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Teolliset älykamerat ja tuotantolinjan laaduntarkastussovelluksen rakentaminen

机译:工业智能相机和生产线质量控制应用建设

摘要

The technologies for continuous monitoring, diagnostics, prognostics, and control of assets have been developing tremendously in recent years. The new technologies provide tools to achieve greater predictability of plant behaviour and visibility, reduced safety risks, enhanced security and cost efficiency. eSonia project is researching a possibility to create an asset-aware and self recovery plant. In this thesis is implemented quality inspection part of eSonia project. The implementation includes choosing the camera and the components, building the inspection and the user interfaces, and also creating robust communication between the camera and the plant by using mixture of old industrial standards (like Modbus) and new technologies (like web services). The roadmap for building a machine vision application was tailored to suit smart cameras, and all the steps for building the inspection has been presented in detail. The implementation was done by using National Instrument’s NI1774C smart camera, and National Instruments Vision Builder AI software, and the web service was build on Inico’s remote terminal unit S1000. The hardware and software composition proved to be suitable to perform all the tasks, and to be well suited to the asset-aware factory environment. In this thesis is also presented the state of arts of smart cameras, for off-the-shelf solutions as well as for research projects. The market for smart cameras is increasing rapidly, and the market situation is presented together with the direction for future technological development.
机译:近年来,用于资产的连续监视,诊断,预测和控制的技术得到了极大的发展。新技术为提高工厂行为和可见性的可预测性,降低安全风险,提高安全性和成本效率提供了工具。 eSonia项目正在研究建立资产感知和自我恢复工厂的可能性。本文实施了eSonia项目的质量检查部分。该实现包括选择摄像机和组件,构建检查和用户界面,以及通过使用旧工业标准(如Modbus)和新技术(如Web服务)的混合物在摄像机和工厂之间建立可靠的通信。专门针对智能相机量身定制了构建机器视觉应用程序的路线图,并且详细介绍了构建检查的所有步骤。该实现是通过使用NI的NI1774C智能相机和National Instruments Vision Builder AI软件完成的,并且该网络服务基于Inico的远程终端单元S1000构建。事实证明,硬件和软件组合适合执行所有任务,并且非常适合资产感知工厂环境。本文还介绍了智能相机的最新技术,现成的解决方案以及研究项目。智能相机市场正在迅速增长,并且提出了市场情况以及未来技术发展的方向。

著录项

  • 作者

    Janhunen Juhani;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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