GROOVE WANDER CALCULATIONS FROM TIRE-ROAD CONTACT DETAILS
20200047571 ยท 2020-02-13
Inventors
Cpc classification
B60C99/006
PERFORMING OPERATIONS; TRANSPORTING
G06N5/01
PHYSICS
International classification
Abstract
A computer-program product, system and method for designing a tread pattern for a target tire. A device obtains a footprint of the tire. A predictive equation is created for tire tread spacing from values of scalable parameters related to footprints of a collection of tires. A target tread pattern is evaluated by applying the predictive equation to the target tread pattern. The target tread pattern for the target tire is selected based on the evaluation. The creation of the predictive equation and its use in evaluating the target tread pattern can be performed on a processor.
Claims
1. A method of designing a tread pattern for a target tire, comprising: creating a predictive equation for tire tread spacing from values of scalable parameters related to footprints of a collection of tires; and selecting the tread pattern for the target tire based on an evaluation of the tread pattern determined by applying the predictive equation to the tread pattern for the target tire.
2. The method of claim 1, further comprising determining the values of the scalable parameters by substantially minimizing an objective function related to the collection of tires.
3. The method of claim 2, wherein the objective function is based on differences between calculated groove wander based on the footprints of the collection of tires and measured groove wander obtained by measurement of the collection of tires in use.
4. The method of claim 3, wherein the calculated groove wander is further based on a road weighting function representative of a severity of impact of a groove spacing on groove wander.
5. The method of claim 3, wherein the calculated groove wander is based on a multiple road groove response determined from the footprint.
6. The method of claim 5, wherein the multiple road groove response relates a tire lateral force responsive to a groove spacing in a road section.
7. The method of claim 1, wherein the scalable parameters include at least one of: incremental displacements of tire tread edges, filtering limits to tire tread pattern, a regression offset, and at least one value of a road weighting function.
8. A system for designing a tread pattern for a tire, comprising: a device configured to obtain a footprint of the tire; and a processor configured to: create a predictive equation from values of scalable parameters related to footprints of a collection of tires; evaluate a target tread pattern by applying the predictive equation to the target tread pattern; and select the target tread pattern for the target tire based on the evaluation.
9. The system of claim 8, wherein the processor is further configured to determine the values of the scalable parameters by substantially minimizing an objective function related to a collection of tires.
10. The system of claim 9, wherein the objective function is based on differences between calculated groove wander based on the footprints of the collection of tires and measured groove wander obtained by measurement of the collection of tires in use.
11. The system of claim 10, wherein the calculated groove wander is further based on a road weighting function representative of a severity of impact of a groove spacing on groove wander.
12. The system of claim 10, wherein the calculated groove wander is based on a multiple road groove response determined from the footprint.
13. The system of claim 12, wherein the multiple road groove response relates a tire lateral force responsive to a groove spacing in a road section.
14. The system of claim 8, wherein the scalable parameters include at least one of: incremental displacements of tire tread edges, filtering limits to tire tread pattern, a regression offset, and at least one value of a road weighting function.
15. A computer-program product for designing a tread of a tire, the computer program product comprising a computer readable storage medium, the computer readable storage medium comprising computer executable instructions, wherein the computer readable storage medium comprises instructions to: create a predictive equation from values of scalable parameters related to footprints of a collection of tires; evaluate a target tread pattern by applying the predictive equation to the target tread pattern; and select the target tread pattern for the target tire based on the evaluation.
16. The computer-program product of claim 15, further comprising instructions to determine the values of the scalable parameters by substantially minimizing an objective function related to a collection of tires.
17. The computer-program product of claim 16, wherein the objective function is based on differences between calculated groove wander based on the footprints of the collection of tires and measured groove wander obtained by measurement of the collection of tires in use.
18. The computer-program product of claim 17, wherein the calculated groove wander is based on a multiple road groove response that relates a tire lateral force responsive to a groove spacing in a road section.
19. The computer-program product of claim 15, wherein the scalable parameters include at least one of: incremental displacements of tire tread edges, filtering limits to tire tread pattern, a regression offset, and at least one value of a road weighting function.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Other features, advantages and details appear, by way of example only, in the following detailed description, the detailed description referring to the drawings in which:
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[0012]
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DETAILED DESCRIPTION
[0018] The following description is merely exemplary in nature and is not intended to limit the present disclosure, its application or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0019] In accordance with an exemplary embodiment,
[0020]
[0021]
[0022]
[0023] Referring still to
y.sub.left,n=y.sub.left,n+.sub.ibEq. (1)
y.sub.right,n=y.sub.right,n.sub.ibEq. (2)
y.sub.ob,left=y.sub.ob,left.sub.obEq. (3)
y.sub.ob,right=y.sub.ob,right+.sub.obEq. (4)
where ib refers to the inboard edge of the tire, ob refers to the outboard edge of the tire, left refers to the leftmost edge of an interior tread edge transition, right refers to the rightmost edge of an interior tread edge transition, .sub.ib refers to an incremental displacement of interior edges of a tire tread, .sub.ob refers to an incremental displacement of outboard edges of a tire tread, and n is an interior edge number. The index n indicates the order or position of the interior tire tread row. Eqs. (1) and (2) represent the locations of the left and right tread rib edges of the n.sup.th tread row. Eqs. (3) and (4) represent the locations of the inboard and outboard edge of the tires.
[0024] In box 306, a transform is performed on the mathematical representation of the tire tread pattern. The transform creates an impulse function (y) at each tread edge. In box 308, a filter is applied to the impulse functions in order to obtain an individual groove response for the tire (in box 310). In various embodiments, the filter applied in box 308 is a butterworth filter or passband filter parameterized by adjustable filter parameters .sub.lo and .sub.hi. The individual road groove response is therefore obtained in box 310. The individual road groove response is in the form of a function expressing a lateral force on the tread as a function of the transverse distance. In box 312, the individual road groove response is convolved at a road groove spacing to determine a multiple road groove response. The multiple road groove response is the result of the convolving of the individual groove response from box 310 with a function representing a road surface with road grooves separated at groove intervals, wherein the groove interval is a parameter of the road surface function.
[0025]
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[0028]
GW.sub.m=.sub.gH.sub.m(g)w(g)+GW.sub.0Eq.(5)
[0029] The groove wander function GW.sub.m for each individual tire, m, is a summation of products of the multiple road groove response, H.sub.m(g), and the road weighting function, w(g) at each road groove spacing, g. An offset groove wander response GW.sub.0, common to all tires, is included in the calculation.
[0030] In box 708, an objective function is created and minimized or substantially minimized to determine suitable values of scalable parameters that can be used for the selected tire tread patterns. Scalable parameters q include parameters such as incremental displacements .sub.ib and .sub.ob, passband limit parameters .sub.lo and .sub.hi, offset groove wander parameter GW.sub.0, and road weighting function w(g), as shown mathematically in the set of Eq. (6):
q={w(q),GW.sub.0,.sub.ib,.sub.ob,.sub.lo,.sub.hi}Eq. (6)
[0031] The objective function seeks to minimize a sum of the squares of the difference between the calculated groove wander GW.sub.m and a measured groove wander GWact.sub.m. In various embodiments, the measured groove wander GWact.sub.m is measured by running a vehicle having the m.sup.th tire over a road section having the road weighting function w(g). The objective function Obj(q) is shown in Eq. (7):
Obj(q)=(GW.sub.mGWact.sub.m).sup.2Eq. (7)
where the summation is over M tires. The objective function is minimized or substantially minimized via the function of Eq. (8):
which determines values of the scalable parameters q for which the objective function is a minimum. Thus, by minimizing the objective function, a selected set of the scalable parameter can be found. In box 710, the values of the scalable parameters q that minimize the objective function are used in a predictive equation F(q) that evaluates a tread pattern for a tire either within the original collection of tires used for the development of the parameters or any subsequent target tire using the previously established parameters. In box 712, the predictive equation F(q) is used to determine or design a tread pattern most suitable for a selected road section. Alternatively, the predictive equation F(q) is used to select an existing tire for use over the road section based on the existing tread pattern of the tire. In particular, a candidate or target tread pattern, or its mathematical representation, can be entered into the predictive equation in order to evaluate the suitability of the target tread pattern for a road section. The evaluation can be in the form of a score or result output by the equation. The score or result can be compared to a threshold value in order to determine whether the candidate or target tire pattern is suitable for use on the road section. In various embodiments, after evaluation a target tread pattern can be added to the collection of tire patterns used in creating the predictive equation F(q) in order to update the predictive equation.
[0032] While the above disclosure has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from its scope. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the disclosure without departing from the essential scope thereof. Therefore, it is intended that the present disclosure not be limited to the particular embodiments disclosed, but will include all embodiments falling within the scope thereof.