CONVEYOR IDLER MONITORING APPARATUS, SYSTEMS, AND METHODS
20200256745 ยท 2020-08-13
Inventors
Cpc classification
B65G43/02
PERFORMING OPERATIONS; TRANSPORTING
B65G39/00
PERFORMING OPERATIONS; TRANSPORTING
G01G23/36
PHYSICS
International classification
G01K1/02
PHYSICS
B65G39/00
PERFORMING OPERATIONS; TRANSPORTING
G01G23/36
PHYSICS
Abstract
Conveyor idler monitoring apparatus, systems and methods are provided. In some embodiments, one or more sensors (e.g., temperature sensors, load sensors, etc.) are supported by the shaft of a conveyor idler. In some embodiments, one or more sensors are in data communication with a wireless transmitter. In some embodiments, a power generator driven by rotation of the idler is in electrical communication with one or more sensors and/or a wireless transmitter. In some embodiments, a plurality of idlers monitoring systems are in data communication with a conveyor monitoring system and/or operational monitoring system.
Claims
1. A conveyor idler monitoring system for monitoring a conveyor idler having a cylinder with an inner surface and an outer surface, the cylinder rollingly supported on a shaft by a plurality of bearings, the conveyor idler monitoring system comprising: a load sensor disposed to measure a load applied to the shaft; at least a first temperature sensor disposed inside the cylinder and supported by the shaft, said first temperature sensor disposed to measure the temperature of at least a portion of the inner surface of the cylinder; a wireless transmitter in data communication with said first temperature sensor and said load sensor, said wireless transmitter configured to transmit data from said first temperature sensor and said load sensor; a gateway in wireless data communication with the wireless transmitter to receive said data from said first temperature sensor and said load sensor; and an application server in data communication with said gateway, said application server configured to predict an idler failure time for the conveyor idler based on data received by the gateway.
2. The conveyor idler monitoring system of claim 1, wherein said first temperature sensor comprises an infrared sensor.
3. The conveyor idler monitoring system of claim 1, further comprising: a housing supported on said shaft inside said cylinder, wherein said first temperature sensor is at least partially disposed inside said housing, wherein an opening in said housing is disposed between said first temperature sensor and the inner surface of the cylinder.
4. The conveyor idler monitoring system of claim 2, further comprising: a housing supported on said shaft inside said cylinder, wherein said first temperature sensor is at least partially disposed inside said housing, wherein an opening in said housing is disposed between said first temperature sensor and the inner surface of the cylinder.
5. The conveyor idler monitoring system of claim 1, further comprising: a second temperature sensor disposed inside the cylinder and in data communication with said wireless transmitter, said second temperature sensor comprising an ambient air temperature sensor.
6. The conveyor idler monitoring system of claim 5, wherein said second temperature sensor comprises a resistance temperature detector.
7. The conveyor idler monitoring system of claim 2, further comprising: a second temperature sensor disposed inside the cylinder and in data communication with said wireless transmitter, said second temperature sensor comprising an ambient air temperature sensor.
8. The conveyor idler monitoring system of claim 1, further comprising: a bearing temperature sensor disposed to measure the temperature of at least one of the bearings.
9. The conveyor idler monitoring system of claim 5, further comprising: a bearing temperature sensor disposed to measure the temperature of at least one of the bearings.
10. The conveyor idler monitoring system of claim 1, further comprising an energy generator in electrical communication with at least one of said wireless transmitter and said first temperature sensor, wherein said energy generator is powered by rotation of the cylinder relative to the shaft.
11. A conveyor monitoring system for monitoring a plurality of conveyor idlers on a conveyor, each conveyor idler having a cylinder with an inner surface and an outer surface, the cylinder rollingly supported on a shaft by a plurality of bearings, the conveyor monitoring system comprising: a plurality of conveyor idler monitoring systems, each comprising: a load sensor disposed to measure a load applied to the shaft; a temperature sensor disposed inside the cylinder and supported by the shaft, said temperature sensor disposed to measure the temperature of at least a portion of the inner surface of the cylinder; a bearing temperature sensor disposed to measure the temperature of at least one of the bearings; a wireless transmitter in data communication with said temperature sensor and said load sensor, said wireless transmitter configured to transmit data from said temperature sensor and said load sensor to a wireless receiver; a gateway in wireless data communication with said wireless transmitter of each conveyor idler monitoring system; and an application server in data communication with said gateway, said application server configured to predict an idler failure time for each of the conveyor idlers based on data gathered by each of said conveyor idler monitoring systems.
12. The conveyor monitoring system of claim 11 wherein each conveyor idler includes a unique identifier, further comprising: a registration device having one of a scanner or a camera configured to identify and unique identifier and store a location of an associated conveyor idler, said registration device in data communication with one of said gateway and said application server.
13. The conveyor monitoring system of claim 11, wherein said gateway comprises a LoRaWAN gateway.
14. The conveyor monitoring system of claim 11, further comprising a pulley monitoring system comprising a pulley load sensor supported on a pulley and a wireless transmitter in data communication with said load sensor and said gateway.
15. The conveyor monitoring system of claim 11, wherein said application server comprises a cloud-based application server.
16. The conveyor monitoring system of claim 11, wherein said application server is configured to use a machine learning algorithm to predict an idler failure.
17. The conveyor monitoring system of claim 11, wherein said application server is in data communication with a user interface, said user interface comprising one of a web interface or a mobile application, wherein said application server is configured to send an alert related to an idler failure to said user interface.
18. The conveyor monitoring system of claim 17, wherein said alert includes one of an idler identification and an idler location, and wherein said alert comprises one or more of a predicted idler failure time and an existing idler failure.
19. The conveyor monitoring system of claim 16, wherein said application server is in data communication with a user interface, said user interface comprising one of a web interface or a mobile application, wherein said application server is configured to send an alert related to an idler failure to said user interface.
20. The conveyor monitoring system of claim 19, wherein said alert includes one of an idler identification and an idler location, and wherein said alert comprises one or more of a predicted idler failure time and an existing idler failure.
Description
DESCRIPTION
[0013] Referring to the drawings, wherein like reference numerals designate identical or corresponding parts throughout the several views,
[0014] The idler 100 optionally includes end discs 140-1, 140-2 disposed at opposing ends of the shaft 200 and mounted to opposing ends 220-1, 220-2 of the cylinder 130. Each end disc is optionally supported on an associated bearing 160 (e.g., ball bearing). A seal assembly 150 is optionally disposed outboard of each bearing assembly to at least partially prevent external liquid and/or debris from entering an interior volume of the idler 100.
[0015] Referring to
[0016] Referring to
[0017] In some embodiments, one or more cavities 240 are provided adjacent to (e.g., radially inward of) the bearing 160. In some embodiments, each cavity 240 is provided in a radially outer surface of the shaft 200. In some embodiments, a temperature sensor 635 (e.g., resistance temperature detector, thermocouple, etc.) is at least partially received in one or more cavities 240.
[0018] Referring to
[0019] Referring to
[0020] Referring to
[0021] As illustrated in
[0022] One or more load sensors 720 optionally comprise strain gauges mounted directly to the shaft 200. In some embodiments the load sensors 720 are mounted to a curved (e.g., cylindrical) surface of the shaft; in other embodiments, one or more load sensors are mounted to a machined flat in the shaft and/or a flat surface supported on the shaft. In some embodiments, a first load cell 720a is mounted at a first location on the shaft 200 and a second load cell 720b is mounted at a second location on the opposite side of the shaft. In some embodiments, load cells 720a, 720b are mounted at the same or similar distance from an end of the shaft, such as at or adjacent to the transverse center of the shaft).
[0023] One or more vibration sensors 725 are configured to detect vibration of the idler (e.g., of the bearing 160) and generate a corresponding signal and/or corresponding data to a processor and/or to the transmitter. In some embodiments, the vibration sensor 725 comprises a noise sensor (e.g., an electret microphone).
[0024] One or more cylinder temperature sensors 735 are optionally configured and positioned to detect the temperature of an inner surface of cylinder 130. In some embodiments, the sensor 735 comprises an infrared temperature sensor optionally oriented toward the inner surface of cylinder 130. In some embodiments, the sensor 735 is at least partially housed in housing 820 and an opening 821 is optionally provided in the housing 820 between the sensor 735 and the inner surface of cylinder 130.
[0025] One or more ambient air temperature sensors 740 (resistance temperature detector, etc.) are optionally configured and positioned to detect the temperature of ambient air inside the idler.
[0026] One or more angle sensors 750 (e.g., accelerometers, etc.) are optionally configured and positioned to generate a signal related to an orientation of the idler (e.g., the idler shaft) relative to horizontal. It should be appreciated that in troughing idler assembly embodiments, the idlers installed in the left, right and center of the assembly may have differing orientations which may be used to identify where the idler is installed on the assembly.
[0027] One or more energy generators 1000 are optionally configured and positioned to generate power by the rotation of cylinder 130 about the shaft 200. Turning to
[0028] One or more rotation sensors are optionally provided to detect a rotational speed and/or number of rotations of the cylinder 130. In some embodiments, a signal generated by the energy generator 1000 is used to determine the speed and/or number of rotations of cylinder 130 such that the energy generator 1000 may be considered a rotation sensor. In other embodiments, a different or additional rotation sensor (e.g., Hall effect sensor, etc.) is provided.
[0029] In some embodiments, the rotational speed of the cylinder 130 is compared to a belt speed (e.g., measured or assumed belt speed) in order to estimate a current cylinder diameter and/or current cylinder wear percentage. For example, in some embodiments an adjustment factor based on the comparison between the cylinder rotational speed and belt speed may be applied to a nominal cylinder diameter in order to determine a current cylinder diameter. A percentage wear of the cylinder 130 may be determined by dividing the current cylinder diameter by the nominal cylinder diameter. The calculation steps described herein may be performed by a processor connected to the idler or remote from the idler.
[0030] Referring to
[0031] In some embodiments, the application server 960 (or other system or device) receives one or more idler-related measurements described herein (e.g., one or more of the measurements carried out by system 700). The application server 960 optionally comprises or makes use of an algorithm (e.g., machine learning algorithm, artificial intelligence algorithm, neural network algorithm, deep learning algorithm, JSON interface, etc.) to predict an idler-related diagnostic (e.g., maintenance interval, failure event, failure event time, first component to fail, etc.) based on the idler-related measurements based on measurements. In some embodiments, the application server identifies an existing idler failure based on one or more idler-related measurements (e.g., temperature, idler rotation speed relative to belt speed or nominal idler rotation speed, shaft load, etc.).
[0032] In some embodiments, a registration device 920 (e.g., including a scanner, camera, etc.) is used to register the idler (e.g., by scanning or taking an image of the identifier 810). In some embodiments, the registration device 920 includes a global positioning (GPS) system or device and optionally identifies the location of each idler upon registration. The registration device is optionally in data communication with the system 900 (e.g., via the gateway, web interface, or other component).
[0033] Referring to
[0034] Ranges recited herein are intended to inclusively recite all values within the range provided in addition to the maximum and minimum range values. Headings used herein are simply for convenience of the reader and are not intended to be understood as limiting or used for any other purpose.
[0035] Although various embodiments have been described above, the details and features of the disclosed embodiments are not intended to be limiting, as many variations and modifications will be readily apparent to those of skill in the art. Accordingly, the scope of the present disclosure is intended to be interpreted broadly and to include all variations and modifications within the scope and spirit of the appended claims and their equivalents.