The present invention relates to a method for controlling a drive train of a vehicle, in particular a hybrid vehicle, having at least one internal combustion engine.
Hybrid vehicles are equipped with at least two drive units. In most cases, an internal combustion engine and at least one electrical machine are used as drive units. However, alternative drive units such as gas engines or hydraulic motors are conceivable as well. The subject matter of the exemplary embodiments and/or exemplary methods of the present invention is a drive train having at least two drive units, one of which is meant to be an internal combustion engine, and the other, an additional motor. The entire drive torque of the drive train is composed of the torque of the internal combustion engine and the additional motor, in particular an electric machine.
German patent document DE 10 2005 039 316 discusses a hybrid vehicle and a corresponding drive train, in which the drive units are controlled as a function of the exhaust-gas temperature. For higher loads, and thus for more rapid heating of the internal combustion engine, the electric machine is operated as generator. This shortens the duration of the warm-up operation of the internal combustion engine, during which especially high emissions are produced. To protect the catalyst from excessive thermal loading, the related art describes an operation of the internal combustion engine at an enriched engine Lambda value. An air/fuel mixture which has a higher fuel component than required for realizing the requested output is employed. This method for protecting the catalyst in terms of temperature is also referred to as component protection. The enriching of the air/fuel mixture for component protection leads to considerably higher fuel consumption than would be necessary for an operation at the requested output.
The method according to the present invention and the device having the features of the independent claims utilize the possibilities of the hybrid drive for protecting the catalyst from excessive temperatures while not increasing the fuel consumption in the process, if possible. According to the exemplary embodiments and/or exemplary methods of the present invention, a drive train of a vehicle, especially a drive train of a hybrid vehicle, is controlled. The drive train has at least one internal combustion engine and at least one additional motor, particularly an electric machine, for the partial generation of the drive torque in each case. An arrangement is provided to record the temperature value that represents an exhaust-gas temperature of the internal combustion engine. The component for generating the drive torque with the aid of the additional motor is varied as a function of the exhaust-gas temperature. According to the exemplary embodiments and/or exemplary methods of the present invention, at higher exhaust-gas temperatures, a higher portion of the drive torque is generated with the aid of the additional motor than at lower exhaust-gas temperatures.
The technical background is that a catalyst must be protected against excessive exhaust-gas temperatures. In full-load operation, in particular, the exhaust gases reach their highest temperatures. By reducing the torque request from the internal combustion engine and simultaneously increasing the torque of the electric machine, the full-load operation of the internal combustion engine is avoided in the hybrid vehicle and the exhaust-gas temperature is lowered as a result.
The advantages of the exemplary embodiments and/or exemplary methods of the present invention are the lowering of the exhaust-gas temperatures on the one hand, so that the catalyst does not suffer damage, and the fact that an enrichment of the air/fuel mixture does not increase the fuel consumption on the other.
In another development of the exemplary embodiments and/or exemplary methods of the present invention, the component for generating the drive torque with the aid of the additional motor is increased when a temperature-threshold value is exceeded.
The technical background is that the requested torque of the internal combustion engine is reduced at a critical temperature, so that the exhaust-gas temperature is lowered and the electric machine compensates for the correspondingly reduced torque.
The advantage of this embodiment of the present invention is that it requires no continuous control; instead, the increase of the component for generating the drive torque is controlled by the additional motor as a result of the exceeding of a temperature threshold.
In one further development of the present invention, monitoring of an energy-store unit for the engine takes place in addition. If the motor is represented by an electric machine, then this energy-store unit corresponds to an electric battery. The increase in the component for generating the drive torque with the aid of the additional motor is then implemented as a function of a charge state of the energy-store unit.
The technical background is that the motor must be supplied by an available energy. Only if the charge state of the energy-store unit is sufficient will the motor be able to deliver the requested additional torque.
The advantage of this development of the exemplary embodiments and/or exemplary methods of the present invention is that the charge state of the storage unit is taken into account.
One additional development of the present invention is characterized by the fact that at a low charge state, particularly when a threshold value of the charge state of the energy-store unit (211) is not attained, the internal combustion engine (202) is operated using an enriched air/fuel mixture.
The technical background is that the operational readiness of the additional motor is taken into account by querying the charge state. If the drive torque of the additional motor is not available due to the charge state of the energy storage unit, then the temperature restriction of the exhaust gas is implemented by enriching the air/fuel mixture of the internal combustion engine. An air/fuel mixture having a higher fuel component is employed. This reduces the exhaust-gas temperatures significantly.
The advantage of this development is that it provides an operating strategy in the event that the energy storage unit for the motor shows an insufficient charge state.
In one additional development of the exemplary embodiments and/or exemplary methods of the present invention, the internal combustion engine is simultaneously operated with an enriched air/fuel mixture in order to increase the component for generating the drive torque with the aid of the additional motor.
The technical background is that in this case both the motor and the internal combustion engine contribute to the restriction of the exhaust-gas temperature.
The advantage of this development is that especially at an average or low charge state of the battery, a contribution to the restriction of the exhaust-gas temperature is made both by the additional motor and by the enrichment of the air/fuel mixture, the increase in the fuel consumption being minimized.
In one further development of the exemplary embodiments and/or exemplary methods of the present invention, the internal combustion engine is simultaneously operated using a leaner air/fuel mixture in order to increase the component for generating the drive torque with the aid of the additional motor. The fuel portion of the air/fuel mixture is reduced in order to produce the leaner fuel/air mixture.
The technical background is that in this case the internal combustion engine supplies less drive torque because of the leaner air/fuel mixture. This leads to a drop in the exhaust-gas temperature of the internal combustion engine.
The missing drive torque is compensated for by an increase in the component for generating the drive torque with the aid of the additional motor. Thus, both the motor and the internal combustion engine contribute to the restriction of the exhaust-gas temperature.
The advantage of this development is that especially at an average or low charge state of the battery, a contribution to the restriction of the exhaust-gas temperature is made both by the additional motor and by the reduction of the fuel component of the air/fuel mixture, the increase in the fuel consumption being minimized.
In one further development of the exemplary embodiments and/or exemplary methods of the present invention, the output of the internal combustion engine is simultaneously reduced with the aid of a power-regulating actuator in order to increase the component for generating the drive torque with the aid of the additional motor. The power-regulating actuator may be represented especially by a throttle valve in the case of a gasoline engine. In a diesel engine, the power-regulating actuator may be represented by a fuel injector, in particular. But it is also conceivable to use other power-regulating actuators for an internal combustion engine. This reduces the charge in the combustion chamber, in particular.
The technical background is that in this case the internal combustion engine supplies less drive torque, especially because of a lower charge in the combustion chamber. This leads to a drop in the exhaust-gas temperature of the internal combustion engine. The missing drive torque is compensated for by increasing the component for generating the drive torque with the aid of the additional motor. Thus, both the motor and the internal combustion engine contribute to the restriction of the exhaust-gas temperature.
The advantage of this development is that especially at an average or low charge state of the battery, both the additional motor and the reduction of the fuel component of the air/fuel mixture contribute to the restriction of the exhaust-gas temperature, the increase in the fuel consumption being minimized.
Exemplary embodiments of the present invention are shown in the drawing and explained in greater detail in the following description.
Number | Date | Country | Kind |
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102008010103.6 | Feb 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/065833 | 11/19/2008 | WO | 00 | 2/23/2011 |