METHOD FOR ESTIMATING A LONGITUDINAL FORCE DIFFERENCE ACTING ON STEERED WHEELS
20220314966 · 2022-10-06
Inventors
Cpc classification
B62D6/003
PERFORMING OPERATIONS; TRANSPORTING
B60W2530/00
PERFORMING OPERATIONS; TRANSPORTING
B60Q9/00
PERFORMING OPERATIONS; TRANSPORTING
B60T8/1755
PERFORMING OPERATIONS; TRANSPORTING
B60W10/18
PERFORMING OPERATIONS; TRANSPORTING
B60W30/045
PERFORMING OPERATIONS; TRANSPORTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
B60T8/17551
PERFORMING OPERATIONS; TRANSPORTING
B60W2552/00
PERFORMING OPERATIONS; TRANSPORTING
B62D6/006
PERFORMING OPERATIONS; TRANSPORTING
B60W10/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60W30/045
PERFORMING OPERATIONS; TRANSPORTING
B60T8/1755
PERFORMING OPERATIONS; TRANSPORTING
B60W10/18
PERFORMING OPERATIONS; TRANSPORTING
B60W10/20
PERFORMING OPERATIONS; TRANSPORTING
B62D6/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for estimating a longitudinal force difference ΔFx acting on steered axle wheels of a vehicle, the method comprising obtaining data from the vehicle related to an applied steering torque M.sub.steer associated with the steered axle wheels, obtaining a scrub radius value r.sub.s associated with the steered axle wheels, and estimating the longitudinal force difference ΔFx, based on the obtained data and on the scrub radius r.sub.s, as proportional to the applied steering torque M.sub.steer and as inversely proportional to the scrub radius r.sub.s.
Claims
1. A method for estimating a longitudinal force difference ΔF.sub.x acting on steered axle wheels of a vehicle, the method comprising: obtaining, by a control unit, data from the vehicle related to an applied steering torque M.sub.steer associated with the steered axle wheels, obtaining, by the control unit, a scrub radius value r.sub.s associated with the steered axle wheels, estimating, by the control unit, longitudinal force difference ΔF.sub.x based on the obtained data and on the scrub radius r.sub.s as proportional to the applied steering torque M.sub.steer and as inversely proportional to the scrub radius r.sub.s, and controlling, by the control unit, operation of the vehicle based on the longitudinal force difference ΔF.sub.x.
2. The method of claim 1, wherein the vehicle comprises an active steering system, and wherein the obtaining comprises obtaining data from the active steering system related to the applied steering torque M.sub.steer.
3. The method of claim 2, wherein the obtained data from the active steering system comprises steering wheel torque T.sub.steering and a combined gain factor K.sub.powersteer through a hydraulic steering gear of the vehicle, and wherein the longitudinal force difference ΔF.sub.x is estimated based on a relationship ΔF.sub.x=T.sub.steering*K.sub.powersteer/r.sub.s.
4. The method of claim 2, wherein the obtained data from the active steering system comprises a pressure value, a current value, or a voltage value related to the applied steering torque M.sub.steer.
5. The method of claim 2, wherein the active steering system comprises a feedback system configured to maintain a steering angle of the vehicle at a requested angle.
6. The method of claim 1, wherein the vehicle comprises one or more torque sensors and/or one or more force sensors arranged in connection to a steering system of the vehicle, wherein the obtaining comprises obtaining data from the one or more torque sensors and/or force sensors related to the applied steering torque M.sub.steer.
7. The method of claim 6, wherein the estimating comprises filtering a time series of obtained data values from the active steering system or from the one or more torque sensors.
8. The method of claim 1, comprising determining a relationship between a brake control input signal and a resulting brake force on the steered wheels, by applying a plurality of brake control input signals at the steered wheels, and monitoring the longitudinal force difference ΔF.sub.x for each applied brake control input signal, and determining the relationship based on the applied brake control input signals and on the resulting longitudinal force differences.
9. The method of claim 8, comprising estimating a brake gain K.sub.BG.sub.
10. The method of claim 8, wherein controlling, by the computing device, operation of the vehicle based on the longitudinal force difference ΔF.sub.x, comprises: calibrating a brake system of the vehicle based on the determined relationship between the brake control input signal and the resulting brake force.
11. The method of claim 1, comprising detecting fault in the vehicle by: determining an expected longitudinal force difference ΔF.sub.x,expect based on requested torques on left and right steered wheels respectively, and on rolling radii associated with the left and right steered wheels, respectively, comparing the expected longitudinal force difference ΔF.sub.x,expect to the estimated force difference ΔF.sub.x, and detecting fault in the vehicle in case of a discrepancy between ΔF.sub.x,expect and ΔF.sub.x.
12. The method of claim 11, wherein controlling, by the computing device, operation of the vehicle based on the longitudinal force difference ΔF.sub.x, comprises: triggering a warning signal or an emergency maneuver by the vehicle in case fault in the vehicle is detected.
13. The method of claim 1, wherein controlling, by the computing device, operation of the vehicle based on the longitudinal force difference ΔF.sub.x, comprises: controlling stability of the vehicle by: determining a total yaw moment or torque imposed on the vehicle as M.sub.yaw=ΔF.sub.x*L.sub.w, where L.sub.w is a track width of a front axle of the vehicle, and allocating brake torques and/or steering angles to compensate for the total yaw, thereby controlling the stability of the vehicle.
14. The method of claim 1, comprising estimating longitudinal force acting on a first steered wheel as F.sub.x,1=ΔF.sub.x−F.sub.x,2, where F.sub.x,2=p.sub.C.sub.
15. The method of claim 14, wherein controlling, by the computing device, operation of the vehicle based on the longitudinal force difference ΔF.sub.x comprises: controlling the vehicle based on the estimated longitudinal force F.sub.x,1acting on the first steered wheel.
16. The method of claim 1, comprising monitoring a wheel speed value and/or wheel slip condition associated with the steered axle wheels of the vehicle, and detecting fault in the vehicle and/or classifying road condition also based on the wheel speed value and/or wheel slip condition.
17-19. (canceled)
20. A vehicle comprising a control unit configured to: obtain data from the vehicle related to an applied steering torque M.sub.steer associated with the steered axle wheels, obtain a scrub radius value r.sub.s associated with the steered axle wheels, estimate, by the control unit, the longitudinal force difference ΔF.sub.x based on the obtained data and on the scrub radius r.sub.s as proportional to the applied steering torque M.sub.steer and as inversely proportional to the scrub radius r.sub.s, and control, by the control unit, operation of the vehicle based on the longitudinal force difference ΔF.sub.x.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples. In the drawings:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION
[0038] The invention will now be described more fully hereinafter with reference to the accompanying drawings, in which certain aspects of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments and aspects set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. Like numbers refer to like elements throughout the description.
[0039] It is to be understood that the present invention is not limited to the embodiments described herein and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.
[0040]
[0041] The vehicle 1 has a pair of steerable wheels 104, 106 arranged on a respective left and right hand side of a front axle 102 of the vehicle 1. The front axle 102 is the foremost located axle of the vehicle 1. The vehicle 1 also comprises a pair of first rear wheels 108, 110 connected to a first rear axle 112, and a pair of second rear wheels 114, 116 connected to a second rear axle 118. The first rear axle 112 is arranged in front of the second rear axle 118 as seen in the longitudinal direction of the vehicle 1. The pair of first rear wheels 108, 110 and the pair of second rear wheels 114, 116 are often but not always arranged as non-steerable wheels. The vehicle 1 also comprises a pair of first rear wheels 108, 110 connected to the first rear axle 112, and the pair of second rear wheels 114, 116 connected to the second rear axle 118. The front axle 102 of vehicle 1 has a track width L.sub.w.
[0042]
[0043] An example vehicle steering system will be discussed in more detail below in connection to
[0044] The front axle 102 is arranged at a distance I.sub.1, from a center of mass 202 of the vehicle 1, the first rear axle 112 is arranged at a distance I.sub.2 from the center of mass 202 of the vehicle 1, and the second rear axle 118 is arranged at a distance I.sub.3 from the center of mass 202 of the vehicle 1. The center of mass 202 is a position of the vehicle 1 at which total global forces affecting the vehicle 1 can be expressed in a known manner.
[0045] In the following, the x-axis is extending in the longitudinal direction of the vehicle 1, the y-axis is extending in the transversal direction of the vehicle 1 and the z-axis is extending in the vertical direction of the vehicle 1. During a turning maneuver, the vehicle 1 is exposed to a torque M.sub.z at the center of mass 202. Also, the vehicle is exposed to a global longitudinal force F.sub.x and a global lateral force F.sub.y.
[0046] Moreover, when the steerable wheels 104, 106 of the front axle 102 is exposed to the steering angle δ, the steerable wheel 104 on the left hand side is exposed to a longitudinal force F.sub.x,104 and a lateral force F.sub.y,104 while the steerable wheel 106 on the right hand side is exposed to a longitudinal force F.sub.x,106 and a lateral force F.sub.y,106.
[0047] The sum of the lateral forces of the steerable wheels 104, 106 on the left and right hand sides can be expressed as a total front wheel lateral force. The sum of the front wheel longitudinal forces may be increased and reduced when e.g. propelling the vehicle or braking the vehicle.
[0048] The first rear wheels 108, 110 are exposed to respective lateral forces F.sub.y,108 and F.sub.y,110 and the second rear wheels 114, 116 are exposed to respective lateral forces F.sub.y,114 and F.sub.y,116. In the example of
[0049] Turning now to
[0050] Starting with
[0051] Turning to
[0052] Scrub radius and caster angle are well known concepts and will therefore not be discussed in more detail herein.
[0053]
[0054] A longitudinal force difference ΔF.sub.x=F.sub.x,104−F.sub.x,106 gives rise to a steering torque M.sub.steer=ΔF.sub.x*r.sub.s. The underlying mechanics of this steering torque were discussed in, e.g., WO 2019/072379 A1 and will therefore not be discussed in more detail herein.
[0055] The methods and control units disclosed herein are based on the realization that the steering torque M.sub.steer, or, equivalently, a lateral steering force acting on the tie rod 510, or a force acting on a link rod or knuckle, can be obtained from a torque sensor, a force sensor, or from an active steering system that works against this torque to maintain a given turning operation by the vehicle. Since the scrub radius is fixed and can be obtained from, e.g., vehicle design data, the longitudinal force difference can be estimated based on the relationship ΔF.sub.x=M.sub.steer/r.sub.s. I.e., a proportional relationship between longitudinal force difference ΔF.sub.x and applied steering torque M.sub.steer, and an inversely proportional relationship between longitudinal force difference ΔF.sub.x and scrub radius r.sub.s.
[0056] With reference to
[0057] For instance, the longitudinal force difference may simply be determined as ΔF.sub.x=M.sub.steer/r.sub.s. However, it is appreciated that the longitudinal force difference can be estimated in many different ways based on the proportional relationship between longitudinal force difference and applied steering torque, and on the inversely proportional relationship between longitudinal force difference and scrub radius. Proportionality constants a and b may, e.g., be used in a more general expression given by ΔF.sub.x=a*M.sub.steer/b*r.sub.s . Other more advanced expressions can also be used with similar effect. For instance, at larger steer angles factors a and b may not be constant but known. This relationship is most accurate when there is little or no movement in the steering system, i.e., the steer angle is near constant. When the steer angle is not in steady state there will be acceleration, inertia and friction terms which may be considered for increased accuracy.
[0058] The difference can, e.g., be directly calculated, or it can be estimated based on a model built around the relationship between longitudinal force difference and applied steering torque and scrub radius. Thus, it is appreciated that the relationship ΔF.sub.x=M.sub.steer/r.sub.s. should be given a broad interpretation to encompass also similar expressions for longitudinal force difference as function of scrub radius and applied steering torque.
[0059] Vehicles equipped with an active steering system can often provide a measurement of their applied steering torque. When a difference in longitudinal force is present on opposite sides of the steered axle, this can be observed in the active steering system's applied torque (i.e. the larger the difference in longitudinal forces acting on the wheels on the steered axle, the larger the required active steering system torque). According to some aspects the methods disclosed herein comprises obtaining S11 data from an active steering system 300 of the vehicle 1 related to the applied steering torque M .sub.steer.
[0060] The active steering system may according to some other aspects comprise a feedback system configured to maintain a steering angle of the vehicle at a requested angle.
[0061] The data can also be obtained indirectly, for instance, a steering wheel torque applied by, e.g., an electrical motor may be known in addition to a hydraulic gain applied onto the electrical motor generated torque. In other words, obtained data from the active steering system 300 may comprise steering wheel torque T.sub.steering and a combined gain factor K.sub.powersteer through a hydraulic steering gear 340 of the vehicle 1, whereupon the longitudinal force difference ΔF.sub.x is estimated based on a relationship ΔF.sub.x=T.sub.steering*K.sub.powersteer/r.sub.s.
[0062] The applied steering torque can also be inferred from, e.g., a pressure value, a current value or a voltage value related to the applied steering torque M.sub.steer.
[0063] Also, some vehicles comprise torque sensors able to output applied steering torque. Thus, according to some aspects, the vehicle 1 comprises one or more torque sensors 360, 360′ arranged in connection to the steering system of the vehicle 1. The method then comprises obtaining S12 data from the one or more torque sensors 360, 360′ related to the applied steering torque M.sub.steer.
[0064] It is appreciated that various known filtering techniques and noise suppression signal processing techniques, e.g., Kalman filtering, can be applied to the obtained data values in order to improve performance of the force difference estimation. In other words, the estimating optionally comprises filtering S31 a time series of obtained data values from the active steering system 300 or from the one or more torque sensors 360, 360′.
[0065] Given an estimate of ΔF.sub.x obtained by the methods discussed above, a number of applications and vehicle functions can be realized and/or improved compared to known methods. An overview of such applications will now be given, with reference to
[0066] These applications are not directly dependent on the methods of determining longitudinal force difference disclosed herein but can be used with any methods for determining longitudinal force difference.
[0067] Unintentional uneven brake torque distribution on the front axle of a truck can result in severe ‘pulling’ of the vehicle to one side and possible vehicle instability. Such a situation can occur when the brake system does not correctly calculate the force generated at each of the front wheels; this could be due, e.g., to bad calibration of brake pressure transducers, errors in pressure estimation, different brake gains at different wheels, mechanical failure in brake actuator, etc.
[0068] If the actual difference in braking force between two wheels on the same axle can be determined, this information can be used by the vehicle motion controller to adapt the actuator requests to deal with the situation and to prevent vehicle instability. By adapting actuator requests in this way, requirements on, e.g., the brake system hardware may be relaxed, which is an advantage.
[0069] Large variations in ‘brake gain’, i.e., the proportionality factor between brake control input signal like brake chamber pressure value and actual brake force in the brake system can be seen in normal driving. The brake gain can be influenced by, e.g., brake pad wear, temperature, dirt, corrosion, mechanical adjustment in the brake actuator, etc. It is difficult to sense the ‘actual’ brake gain during normal driving. Accurate knowledge of the current vehicle brake gain is needed to be able to achieve predictable and accurate brake torque responses from the brake system.
[0070] With reference to
[0071] I.e., T.sub.L=p*K.sub.BG.sub.
[0072] Having an accurate estimate of the brake gain K.sub.BG is important in order to ensure that global requests (for example for a given acceleration) are correctly fulfilled by the brake system. As there are typically no direct torque measurement sensors at the wheels, the brake gains are typically preprogrammed with a fixed value (even though it can vary significantly).
[0073] According to an example method, during normal braking events, the brake torques distributed to the front axle can be, on some occasions, deliberately sent such as there is a slightly higher brake torque request on one of the wheels of the steered axle compared to the other (e.g. the left hand brake device is sent a higher torque request than the right hand wheel). In a subsequent braking event, the other wheel can be given the higher request (the right hand wheel in this example).
[0074] The different brake control input signals should preferably be spaced somewhat apart in magnitude in order to distinguish system response more easily.
[0075] According to aspects, these calibration events should preferably only be carried out when no anti-lock braking system (ABS) interventions are present (e.g. no significant wheel slip during braking), and also preferably when the vehicle is driving in an approximately straight line.
[0076] By combining the achieved brake pressure (at each wheel) and the measured ΔFx from the steering system, the individual brake gains for each of the two wheels can be determined as illustrated in
[0077] In the example 600 shown in
[0078] In the first braking event, a brake control signal p.sub.1 is requested on the left hand wheel 621, and p.sub.2 is requested on the right 612 (with p.sub.2 being higher than p.sub.1). A difference in longitudinal force is measured through the steering system, ΔFx.sub.a. In the second braking event, p.sub.1 is instead requested from the right hand wheel 611 and p.sub.2 from the left 622. A difference in longitudinal force is again measured in the steering system, ΔFx.sub.b.
[0079] The individual brake gains can now be inferred by rearranging the equilibrium equations in total torque for the two braking events, i.e.:
[0080] As long as the rolling radii R.sub.L, R.sub.R are known the above equations can be solved for K.sub.BG.sub.
[0081] It is again appreciated that the brake control input signals p1, p2 are preferably separated by some distance in order to provide a more distinct and measurable longitudinal force difference.
[0082] An advantage of this brake gain estimation method compared to others known method is that this method can be used even when other wheels on the vehicle are braking whereas vehicle acceleration based brake gain estimation methods must take into account all longitudinal forces acting on the whole vehicle combination.
[0083] The example 600 in
[0084] To summarize, with reference to
[0085] For example, the method may comprise estimating S41 a brake gain K.sub.BG.sub.
where p1 and p2 are applied brake pressure values, K.sub.BG.sub.
[0086] The determined relationship between brake control input signal such as brake chamber pressure and resulting brake force or brake torque can be advantageously used for brake system calibration. Thus, there is disclosed herein methods for calibrating S42 a brake system of the vehicle 1 based on the determined relationship between brake control input signal and resulting brake force.
[0087] A similar method can be devised based on acceleration instead of brake pressure, where the vehicle acceleration a.sub.x is measured (instead of steer wheel torque) when deliberate brake force differences are requested from any two wheels on the vehicle. At least two braking events are again required, where deliberate uneven braking is imposed, in a similar way to that described above (noting that now the sum of forces in the longitudinal direction is measured using a.sub.x signal, as opposed to comparing the difference to the steering wheel torque, as ΣF=ma. Two independent equations can once again be generated for two braking events and solved to obtain the individual brake gains:
[0088] Where a.sub.x.sub.
[0089] This acceleration-based method can be combined with the steering torque-based method discussed above to improve the estimation of, e.g., brake gains, or to calibrate vehicle steering, or to detect faults in the vehicle steering system.
[0090] The methods disclosed herein can also be used for detecting fault in the vehicle 1, as will now be discussed. During normal operation, a vehicle control unit 101, such as a Vehicle Motion Management controller (VMM), may generate individual brake torque requests on the left and right hand wheels of the steered axle as well as on other axles of the vehicle in order to control vehicle motion. The requested wheel torques on the steered axle's wheels (T.sub.L and T.sub.R on the left hand and right hand wheels, respectively) can be used to calculate an expected difference in longitudinal brake force ΔF.sub.x,expect=T.sub.L/R.sub.L−T.sub.R/R.sub.R, where T.sub.L and T.sub.R are requested torques on left and right steered wheels 104, 105 respectively, and where R.sub.L and R.sub.R are rolling radii associated with the left and right steered wheels 104, 105, respectively, on the front axle. ΔF.sub.x,expect can then be compared to the ΔFx estimated by the herein disclosed methods. When a large difference is detected between expected and estimated longitudinal force difference, this can be interpreted as fault in the brake system on the front axle; which can be reported to the human driver and or to some VMM fault handler. This check should preferably only be carried out when no ABS intervention is present (i.e. there is no significant wheel slip on either of the wheels). The check is also preferably carried out only when the steering angle is constant or at least near constant, since otherwise there will be inertia effects influencing the end result.
[0091] To summarize, with reference to
[0092] determining S51 an expected longitudinal force difference as ΔF.sub.x,expect=T.sub.L/R.sub.L−T.sub.R/R.sub.R, where T.sub.L and T.sub.R are requested torques on left and right steered wheels 104, 105 respectively, and where R.sub.L and R.sub.R are rolling radii associated with the left and right steered wheels 104, 105, respectively,
[0093] comparing S52 the expected longitudinal force difference ΔF.sub.x,expect to the estimated force difference ΔF.sub.x, and
[0094] detecting S53 fault in the vehicle 1 in case of a discrepancy between ΔF.sub.x,expect and ΔF.sub.x.
[0095] The detection principle used, i.e., to decide when there is a large enough discrepancy between expected and estimated longitudinal force difference may vary between implementations. A pre-configured threshold may be enough in many applications, perhaps coupled with some time windowing function, i.e., a discrepancy is then an event where the magnitude of the difference between expected and estimated force difference is above some threshold for at least some pre-determined period of time. However, more advanced detection algorithms can of course also be applied, such as statistical detections methods and the like. Such detection principles and algorithms are known, and will therefore not be discussed in more detail herein.
[0096] According to aspects, the method also comprises triggering S54 a warning signal or emergency maneuver by the vehicle 1 in case fault in the vehicle 1 is detected.
[0097] The wheel speeds and/or wheel slip condition state should preferably also be monitored. If a large ΔF.sub.x is estimated, but both wheels are free rolling (with no significant large slip) then it is likely that a fault in the brake system or a tyre blow out or the like has occurred. On the other hand, if a large ΔF.sub.x is estimated and one wheel is at the same time in a slipping state due to, e.g., poor road friction, it instead suggests that the difference may be due to the road condition being slippery and should therefore not be registered as a fault. In that case one may instead ‘trust’ the ΔF.sub.x estimate from the brake system more on the wheel that is not slipping.
[0098] To summarize, with reference to
[0099] In situations where wheel slip occurs (e.g. during ABS intervention) the torque response of the brake device becomes more complicated due to the dynamics of the wheel, and non-linear behavior of the tire-road contact patch. In cases where ABS is active, large differences in longitudinal forces can develop on the left and right side of the vehicle, which may not be obvious from the brake control signals, e.g., the brake pressure signals (depending on the friction conditions present on the road on either side of the truck). In this case the estimated ΔF.sub.x can provide a direct measurement of the difference in brake force achieved during the ABS event. The total yaw moment/torque imposed on the vehicle by this difference can be calculated via the relationship M.sub.yaw=ΔF.sub.x*L.sub.w, where L.sub.w is the track width of the vehicle 1 front axle shown in
[0100] To summarize, with reference to
[0101] determining S61 a total yaw moment or torque imposed on the vehicle 1 as M.sub.yaw=ΔF.sub.x*L.sub.w, where L.sub.w is a track width of the front axle of the vehicle 1, and
[0102] allocating S62 brake torques and/or steering angles to compensate for the total yaw, thereby controlling stability of the vehicle 1.
[0103] ‘Split friction’ braking is a difficult scenario for both human and automated drivers. In this situation hard braking is requested when the vehicle is experiencing different tyre-road friction conditions on the left and right sides of the vehicle—e.g. the left side of the vehicle may be driving on asphalt, while the right side is on ice.
[0104] It is important for the vehicle's motion control system to be able to detect such dangerous situations and adapt the braking requests sent to the different sides of the vehicle in order to prevent the vehicle from ‘spinning out’ or otherwise losing control. The detection and adaption must be relatively fast (e.g. less than one second response time) to prevent accidents in many scenarios.
[0105] In braking situations where one side of the vehicle is on a slippery surface (for example ice) and controlled by ABS (to prevent its wheels locking) and the other is on a less slippery surface (for example dry asphalt) the estimated ΔF.sub.x can be combined with the estimated brake torques generated from the brake system to calculate the actual brake force achieved on the low friction side of the vehicle.
[0106] For example: if the right hand side of the vehicle is on a high friction surface and its wheels are not slipping, its brake pressure may be trusted as a reasonable estimate of the applied F.sub.x at that wheel;
F.sub.X.sub.
[0107] If the other side of the vehicle is on a low friction surface it will most likely experience wheel slip (and probably ABS intervention), this can be seen in the wheel speed signals. While the wheels are slipping F.sub.X.sub.
[0108] F.sub.X.sub.
[0109] To summarize, with reference to
[0110] The disclosed methods optionally also comprise controlling S71 the vehicle 1 based on the estimated longitudinal force F.sub.x,1 acting on the first steered wheel. For example, by limiting brake force on the high friction wheel so as to not unbalance the vehicle during split friction braking, vehicle stability can be maintained even in difficult split friction braking scenarios. It is appreciated that the first steered wheel may be either the left 104 or the right 106 wheel, and the second steered wheel is the other wheel.
[0111]
[0112] Particularly, the processing circuitry 810 is configured to cause the control unit 101 to perform a set of operations, or steps, such as the methods discussed in connection to
[0113] The storage medium 830 may also comprise persistent storage, which, for example, can be any single one or combination of magnetic memory, optical memory, solid state memory or even remotely mounted memory.
[0114] The control unit 101 may further comprise an interface 820 for communications with at least one external device. As such the interface 820 may comprise one or more transmitters and receivers, comprising analogue and digital components and a suitable number of ports for wireline or wireless communication.
[0115] The processing circuitry 810 controls the general operation of the control unit 101, e.g., by sending data and control signals to the interface 820 and the storage medium 830, by receiving data and reports from the interface 820, and by retrieving data and instructions from the storage medium 830. Other components, as well as the related functionality, of the control node are omitted in order not to obscure the concepts presented herein.
[0116]