Test and Identification Analysis of Wear Response Signal of Contact Interface of Rotary Seal

IF 2.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL Tribology Letters Pub Date : 2024-07-30 DOI:10.1007/s11249-024-01902-z
Junjie Lu, Shize Zheng, Xuechang Zhang, Yaochun Hou
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Abstract

The wear state of mechanical seal friction pair directly determines the reliability of mechanical seal. In this paper, the mapping mechanism between contact wear response and acoustic emission (AE) signals of friction pair is indicatively proposed, and the relationship between wear frequency and time-averaged wear is explored. First of all, AE sensors were arranged on the Multi-function tribometer Rtec MFT-5000, static and dynamic friction tests were carried out on the contact form of M106K-WC (graphite-cemented carbide) and WC–WC, the AE signals are collected, and the wear amounts of the two groups of friction pairs were measured; then, the friction and wear signals are separated and reprocessed by time–frequency analysis. The results show that the static wear response frequency (SWRF) of M106K-WC is about 70 ± 10 kHz, the SWRF of WC–WC is about 90 ± 10 kHz, and the dynamic wear response frequency (DWRF) of WC–WC is about 175 ± 10 kHz; the root mean square (RMS) values of DWRF amplitudes is positively correlated with the wear amounts. According to the research results, it is inferred that there is a difference between the signal frequency in the quasi-static wear process and the dynamic wear process, there is a great correlation between the wear frequency and the material pair, and the working condition has little influence on the wear frequency. The mapping relationship between AE signal and time-averaged wear of friction pair is revealed.

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旋转密封接触界面磨损响应信号的测试和识别分析
机械密封摩擦副的磨损状态直接决定了机械密封的可靠性。本文提出了摩擦副接触磨损响应与声发射(AE)信号之间的映射机制,并探讨了磨损频率与时间平均磨损之间的关系。首先,在多功能摩擦磨损仪 Rtec MFT-5000 上布置声发射传感器,对 M106K-WC(石墨增强硬质合金)和 WC-WC 的接触形式进行静态和动态摩擦试验,采集声发射信号,测量两组摩擦副的磨损量;然后,分离摩擦磨损信号,并通过时频分析进行再处理。结果表明,M106K-WC 的静态磨损响应频率(SWRF)约为 70 ± 10 kHz,WC-WC 的 SWRF 约为 90 ± 10 kHz,WC-WC 的动态磨损响应频率(DWRF)约为 175 ± 10 kHz;DWRF 振幅的均方根值与磨损量呈正相关。根据研究结果推断,准静态磨损过程与动态磨损过程中的信号频率存在差异,磨损频率与材料对之间存在较大相关性,工况对磨损频率的影响较小。揭示了 AE 信号与摩擦副时间平均磨损之间的映射关系。
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来源期刊
Tribology Letters
Tribology Letters 工程技术-工程:化工
CiteScore
5.30
自引率
9.40%
发文量
116
审稿时长
2.5 months
期刊介绍: Tribology Letters is devoted to the development of the science of tribology and its applications, particularly focusing on publishing high-quality papers at the forefront of tribological science and that address the fundamentals of friction, lubrication, wear, or adhesion. The journal facilitates communication and exchange of seminal ideas among thousands of practitioners who are engaged worldwide in the pursuit of tribology-based science and technology.
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