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Obtaining a quality model for manufacturing systems and establishing a maintenance-quality link.

机译:获取制造系统的质量模型并建立维护质量链接。

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摘要

This thesis describes the application of the stochastic-flow-modeling (SFM) approach to represent the quality behavior of a manufacturing system. Initially, a simple, one-product type SFM is discussed and then a more complex multiple-product manufacturing system is developed. This quality SFM-based model has aggregation by station, product, and operational shift. Subsequently, potential supervisory control architectures that could be used in conjunction with this quality-based SFM are discussed and developed. Distribution parameter fitting is explored using static and adaptive approaches and a comparison between these two approaches is given. Then, the accuracy of the SFM modeling technique is demonstrated using two simulation examples.;Effective equipment maintenance is essential for a manufacturing plant seeking to produce high quality products. The impact of equipment reliability and quality on throughput have been well established, but the relationship between maintenance and quality is not always clear nor direct. Therefore, after developing a SFM to represent the quality of a manufacturing system, the focus of this work shifts towards identifying correlations between maintenance and quality. This thesis describes a statistical modeling method that makes use of a Kalman filter to identify correlations between independent sets of maintenance and quality data. With such a method, maintenance efforts can be better prioritized to satisfy both production and quality requirements. In addition, this method is used to compare results from the theoretical maintenance-quality model to data from an actual manufacturing system. Results of the analysis indicate the potential for this method to be applied to preventive, as well as reactive maintenance decisions, since ageing aspects of equipment are also considered in the model.
机译:本文描述了随机流建模(SFM)方法在表示制造系统质量行为中的应用。最初,讨论了一种简单的单产品类型SFM,然后开发了更复杂的多产品制造系统。这种基于SFM的高质量模型具有按工作站,产品和操作班次进行汇总的功能。随后,讨论并开发了可与基于质量的S​​FM结合使用的潜在监督控制体系结构。使用静态和自适应方法探索分布参数拟合,并比较这两种方法。然后,通过两个仿真示例证明了SFM建模技术的准确性。有效的设备维护对于寻求生产高质量产品的制造工厂至关重要。设备可靠性和质量对吞吐量的影响已得到充分确立,但是维护与质量之间的关系并不总是清晰明了或直接的。因此,在开发出代表制造系统质量的SFM之后,这项工作的重点转移到确定维护与质量之间的相关性。本文描述了一种统计建模方法,该方法利用卡尔曼滤波器来识别独立维护集和质量数据之间的相关性。使用这种方法,可以更好地确定维护工作的优先级,以满足生产和质量要求。此外,该方法还用于将理论维护质量模型的结果与实际制造系统的数据进行比较。分析结果表明该方法有可能应用于预防性和无功维护决策,因为模型中还考虑了设备的老化方面。

著录项

  • 作者

    El Gheriani, Hany.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Industrial.
  • 学位 M.Sc.(Eng)
  • 年度 2008
  • 页码 95 p.
  • 总页数 95
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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