Systematic Methodology for Reliability Analysis of Components in Axial Piston Units

Ivan Baus, Robert Rahmfeld, Andreas Schumacher, H. Pedersen
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引用次数: 1

Abstract

This paper covers a reliability analysis as a qualitative method, especially focused on axial piston units. The method is based on Fault Tree Analysis (FTA) and results in risk and reliability assessment at the components level. Especially, the development of the reliability assessment as a methodical tool is the core of the paper. Moreover, the FTA is combined with the industrial standard method known as Design Failure Mode Effects Analysis (DFMEA) which is typically used in the development phase of the design. The evaluation and the usability of the FTA methodology is analyzed in connection with field data. Thus, the deviation of the theoretical valuation from the field data was utilized as a success indicator of the method. The analysis of the fault spreading covers the assessment of component faults and links failure states with unit effects. The analysis of the axial piston unit as a system is made on idealized/theoretical design and functional behavior only. Hence, the failure rating and the effect is subsequently applied to determine the fault risk in form of the Risk Priority Number (RPN). The failure modes and effects are based on engineering experience of past decades, supported by existing DFMEAs of axial piston units. Thus, the assessment of the risk priority number is based on previous data, yielding the given severity, occurrence and detection quantification. This approach opens new opportunities of design assessment and the results show a good agreement to the damage accumulation seen in real field data. Furthermore, the connection between theoretical design assessment and field data do support the failure ranking improvement of the DFMEA.
轴向活塞部件可靠性分析的系统方法
本文介绍了一种定性的可靠性分析方法,特别是轴向活塞单元。该方法基于故障树分析(FTA),可在部件层面进行风险和可靠性评估。特别是,可靠性评估作为一种方法工具的发展是本文的核心。此外,FTA与工业标准方法相结合,称为设计失效模式影响分析(DFMEA),通常用于设计的开发阶段。结合现场数据分析了FTA方法的评价和可用性。因此,理论估值与现场数据的偏差被用作该方法的成功指标。故障扩展分析包括对部件故障的评估,并将故障状态与单元效应联系起来。轴向柱塞单元作为一个系统的分析只是在理想化/理论设计和功能行为上进行的。因此,随后应用故障等级和效果以风险优先级数(RPN)的形式确定故障风险。失效模式和影响基于过去几十年的工程经验,并得到现有轴向柱塞单元dfmea的支持。因此,风险优先级数的评估是基于先前的数据,产生给定的严重程度,发生和检测量化。该方法为设计评估提供了新的机会,其结果与实际现场数据中看到的损伤累积具有很好的一致性。此外,理论设计评估与现场数据之间的联系确实支持DFMEA的故障排序改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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