TIRE HIGH TEMPERATURE FORECASTING SYSTEM
20220055422 · 2022-02-24
Inventors
Cpc classification
B60C23/0479
PERFORMING OPERATIONS; TRANSPORTING
B60C23/0486
PERFORMING OPERATIONS; TRANSPORTING
B60C23/0401
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A tire high temperature forecasting system includes at least one tire that supports a vehicle, and at least one sensor mounted on the tire for measuring a temperature of the tire. An electronic memory capacity is in a unit mounted on the tire for storing tire identification information. A processor is in electronic communication with the sensor and the electronic memory capacity, in which the processor receives and correlates the measured temperature, a time of the temperature measurement, and the tire identification information. Transmission means transmit the measured temperature, a time of the temperature measurement, and the tire identification information to a remote processor. The remote processor executes a forecasting model, and the forecasting model generates a forecast estimate. If the forecast estimate includes a predicted high temperature that is greater than a predetermined high temperature threshold for the tire, an alert is generated by the forecasting model.
Claims
1. A tire high temperature forecasting system comprising: at least one tire supporting a vehicle; at least one sensor mounted on the tire for measuring a temperature of the at least one tire; an electronic memory capacity in a unit mounted on the at least one tire for storing tire identification information; a processor in electronic communication with the at least one sensor and the electronic memory capacity, wherein the processor receives and correlates the measured temperature, a time of the temperature measurement, and the tire identification information; transmission means for transmitting the measured temperature, a time of the temperature measurement, and the tire identification information to a remote processor; a forecasting model executed by the remote processor, the forecasting model generating a forecast estimate; and an alert generated by the forecasting model if the forecast estimate includes a predicted high temperature that is greater than a predetermined high temperature threshold for the at least one tire.
2. The tire high temperature forecasting system of claim 1, wherein the forecasting model includes a filtering module, a forecasting module, and an alert module.
3. The tire high temperature forecasting system of claim 2, wherein the filtering module includes an input sub-module, the input sub-module grouping the measured temperature according to the time of the temperature measurement, the tire identification information, and the vehicle on which the at least one tire is mounted.
4. The tire high temperature forecasting system of claim 2, wherein the filtering module includes a filter sub-module, the filter sub-module analyzing the measured temperature under a first condition, the first condition including comparing the measured tire temperature to a first predetermined high temperature value.
5. The tire high temperature forecasting system of claim 4, wherein the first predetermined high temperature value is about 60 degrees Fahrenheit more than an expected operating temperature for the at least one tire.
6. The tire high temperature forecasting system of claim 4, wherein the filter sub-module analyzes the measured temperature under a second condition if the measured tire temperature is equal to or less than the first predetermined high temperature value, the second condition including comparing the measured tire temperature to a second predetermined high temperature value and an additional state.
7. The tire high temperature forecasting system of claim 6, wherein the second predetermined high temperature value is about 20 degrees Fahrenheit more than an expected operating temperature for the at least one tire.
8. The tire high temperature forecasting system of claim 6, wherein the additional state includes comparing the measured tire temperature to a statistical value, the statistical value including the sum of a statistical mean of a selected group of temperature measurements plus twice a standard deviation of the selected group of temperature measurements.
9. The tire high temperature forecasting system of claim 2, wherein the forecasting module executes the forecasting model and includes a time series analysis model.
10. The tire high temperature forecasting system of claim 9, wherein the time series analysis model includes at least one of an auto regressive integrated moving average model and an exponential smoothing model.
11. The tire high temperature forecasting system of claim 9, wherein the forecasting module includes a training sub-module for training the time series analysis model.
12. The tire high temperature forecasting system of claim 9, wherein the forecasting module includes a calculation sub-module, and the calculation sub-module executes the forecasting model to generate the forecast estimate.
13. The tire high temperature forecasting system of claim 12, wherein the forecast estimate includes a confidence interval over a predetermined time span.
14. The tire high temperature forecasting system of claim 2, wherein the alert module includes a final filtering sub-module, the final filtering sub-module comparing the forecast estimate to the predetermined high temperature threshold for the at least one tire.
15. The tire high temperature forecasting system of claim 1, wherein the alert is generated by the forecasting model if the forecast estimate includes the predicted high temperature being greater than the predetermined high temperature threshold in a predetermined window of time.
16. The tire high temperature forecasting system of claim 1, wherein the remote processor is disposed in a cloud-based server.
17. The tire high temperature forecasting system of claim 16, wherein the alert is wirelessly transmitted from the cloud-based server to a fleet management server.
18. The tire high temperature forecasting system of claim 1, wherein the remote processor is disposed in a fleet management server.
19. The tire high temperature forecasting system of claim 1, wherein the alert is transmitted to at least one of a display that is visible to a fleet manager and a device that is visible to an operator of the vehicle.
20. The tire high temperature forecasting system of claim 1, wherein the electronic memory capacity is integrated into the at least one sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The invention will be described by way of example and with reference to the accompanying drawings, in which:
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[0020] Similar numerals refer to similar parts throughout the drawings.
Definitions
[0021] “Axial” and “axially” means lines or directions that are parallel to the axis of rotation of the tire.
[0022] “CAN bus” is an abbreviation for controller area network.
[0023] “Circumferential” means lines or directions extending along the perimeter of the surface of the annular tread perpendicular to the axial direction.
[0024] “Equatorial centerplane (CP)” means the plane perpendicular to the tire's axis of rotation and passing through the center of the tread.
[0025] “Footprint” means the contact patch or area of contact created by the tire tread with a flat surface as the tire rotates or rolls.
[0026] “Inboard side” means the side of the tire nearest the vehicle when the tire is mounted on a wheel and the wheel is mounted on the vehicle.
[0027] “Lateral” means an axial direction.
[0028] “Outboard side” means the side of the tire farthest away from the vehicle when the tire is mounted on a wheel and the wheel is mounted on the vehicle.
[0029] “Radial” and “radially” means directions radially toward or away from the axis of rotation of the tire.
[0030] “Rib” means a circumferentially extending strip of rubber on the tread which is defined by at least one circumferential groove and either a second such groove or a lateral edge, the strip being laterally undivided by full-depth grooves.
[0031] “Tread element” or “traction element” means a rib or a block element defined by a shape having adjacent grooves.
DETAILED DESCRIPTION OF THE INVENTION
[0032] Turning now to
[0033] Each tire 12 includes a pair of bead areas 16 (only one shown) and a bead core (not shown) embedded in each bead area. Each one of a pair of sidewalls 18 (only one shown) extends radially outward from a respective bead area 16 to a ground-contacting tread 20. The tire 12 is reinforced by a carcass 22 that toroidally extends from one bead area 16 to the other bead area, as known to those skilled in the art. An innerliner 24 is formed on the inside surface of the carcass 22. The tire 12 is mounted on a wheel 26 in a manner known to those skilled in the art and, when mounted, forms an internal cavity 28 that is filled with a pressurized fluid, such as air.
[0034] A sensor unit 30 may be attached to the innerliner 24 of each tire 12 by means such as an adhesive and measures certain parameters or conditions of the tire, as will be described in greater detail below. It is to be understood that the sensor unit 30 may be attached in such a manner, or to other components of the tire 12, such as between layers of the carcass 22, on or in one of the sidewalls 18, on or in the tread 20, and/or a combination thereof. For the purpose of convenience, reference herein shall be made to mounting of the sensor unit 30 on the tire 12, with the understanding that mounting includes all such attachment.
[0035] The sensor unit 30 is mounted on each tire 12 for the purpose of detecting certain real-time tire parameters inside the tire, such as tire pressure and temperature. Preferably the sensor unit 30 is a tire pressure monitoring system (TPMS) module or sensor, of a type that is commercially available, and may be of any known configuration. For the purpose of convenience, the sensor unit 30 shall be referred to as a TPMS sensor. Each TPMS sensor 30 preferably also includes electronic memory capacity for storing identification (ID) information for each tire 12, known as tire ID information. Alternatively, tire ID information may be included in another sensor unit, or in a separate tire ID storage medium, such as a tire ID tag 34.
[0036] The tire ID information may include manufacturing information for the tire 12, such as: the tire type; tire model; size information, such as rim size, width, and outer diameter; manufacturing location; manufacturing date; a treadcap code that includes or correlates to a compound identification; and a mold code that includes or correlates to a tread structure identification. The tire ID information may also include a service history or other information to identify specific features and parameters of each tire 12, as well as mechanical characteristics of the tire, such as cornering parameters, spring rate, load-inflation relationship, and the like. Such tire identification enables correlation of the measured tire parameters and the specific tire 12 to provide local or central tracking of the tire, its current condition, and/or its condition over time. In addition, global positioning system (GPS) capability may be included in the TPMS sensor 30 and/or the tire ID tag 34 to provide location tracking of the tire 12 during transport and/or location tracking of the vehicle 14 on which the tire is installed.
[0037] Turning now to
[0038] Aspects of the tire data information system 10 preferably are executed on the processor 38 or another processor that is accessible through the vehicle CAN bus 42, which enables input of data from the TMPS sensor 30 and the tire ID tag 34, as well as input of data from other sensors that are in electronic communication with the CAN bus. In this manner, the tire high temperature forecasting system 10 enables direct measurement of tire temperature with the TPMS sensor 30, which preferably is transmitted to the processor 38. Tire ID information preferably is transmitted from the tire ID tag 34 to the processor 38. The processor 38 preferably correlates the measured tire temperature, the measurement time, and ID information for each tire 12, and may communicate the data to control systems of the vehicle 14.
[0039] Referring to
[0040] Turning to
[0041] Turning to
[0042] The filtering module 72 includes an input sub-module 78. The input sub-module 78 receives and groups the measured tire temperature data 58 according to the corresponding measurement time 60, the specific tire 12 in which the temperature was measured, and the vehicle 14 on which the tire is mounted. Once the data is grouped in the input sub-module 78, it is analyzed in a filter sub-module 80.
[0043] With additional reference to
[0044] The second condition 86 preferably includes comparing the measured tire temperature 58 to a second predetermined high temperature value 88 and an additional state 90. The second predetermined high temperature value 88 is lower than the first predetermined high temperature value 84, but is still a high performance temperature for the tire 12. Preferably, the second predetermined high temperature value 88 is about 20 degrees Fahrenheit more than an expected operating temperature for the tire 12. Thus, if the tire 12 includes an expected operating temperature of about 120 degrees Fahrenheit, the second predetermined high temperature value 88 may be about 140 degrees Fahrenheit.
[0045] Also in the second condition 86, the measured tire temperature 58 is compared to the additional state 90. The additional state 90 includes comparing the measured tire temperature 58 to a statistical value 92. By way of example, the statistical value 92 may include the sum of the statistical mean of a selected group of temperature measurements 58 plus twice the standard deviation of the selected group of temperature measurements.
[0046] In the second condition 86, if the measured tire temperature 58 is greater than the second predetermined high temperature value 88 and the measured tire temperature is greater than the statistical value 92, the tire high temperature forecasting system 10 executes the forecasting module 74. If the measured tire temperature 58 is equal to or less than the second predetermined high temperature value 88, or the measured tire temperature is equal to or less than the statistical value 92, a consistent high temperature condition is not present for the tire 12 and the tire high temperature forecasting system 10 takes no further action.
[0047] With reference to
[0048] In a training sub-module 100, the time series analysis model 94 is trained for the specific tire 12 using measured tire temperatures 58. Once the time series analysis model 94 has been trained, a calculation sub-module 102 executes the model to obtain a forecast estimate 104, preferably in the form of a confidence interval. For example, the forecast estimate 104 may be a confidence interval over a predetermined time span of the measured tire temperature 58, such as a subsequent 30-minute period after the time at which the forecast has been generated.
[0049] With continuing reference to
[0050] Returning to
[0051] In this manner, the tire high temperature forecasting system 10 obtains measured temperature data 58 for a specific tire 12 and provides a forecasting model 70. The forecasting model 70 generates a forecast estimate 104. If the forecast estimate includes a predicted high temperature 108, which is a temperature greater than the predetermined high temperature threshold 62 for the tire 12, an alert 112 is sent to a fleet manager and/or an operator of the vehicle 14 on which the tire is mounted. The alert 112 enables action to be taken to reduce the temperature of the tire 12 before the predicted high temperature 108 occurs, thereby preventing a high-temperature condition. Of course, the forecasting model 70 may be executed repeatedly and at multiple time intervals, enabling multiple or subsequent alerts 112 to be sent based on the estimation of the predicted high temperature 108.
[0052] The present invention also includes a method of tire high temperature forecasting. The method includes steps in accordance with the description that is presented above and shown in
[0053] It is to be understood that the structure and method of the above-described tire high temperature forecasting system and method may be altered or rearranged, or components or steps known to those skilled in the art omitted or added, without affecting the overall concept or operation of the invention.
[0054] The invention has been described with reference to a preferred embodiment. Potential modifications and alterations will occur to others upon a reading and understanding of this description. It is to be understood that all such modifications and alterations are included in the scope of the invention as set forth in the appended claims, or the equivalents thereof.