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An ultrasonic sensor for monitoring wheel flange/rail gauge corner contact

机译:用于监测轮缘/轨道规角接触的超声波传感器

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摘要

Wheel/rail contact is critical to the successful operation of a railway network. Contact occurs at the wheel tread/rail head and wheel flange/rail gauge corner. Contact conditions are more severe in the latter, which occurs mainly at curves. The contact is small and supports large loads; therefore, high contact stresses are generated. These, combined with the slip in the contact, are primarily responsible for driving the processes that lead to wheel and rail damage, whether by deformation, wear or a fatigue process. Multi-body dynamics software is useful for predicting the wheel/rail contact characteristics; however, there is a shortage of experimental tools available. In this study, the feasibility of an approach based on an ultrasonic sensor mounted on the wheel is investigated. The sensor emits an ultrasonic pulse which is designed to impinge on the wheel flange. If there is no contact the pulse is fully reflected back at the flange and picked up by the same sensor. If flange contact takes place, a proportion of the pulse amplitude will be transmitted into the rail. The signal reflected back to the sensor is therefore reduced. The amount by which this signal reduces indicates how much flange contact has occurred. This work had two aspects. First, a standard ultrasonic ray-tracing software package was used to establish what it is possible to measure with sensors mounted in the wheel and to determine the best location and orientation. The second aspect was an experimental study to determine whether such measurements are feasible. Test specimens were cut from sections of wheel and rail, and a 2 MHz ultrasonic contact transducer was bonded onto the wheel in a position best suited to detect the flange contact. The specimens were pressed together in a bi-axial loading frame to generate differing degrees of rail head and flange contact. The reflected signal was monitored as the normal and lateral loads were varied. It proved possible not only to detect the onset of flanging, but also to record a signal that varied monotonically with both normal and lateral applied load. A map of reflected ultrasound against the applied loading is presented. The technology, while not currently suitable for full field implementation could be very useful in laboratory studies on, for example, a full-scale wheel/rail rig.
机译:轮轨接触对铁路网络的成功运营至关重要。接触发生在车轮胎面/轨头和车轮法兰/轨距拐角处。后者的接触条件更为严格,主要发生在曲线上。触点很小,支持大负载;因此,产生高的接触应力。这些与接触中的滑差相结合,主要负责驱动导致车轮和轨道损坏的过程,无论是由于变形,磨损还是疲劳过程。多体动力学软件可用于预测车轮/轨道接触特性;但是,缺少可用的实验工具。在这项研究中,研究了基于安装在车轮上的超声波传感器的方法的可行性。传感器发出一个超声波脉冲,该脉冲被设计成撞击在轮缘上。如果没有接触,则脉冲将在法兰处完全反射回去,并由同一传感器接收。如果发生法兰接触,则一部分脉冲幅度将被传输到导轨中。因此,减少了反射回传感器的信号。该信号减少的数量指示发生了多少法兰接触。这项工作有两个方面。首先,使用标准的超声波跟踪软件包来确定使用安装在车轮中的传感器进行测量的可能性,并确定最佳位置和方向。第二方面是确定这种测量是否可行的实验研究。从车轮和轨道的各个部分切下试样,然后将2 MHz超声波接触式换能器粘合到车轮上最适合检测法兰接触的位置。将样品在双轴加载框架中压在一起,以产生不同程度的轨头和法兰接触。当法向和横向载荷变化时,对反射信号进行监控。事实证明,不仅可以检测翻边的开始,而且还可以记录随法向和横向施加的载荷而单调变化的信号。呈现了反射的超声相对于所施加的载荷的图。该技术虽然目前不适合全田实施,但在例如大型轮式/铁路钻机的实验室研究中可能会非常有用。

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