Claims
- 1. Method for determining the road handling of a tire of a wheel for a vehicle, said tire being comprised by selected mixes of rubber and reinforcing materials, said method comprising:
a) a first description of said tire by means of a first, concentrated-parameter, physical model, said first physical model comprising a rigid ring which represents the tread band provided with inserts, a belting structure and corresponding carcass portion of said tire, a disk which represents a hub of said wheel and beading of said tire, principal springs and dampers connecting said rigid ring to said hub and representing sidewalls of said tire and air under pressure inside said tire, supplementary springs and dampers representing deformation phenomena of said belting structure through the effect of a specified vertical load and a brush model simulating physical phenomena in an area of contact between said tire and a road, said area of contact having a dynamic length 2a, b) a definition of selected degrees of freedom of said first physical model, and c) an identification of equations of motion suitable for describing the motion of said first physical model under selected dynamic conditions, characterized in that it comprises d) the definition of said concentrated parameters, said concentrated parameters consisting of the mass Mc and a diametral moment of inertia Jc of said rigid ring, the mass Mm and a diametral moment of inertia Jm of said disk, structural stiffnesses Kc and structural dampings Rc respectively of said principal springs and dampers, and residual stiffnesses Kr and residual dampings Rr respectively of said supplementary springs and dampers, wherein
said structural stiffnesses Kc consist of lateral stiffness Kcy between said hub and said belt, camber torsional stiffness Kcθx between said hub and said belt and yawing torsional stiffness Kcθz between said hub and said belt, said structural dampings Rc consist of lateral damping Rcy between said hub and said belt, camber torsional damping Rcθx between said hub and said belt and yawing torsional damping Rcθz between said hub and said belt, said residual stiffnesses Kr consist of residual lateral stiffness Kry, residual camber torsional stiffness Krθx and residual yawing torsional stiffness Krθz, and said residual dampings Rr consist of residual lateral damping Rry, residual camber torsional damping Rrθx and residual yawing torsional damping Rrθz, e) a description of said tire by means of a second, finite-element model comprising first elements with a selected number of nodes, suitable for describing said mixes, and second elements suitable for describing said reinforcing materials, each first finite element being associated with a first stiffness matrix which is determined by means of a selected characterization of said mixes and each second element being associated with a second supplementary stiffness matrix which is determined by means of a selected characterization of said reinforcing materials, f) a simulation on said second, finite-element model of a selected series of virtual dynamic tests for exciting said second model according to selected procedures and obtaining transfer functions and first frequency responses of selected quantities, measured at selected points of said second model, g) a description of the behaviour of said first physical model by means of equations of motion suitable for representing the above dynamic tests for obtaining second frequency responses of said selected quantities, measured at selected points of said first physical model, h) a comparison between said first and said second frequency responses of said selected quantities to determine errors that are a function of said concentrated parameters of said first physical model, and i) the identification of values for said concentrated parameters that minimize said errors so that said concentrated parameters describe the dynamic behaviour of said tire, j) the determination of selected physical quantities suitable for indicating the drift behaviour of said tire, and k) the evaluation of the drift behaviour of said tire by means of said physical quantities.
- 2. Method according to claim 1, characterized in that said selected physical quantities are the total drift stiffness Kd of said tire, in turn comprising the structural stiffness Kc and the tread stiffness Kb, and the total camber stiffness Kγ of said tire.
- 3. Method according to claim 1, characterized in that it also comprises
c) a definition of said brush model, said brush model having a stiffness per unit of length cpy and comprising at least one rigid plate, at least one deformable beam having a length equal to the length 2a of said area of contact and at least one microinsert associated with said beam, said microinsert consisting of at least one set of springs distributed over the entire length of said beam, said springs reproducing the uniformly distributed, lateral and torsional stiffness of said area of contact.
- 4. Method according to claims 1 and 3, characterized in that said degrees of freedom referred to at previous point b) are composed of:
absolute lateral displacement ym of said hub, absolute yaw rotation σm of said hub and absolute rolling rotation ρm of said hub, relative lateral displacement yc of said belt with respect to said hub, relative yaw rotation σc of said belt with respect to said hub and relative rolling rotation ρc of said belt with respect to said hub, absolute lateral displacement yb of said plate, absolute yaw rotation σb of said plate and absolute rolling rotation ρb of said plate, and absolute lateral displacement ys of the bottom ends of said at least one microinsert.
- 5. Method according to the claim 1, characterized in that said selected series of virtual dynamic tests referred to at previous point f) comprises a first and a second test with said tire blown up and not pressed to the ground, said first test consisting in imposing a translation in the transverse direction y on the hub and in measuring the lateral displacement yc of at least one selected cardinal point of said belt and the force created between said hub and said belt in order to identify said mass Mc, said lateral stiffness Kcy, and said lateral damping Rcy, said second test consisting in imposing a camber rotation θx on said hub and in measuring the lateral displacement of at least one selected cardinal point of said belt yc and the torque transmitted between said hub and said belt in order to identify said diametral moment of inertia Jc, said camber torsional stiffness Kcθx, said camber torsional damping Rcθx, said yawing torsional stiffness Kcθz and said yawing torsional damping Rcθz.
- 6. Method according to claims 1 and 5, characterized in that said selected series of virtual dynamic tests referred to at previous point f) also comprises a third and a fourth test with said tire blown up, pressed to the ground and bereft of said tread at least in said area of contact, said third test consisting in applying to said hub a sideward force in the transverse direction Fy and in measuring the lateral displacement yc of said hub and of at least two selected cardinal points of said belt in order to identify said residual lateral stiffness Kry, said residual lateral damping Rry,said camber residual stiffness Krθx, and said camber residual damping Rrθx, said fourth test consisting in applying to said hub a yawing torque Cθz and in measuring the yaw rotation of said hub and the lateral displacement yc of at least one selected cardinal point of said belt in order to identify said residual yawing stiffness Krθz and said residual yawing damping Rrθz.
- 7. Method according to claims I and 3, characterized in that it also comprises
m)an application to said first physical model of a drift angle α, starting from a condition in which said at least one beam is in a non-deformed configuration and said brush model has a null snaking σb, n) the determination of the sideward force and the self-aligning torque that act on said hub through the effect of said drift and which depend on the difference α-σb and on the deformation of said at least one beam, o) the determination of the deformation curve of said at least one beam, p) an application of said sideward force and said self-aligning torque to said second, finite-element model in order to obtain a pressure distribution on said area of contact and q) the determination of the sideward force and the self-aligning torque that act on said hub through the effect of said drift α on said first physical model, that depend on the pressure distribution calculated in the previous step p), r) a check, by means of said pressure distribution obtained in the previous step p), that said sideward force and said self-aligning torque are substantially similar to those calculated in previous step q), s) a determination of the sideward force and of the self-aligning torque for said angle of drift, and t) repetition of the procedure from step m) to step s) for different values of the drift angle α to obtain drift, force and self-alignment torque curves, suitable for indicating the drift behaviour under steady state conditions of said tire, and u) the evaluation of the steady state drift behaviour of said tire.
- 8. Method according to claim 1, characterized in that it also comprises
i) a simulation of the behaviour of said first physical model in the drift transient state by means of equations of motion reproducing selected experimental drift tests, and ii) the determination, with a selected input of a steering angle imposed on said hub, of the pattern with time of the selected free degrees of freedom of said first physical model, of the sideward force and of the self-aligning torque in said area of contact in order to determine the length of relaxation of said tire.
- 9. Method according to claim 1, characterized in that said first elements of said second, finite-element model have linear form functions and their stiffness matrix is determined by means of selected static and dynamic tests conducted on specimens of said mixes, whereas the stiffness matrix of said second elements is determined by means of selected static tests on specimens of said reinforcing materials.
- 10. Tire for a wheel of a vehicle, said tire being made from selected mixes of rubber and reinforcing materials and comprising a carcass, a belting structure, a tread band provided with inserts, shoulders, sidewalls, beads provided with bead wires and bead fillings, said tire being representable by means of a first, concentrated-parameter, physical model and a brush model with a road, characterized in that said concentrated parameters comprise structural stiffnesses Kc consisting of lateral stiffness Kcy, camber torsional stiffness Kcθx and yawing torsional stiffness Kcθz, structural dampings Rc consisting of lateral damping Rcy, camber torsional damping Rcθx and yawing torsional damping Rcθz, residual stiffnesses Kr consisting of residual lateral stiffness Kry, residual camber torsional stiffness Krθx and residual yawing torsional stiffness Krθz, and residual dampings Rr consisting of residual lateral damping Rry, residual camber torsional damping Rrθx and residual yawing torsional damping Rrθz,
- 11. Tire according to claim 10, characterized in that said selected physical quantities are the total drift stiffness Kd of said tire, in turn comprising the structural stiffness Kc and the tread stiffness Kb, and the total camber stiffness Kγ of said tire.
- 12. Tire according to claim 11, characterized in that the total drift stiffness Kd and the total camber stiffness Kγ are within the following value ranges:
Kd=500-2,000 [N/g]Kγ=40-3,500 [N/g]where g=degree.
- 13. Tire according to claim 11, characterized in that the structural stiffness Kc and the tread stiffness Kb are within the following value ranges:
Kc=8,000-30,000 [N/g]Kb=150-400 [N/g]where g=degree.
Priority Claims (1)
Number |
Date |
Country |
Kind |
98830209.7 |
Apr 1998 |
EP |
|
Parent Case Info
[0001] This application is based on European Patent Application No. 98830209.7 filed on Apr. 7, 1998 and U.S. Provisional Application Ser. No. 60/092,594 filed on Jul. 10, 1998, the content of which is incorporated hereinto by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60092594 |
Jul 1998 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09286671 |
Apr 1999 |
US |
Child |
09842409 |
Apr 2001 |
US |