石油学报 ›› 2004, Vol. 25 ›› Issue (5): 84-87.DOI: 10.7623/syxb200405017

• 石油工程 • 上一篇    下一篇

西部油田设备的群诊及关联预测模型的建立

王朝晖, 张来斌   

  1. 石油大学机电学院, 北京, 102249
  • 收稿日期:2004-01-05 修回日期:2004-03-10 出版日期:2004-09-25 发布日期:2010-05-21
  • 作者简介:王朝晖,男,1968年5月生,1995年获北京科技大学工学博士学位,1995~1997年在石油大学(北京)从事博士后研究工作,现主要从事机械设备振动测试、故障诊断、专家系统的研究工作.E-mail:cwzh680501@sohu.com.
  • 基金资助:
    国家自然科学基金项目(No.50105015,No.50375103)和北京市科技新星项目(2003B33)资助.

Development of diagnosis model and correlative prediction model for group equipment in western oilfield of China

WANG Zhao-hui, ZHANG Lai-bin   

  1. College of Mechanical and Electronic Engineering, University of Petroleum, Beijing 102249, China
  • Received:2004-01-05 Revised:2004-03-10 Online:2004-09-25 Published:2010-05-21

摘要: 分析了西部油田设备诊断在广度、深度、预测方面须解决的实际问题,结合目前先进、适用的诊断方法与技术,提出了群诊及关联预测模型框架.其核心思想是:结合“定性诊断模型”与“定量数据”构建“综合诊断库”,建立能够对“设备群”进行数据自动处理与故障分析的“群诊模型”,解决西部油田设备诊断的“广度”复杂性问题;利用时变基频的求解方法,建立基于径向基函数网络的时变基频识别模型,解决“深度”复杂性问题;利用基于部件重组的“关联预测”方法,对多台设备同时送修周期进行正确预报,形成西部油田设备群诊和预报体系.

关键词: 群诊模型, 关联预测, 时变模型, 径向基网络, 油田设备

Abstract: Some problems in diagnosis extent,depth and prediction of equipment in western oilfields were analyzed.The group diagnosis and correlative prediction models based on the modern methods were proposed.The qualitative diagnosis model was combined with the quantitative data to build an integrated diagnostic database,and a group diagnostic model was established.The group diagnostic model can be used to process and analyze the data of equipment group to solve the problem of diagnosis extent.The identifying model of time variation was built,on the basis of radial basis function neural network to solve the problem of diagnosis depth.The correlative prediction method was used to predict the maintenance periods based on parts recomposing method.The diagnosis and prediction systems for equipment group in the western oil fields were developed.

Key words: western oilfield of China, equipment diagnosis, group diagnosis model, correlative prediction, time variation model, radial basis function neural network

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