Method and device for operating a clutch

Abstract
A method and device for operating a clutch between an internal combustion engine and at least one driven wheel of a vehicle, a torque being transmitted between the internal combustion engine and the driven wheel by pressing the clutch together via an application force or an application pressure, and the application force or the application pressure being controlled as a function of a clutch slip in the clutch when the torque is transmitted between the internal combustion engine and the driven wheel and a setpoint clutch slip.
Description


BACKGROUND INFORMATION

[0001] The present invention relates to a method and a device for operating a clutch between an internal combustion engine and at least one driven wheel of a vehicle, a torque being transmitted between the internal combustion engine and the driven wheel by pressing the clutch together via an application force or an application pressure.


[0002] If a clutch is operated with slip, it is possible to draw inferences concerning the clutch torque transmitted if the coefficient of friction is known. The intended use of this torque information is to determine the transmission input torque. Precise knowledge of the transmission input torque is of particular significance for continuously variable transmissions (CVT) so that the safety pressure when controlling the belt tension of belt transmissions can be reduced and the transmission efficiency can be increased.


[0003] The object of the present invention is to improve the operation of a clutch.


[0004] The object is achieved by a method and a device for operating a clutch between an internal combustion engine and at least one driven wheel of a vehicle according to claim 1 and claim 5 respectively, a torque being transmitted between the internal combustion engine and the driven wheel to operate a clutch between an internal combustion engine and at least one driven wheel of a vehicle by pressing the clutch together via an application force or an application pressure, the application force or the application pressure being controlled or regulated as a function of a clutch slip in the clutch when the torque is transmitted between the internal combustion engine and the driven wheel, and a setpoint clutch slip.


[0005] In an advantageous embodiment of the present invention, the application force or the application pressure is controlled or regulated as a function of the difference between the clutch slip and the setpoint clutch slip.


[0006] In a further advantageous embodiment of the present invention, the application force or the application pressure is regulated by a slip controller.


[0007] In a further advantageous embodiment of the present invention, the application force or the application pressure is regulated by an inverse clutch model which calculates the application force or the application pressure as a function of the torque transmitted via the clutch.


[0008] The device according to the present invention for operating a clutch between an internal combustion engine and at least one driven wheel of a vehicle, in which a torque is transmitted between the internal combustion engine and the driven wheel by pressing the clutch together via an application force or an application pressure, is provided with a slip controller to regulate the application force or the application pressure as a function of a clutch slip in the clutch when the torque is transmitted between the internal combustion engine and the driven wheel, and a setpoint clutch slip.


[0009] In an advantageous embodiment of the present invention, the slip controller has an inverse clutch model to calculate the application force or the application pressure as a function of the torque transmitted via the clutch.


[0010] In a further advantageous embodiment of the present invention, the slip controller has a regulator to calculate a differential torque as a function of the clutch slip and the setpoint clutch slip.


[0011] In a further advantageous embodiment of the present invention, the input variable of the inverse clutch model is a function of the differential torque.


[0012] In a further advantageous embodiment of the present invention, the sum of the differential torque and the engine torque generated by the internal combustion engine is an input variable of the inverse clutch model.


[0013] In a further advantageous embodiment of the present invention, the coefficient of friction of the clutch is a parameter of the inverse clutch model.


[0014] In a further advantageous embodiment of the present invention, an adapter is provided to adapt the coefficient of friction of the clutch.







[0015] Further details and advantages can found in the following description of exemplary embodiments.


[0016]
FIG. 1 shows a drive unit for a motor vehicle


[0017]
FIG. 2 shows a clutch controller


[0018]
FIG. 3 shows a slip regulator


[0019]
FIG. 4 shows a flow chart


[0020]
FIG. 5 shows a coefficient of friction-slip characteristic curve


[0021]
FIG. 6 shows a flow chart


[0022]
FIG. 7 shows an illustration of the flow chart of FIG. 4


[0023]
FIG. 8 shows an illustration of the flow chart of FIG. 6


[0024]
FIG. 9 shows an advantageous exemplary embodiment of a clutch controller


[0025]
FIG. 10 shows an alternative exemplary embodiment for a slip controller


[0026]
FIG. 11 shows a graph of slip plotted over time


[0027]
FIG. 12 shows a graph of slip plotted over time


[0028]
FIG. 13 shows a clutch






[0029]
FIG. 1 shows a drive unit for a motor vehicle. Reference symbol 1 identifies an internal combustion engine which is connected to an automatic transmission 2 via a shaft 4. Automatic transmission 2 is designed in a particularly advantageous manner as a belt transmission. Automatic transmission 2 is connected via a clutch input shaft 5, a clutch 3, a clutch output shaft 6, and a differential 7 to driven wheels 8, 9 for the purpose of propelling the motor vehicle. By pressing clutch 3 together with an application pressure p, it is possible to adjust the torque which is transmitted via clutch 3. In order to adjust the torque transmitted via clutch 3, a clutch controller 12 is provided, which by specifying a setpoint application pressure p*, adjusts the application pressure in clutch 3. The application pressure is synonymous with an application force with which clutch 3 is pressed together.


[0030] Input variables in clutch controller 12 include rotational speed nE of clutch input shaft 5 which is measured by a rotational speed sensor 10, rotational speed nA of clutch output shaft 6 which is measured by a rotational speed sensor 11, transmission ratio i of automatic transmission 2 and a setpoint value Δn* for the clutch slip of clutch 3 (setpoint clutch slip) as well as optionally torque TM of internal combustion engine 1 as well as information ΔTM relating to the inaccuracy of the information relating to torque TM of internal combustion engine 1. Clutch slip Δn is defined as


Δn=nE−nA


[0031] Torque TM of internal combustion engine 1 and information ΔTM relating to the inaccuracy of the information relating to torque TM of internal combustion engine 1 are provided, for example, by an engine controller which is not illustrated.


[0032]
FIG. 2 shows clutch controller 12. It has a subtracter 20, a slip controller 21 and an adapter 22. Slip controller 21 is explained in greater detail with reference to FIG. 3 and the adapter with reference to FIG. 4. The subtracter determines clutch slip Δn, which is the input variable in slip controller 21. Additional input variables of slip controller 21 include setpoint clutch slip Δn*, engine torque TM, transmission ratio i of automatic transmission 2 and coefficient of friction u. Coefficient of friction μ is formed by adapter 22. Input variables in adapter 22 include setpoint clutch slip Δn*, transmission ratio i of automatic transmission 2, torque TM of internal combustion engine 1, information ΔTM relating to the inaccuracy of the information relating to torque TM of internal combustion engine 1 as well as a differential torque TR which is formed by slip controller 21. In addition to coefficient of friction μ, a corrected engine torque TMK is an additional reference quantity of adapter 22. Slip controller 21 also forms setpoint application pressure p*.


[0033]
FIG. 3 shows the internal structure of slip controller 21. Slip controller 21 has a filter 31 for the purpose of filtering clutch slip Δn. An adder 36 is used to produce the difference between setpoint clutch slip Δn* and clutch slip Δn which is filtered by filter 31. This difference is negated by a negater 32 and is an input variable in a regulator 33, which in an advantageous embodiment, is designed as a PID controller. Differential torque TR is the output variable of controller 33.


[0034] A filter 34 is used to filter engine torque TM. Engine torque TM, which is filtered in this manner, is multiplied by transmission ratio i of automatic transmission 2 by a multiplier 70 and added to differential torque TR by an adder 37. The sum of differential torque TR and the engine torque, filtered and multiplied by transmission ratio i of automatic transmission 2, is clutch torque TK to be transmitted by clutch 3, which together with coefficient of friction μ, is an input variable in an inverse clutch model 35. In inverse clutch model 35, the following equation is implemented in an exemplary embodiment:
1p*=1AR(TKμ·r·ZR+F0)


[0035] A is the piston surface of clutch 3, r the effective friction radius of clutch 3, ZR the number of friction surfaces of clutch 3 and F0 is the minimum force required for transmitting torque via clutch 3.


[0036]
FIG. 4 shows a flow chart as an implementation of adapter 22. Reference symbol 40 identifies the start of the sequence and reference symbol 49 the end of the sequence. In step 41, information TM relating to the engine torque, information ΔTM relating to the inaccuracy of the information relating to engine torque TM, differential torque TR, setpoint clutch slip Δn* and application pressure p are input.


[0037] In a subsequent step 42, a coefficient of friction μ is formed from setpoint clutch slip Δn* and application pressure p. In an advantageous manner, this is achieved by a coefficient of friction-slip characteristic curve which is a function of application pressure p. A characteristic curve of this type is illustrated for example in FIG. 5 and is identified by reference symbol 50.


[0038] Step 42 is followed by interrogation 43 inquiring whether


ΔTM≦T1


[0039] where T1 is a (first) tolerance value. If


ΔTM≦T1


[0040] then step 44 follows in which a new coefficient of friction u of the clutch is formed according to
2μ=μ+TM·iTM·i+TR


[0041] and a corrected engine torque TMK is formed according to


TMK=TM


[0042] Step 44 is followed by step 45 in which the coefficient of friction-slip characteristic curve 50 as a function of the application pressure is modified in such a manner that the new value for coefficient of friction μ and setpoint clutch slip Δn* form a pair of values on modified coefficient of friction-slip characteristic curve 51. Step 45 is illustrated in FIG. 5. Reference symbol μ1 identifies the value for coefficient of friction μ for the relevant application pressure prior to execution of step 45 and μ2 identifies the value of coefficient of friction μ for the relevant application pressure after execution of step 45. Coefficient of friction μ1 is formed using characteristic curve 50 as a function of setpoint clutch slip Δn* (see step 42). In step 45, coefficient of friction-clutch slip characteristic curve 50 is modified in such a manner that a coefficient of friction-clutch slip characteristic curve 51 is produced, on which value μ2 and setpoint clutch slip Δn* are a pair of values.


[0043] If


ΔTM≦T1


[0044] is not fulfilled, then instead of step 44, step 48 follows in which a corrected engine torque TMK is equated to the sum of engine torque TM generated by internal combustion engine 1 and differential torque TR divided by transmission ratio i of automatic transmission 2:




T


M


=T


M


+T


R


/i




[0045] Step 46 or 48 is followed by an interrogation 47 inquiring whether the preceding sequence is to be repeated. If this is the case, then step 41 follows. If this is not the case, the sequence is terminated.


[0046]
FIG. 6 shows a modification of the flow chart of FIG. 4. Interrogation 43 is not followed by step 48 but rather by an interrogation 60. Interrogation 60 inquires whether


ΔTM>T2


[0047] is fulfilled, T2 being a second tolerance value. If this condition is fulfilled, then step 48 follows. However if the condition is not met, step 46 is performed.


[0048]
FIGS. 7 and 8 illustrate the differences between the flow charts as shown in FIG. 4 and FIG. 6. Information ΔTM relating to the inaccuracy of the information relating to engine torque TM of internal combustion engine 1 is shown on the abscissa. The ordinate in FIG. 7 and FIG. 8 indicates which steps are executed. The value −1 symbolizes the execution of steps 44 and 45, the value 1 symbolizes the execution of step 48, and the value 0 represents neither the execution of steps 44 and 45 nor of step 48. Interrogation 43 in FIG. 4 corresponds to a binary switch. The combination of interrogations 43 and 60 in FIG. 6 corresponds to a three-point switch. Instead of these two straightforward switch types, it is naturally also feasible to perform complicated switching procedures, such as flowing transitions, which can be performed, e.g., by fuzzy techniques.


[0049]
FIG. 9 shows an advantageous exemplary embodiment of a clutch controller 79 which can be used as a substitute for clutch controller 12 of FIG. 1. Clutch controller 79 in FIG. 9 has a slip controller 80 and a protection device 81 to protect the drive unit, automatic transmission 2 in particular, against torque shocks. Shock torque TS is the output variable of protection device 81. In an advantageous embodiment, shock torque TS is calculated according to the following equation
3TS=TC-ΣlJl·2π·ΔnmaxΔt


[0050] where


[0051] J1 is the moment of inertia of a 1st component of the drive unit on the side of clutch 3, on which internal combustion engine 1 is situated.


[0052] Δnmax is the maximum permissible clutch slip


[0053] Tc is a constant torque


[0054] Δt is the period of time, in which a torque shock results in an increase in slip.


[0055] The introduction of torque shocks, in particular torque shocks which are introduced into the drive unit by virtue of driven wheels 8 and 9, may cause damage to automatic transmission 2. It is particularly critical to protect, for example, a variator of a CVT (continuously variable transmission). Even a brief period of slip in this type of belt transmission due to a torque shock can result in permanent damage to the belt transmission. Torque shocks of this type occur, for example, in a change from a roadway surface having a low coefficient of friction to a roadway surface having a high coefficient of friction. Examples include the change from an ice-covered roadway to a dry roadway or when crossing railroad tracks.


[0056] If the duration of slip Δt is of secondary importance, then shock torque TS may be made equal to constant torque TC.


[0057] In an advantageous embodiment, it is possible to transmit shock torque TS to a transmission controller so that, for example, the application pressure can be increased accordingly in a belt transmission. The application pressure required in the belt transmission is to be increased as a function of shock torque TS.


[0058]
FIG. 10 illustrates slip controller 80 in detail. Slip controller 80 differs from slip controller 21 in that it has a minimum value generator 82. Minimum value generator 82 compares differential torque TR and shock torque TS and outputs the smaller torque as an output variable.


[0059]
FIG. 11 shows a corresponding level of slip Δn plotted over time t when using a clutch controller 79 as shown in FIG. 9. Point in time t1 identifies the point in time at which the maximum permissible slip Δnmax is reached and t2 identifies the point in time at which the slip caused by the torque shock has decayed. The period of time between points in time t2 and t1 is slip time Δt. FIG. 11 shows the progression of clutch slip Δn if setpoint clutch slip Δn* is equal to zero. In the event that setpoint clutch slip Δn* does not equal zero, FIG. 12 shows the variation of clutch slip Δn. In this case clutch slip Δn at point of time t2 is equal to setpoint clutch slip Δn*.


[0060] In order to protect clutch 3 from thermal overload, slip time Δt is advantageously adjusted as a function of the thermal loading in clutch 3. For this purpose, the temperature of clutch 3 is estimated using a thermodynamic model. If the estimated temperature of clutch 3 exceeds a critical temperature limit, then setpoint clutch slip Δn* is reduced to zero. Moreover, in an advantageous embodiment, a reserve application pressure is increased. This may be achieved, for example, by increasing value F0. Alternatively, a reserve torque may be increased. This is achieved, for example, by increasing value TC.


[0061]
FIG. 13 shows a clutch 3 in an exemplary embodiment. Reference symbol 83 identifies a lubricating oil supply for hydraulic oil, reference symbol 84 an outer driver, reference symbol 85 an inner driver, reference symbol 86 an outer blade, reference symbol 87 an inner blade, reference symbol 88 a restoring spring, reference symbol 93 a cylinder, reference symbol 94 a piston, reference symbol 95 a pressure plate and reference symbol 96 a pressure medium supply. Outer driver 84, which is connected to clutch input shaft 5, is provided with outer blades 86, and in an advantageous embodiment, with steel blades without a friction lining. Inner driver 85, which is connected to clutch output shaft 6, accommodates inner blades 87 which are coated with a friction lining. Upon the introduction of hydraulic oil at a defined pressure level via pressure medium supply 96 into cylinder 93, piston 94 moves against the force of restoring spring 88 in the direction of pressure plate 95 and presses together the blade package which has inner and outer blades 87 and 86. In order to cool the blade package, hydraulic oil is directed to inner and outer blades 87 and 86 via lubricating oil supply 83.
1List of reference symbols1engine2transmission3clutch4shaft5clutch input shaft6clutch output shaft7differential8, 9drive wheels10, 11rotational speed sensors12, 79clutch controller20subtracter21, 80slip controller22adapter31, 34filter32negater33regulator35inverse clutch model36, 37adder40start of the sequence41, 42, 44,step45, 46, 48,43, 47, 60,interrogation49end of the sequence50, 51coefficient of friction-slip characteristiccurve70multiplier81protection device82minimum value generator83lubricating oil supply84outer driver85inner driver86outer blade87inner blade88restoring spring91engine torque setpoint generator93cylinder94piston95pressure plate96pressure medium supplynErotational speed of the clutch input shaftnArotational speed of the clutch output shaftTMinformation relating to the engine torqueΔTMinaccuracy of the information relating to theengine torqueTRdifferential torque (regulator output)TKclutch torqueT1first tolerance valueT2second tolerance valueΔnclutch slipΔn*setpoint clutch slipitransmission ratio of the transmissionpapplication pressurep*setpoint application pressureμ, μ1, μ2coefficient of frictionJ1moment of inertia of the drive unit on the sideof clutch 1, on which the internal combustionengine is situated.Δnmaxmaximum permissible clutch slipTcconstant torqueΔttime period in which a torque shock causes anincrease in slipARfriction surface of the steel blades of theclutchZRnumber of friction surfaces of the clutchTMKcorrected engine torqueF0minimum force required for transmitting torquevia the clutchTSshock torquet1point in timet2point in timereffective friction radius of the clutch

Claims
  • 1. A method for operating a clutch (3) between an internal combustion engine (1) and at least one driven wheel (8, 9) of a vehicle, a torque being transmitted between the internal combustion engine (1) and the driven wheel (8, 9) by pressing the clutch (3) together using an application force or an application pressure (p), wherein the application force or the application pressure (p) is regulated as a function of a clutch slip in the clutch (3), when the torque is transmitted between the internal combustion engine (1) and the driven wheel (8, 9), and given a setpoint clutch slip.
  • 2. The method according to claim 1, wherein the application force or the application pressure (p) is regulated as a function of the difference between the clutch slip and the setpoint clutch slip.
  • 3. The method according to claim 1 or 2, wherein the application force or the application pressure (p) is regulated by a slip controller (21, 80).
  • 4. The method according to claim 1, 2 or 3, wherein the application force or the application pressure (p) is regulated by an inverse clutch model which calculates the application force or the application pressure (p) as a function of the torque transmitted by the clutch (3).
  • 5. A device for operating a clutch (3) between an internal combustion engine (1) and at least one driven wheel (8, 9) of a vehicle, in particular according to a method as recited in one of the preceding claims, a torque being transmitted between the internal combustion engine (1) and the driven application force or an application pressure (p), wherein a slip controller (21, 80) is provided to regulate the application force or the application pressure (p) as a function of a clutch slip in the clutch (3), when the torque is transmitted between the internal combustion engine (1) and the driven wheel (8, 9), and given a setpoint clutch slip.
  • 6. The device according to claim 5, wherein the slip controller (21, 80) has an inverse clutch model to calculate the application force or the application pressure (p) as a function of the torque transmitted by the clutch (3).
  • 7. The device according to claim 5 or 6, wherein the slip controller (21, 80) has a controller to calculate a differential torque as a function of the clutch slip and the setpoint clutch slip.
  • 8. The device according to claim 7, wherein the input value of the inverse clutch model is a function of the differential torque.
  • 9. The device according to claim 7 or 8, wherein the sum of the differential torque and the engine torque generated by the internal combustion engine (1) is an input variable of the inverse clutch model.
  • 10. The device according to claim 6 or 9, wherein the coefficient of friction of the clutch (3) is a parameter of the inverse clutch model.
  • 11. The device according to claim 10, wherein it has an adapter to adapt the coefficient of friction of the clutch (3).
Priority Claims (1)
Number Date Country Kind
100 45 757.6 Sep 2000 DE
PCT Information
Filing Document Filing Date Country Kind
PCT/DE01/03357 8/31/2001 WO