ROLLER SEARCH UNIT HAVING INTEGRATED DIGITAL CIRCUITRY FOR DETECTING RAIL DEFECTS
20230236156 · 2023-07-27
Assignee
Inventors
- Andy White (Savannah, MO, US)
- Troy L. Elbert (St. Joseph, MO, US)
- Brent T. Applebury (St. Joseph, MO, US)
- Timothy J. Coolman (Savannah, MO, US)
- Jason Roe (St. Joseph, MO, US)
Cpc classification
International classification
Abstract
A roller search unit for detecting rail defects with integrated digital circuitry includes a liquid filled tire mounted to an axle assembly with wheels. An ultrasonic transducer array positioned within a housing is positioned within the within the tire and coupled to the axle. The housing contains transducer interface circuitry operable to receive analog signals from the ultrasonic transducer array and contains digital flaw detection circuitry operable to convert the analog signals to digital signals and perform analysis on the digital signals to detect flaws in a rail. The transducer interface circuitry and digital flaw detection circuitry are configured to stack to provide a compact, small footprint assembly. The conversion of the transducer signals from analog to digital within the tire permits transmission of the digitized data without susceptibility to interference and noise.
Claims
1. A roller search unit having integrated digital circuitry for detecting rail defects, comprising: at least one wheel rotatably coupled to an axle; a tire having a circumferential surface mounted on the at least one wheel, wherein the circumferential surface of the tire is configured to travel along a surface of a rail undergoing inspection; an ultrasonic transducer array attached to a housing positioned within the tire; and flaw detection circuitry operable to receive analog signals received from the ultrasonic transducer array and convert the analog signals to digital signals.
2. The roller search unit having integrated digital circuitry for detecting rail defects of claim 1, wherein the flaw detection circuitry is further operable to perform analysis on the digital signals to detect flaws in a rail.
3. The roller search unit having integrated digital circuitry for detecting rail defects of claim 2, wherein the flaw detection circuitry is operable to transmit digital data from the roller search unit to a central location.
4. The roller search unit having integrated digital circuitry for detecting rail defects of claim 2, wherein the analysis on the digital signals performed by the flaw detection circuitry positioned within the tire provides an improvement in the signal to noise ratio of approximately 20 dB over transmitting analog signals to remote digital conversion circuitry.
5. The roller search unit having integrated digital circuitry for detecting rail defects of claim 1, wherein the flaw detection circuitry comprises digital communication circuitry configured to communicate using an Ethernet protocol.
6. The roller search unit having integrated digital circuitry for detecting rail defects of claim 1, wherein the flaw detection circuitry comprises a heating and/or cooling element operable to regulate a temperature of air surrounding the circuitry.
7. The roller search unit having integrated digital circuitry for detecting rail defects of claim 1, wherein the tire is filled with a liquid.
8. The roller search unit having integrated digital circuitry for detecting rail defects of claim 7, wherein the liquid comprises a water and ethylene glycol mixture.
9. The roller search unit having integrated digital circuitry for detecting rail defects of claim 1, wherein the flaw detection circuitry comprises a plurality of circuit boards arranged in stacked relationship.
10. A roller search unit having integrated digital circuitry for detecting rail defects, comprising: a wheel rotatably coupled to an axle; a tire having a circumferential surface configured to travel along a surface of a rail mounted to the wheel; and flaw detection circuitry positioned within the tire and operable to receive analog signals from an ultrasonic transducer array and convert the analog signals to digital signals.
11. The roller search unit having integrated digital circuitry for detecting rail defects of claim 10, wherein the flaw detection circuitry is operable to perform analysis on the digital signals to detect flaws in a rail.
12. The roller search unit having integrated digital circuitry for detecting rail defects of claim 10, wherein the flaw detection circuitry is operable to transmit digital data from the roller search unit to a central location.
13. The roller search unit having integrated digital circuitry for detecting rail defects of claim 10, wherein the flaw detection circuitry comprises digital communication circuitry configured to transmit digital data from the roller search unit.
14. The roller search unit having integrated digital circuitry for detecting rail defects of claim 10, wherein the tire is filled with a liquid.
15. The roller search unit having integrated digital circuitry for detecting rail defects of claim 10, wherein the flaw detection circuitry comprises a plurality of circuit boards arranged in stacked relationship.
16. The roller search unit having integrated digital circuitry for detecting rail defects of claim 15, wherein the plurality of circuit boards are positioned within a housing attached to an axle within the tire.
17. A roller search unit having integrated digital circuitry for detecting rail defects, comprising: a wheel rotatably coupled to an axle; a tire having a circumferential surface configured to travel along a surface of a rail mounted to the wheel; and flaw detection circuitry comprising a plurality of circuit boards in stacked relationship positioned within a housing located in the tire, the flaw detection circuitry operable to receive analog signals from an ultrasonic transducer array attached to the housing and to convert the analog signals to digital signals.
18. The roller search unit having integrated digital circuitry for detecting rail defects of claim 17, wherein the flaw detection circuitry is operable to perform analysis on the digital signals to detect flaws in a rail and to transmit digital data from the roller search unit to a central location.
19. The roller search unit having integrated digital circuitry for detecting rail defects of claim 18, wherein the analysis on the digital signals performed by the flaw detection circuitry provides an improvement in the signal to noise ratio of approximately 20 dB compared to transmitting analog signals to remote digital conversion circuitry.
Description
DESCRIPTION OF THE DRAWINGS
[0014] Illustrative embodiments of the invention are described in detail below with reference to the attached drawing figures, and wherein.
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DETAILED DESCRIPTION
[0022] As required, detailed embodiments of the present invention are disclosed herein. However, it is to be understood that the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. The figures are not necessarily to scale; some features may be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for the claims and/or as a representative basis for teaching one skilled in the art to variously employ the present invention.
[0023] Moreover, except where otherwise expressly indicated, all numerical quantities in this description and in the claims are to be understood as modified by the word “about” in describing the broader scope of this invention. Practice within the numerical limits stated is generally preferred. Also, unless expressly stated to the contrary, the description of a group or class of materials as suitable or preferred for a given purpose in connection with the invention implies that mixtures or combinations of any two or more members of the group or class may be equally suitable or preferred.
[0024] Looking first to
[0025] A flaw detection housing 12 is configured to enclose and contain flaw detection circuitry, comprising: a plurality of printed circuit boards arranged in a compact stacked configuration 24, wiring, and circuitry; an ultrasonic transducer array 14 for generating ultrasonic signals which are directed towards a rail and for receiving ultrasonic signals reflected back from the rail; and a probe interface board 16 configured to connect the ultrasonic transducer array 14 to the flaw detection circuitry within the flaw detection housing 12.
[0026] The flaw detection circuitry contained in the stacked arrangement of circuit boards 24 contained within the flaw detection housing 12 preferably includes power supply circuitry, transducer interface circuitry, digital flaw detection circuitry and their respective circuit boards, along with associated interconnection wiring.
[0027] With the flaw detection circuitry and circuit boards positioned within the flaw detection housing 12, the probe interface board 16 facilitates communication between the ultrasonic transducer array 14 and the flaw detection circuitry, with the ultrasonic transducer array and housing 14 further serving to cover the open side of the flaw detection housing 12 and to enclose the circuitry and circuit boards within.
[0028] Looking still to
[0029] With the RSU assembly assembled as just described, the assembly may be attached to a vehicle operable to transport the RSU assembly along a section of rail to be inspected, with the surface 21 of the liquid-filled tire 20 pressed against the surface of the rail undergoing inspection so as to have a flat area in contact with the rail as the RSU is transported along the rail in a manner as described, for example in U.S. Pat. No. 8,424,387.
[0030] However, unlike the systems of the prior art the RSU assembly 10 of the present invention incorporates digital flaw detection circuitry within the flaw detection housing 12, in close proximity to the ultrasonic transducer array 14 so that signals from the ultrasonic transducer travel a short distance, directly to the digital flaw detection circuitry, without a lengthy run of coaxial cables transmitting analog signals from the ultrasonic transducer array to external processing circuitry as is typical in prior art systems, increasing the susceptibility of the analog signals to interference and noise. Thus, the signals received from the ultrasonic transducer array 14 are immediately and directly converted to digital signals by the flaw detection circuitry located within the wheel 20 itself, minimizing the susceptibility to externally induced interference and noise.
[0031] Turning to
[0032] Looking still to
[0033] Input power to the power supply circuit board 28 is propagated to the board through the axle printed board 22 as seen in
[0034] Preferably, power circuit board 24 receives 12 volts DC from an external supply and converts that DC voltage to one or more desired DC voltage levels as required by the flaw detection circuitry. For example, the 12 VDC may be converted to 3.5 VDC, 5 VDC, or any other voltage level as necessary.
[0035] It should be understood that power received by those other circuit boards may be further transmitted to additional circuitry or circuit boards as necessary. For example, the pulser receiver board 28 may transmit power to the probe interface board 16. It should be further understood that while power distribution may be depicted in a particular manner in these exemplary embodiments—e.g., via a header connector or ribbon cable—that power may be distributed in other ways to the various circuitry without deviating from the present invention. Likewise, while specific connectors may be depicted in the exemplary embodiments—e.g., a header connector between the pulser receiver board 28 and the I/O communication board 25—that other connectors or wiring may be used, for example a ribbon cable.
[0036] Looking to the block diagram of
[0037] Pulser receiver board 32 includes circuitry operable to communicate with one or more ultrasonic transducer arrays, such as the ultrasonic transducer array 14 described and depicted with respect to
[0038] Pulser receiver board 32 preferably includes pulser-receiver circuitry operable to provide a pulse signal to the ultrasonic transducers of the ultrasonic transducer array 14 and to receive a signal back from the transducer—i.e., a signal reflected from the rail over which the ultrasonic transducer is positioned. Most preferably, the pulser/receiver board 32 includes pulser-receiver circuitry operable to pulse and receive signals from a plurality of ultrasonic transducers, such as the array of transducers of the ultrasonic transducer array 16 previously described.
[0039] In one exemplary embodiment, the RSU unit includes flaw detection circuitry comprising analog-to-digital converter (ADC) circuitry operable to convert the analog signals from the ultrasonic transducers to digital signals, and further comprises digital signal processing (DSP) circuitry in the form of one or more processors, floating point gate arrays (FPGAs), memory, or other such circuitry, operable to perform analysis on the converted digital circuitry and to identify flaws or defects in the rail under examination. In alternative embodiments, the flaw or defect identification may be performed on a remote computer system.
[0040] It can be seen that as just described, the multiple boards comprising the flaw detection circuitry are arranged in a small footprint, stacked arrangement that allows all of the functionality to be contained within the RSU tire without requiring the transmission of analog signals which are susceptible to noise and other external interference.
[0041] In alternative embodiments, the flaw detection circuitry may be potted, such as in an epoxy, to seal and secure the circuit boards and circuitry within the flaw detection housing 12 to protect against weather and movement or disconnection of any components therein.
[0042] Looking to
[0043] With the structure and arrangement of the RSU set forth, in use, one or more RSU units may be attached to a vehicle carriage assembly or other support structure to transport the RSU unit(s) along a rail to be inspected. For example, the RSU unit(s) may be attached to a carriage having flanged rail wheels for transport along a rail track, with the RSU unit(s) in contact with the surface of the rail so that they roll along that surface collecting data from the transducer array(s) as previously described. The RSU unit may be attached to any transport mechanism or vehicle capable of transporting/rolling the RSU tire along the surface of a rail track, such as a rail car, drone, locomotive, or other vehicle.
[0044] Regardless of the transport mechanism, in operation the RSU unit(s) are transported along the rail with the surface of the tire of each unit pressed flat against the rail and the ultrasonic transducer array of each unit providing signals to the respect digital flaw detection circuitry, where the analog signals are converted to digital signals, processed and analyzed, with data as to any identified flaws or defects transmitted via the respective power and communications module to a computer or central processing station. Preferably, the data is transmitted as a digital signal via Ethernet or via any other digital communications link or protocol.
[0045] As described above, because the digital flaw detection circuitry with analog-to-digital conversion circuitry is located in close proximity in the inner housing to the analog signals from the transducer array, the electrical pathway prior to conversion to a digital signal is very short, greatly reducing the susceptibility of the signal to noise, interference, or other degradation. Compared to conventional RSU designs which transmit analog signals from the ultrasonic transducers to remote processing circuitry via coaxial cable, the design of the present invention can provide approximately a 20 dB improvement in the signal to noise ratio, greatly improving the quality of the collected data and reducing the need for retesting over conventional systems. In addition, the system of the present invention provides for increased speed of communication and processing of signals to allow local edge processing, allowing for reduced time in processing data and detecting flaws as compared to conventional systems.
[0046] It is to be understood that while certain now preferred embodiments of the invention have been illustrated and described, the described embodiments may be arranged in other configurations, and the embodiments herein are not intended to be limiting.