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A new approach for the measurement of film thickness in liquid face seals

机译:一种测量液面密封膜厚度的新方法

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摘要

Face seals operate by allowing a small volume of the sealed fluid to escape and form a thin film between the contacting parts. The thickness of this film must be optimized to ensure that the faces are separated, yet the leakage is minimized. In this work the liquid film is measured using a novel ultrasonic approach with a view to developing a condition monitoring tool. The trials were performed in two stages. Initially tests were based on a lab simulation, where it was possible to compare the ultrasonic film thickness measurements with optical interference methods and capacitance methods. A direct correlation was seen between ultrasonic measurements and capacitance. Where ultrasonic and optical methods overlap, good correlation is observed; however, the optical method will not record film thickness above 0.72 m. A second set of trials was carried out, where the film thickness was monitored inside a seal test apparatus. Film thickness was successfully recorded as speed and load were varied. The results showed that while stationary the film thickness varied noticeably with load. When rotating, however, the oil film remained relatively stable around 2 m. During the normal operation of the seal, both sudden speed and load changes were applied in order to initiate a seal failure. During these events, the measured film thickness was seen to drop dramatically down to 0.2 m. This demonstrated the ability of the technique to predict failure in a face seal and therefore its aptitude for condition monitoring.
机译:面密封通过允许少量密封的流体逸出并在接触部分之间形成薄膜来工作。必须优化该膜的厚度,以确保面分开,但泄漏最小化。在这项工作中,为了开发一种状态监测工具,使用了一种新颖的超声波方法来测量液膜。试验分两个阶段进行。最初的测试是基于实验室模拟进行的,在该模拟中可以将超声膜厚测量与光学干涉法和电容法进行比较。超声波测量值和电容之间存在直接关系。在超声和光学方法重叠的地方,观察到良好的相关性。但是,光学方法不会记录0.72 m以上的薄膜厚度。进行第二组试验,其中在密封测试设备内监测膜厚度。随着速度和负载的变化,成功记录了薄膜厚度。结果表明,在静止状态下,薄膜厚度随负载而显着变化。但是,旋转时,油膜在2 m左右保持相对稳定。在密封件正常运行期间,突然施加速度和负载变化,以引发密封件故障。在这些事件中,测得的膜厚会急剧下降至0.2 m。这证明了该技术预测面部密封失效的能力,从而证明了其用于状态监测的能力。

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