基于FMEA法的地铁车载ATP系统关键风险环节研究

Research on Key Risk Links of Metro Onboard ATP System Based on FMEA Method

  • 摘要:
    目的 为提升地铁车载ATP(列车自动防护)系统运行安全性与可靠性,有效识别并防控系统关键失效风险,有必要对车载ATP系统全流程故障模式与风险环节开展系统性研究。
    方法 以车载ATP系统为研究对象,构建“子系统—组件—失效模式”三级分析框架。将ATP系统划分为5类子系统(信息采集、数据处理、通信传输、控制输出、人机交互)进行分析。基于真实故障数据,采用FMEA(故障模式影响分析)法,系统梳理并识别出14种典型失效模式。从设计、制造、运维、环境维度分析了故障诱因与传导机理,并对故障影响严重度进行了评估。通过RPN(风险优先级数)指标开展定量评估,识别出4项高风险环节(制动控制失效、误制动、速度传感器信号漂移、无线通信中断),并提出了对应的防控策略。
    结果及结论  针对各风险环节,提出了异构冗余、多源信息融合、双网热备、在线校准及预防性维护等技术与管理措施。所提缓解措施可直接应用于车载ATP系统的设计与运维改进。

     

    Abstract:
    Objective To improve the operational safety and reliability of the onboard ATP (automatic train protection) system for metro vehicles, and effectively identify and prevent key failure risks of the system, it is necessary to conduct a systematic study on the full-process failure modes and risk links of the onboard ATP system.
    Method Taking the onboard ATP system as the research object, a three-level analysis framework of subsystem-component-failure mode is established. The ATP system is divided into five subsystems for analysis, including information acquisition, data processing, communication transmission, control output and human-computer interaction. Based on the actual fault data, the FMEA (failure mode and effects analysis) method is adopted to systematically analyze and identify 14 typical failure modes. The fault causes and failure propagation mechanisms are analyzed from the dimensions of design, manufacturing, operation and maintenance, and environment, and the severity of fault impacts is evaluated. Quantitative assessment is carried out via the RPN (risk priority number) index, and four high-risk links are identified, namely brake control failure, false braking, speed sensor signal drift and wireless communication interruption. Thereby, corresponding prevention and control strategies are proposed.
    Result & Conclusion Technical and managerial countermeasures such as heterogeneous redundancy, multi-source information fusion, dual-network hot standby, on-line calibration and preventive maintenance are put forward for each risk link. The proposed mitigation measures can be directly applied to the design and operational improvement of onboard ATP systems.

     

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