The present invention relates to a method for operating an inductive transmission device.
When wirelessly charging the electrical energy stores of electrically driven vehicles by means of the inductive transmission of electric power, transmission systems are used that consist of a transmission coil and a reception coil. To this end, the transmission coil of a charging station is placed onto the road surface, for example using a flat winding, or recessed into the road. The reception coil, having a winding that is as flat as possible, is fitted to the vehicle floor. For the charging process, the vehicle is positioned over the transmission coil. The efficiency of these systems for wireless power transmission by means of a magnetic field, which induces an electric current in the reception coil from the transmission coil, is highly dependent on the correct orientation of the transmission coil and the reception coil. When the orientation is very good, an optimum coupling factor is obtained between the transmission coil and the reception coil. Just small deviations from the ideal orientation result in a significant drop in the efficiency of the transmission between the transmission coil and the reception coil. This has an associated large effect on the system efficiency of inductive transmission devices. The transmission of electric power can take place only in one direction from the transmission coil to the reception coil, but energy transmission can also take place in both directions in applicable systems.
For the purpose of inductively charging the electrical energy stores of electrically driven vehicles, the fine positioning of the vehicle having the reception coil relative to the transmission coil is performed by the driver or by means of an automated parking system. When the vehicle is positioned by the driver, he can be assisted by an assistance system, since positioning solely by means of the wits and skills of the driver does not normally lead to optimum orientation of the transmission coil and the reception coil. Additionally, the geometric design of the coils allows an increased positional tolerance to be attained. It is thus possible for the requirement of positional accuracy transversely with respect to the direction of travel to be expanded, for example, while the positional tolerance in the direction of travel can be chosen to be narrow to achieve an optimum coupling factor on the basis of the simpler positioning of the vehicle by means of forward and backward motion.
When the driver is assisted by an assistance system, improved positioning accuracy is achieved. However, this requires additional measurement systems, which give rise to additional costs and need to be suitable for rough use with motor vehicles. By way of example, DE 10 2014 215 350 A1 proposes a system that comprises a receiver coil arrangement on the vehicle, said receiver coil arrangement capturing three magnetic field components of the magnetic field of the transmission coil by measurement. The captured magnetic field components and the phase relationships pertaining to the electrical AC signal are evaluated by an evaluation device such that fine positioning information is available. The fine positioning information is ascertained as an intersection of the coarse position information, which has or results in the position information of the receiver coil arrangement relative to the transmission coil arrangement.
Furthermore, DE 10 2015 106 317 A1 proposes a transmission coil that comprises an arrangement with a guiding light. This at least one electrical light-emitting element is used to indicate the position of the electromechanical transmission element. As a result of an electrical light-emitting element being arranged on a surface of the baseplate, the position of the baseplate and of the electromagnetic transmission element arranged therein can be detected by a driver of a motor vehicle even in poor lighting conditions and poor weather conditions, which means that precise positioning of the motor vehicle on the baseplate or over the electromagnetic transmission element and associated effective transmission of electromagnetic energy is possible. The at least one light-emitting element is connected to a control unit that activates the light-emitting element when a vehicle approaches and deactivates it again after positioning has taken place. Furthermore, a control unit is used to associate sensing of the ambient light, said sensing being used to control the intensity of the light power of the light-emitting element on the basis of the detected ambient light.
When positioning inductive transmission devices in particular on electrically driven vehicles, it is accordingly necessary either to accept insufficient efficiency or to provide costly technical assistance systems. Even the complex technical assistance systems are limited to appropriately equipped transmission partners and are therefore not useful for any transmission coils and are reliant on the precision of the positioning of the vehicle by means of the wits and skills of the driver.
Since it is desirable for electrically driven vehicles to be able to be provided in very robust and user-friendly fashion but also very inexpensively, there is the need for a positioning device that can perform precise positioning without limitations regardless of the equipment of the transmission partner, for example even at publicly accessible charging stations for electrically driven vehicles, when there are no additional means for positioning available there.
The method according to the invention has the advantage that a positioning device is provided that can perform precise positioning without limitations regardless of the equipment of the transmission partner, for example even at publicly accessible charging stations for electrically driven vehicles, when there are no additional means for positioning available there.
According to the invention, to this end there is provision for a method for operating an inductive transmission apparatus consisting of a transmission coil and a reception coil, wherein the reception coil is arranged in a vehicle and the transmission coil is arranged at a fixed location, comprising, in a first step, transmitting a magnetic field by means of the transmission coil, while, in a second step, the vehicle moves in the direction of a parking position. The parking position is characterized in that the reception coil covers at least part of the transmission coil in the parking position. In a third step, the magnetic flux passing through the reception coil is measured. In a fourth step, the velocity of the vehicle is reduced when a first threshold value for the magnetic flux passing through the reception coil is exceeded. In a fifth step, it is detected when a second threshold value for the magnetic flux passing through the reception coil is undershot. In a sixth step, a point without effective magnetic flux passing through the reception coil is detected. The detection of the point without effective magnetic flux passing through the reception coil has the advantage that this point allows a waymark to be provided for positioning an electrically driven vehicle without further additional means for positioning. Reducing the velocity when the first threshold value is exceeded has the advantage that the vehicle can be stopped when reaching the parking position at the point at which the inductive transmission apparatus consisting of a transmission coil and a reception coil is optimally oriented, in order to park at this point during the charging process. This advantageously results in there being positioning information available that allows precise positioning without limitations at charging stations for electrically driven vehicles without further additional means for positioning exclusively with the available components of the inductive transmission device.
The measures cited in the dependent claims allow advantageous developments of the method specified in the independent claim.
Advantageously, the transmission coil is arranged on or in the floor, on or in a wall or on or in a ceiling. In an advantageous manner, the positioning method according to the invention can be used for any coil arrangement. This means that for example the degrees of freedom for the design of electrically driven vehicles are not limited. The transmission coils arranged on or in a wall or on or in a ceiling advantageously do not need to be designed to withstand the stresses that occur when being driven over, for example. Additionally, it is advantageous that there is no need for special resilience against dirt from the road and aggressive media such as for example road salt.
It is particularly advantageous that, following detection of the point without effective magnetic flux passing through the reception coil, the vehicle is moved on by a distance up to the point of optimum orientation and is stopped when the point at which the inductive transmission apparatus consisting of a transmission coil and a reception coil is optimally oriented is reached. This means that a simple distance measurement advantageously results in the vehicle being moved easily and robustly to the point of optimum orientation and stopped there in order to park at this point during the charging process.
Alternatively, following detection of the point without effective magnetic flux passing through, the vehicle can be moved on in the direction of travel until a second point without effective magnetic flux passing through is reached. During the movement of the vehicle, a distance measurement is performed between the two points without effective magnetic flux passing through and the vehicle is stopped when the second point without effective magnetic flux passing through is reached. By halving the measured distance and reversing the vehicle contrary to the direction of travel by half the measured distance and stopping the vehicle after half the measured distance, the point at which the inductive transmission apparatus consisting of a transmission coil and a reception coil is optimally oriented is reached. This means that a distance measurement available in each vehicle advantageously results in the vehicle being moved easily and robustly to the point of optimum orientation and stopped there, in order to park at this point during the charging process.
Advantageously, the point without effective magnetic flux passing through the reception coil is detected from the undershooting of the second threshold value of the magnetic flux passing through the reception coil, a change of arithmetic sign of the gradient of the change in the magnetic flux passing through the reception coil and the exceeding of a third threshold value for the magnetic flux passing through the reception coil. The simple and robust detection of the points without effective magnetic flux passing through the reception coil without further tools is particularly advantageous.
It is advantageous to detect the second point without effective magnetic flux passing through the reception coil from the undershooting of the third threshold value of the magnetic flux passing through the reception coil, a change of arithmetic sign of the gradient of the change in the magnetic flux passing through the reception coil and the exceeding of a second threshold value of the magnetic flux passing through the reception coil. One great advantage is that simple and robust detection of the point without effective magnetic flux passing through the reception coil without further tools is likewise available for detecting the second point without effective magnetic flux passing through the reception coil.
It is beneficial to query the interval between the two points without effective magnetic flux passing through the reception coil from a database and to compare the value ascertained by the distance measurement with the value queried from the database, in order to repeat the parking process in the event of a difference that exceeds a fourth threshold value. It is therefore advantageously possible to detect inadequately precise positioning transversely with respect to the direction of travel of the vehicle by using simple and robust detection of the points without effective magnetic flux passing through the reception coil without further tools.
Further features and advantages of the present invention will become evident to a person skilled in the art from the description that follows of exemplary embodiments, which are not intended to be interpreted as restricting the invention, however, with reference to the accompanying drawings.
In the drawings:
All the figures are merely schematic depictions of the method according to the invention or of an exemplary embodiment of a vehicle equipped according to the invention. In particular intervals and magnitude relationships are not reproduced to scale in the figures. Corresponding elements are provided with the same reference numerals in the various figures.
Number | Date | Country | Kind |
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10 2017 216 726.2 | Sep 2017 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/072107 | 8/15/2018 | WO | 00 |