The invention relates to a method and to a device for controlling an electric motor, in which method an operating voltage and an operating current are supplied to an electric motor and the torque output during operation is limited to a predefinable maximum value by regulating the operating voltage or the operating current.
Methods of the type cited in the introductory part are used, for example, to protect mechanical components, which are driven by the electric motor, from damage caused by overloading. In this case, the mechanical components can comprise, for example, a windshield wiping device of a motor vehicle or a comfort function, for example a window winder or sunroof.
DE 100 31 925 A1 discloses determining the maximum torque of an electric motor after production of same and storing it in a parameter of the motor control system. As a result, manufacturing tolerances can be compensated for by electric motors with a particularly high maximum torque being limited to a predefinable maximum value.
DE 101 44 985 A1 discloses setting the torque, which is output by an electric motor, during operation and taking into account the transmission ratio. As a result, damage to downstream components by great forces which occur when a low transmission ratio and a high torque of the electric motor meet can be avoided.
However, all the known prior art methods share the common feature that the maximum torque which occurs is determined at a fixed ambient temperature. These methods do not take into account the change in the maximum torque as the ambient temperature of the electric motor changes. However, particularly in the case of permanent-magnet electric motors, the maximum torque rises as the temperature drops. As a result, downstream components can be mechanically overloaded when the known limiting methods are used at low temperatures, this mechanical overloading causing said components to, for example, rupture or undergo plastic deformation.
The object of the invention is therefore to avoid overloading of mechanical components when they are driven by an electric motor.
According to the invention, this object is achieved by a method for controlling an electric motor, in which method an operating voltage and an operating current are supplied to an electric motor and at least one measurement variable which characterizes the temperature of the electric motor is recorded, with the maximum torque output by the electric motor during operation being kept virtually constant, irrespective of the temperature of the electric motor.
The object is also achieved by a device for controlling an electric motor, which device is designed to supply an operating voltage and an operating current to an electric motor, with the device containing an arrangement for detecting at least one measurement variable which characterizes the temperature of the electric motor, and also containing a limiting arrangement by way of which the maximum torque output by the electric motor during operation can be kept virtually constant, irrespective of the temperature of the electric motor.
The invention solves the problem of the maximum torque of a permanent-magnet electric motor increasing as the temperature decreases. According to the invention, the operating voltage and/or the operating current are controlled such that a predefinable maximum torque is not exceeded. In this respect, the invention proposes, rather than measuring the starting torque of the electric motor directly, determining the temperature of the electric motor and/or the temperature of the area in which the electric motor is installed and limiting the electrical power consumed by the electric motor as a function of the measured or calculated temperature so that the increase in torque as the temperature decreases is compensated for.
However, it goes without saying that a person skilled in the art is, in this case, familiar with the possibility of there also being a small increase in torque or else a decrease in torque as the temperature drops, on account of the measurement accuracy of the temperature, on account of non-linearities in the increase in torque and on account of control deviations of the electric motor. However, any increase in torque which may possibly remain is always lower than in the case of an electric motor according to the prior art. The invention does not teach generating an absolutely straight torque profile as a solution principle.
The output signal from a temperature sensor which is arranged within the housing of the electric motor can be used, for example, as a measurement variable which characterizes the temperature of the electric motor. In a further embodiment of the invention, provision may be made to read out the resistance of the windings and to determine the temperature of the electric motor from the temperature dependence on this resistance. Provision may also be made to record the operating current and the operating voltage of the electric motor and to model the temperature of the electric motor from the consumed electrical power, the efficiency and the ambient temperature by means of an energy balance. Finally, provision may be made to model the temperature of the electric motor from an ambient temperature. The ambient temperature can be determined, for example, from the external temperature, the temperature of the engine compartment, the oil temperature of the internal combustion engine or the coolant temperature of said internal combustion engine in a motor vehicle.
In order to increase the reliability, provision may be made, in a development of the invention, to temporarily switch off the torque-reduction means of the electric motor under predefinable operating conditions. This prevents the output torque of the electric motor being reduced in the event of disturbed determination of the measurement variable which characterizes the temperature and, at the same time, a high torque requirement. An operating state of this kind may be present, for example, in a motor vehicle above a predefinable speed.
Provision may also be made to reduce the output motor torque by a fixed predefinable value in the event of disturbances in the recording of the measurement variable which characterizes the temperature. This value can be, for example, approximately 5% to approximately 20%, in particular approximately 10%.
The invention will be explained in greater detail below with reference to exemplary embodiments and figures, without restricting the general concept of the invention.
In the text which follows, the invention will be explained with reference to a windshield wiping device of a vehicle as an exemplary embodiment. However, in this case, it goes without saying that a person skilled in the art is familiar with the possibility of the disclosed principles also being applied in any other field of engineering in which a mechanical device is driven by means of a permanent-magnet electric motor.
In addition, the torque output by the motor is still dependent on the temperature of the motor. The solid curve profile according to
The increase in torque as the rotation speed decreases also continues below the minimum rotation speed, in the example in
At the same time, an electric motor for driving a mechanical component has to be of such a size that the lowest maximum torque is sufficient to drive the component. This is established at the minimum specified rotation speed and the highest use temperature. This operating point is marked by a circle in
In the case of a windshield wiping device, the operating point with the minimum rotation speed and the minimum torque corresponds, for example, to operation at a high temperature and a high speed, which causes a high wind loading. The maximum torque occurs, for example, when the wiper motor is cooled down in cold weather after the vehicle has been stationary for a relatively long period of time and the windshield wiping device is blocked due to freezing or snow loading.
The motor does not experience any throttling at a maximum specified use temperature and a rotation speed above the specified minimum rotation speed. The output torque follows, with the rotation speed, the profile of the curve identified by “minimum”. The electric motor reaches its maximum torque (circle) at the maximum use temperature and the minimum rotation speed (5 rpm). If the rotation speed now drops below the specified minimum rotation speed, the resulting increase in torque is compensated for by a reduction in the electrical power supply, and therefore the torque does not increase further (square). Provided that the electric motor is operated at a lower temperature, the torque profile follows, for example, the solid line in
It goes without saying that the curve profile according to
The electric motor 1 also comprises control electronics 3. The control electronics 3 are designed to provide an operating current and an operating voltage 5 to the electromechanical parts 2. In this way, the torque output by the electromechanical parts 2 can be controlled by regulating the electrical power supplied to the electromechanical parts 2.
The control electronics receive an input signal 4 which is generated by a temperature sensor which determines the temperature of the motor 2. In this case, the temperature sensor 4 can be arranged within the motor housing 2 and thus directly measure the temperature in the region of the motor windings.
The control electronics 3 limit the electrical power 5, and therefore the torque output by the electromechanical parts 2, as a function of the measurement values from the temperature sensor 4.
The control electronics 3 are preferably integrated in a housing 1 together with the electromechanical parts 2. In this case, the user is provided with a compact electric motor 1, the maximum torque of this electric motor remaining virtually constant irrespective of the temperature.
The control electronics 3 influence the supply current and/or the supply voltage and therefore control the electrical power 5 which is supplied to the electromechanical parts 2.
In the exemplary embodiment according to
The electric motor 1 is incorporated in an on-board electrical system 10 of a vehicle. The on-board electrical system 10 is subdivided into a plurality of electrical subsystems 10A, 10B, 10C, . . . which administer different tasks. For example, the motor 1 can be supplied with electrical energy from the on-board electrical system 10.
Furthermore, the vehicle has two temperature sensors 7 and 8. In this case, the temperature sensors 7 and 8 are connected to the electrical subsystem 10A of the on-board electrical system 10. The temperature sensor 7 is provided, for example, for the purpose of determining the external temperature in the area surrounding the vehicle. Furthermore, a temperature sensor 8 which determines the coolant temperature of the internal combustion engine of the motor vehicle is provided. The ambient temperature at the site of the electric motor 1 can be calculated from the two temperatures in order to thus be able to determine the thermal energy loss from the motor 1 and, from this, the temperature of the parts 2.
Speed information 9 which is supplied to the control electronics 3 via the electrical subsystem 10C of the on-board electrical system 10 is also provided in the exemplary embodiment according to
The speed information 9 can be used by the control electronics 3 for the purpose of temporarily stopping the torque-limiting means of the electric motor 2 by limiting the supplied electrical power 5 when the vehicle is moving at a speed above a predefinable limit value. The limit value can be, for example, approximately 100 km/h, approximately 120 km/h or approximately 140 km/h. The limit value is selected by a person skilled in the art such that the situation of the windshield wiping device being blocked by snow loading or by freezing solid usually no longer occurs at such a traveling speed. At the same time, the required torque is increased on account of the wind loading. An undesired reduction in torque on account of a malfunction would therefore have a negative effect on the wiping speed and thus on the roadworthiness.
If the threshold value is undershot, the torque-limiting means of the electric motor 2 is switched on again by the control electronics 3. In order to avoid frequent switching operations, a further limit value, which is different from the first limit value, can be provided for this purpose.
It goes without saying that a person skilled in the art is familiar with the invention not being restricted to the illustrated exemplary embodiments. Rather, modifications and changes can be made when implementing the invention, without substantially changing the invention per se. Therefore, the above description should be considered to be explanatory rather than restrictive.
Number | Date | Country | Kind |
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10 2008 041 893.5 | Sep 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2009/059977 | 7/31/2009 | WO | 00 | 6/29/2011 |