THICKNESS MEASURING SYSTEM AND METHOD
20220290985 · 2022-09-15
Inventors
Cpc classification
G01B2210/58
PHYSICS
G01N29/07
PHYSICS
G01N2291/0258
PHYSICS
International classification
G01N29/07
PHYSICS
G01N29/22
PHYSICS
Abstract
A system and method measures the thickness of wear liners coupled to wear substrates of industrial equipment. The system includes at least one ultrasonic transducer wear sensor device coupled intermediate the wear liner and wear substrate and a data acquisition device configured to receive thickness data from the wear sensor device. The ultrasonic transducer wear sensor device is battery powered in one embodiment and passivated in an additional embodiment and powered through an interrogation signal.
Claims
1. A system for monitoring a wear plate condition within industrial equipment, comprising: a. at least one sensor device coupled to a non-wear side of the wear plate, the non-wear side of the wear plate configured to be coupled to a substrate of the industrial equipment; b. the at least one sensor device communicatively or electrically coupled to a power source; and c. the at least one sensor device communicatively or electrically coupled to a data acquisition device.
2. The system according to claim 1, wherein the wear plate comprises be a wear resistant plate.
3. The system according to claim 2, further comprising a housing supporting the sensor device and the power source, the housing disposed adjacent the substrate and adjacent the non-wear side of the wear plate.
4. The system of claim 3, wherein the housing comprises a compressible housing having a similar fastening mechanism configured to secure the sensor device to the non-wear side of the wear plate.
5. The system according to claim 3, further comprising a signal conduction medium between the wear liner and the at least one sensor device.
6. The system according to claim 3, wherein the at least one sensor device is a thickness sensor device.
7. The system according to claim 6, wherein the thickness sensor device is selected from the following: an ultrasonic transducer, a dry contact ultrasonic sensor, an electromagnetic transducer, a radio and antenna including Bluetooth, Wi-Fi, RFID, cellular, or LoRa configured to broadcast thickness measurement data.
8. The system according to claim 7, further comprising a processing circuit and a memory supported on the housing, the processing circuit configured to: obtain thickness measurement information from the at least one sensor and store the thickness data representative of the thickness measurement information in the memory; and cause communication of the thickness data to the data acquisition device.
9. The system according to claim 8, further comprising a temperature sensor supported on the housing, the temperature sensor operably coupled to provide temperature measurement information to the processing circuit.
10. The system according to claim 9, wherein the processing circuit is further configured to generate the thickness data based on the thickness measurement information and the temperature measurement information.
11. The system according to claim 1, wherein the at least one sensor device comprises a plurality of individual sensors electrically or communicatively coupled to form a network.
12. A method for measuring the thickness of a wear plate wear-liner in a piece of industrial equipment, comprising: a. coupling at least one sensor device to a wear plate; b. physically coupling a housing to a non-wear side of the wear plate, the housing supporting a communication circuit operably coupled to receive measurement data representative of measurements performed by the at least one sensor device; c. coupling the wear plate to the piece of industrial equipment; d. ensuring the position of the housing between a wall of the piece of industrial equipment and a wear surface of the wear-liner; e. powering on the at least one sensor device; and f. using a data acquisition device to acquire measurement data from the communication circuit.
13. The method according to claim 12, wherein the housing further supports a processing circuit and further comprising using the processing circuit to generate the measurement data based on measurement information received from the at least one sensor.
14. The method of claim 13, wherein the at least one sensor device comprises a thickness measurement sensor, and the measurement data comprises thickness measurement data, and further comprising comparing the thickness measurement data to at least one thickness threshold.
15. The method according to claim 14, further comprising alerting a system or a user of the system that the threshold thickness measurement responsive to a determination that the thickness measurement data has exceeded the at least one thickness threshold.
16. A system for monitoring a wear plate wall condition within industrial equipment, comprising: a. a wear plate wall having a wear surface and a non-wear side opposite the wear surface, the opposite surface configured to be disposed adjacent to a substrate of the industrial equipment; b. at least a first measuring sensor operably coupled to generate measurement information representative of a wear plate wall condition; c. a wireless communications device coupled to the wear plate wall such that the wireless communications device is disposed between the wear surface and the substrate when the opposite surface is disposed adjacent to the substrate, the wireless communication device configured to communicate wireless signals having data representative of the generated measurement information to a data acquisition device; d. a power source coupled to the wear plate wall and operably coupled to provide electrical power to the wireless communication device.
17. The system of claim 16, wherein the first measuring sensor comprises a thickness sensor configured to generate the measurement information wherein the measurement information is representative of a wear plate thickness.
18. The system of claim 17, further comprising a second measuring sensor operably coupled to generate second measurement information representative of a temperature, and wherein the thickness sensor is further configured to adjust the measurement information representative of the wear plate thickness based on the second measurement information.
19. The system of claim 18, wherein the second measuring sensor is disposed between the wear surface and the substrate when the opposite surface is disposed adjacent to the substrate.
20. The system of claim 19, further comprising an antenna operably coupled to the wireless communication circuit, at least a portion of the antenna extending disposed external to a space defined between the wear plate and the substrate.
21. The system of claim 20, wherein the first measuring sensor is disposed between the wear surface and the substrate when the opposite surface is disposed adjacent to the substrate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026]
[0027] As will be discussed further below in detail in connection with
[0028] The terms “wear liner” and “wear plate” are used interchangeably throughout this specification and both reference a protective layer applied to the wear surface of industrial equipment. It should also be noted that the industrial equipment used in this specification may be exemplified by chutes, holding tanks, and other equipment including but not limited to hoppers, conveyors, jack ladder flights, and grizzly screen bars.
[0029]
[0030] The thickness measuring sensor 102 is a device operably connected to generate thickness information regarding the wear liner 12 when operably coupled to the wear liner 12. In this embodiment, the thickness measuring sensor is supported on or in the housing 110, and may include but is not limited to one-sided non-destructive sensing technologies such as an ultrasonic transducer, a dry contact ultrasonic sensor, or an electromagnetic transducer. In other embodiments, the thickness measuring sensor 102 may be a contact probe or other form of non-contact probe.
[0031] In this embodiment, the temperature sensor 108 is configured to generate measurements corresponding to or representative of a temperature of the wear liner 12. The temperature sensor 108 is disposed on the housing 110 and may suitably be a thermocouple, a thermometer, a thermistor, or a resistance temperature detector (RTD). It will be appreciated, however, that the other embodiments may not include the temperature sensor 108.
[0032] The communications device 104 may include a radio and antenna 106 capable of transmitting and receiving bandwidths, including but not limited to Bluetooth, Wi-Fi, RFID, cellular, or LoRa. Additionally, the communications device 104 is configured to broadcast thickness measurement data representative of the thickness information acquired by the thickness measuring sensor 102. In some embodiments, the thickness sensor device 102 does not communicate via radio waves, but rather through an extended physical data acquisition port 116 configured to extend outside of the wear liner 12 and substrate surface 18. The communications device 104 may further be configured to communicate temperature measurement data representative of the temperature information acquired by the temperature sensor 108.
[0033]
[0034] In some embodiments, there is a small air gap of less than 1/32″ inch between the substrate 18 and the wear liner 12 and the height of the compressed housing 110 has a similar thickness to compensate.
[0035] The adhesive 112 may be configured as a signal conduction medium between the wear liner 12 and the thickness measuring sensor 102. In the case where the thickness measuring sensor 102 is an ultrasonic transducer, sound waves in the megahertz range do not travel efficiently through air. As a consequence, a drop of coupling liquid or the adhesive 112 itself is used between the sensor 102 and the wear liner 12 in order to achieve adequate sound transmission. Common coupling fluid materials include but are not limited to glycerin, propylene glycol, water, oil, and gel. Only a small amount is needed, just enough to fill the extremely thin air gap that would otherwise exist between the sensor 102 and the wear liner 12. The coupling fluid should be selected to remain effective for the expected life of the sensor, i.e., when the wear plate 12 wears out and needs replacing.
[0036] In some embodiments, the adhesive backing 112 may be configured with a reservoir that stores and releases a coupling fluid material upon direction from the sensor processor 114. The fluid sits dormant in the capsule until the reading is required.
[0037] The processor 114 and memory 114a are supported on the housing 110. The processor 114 may suitably be one or more microprocessors, microcontrollers, logic circuit or the like programmed to carry out the operations ascribed to it herein. The processor 114 is operably coupled to receive the thickness information generated by the thickness sensor 102 and temperature information generated by the temperature sensor 108. The processor 114 is configured to store thickness measurement data based on the generated thickness information in the memory 114a. The processor 114 and memory 114a may likewise be configured to store temperature measurement data based on generated temperature information in the memory.
[0038] In general,
[0039] Typically, this time interval is only a few microseconds. In step 155, the processor 114 determines thickness measurement data based on the time t. To this end, processor 114 is pre-programmed with the speed of sound V the material of the wear liner 12, from which it can then calculate thickness T using the simple mathematical relationship T=(V)×(t/2), described above.
[0040] In this embodiment, however, the processor 114 further calculates the thickness using the temperature information. In particular, many probes/sensors have some sensitivity to temperature changes. Varying the temperature of the probes changes the thickness measurements. The thermal specifications of the sensor 102 are used to generate an adjustment to the thickness measurement T based on the temperature information obtained from the temperature sensor 108. The adjustment is configured to ensure that changes in thickness measurement data due to thermal changes is less than the desired precision of the thickness measurement.
[0041] In any event, in step 160, the processor/memory 114 stores the thickness calculation or thickness measurement data in the memory 114a. In some embodiments, the processor 114 may store temperature data based on the temperature information from the temperature sensor 108.
[0042] In step 165, the processor 114 causes the communications device 104 to transmit the thickness measurement data to an external device, such as a data acquisition device as will be discussed below in connection with
[0043] Referring again to
[0044] As illustrated in
[0045]
[0046] As shown in
[0047] In communicatively coupled sensor units 100, the units 100 may link together through their individual antennas to form a mesh network or peer-to-peer network. In this aspect, a first sensor unit 100.sub.1 would receive an interrogation signal, and rebroadcast that signal to nearby devices 100.sub.2, 100.sub.3, which would in turn rebroadcast as well. Once the array of sensor units 100 has been interrogated, each sensor unit 100 can broadcast to the next closest sensor, until the signal reaches the sensor unit coupled to an antenna capable of broadcasting to the data acquisition device 200.
[0048] As discussed above, the thickness sensor units 100 in one embodiment can be passivated devices configured to be interrogated or powered through the reception of an interrogation signal sent by an interrogation device.
[0049] The data acquisition device 200 in this embodiment includes an operating system and graphical user interface configured to receive the measurement data, which may be raw sensor measurement information, the calculated thickness data already processed by the sensor device processor 114. The data acquisition device 200 can directly convey the thickness measurement data to the end user through the GUI. The GUI may be configured to send and receive alerts when areas of the wear liner 12 meet a preconfigured threshold thickness, or experience temperature abnormalities. The GUI or backend server may be communicatively coupled with the industrial equipment and may shut the piece of equipment down if a threshold thickness is met.
[0050]
[0051] Step 410 comprises physically coupling a housing that includes a communication circuit to a non-wear side 16 of a wear liner 12. The communication circuit is operably coupled to receive measurement data representative of measurements performed by the at least one sensor device. In the embodiment of
[0052] In step 415, the wear liner 12 is coupled to a piece of industrial equipment, for example, to protect the industrial equipment from moving material that could damage the equipment. The wear liner 12 is coupled to ensure the position of the housing between a wall of the piece of industrial equipment and a wear surface of the wear-liner. In the example of
[0053] In step 420, the at least one sensor device is powered on, and generates measurement information. In step 425, a data acquisition device is used to acquire measurement data from the communication circuit. In the exemplary embodiment of
[0054] In some embodiments, the method 400 may include (step 430) comparing the thickness measurement data (or other measurement value) to one or more stored threshold values. If the comparison indicates that the measurement data exceeds one or more thresholds, then an alert is communicated to another device or remote user in step 435. The alert could indicate to users of the system to the need to change the wear liner 12 before damage is done to the industrial equipment substrate 18. In some embodiments, step 435 could include electrically and or mechanically shutting down the industrial equipment, via a remotely actuatable safety (i.e. power cutoff) switch, when the threshold is met before further damage can be done to the equipment. In the embodiment of
[0055] It will be appreciated that the above-describe embodiments are merely illustrative, and that those of ordinary skill in the may readily device their own implementations and modifications that incorporate the principles of the present invention and fall within the spirit and scope thereof.