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SELF-LEARNING FAULT DETECTION FOR HVAC SYSTEMS

机译:暖通空调系统自学故障检测

摘要

Systems and methods for self-learning fault detection and diagnosis in an HVAC system include a server identifying a fault and one or more predicted causes of the fault based on measurements of operational parameters received from sensors associated with the HVAC system. The operational parameters are compared to evaluation criteria, such as predetermined thresholds, to identify a potential fault. Parameters may be weighted, and optionally scaled to a standardized range to facilitate the diagnosis of HVAC systems of disparate configurations and capacities. Evaluation criteria for each fault are periodically analyzed in view of operational parameter history to identify new criteria having a lower probability of misdiagnosis. Fault detection criteria which are determined to have an unacceptable error rate may be deactivated or flagged for review.
机译:用于HVAC系统中的自学习故障检测和诊断的系统和方法包括服务器,该服务器基于从与HVAC系统相关联的传感器接收的操作参数的测量值来识别故障和一个或多个预测的故障原因。将操作参数与评估标准(例如预定阈值)进行比较,以识别潜在故障。可以对参数进行加权,并且可以选择将其缩放到标准化范围,以便于诊断具有不同配置和能力的HVAC系统。鉴于操作参数历史记录,定期分析每个故障的评估标准,以识别具有较低误诊概率的新标准。被确定为具有不可接受的错误率的故障检测标准可以被停用或标记以供检查。

著录项

  • 公开/公告号US2016370799A1

    专利类型

  • 公开/公告日2016-12-22

    原文格式PDF

  • 申请/专利权人 TRANE INTERNATIONAL INC.;

    申请/专利号US201615186756

  • 发明设计人 DARRYL E. DENTON;CARL L. GARRETT;

    申请日2016-06-20

  • 分类号G05B23/02;F24F11;G05B13/02;

  • 国家 US

  • 入库时间 2022-08-21 13:48:25

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