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A RAIL MOUNTED ULTRASONIC SENSOR FOR CONTACT PATCH MEASUREMENT

机译:用于接触贴片测量的轨道安装超声波传感器

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Failure of a wheel/rail contact is usually by wear or fatigue and both of these depend on the size and location of the contact patch. One contact measuring approach that shows promise is by the use of ultrasonic reflection. If the wheel and rail surfaces make contact and are under high stress they are more likely to transmit an ultrasonic pulse. However, if there is no contact or the contact is under low stress then the wave is completely or partially reflected. By measuring the proportion of the wave reflected it is possible to deduce the extent of the contact area and also estimate the pressure distribution. In previous work [1] static specimens of wheel and rail were measured by scanning a transducer to build up a 2D map of the contact. Whilst this produced good results and agreed well with contact modeling, it is a time consuming process (typically takes 30 minutes for a scan) and could in no way be used for the measurement on-line. In this paper we describe a method that potentially could be used at line speeds and so provide wheel rail contact measurements in field trials. The 2D scan is achieved by using an array transducer that performs a simultaneous line scan. This coupled with the speed of travel of the contact patch over the sensor location can achieve a map of the contact. Specimens were cut from wheel and rail sections and loaded together hydraulically in a biaxial frame. An array transducer was mounted beneath the rail specimen. The array transducer consisted of 64 ultrasonic elements that may be pulsed independently, simultaneously, or with controlled phase difference. In this work all transducers were pulsed simultaneously at repetition rates of 20 kHz. The signals were reflected back from the contact to effectively produce a line scan. The transducer was physically moved, to simulate the translation of the contact patch and so generate a series of reflection profiles. Contacts under a range of normal and lateral loads have been measured and compared with some simple results using pre-inked paper. The paper concludes with a discussion of how this array measurement procedure might be implemented at full line sped and what accuracy could potentially be achieved.
机译:车轮/轨道接触的故障通常通过磨损或疲劳,这两者都取决于接触贴片的尺寸和位置。一种展示承诺的一种接触测量方法是通过使用超声反射。如果车轮和轨道表面接触并且处于高应力,则更有可能传递超声波脉冲。但是,如果没有接触或接触处于低应力,则波是完全或部分地反射的。通过测量反射波的比例,可以推导接触面积的程度并估计压力分布。在以前的工作[1]通过扫描换能器来测量轮和轨的静态标本,以构建接触的2D地图。虽然这产生了良好的结果并与接触造型很好地商定,但它是耗时的过程(通常需要30分钟扫描),并且无法用于在线上测量。在本文中,我们描述了一种可能在线速度使用的方法,因此在现场试验中提供轮轨接触测量。通过使用执行同时线扫描的阵列换能器来实现2D扫描。这与传感器位置上的接触贴片的行进速度耦合可以实现接触的地图。从车轮和轨道部分切割标本,并在双轴框架中液压地装配在一起。阵列换能器安装在轨道标本下方。阵列换能器由64个超声元件组成,其可以同时地,同时或具有受控相位差独立地脉冲。在这项工作中,所有换能器在20kHz的重复速率下同时脉冲。信号从接触反射回来以有效地产生线扫描。换能器在物理上移动,以模拟接触贴片的平移,因此产生一系列反射曲线。已经测量了一系列正常和横向载荷的触点并使用预墨纸进行了一些简单的结果。本文的结论是讨论如何在全系列中实现该阵列测量程序以及可能实现哪些准确性。

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