Embodiments of the present application relate to a method of determining a left-or-right side installation position of a trailer wheel of a trailer, and corresponding apparatus.
Usually, such trailers are connected to a tow vehicle or a prime mover of a so-called trailer-tow vehicle-truck.
Modern vehicles and recently also trailers are equipped with wheel electronics installed in the trailer wheel. This wheel electronics measure wheel-specific data (e.g. tire pressure, tire temperature, wheel load, etc.) and transmit this data to a reception device located in the tow vehicle.
One problem with such kind of data transfer is, however, the association of the transmitted data of the trailer wheel with the initially unknown installation position of trailer wheel. Although wheel electronics are able to transmit an identifier which is unique for the wheel electronics of a specific wheel, as described e.g. in EP 626 911 B1, this identifier does not reveal at what location said wheel is actually installed.
There is a possibility of localizing an installation position of a vehicle wheel using ABS- or ESP-sensors connected to the vehicle wheel, as described, e.g. in EP 2516182 B1. However, trailer wheels usually don not have ABS- or ESP-sensors installed.
Aspects of the present application provide a method of reliably localizing a left-or-right side installation position of a trailer wheel that is not connected to an ABS- or ESP-sensor.
According to an aspect of an embodiment, there is provided a method of determining a left-or-right side installation position of a trailer wheel of a trailer. The trailer is connected to a tow vehicle or prime mover of a so-called trailer-tow vehicle-truck. The method comprises the steps of: within a predefined time interval, determining a number of complete rotations of the trailer wheel using an acceleration sensor of the trailer wheel; within the same predefined time interval, determining a number of complete rotations of a left side tow vehicle wheel of the tow vehicle using an ABS-sensor or ESP-sensor of the left side tow vehicle wheel; within the same predefined time interval, determining a number of complete rotations of a right side tow vehicle wheel of the tow vehicle using an ABS-sensor or ESP-sensor of the right side tow vehicle wheel; determining a first correspondence value indicating a correspondence between the number of complete rotations of the trailer wheel and the number of complete rotations of the left side tow vehicle wheel; determining a second correspondence value indicating a correspondence between the number of complete rotations of the trailer wheel and the number of complete rotations of the right side tow vehicle wheel; and determining a left side installation position of the trailer wheel, when the first correspondence value is larger than the second correspondence value, or determining a right side installation position of the trailer wheel, when the second correspondence value is larger than the first correspondence value.
Aspects of the present application relate to the idea that although a trailer does not have an ABS-sensor or ESP-sensor connected to the trailer wheel, it does more and more often include wheel electronics such as acceleration sensors connected to the trailer wheel. Aspects of the present application are partially based on the idea that not only ABS- or ESP-sensors, but also an acceleration sensor attached to the trailer wheel can determine a number of complete rotations of the trailer wheel. This number of complete rotations of the trailer wheel can then be compared with the number of complete rotations of a left side tow vehicle wheel and a right side tow vehicle wheel as determined by the ABS- or ESP-sensor usually attached to the tow vehicle wheels of the tow vehicle. Aspects of the present application relate to the idea that the installation position of the trailer wheel is very likely on that side, where a correspondence value between the number of complete rotations of the trailer wheel and the number of complete rotations of the respective side tow vehicle wheel is larger. By using this idea, wheel localization methods relying only on ABS- or ESP-sensors, can be expanded to trailer wheels where there is no ABS- or ESP-sensor attached.
According to an aspect of an embodiment, the acceleration sensor of the trailer wheel is installed within a tire pressure monitoring system of the trailer wheel. The tire pressure monitoring system can be a TPMS sensor of the trailer wheel. Nowadays, even trailer wheels usually have a TPMS sensor on board. The TPMS senor usually includes an acceleration sensor, for example to determine various wheel specific data such as large or the like. The acceleration sensor of the TPMS sensor is also capable of determining the number of complete rotations of the trailer wheel. Thus, the already built-in acceleration sensor of the TPMS sensor can be used to determine the number of complete rotations of the trailer wheel to determine the left-or-right side installation position of the trailer wheel.
According to an aspect of an embodiment, the first correspondence value is determined based on a difference between the number of complete rotations of the trailer wheel and the number of complete rotations of the left side tow vehicle wheel, and/or the second correspondence value is determined based on a difference between the number of complete rotations of the trailer wheel and the number of complete rotations of the right side tow vehicle wheel. In this embodiment, the first and/or second correspondence value can be determined based on a very simple straight forward mathematical operation. This is a quick and robust way of calculating the first and/or a second correspondence value. The correspondence value is, of course, higher, when the difference between the number of complete rotations of the trailer wheel and the number of complete rotations of the respective vehicle wheel is magnitude-wise smaller. Thus, if, for example, the initially unknown trailer wheel shows a number of complete rotations of, for example, 7 during the predefined time interval, and the left side tow vehicle wheel shows a number of complete rotations of, for example, 8 during the same predefined time interval, whereas the right side tow vehicle wheel shows a number of complete rotations of, for example, 10 during the same predefined time interval. Then, the likelihood of the trailer wheel being installed on a left side is higher than on a right side.
In order to improve the robustness of the determination of the left-or-right side installation position of the trailer wheel, according to an aspect of an embodiment, it is possible, that the first correspondence value is determined based on a correlation between a first signal indicating the number of complete rotations of the trailer wheel and a second signal indicating the number of complete rotations of the left side tow vehicle wheel, and/or the second correspondence value is determined based on a correlation between the first signal indicating the number of complete rotations of the trailer wheel and a third signal indicating the number of complete rotations of the right side tow vehicle wheel. The signals can be sensor signals as determined by the respective sensors. For example, the first signal can be any kind of signal as determined by the acceleration sensor of the trailer wheel. Likewise, the second and third signal can be any kind of signal as determined by the respective ABS- or ESP-sensor of the respective left or right side tow vehicle wheel. A correlation between the respective signals can be, for example, a cross-correlation between the first and second signal and/or a cross-correlation between the first and third signal at discrete time intervals within the predetermined time interval.
Usually, sensor signals from the acceleration and ABS- or ESP-sensors are readily available. These sensor signals only need to be processed accordingly in order to determine the first and/or second correspondence value. With this way of determining the first and/or second correspondence value, a straight forward and more robust way of determining the left-or-right installation position of the trailer wheel is possible.
According to an aspect of an embodiment, there is provided a method including the steps of: determining an angle between the longitudinal axis of the trailer and the longitudinal axis of the tow vehicle during the predefined time interval, and determining the first correspondence value and/or the second correspondence value only when the determined angle is above a predetermined threshold angle. This further preferred embodiment is at least partially based on the idea that any significant difference between a correspondence between the number of complete rotations of the trailer wheel and the number of complete rotations of the left side tow vehicle wheel on the one hand and a correspondence between the number of complete rotations of the trailer wheel and the number of complete rotations of the right side tow vehicle wheel on the other hand is larger, when the trailer-tow vehicle-truck drives around corners. Because in this case, inevitably, one side of the two tow vehicle wheels will show a larger or smaller number of complete rotations compared to the opposite side of the two tow vehicle wheels. In other words, during driving around corners or curves, the correspondence for one side of the tow vehicle wheel with the trailer wheel will be significantly larger than for the other side tow vehicle wheel. It is further preferred that only when the angle between the longitudinal axis of the trailer and the longitudinal axis of the tow vehicle is larger than a predetermined threshold angle, that the first and/or second correspondence value is/are determined. In this way, the difference between the first correspondence value and the second correspondence value can be increased and therefore the step of determining whether it is a left-or-right side installation position of the trailer wheel can be improved as well.
According to an aspect of an embodiment, the angle between the longitudinal axis of the trailer and the longitudinal axis of the tow vehicle is determined based on a steering angle of a steering wheel of the tow vehicle. Again, with this embodiment no additional sensor is necessary, as usually in modern kind tow vehicles a steering angle sensor is used. By using the angle between the trailer and the tow vehicle or by using the steering angle, time intervals within the predetermined time interval where the first and/or second correspondence value need not to be determined can be flagged. This ensure a very reliable and robust way of determining a left-or-right side installation position of the trailer wheel.
According to an aspect of an embodiment, the determining is performed by an apparatus installed in or contained by the tow vehicle. The apparatus is configured to receive information from an acceleration sensor (16) of a trailer wheel (14), and receive information from the ABS-sensors or ESP-sensors (22) of the tow vehicle wheels (44), and to determine the installation position of at least one of the trailer wheels (14).
Exemplary embodiments of the present application are described by the accompanying drawings, which are Incorporated herein and constitute a part of the specification, in which:
Within this disclosure, the same reference numerals refer to the same components.
Referring to
As can be further seen in
Reference disc 30 has a certain number of separate segments 36 which can be used for determining the rotation angle, the rotation speed and also the number of complete rotations of tow vehicle wheel 20. For example, reference disc may have 48 segments 36 which are separated from one another by an intermediate region 38. A sensor 40 is in mechanical, electrical or optical contact with reference disc 30 via a bracket 42. ABS- or ESP-sensor 22 may include an apparatus such as a control unit for evaluating the signal delivered by sensor 40. For example, the control unit of ABS- or ESP-sensor 22 can evaluate the signal produced by sensor 40. Sensor 40, for example, produces a pulse each time when there is a change between a segment 36 and an intermediate region 38. The control unit of ABS- or ESP-sensor 22 can evaluate and analyze this signal. Thus, for example, during a complete rotation of tow vehicle wheel 20, sensor 40 may produce a total of 96 pulses which the control unit then converts to 1 complete rotation of tow vehicle wheel 20. Likewise, during a predefined time interval, sensor 40 may produce a number of X pulses. From the number of X pulses, control unit then determines the number of complete rotations of tow vehicle wheel 20. Thus, ABS- or ESP-sensor(s) 22 can determine the number of complete rotations of the respective tow vehicle wheel 20 within a predefined time interval.
Referring now to
As can be further seen in
As can be further seen, trailer 12 extends along a longitudinal axis 52 and tow vehicle 13 extends along another longitudinal axis 54. In the specific embodiment shown in
Tow vehicle 13 also includes a steering wheel 56 as known to a person skilled in the art, the turning of which changing the driving direction of tow vehicle 13 so that truck 10 drives around corners (see also
Referring now to
The procedure starts with step 300.
In step 302, a number of complete rotations of trailer wheel 14 is determined within a predefined time interval. The number of complete rotations of trailer wheel 14 is determined using acceleration sensor 16, as indicated by box 304.
Next, in step 306, a number of complete rotations of left side tow vehicle wheel 44 is determined. Likewise, in step 308, a number of complete rotations of right side tow vehicle wheel 46 is determined. The number of complete rotations of left side tow vehicle wheel 44 and the number of complete rotations of right side tow vehicle wheel 46 are determined using ABS- or ESP-sensor(s) 22 of tow vehicle 13, as indicated by box 310.
Once the number of complete rotations of trailer wheel 14, left side tow vehicle wheel 44 and right side tow vehicle wheel 46 are determined, in next step 312, a first correspondence value is calculated. The first correspondence value indicates a correspondence between the number of complete rotations of trailer wheel 14 as determined using acceleration sensor 16 and the number of complete rotations of left side tow vehicle wheel 44 as determined using ABS- or ESP-sensor 22.
Likewise, in step 314 a second correspondence value is calculated. The second correspondence value indicates a correspondence between the number of complete rotations of trailer wheel 14 as determined using acceleration sensor 16 and the number of complete rotations of right side tow vehicle wheel 46 as determined using ABS- or ESP-sensor 22.
Next, in step 316, it is determined which one of the two correspondence values is larger. When the first correspondence value is larger than the second correspondence value (branch 318), it is determined in step 320 that trailer wheel 14 is installed on a left side with respect to driving direction 32. In other words, in step 320 a left side installation position of trailer wheel 14 (with respect to driving direction 32) is determined for trailer wheel 14. The procedure then stops in step 322.
When, however, the second correspondence value is larger than the first correspondence value (branch 324), it is determined in step 326 that trailer wheel 14 is installed on a right side with respect to driving direction 32. In other words, in step 326 a right side installation position of trailer wheel 14 (with respect to driving direction 32) is determined for trailer wheel 14. The procedure then stops in step 328.
If it cannot be determined which one of the two correspondence values is larger, the procedure may restart again and perform all the steps again, until it is determined whether trailer wheel 14 is installed on a left side or on a right side with respect to driving direction 32.
Referring now to
As can be seen clearly in
These correspondence values can be calculated over time. It is not necessary, that these correspondence values are calculated over the entire time span of a predefined time interval. It may be possible, to calculate the correspondence values only over certain time intervals within the predefined time interval.
To further explain the graph of
Within the first time interval, it can be seen that over time, the number of complete rotations of right side tow vehicle wheel 46 (signal 404) is significantly larger than the number of complete rotations of left side tow vehicle wheel 44 (signal 402). This difference between the number of complete rotations of right side tow vehicle wheel 46 and left side tow vehicle wheel 44 indicates that tow vehicle 13 drives around a left corner. The reason for this is, when tow vehicle 13 drives around a left corner, within the same period of time, the outer wheel of tow vehicle 13, i.e. in this example the right side tow vehicle wheel 46, has to turn more often than the inner wheel of tow vehicle 13, i.e. in this example left side tow vehicle wheel 44. As the number of complete rotations of trailer wheel 14 (signal 400) over time is more similar to the number of complete rotations of left side tow vehicle wheel 44 (signal 402), a left side installation position of trailer wheel 14 can be determined.
Within the second time interval, over time, a difference between signals 402 and 404 remains almost unchanged. This indicates that tow vehicle 13 does not drive around a corner but drives almost straight. In the second time interval, therefore, it may be difficult to determine the installation position of trailer wheel 14. Thus, it is possible, that the determination of first or second correspondence value within the second time interval is neglected, to not make any unforeseeable mistake during the determination of the left-or-right installation position of trailer wheel 14.
Within the third time interval, however, it can be again clearly seen that over time, the number of complete rotations of left side tow vehicle wheel 44 (signal 402) increases more than the number of complete rotations of right side tow vehicle wheel 46 (signal 404). Thus, based on the explanation given above with respect to the left corner, tow vehicle 13 now drives around a right corner, because the inner wheel of tow vehicle 13, i.e. in this example the right side tow vehicle wheel 46, has to turn less often than the outer wheel of tow vehicle 13, i.e. in this example left side tow vehicle wheel 44. Again, as the number of complete rotations of trailer wheel 14 (signal 400) over time is more similar to the number of complete rotations of left side tow vehicle wheel 44 (signal 402) than to right side tow vehicle wheel 46 (signal 404), a left side installation position of trailer wheel 14 can be determined.
It is possible, to calculate first and second correspondence values only for the first time interval and the third time interval and neglect the calculation of first and second correspondence values for the second time interval, to increase the accuracy of determining a left-or-right side installation position of trailer wheel 14.
Referring now to
Referring now to
The procedure starts in step 600.
Next, the procedure moves on to steps 302, 306 and 308 of the procedure already discussed in connection with
The procedure of
Next, in step 604 it is determined whether angle 500 is larger than a predefined threshold angle. If this is the case (branch 606), the procedure then moves on to steps 312 up to 328 as already explained with reference to
If, however, angle 500 is not larger than the predefined threshold angle (branch 608), then the procedure jumps back to step 302 and starts over again. This way, it is possible to determine the first and second correspondence value more accurately. As a result, the procedure of determining a left-or-right side installation position of trailer wheel 14 is more accurate and less prone to errors.
Number | Date | Country | Kind |
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20465570.8 | Oct 2020 | EP | regional |
The present application is a National Stage Application under 35 U.S.C. § 371 of International Patent Application No. PCT/EP2021/077208 filed on Oct. 4, 2021, and claims priority from European Patent Application No. 20465570.8 filed on Oct. 14, 2020, in the European Patent Office, the disclosures of which are herein incorporated by reference in their entireties.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/077208 | 10/4/2021 | WO |