;本文的结论总结了我们通过对无固定件检测的工作所做的科学贡献以及与之相关的观点。在附录中,我们介绍了为处理建议的方法而创建的图形用户界面(GUI),以及在庞巴迪宇航公司的培训中开发的案例研究库。

著录项

  • 作者

    Aidibe, Ali.;

  • 作者单位

    Ecole de Technologie Superieure (Canada).;

  • 授予单位 Ecole de Technologie Superieure (Canada).;
  • 学科 Engineering Mechanical.;Engineering Aerospace.;Artificial Intelligence.
  • 学位 D.Eng.
  • 年度 2014
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:47

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