The invention involves a process for controlling the rotational speed of a drive motor.
Processes for controlling the rotational speed of a drive motor, in particular, during the start up period, in a drive train, in particular for use in motor vehicles, including at least one drive motor and a start up element that can be coupled with it, at least indirectly, are known in a multitude of different embodiments with regard to the variables triggering the controlling operation, i.e. the input variables of the control device, the dependence of the control variables on other variables and the correcting variables. It is generally known that, in drive trains of motor vehicles, including an intemal combustion engine, especially Otto or diesel engines, and a start up element that can be mechanically or hydrodynamically coupled to them, as a correcting variable for the rotational speed control of the drive motor, a variable is formed that at least indirectly characterizes the adjustment of the power output stage of the drive motor—throttle valve or injection nozzle—and the adjustment device—throttle valve or injection nozzle—is triggered in this way. Reference is made to, as a representative example, “Diesel injection technology” by Bosch, VDI-Publishers 1993, pages 162-on. Start up period is understood here to be the time span of the operating period of the drive train, which is characterized by a run-up of the drive unit from the start, i.e. the start up of the drive motor until the change into a higher gear level in bypassing the hydrodynamic starter element.
When hydrodynamic couplings are used as a start up element in motor vehicles, they are designed in such a manner that a filling of the hydrodynamic coupling can occur automatically during the start up period, for example, depending on the rotational speed of the drive motor or retarded from it. However, it has been shown that dynamic systems behavior becoming set in this way, characterized by the characteristic line of the coupling, is characterized in that high torque can only be transferred at high rotational speeds of the drive motor. This means, however, for embodiment of the drive motor as an internal combustion engine, that the consumption-optimized range in the performance characteristics of the motor, and thus an operating method that is low in hazardous materials, is not achieved and furthermore, for the transfer of high torque a correspondingly high power drive motor is always necessary.
The purpose of the invention is thus to develop a process for controlling the rotational speed of a drive motor in such a way that the disadvantages mentioned are prevented and if necessary, the consumption-optimized ranges, especially in the use of drive motors in the form of internal combustion engines, optimal from the standpoint of the energy content, can be reached in the performance characteristics of the drive motor during the start up period. The solution according to the invention is characterized by a low control-technical and regulation-technical requirement, as well as a low manufacturing expense.
A process for the rotational speed control of a drive motor in a drive train, containing at least one start up element that can be connected to the drive motor in a rotationally fixed manner in the form of a hydrodynamic coupling, is characterized according to the invention in that the rotational speed of the drive motor is adjusted depending on the power that can be consumed by the hydrodynamic coupling as a function of the rotational speed and torque. This means that upon the appearance of a regulation deviation between a variable that at least indirectly characterizes the rotational speed of the drive motor and an actual value thereof a change of the rotational speed of the drive motor is achieved by
The “variable that at least indirectly characterizes the rotational speed of the drive motor” is in the process understood to be either a variable that is in a proportionality ratio to the rotational speed of the drive motor, so that on this variable the rotational speed of the drive motor can be determined by calculation or derivation or the rotational speed of the drive motor is determined directly.
The solution according to the invention offers the advantage that in addition to an open controllability of energy-optimized and consumption-optimized operating points in the performance characteristics of the drive motor in the embodiment of the drive motor as an internal combustion engine, a transfer of high torques is readily possible at low rotational speeds and the power of the drive motor that is to be provided, that is necessary for this and that can be transmitted, can be kept low.
In an additional embodiment of the invention, the control and/or regulation of the power consumption of the hydrodynamic coupling is done via the control and/or regulation of the filling ratio of the hydrodynamic coupling. In this process, a control is desired in the simplest case. The filling ratio control is done in the process preferably via the application of an influential pressure onto a static medium, in particular, the operating medium level that becomes set in an operating medium storage device in the context of an operating medium supply device. In this process, a portion of the operating medium located in the working space is conducted during the operation of the hydrodynamic coupling in a closed circulation system between at least one outlet from the toroid-shaped working space between the pump wheel and the turbine wheel and at least one intake into the toroid-shaped working space, whereby the intake is coupled to a closed operating medium storage unit that is closed off from the environment in a pressure-tight manner. Upon the appearance of a regulation deviation, a controlling variable is then created in order to generate an influential pressure on the static medium in the operating medium storage unit and the controlling device is regulated. The filling or emptying is then done until the setting of a pressure scale between the operating medium level in the operating medium storage device and the rotating closed circulation cycle.
In an additional embodiment of the invention, additional functions can be realized with the open controllability of individual points in the performance characteristics of the drive motor by the control of the filling ratio, if necessary, also taking into account additional parameters. Included in this are:
Preferably, the option of the rotational speed regulation is provided during the entire start-up period in a drive train, i.e. the time duration of the operation of the hydrodynamic coupling.
In a further embodiment, the process according to the invention is a component of the controlled system of a control for the power output of the drive motor. This offers the advantage of simple realization of an outside control of the power requirement of the drive motor without direct influence of the drive motor, in particular, without required control of the power output stage, which leads to a reduction of the control-technical and regulation-technical expense.
In an advantageous embodiment based on this further development, this process forms a portion of the control system for the adjustment of a constant and temporally independent holding moment for the holding function of a machine. By this special control function, the conventional brake devices, for example, in keeping a vehicle on a slope, can be relieved.
Another possibility consists in integrating the rotational speed regulation of the drive motor in a control for adjustment of a constant, neither time-dependent nor motor rotational speed-dependent output speed, i.e. rotational speed on the main drive pinion, for example, of a machine.
An essential advantage of this process consists, furthermore, in that in order to create the individual control and regulation functions, only at least the following variables must be taken into account for the control operation:
The expense for the preparation of corresponding detection devices can thus also be kept low and/or is limited to the detection devices already existing in the drive train.
The solution according to the invention for the rotational speed control, in particular, the setting of the rotational speed of the drive motor as a function of the filling ratio, is not limited to a concrete embodiment of the drive train with hydrodynamic coupling as the starter element. In this way, the drive motors can be designed in the form of internal combustion engines or electro-motors. Usage can be done in stationary systems or mobile devices, preferably in the motor vehicle.
The solution according to the invention is explained in the following using the drawings. The following are shown in detail in them:
a and 1b show in a schematically simplified representation using block switching diagrams and signal flow diagrams, the fundamental principle of a process according to the invention for regulating the rotational speed and the design of the control device;
c shows, using a signal flow diagram, a process for the rotational speed control of the drive motor with integrated control of the power that can be consumed by the hydrodynamic coupling;
a shows in a schematically simplified diagram using a block switching diagram, the fundamental principle of a process according to the invention for controlling the rotational speed of a drive motor 1 in a drive train 2 during the start up period. The drive train 2 includes in the process at least one start up element 3 that can be coupled at least indirectly to the drive motor 1 and that is designed as a hydrodynamic coupling 4, including at least one primary blade wheel 5 functioning as a pump wheel and a secondary blade wheel 6 functioning as a turbine wheel, which form with each other at least one toroid-shaped working space 7. The drive motor 1 is preferably designed as an internal combustion engine in motor vehicles in the preferred usage of the process according to the invention. However, embodiments as electric motors are also conceivable. The starter element is preferably integrated in a gear structural unit 8.
According to the invention, the rotational speed control of the drive motor 1 is done as a function of the motor torque M as a function of the possible consumable torque Mcons by the hydrodynamic coupling 4. In other words, the level of the power Pcons that can be consumed by the hydrodynamic coupling 4, in particular, the level of the consumable torque, which essentially corresponds to the power PtransM that can be transmitted by the drive motor 1, or this power reduced by the required power for the drive of the additional assemblies or side-assemblies, thus determines the transmittable torque M, based on the characteristic relation, allocated to a certain filling ratio FG of the coupling, between the rotational speed ratio nT/np that becomes set, of the individual blade wheels of the hydrodynamic coupling and the performance number. Via the consumable power, the rotational speed of the pump wheel np is produced and thus the rotational speed nM of the drive motor 1 corresponding to it, or at least proportional to it.
The regulation of a certain rotational speed nM target of the drive motor 1, depending on the power Pcons that can be consumed by the hydrodynamic coupling 4, is done by the control or preferably regulation of the power consumption of the hydrodynamic coupling 4, according to
The variable of the consumable power Pcons is a function of the filling ratio FG of the hydrodynamic coupling 4. Thus, the filling ratio FG is controlled.
According to the device, the drive motor 1 has assigned to it, for this purpose, a control and regulation device 9, including at least one control and/or regulation device 10, which has at least one comparison device 11, in which at least one target value for a variable that at least indirectly describes the rotational speed nM of the drive motor, preferably the rotational speed nM target, is compared with an actual value of a variable that characterizes the rotational speed of the drive motor at least indirectly, preferably the actual rotational speed nM actual. From the regulation deviation ΔnM between the target-rotational speed nM target and the actual rotational speed nM actual of the drive motor 1, a correcting variable is formed for the control of the power Pcons that can be consumed by the hydrodynamic coupling 4, in particular, by the primary blade wheel 5. For the desired control, shown in
The principle of the application of an outside pressure onto a static medium is shown in detail in
b shows, using a signal flow diagram, the interaction of the individual elements in the overall active path 27 of the rotational speed control during the control of the consumable power Pcons. The control device 16 corresponds functionally to the control and regulation device 10. The control system 13 forms in the process that part of the active path, which represents the area of the drive train 2 to be influenced. Via the control device 16, the influence of the control system 13 is caused via an acuator 17, which is formed from the pressure regulation valve 15. The operating medium storage device 24, designed so that it is pressure-impermeable, and the hydrodynamic coupling 4, function as additional conduction elements. The power Pcons that can be consumed by the hydrodynamic coupling 4 as a function of the filling ratio FG thus corresponds to a specific moment MKP and a specific rotational speed nKP, from which the power Ptrans M that can be transmitted by the drive motor 1 can be determined and thus, as a function of the moment assigned to the filling ratio FG, the rotational speed nM of the drive motor 1 can be determined.
c shows, using a signal flow diagram, the interaction of the individual elements in the overall active path of the rotational speed control 28 during the control of the consumable power Pcons. The active path for the control of the consumable power Pcons is indicated here by 29. Moreover, the control system 13 corresponds to the one described in
The solution according to the invention makes it possible to adjust the rotational speed nM of a drive motor 1 in such a way that an optimal behavior of the drive motor can be achieved in regard to the start-up period. In the process, each individual operating point can be started up separately or stationarily, i.e. set, in the performance characteristics of the drive motor 1. This is done depending on the control or regulation of the power that can be consumed by the hydrodynamic coupling.
A significant criterion for the rotational speed regulation is formed in the process by the no-load run-up of a drive motor 1, in particular, the emission-optimized operation in embodiments for use in motor vehicles, when developed in the form of an internal combustion engine. Since the power consumption of the starter element, in particular, of the hydrodynamic coupling, is dependent on itself and not on a machine that is connected to it at least indirectly on the main drive pinion side, it is to be taken into account during the installation of an element of this type between the drive motor 1 and the main drive pinion, that for each load condition, between the drive motor 1 and the hydrodynamic coupling, there must also be an equilibrium state with regard to the torque and the rotational speed. The power that can be transmitted by the drive motor is, in the rarest case, fully available, during the start up period, to the gear structural unit (transmission) arranged after the starter element, and thus to the hydrodynamic structural element. The power for auxiliary machines, such as fans, light machines, pumps, etc., which are arranged prior to the starter element, must in the process be drawn from the drive output that is available. During the start up period at low rotational speeds, it is thus necessary in order to operate the drive motor as much as possible in the consumption-optimized range, to transmit as large a moment as possible even at very low rotational speeds. A process of this type can be obtained by a targeted filling ratio change. The power that can be consumed via the hydrodynamic coupling causes, in the process, a change of the rotational speed of the drive motor 1.
From the characteristic lines it can be seen that with the solution according to the invention, a controlled and no-load run-up of the drive motor 1 and an operation in the emission-optimized range of the drive motor, especially of the internal combustion engine, is possible. Furthermore, the transmittability of high moments is increasingly shifted towards low rotational speeds of the drive motor.
In another embodiment of the invention shown in
The open controllability of the filling ratio of the hydrodynamic coupling makes possible, furthermore, for corresponding control specification, the setting of a constant, time-independent, load-dependent holding moment for holding functions, for example, when used in motor vehicles, for keeping a motor vehicle on a slope.
Number | Date | Country | Kind |
---|---|---|---|
100 42 865 | Aug 2000 | DE | national |
100 46 834 | Sep 2000 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP01/09088 | 8/7/2001 | WO | 00 | 8/13/2002 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO02/18821 | 3/7/2002 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2643517 | Michell | Jun 1953 | A |
3055169 | Siebold et al. | Sep 1962 | A |
5426939 | Cottrell | Jun 1995 | A |
5853350 | Hasegawa et al. | Dec 1998 | A |
6357229 | Schust et al. | Mar 2002 | B1 |
Number | Date | Country |
---|---|---|
197 06 652 | Jul 1998 | DE |
03-234969 | Jan 1991 | JP |
Number | Date | Country | |
---|---|---|---|
20030019454 A1 | Jan 2003 | US |