The present invention relates to a primary coil unit having a plurality of coils, a power transfer device for wireless power transmission using the same and a power pickup device, and more particularly, relates to a primary coil unit having four coils which are electrically separated from each other and independently controllable and a power transfer device which is capable of forming various types of power transfer magnetic flux patterns for wireless power transmission using the same. In addition, the present invention relates to a pickup coil unit having four coils which are electrically separated from each other and independently controllable, and a power pickup device which is capable of effectively receiving magnetic fields of various patterns generated from a power transfer device. Furthermore, the present invention relates to a wireless power charging system which is capable of more effectively performing power transfer by using the power transfer device and the power pickup device to change the form of a magnetic field through mode switching when a positional deviation occurs.
In a wireless power transfer scheme based on a power pickup system including a circular coil and a power transfer system according to the related art, it is difficult to perform a remote charge because the efficiency of the wireless power transmission is greatly reduced when a deviation occurs between the power transfer system and the power pickup system. In addition, the power transfer system and the power pickup system of a wireless power transfer system according to the related art tend to have little or no compatibility with other types of power transfer systems and power pickup systems. Thus, when a different type of a power pickup system is to wirelessly receive power from a power transfer system to be charged, the capacity and efficiency of the charge fall short of those required in the standard.
In recent years, as one scheme for solving such a problem, there has been proposed a power transfer system which is capable of performing remote charging using two primary coils which is current-controllable independently and has more than a certain degree of compatibility within the existing standard space. However, it has been known that the power transfer system has somewhat lower compatibility than a power transfer system having a conventional circular coil at the correct position and deviation of the wireless power transfer standard. As the types of the primary coil and the pickup coil are proposed, there are the DD type in which two primary coils are arranged side by side, the DDQ type in which one circular coil is additionally overlapped with two primary coils arranged side by side, and the BP type in which coils are arranged but partially overlapped with each other. A power pickup device including a power transfer device having such primary coils and a power pickup device having pickup coils have been described in “Adeel Zaheer et al., Investigation of Multiple Decoupled Coil Primary Pad Topologies in Lumped IPT Systems for Interoperable Electric Vehicle Charging, IEEE TRANSACTIONS ON POWER ELECTRONICS, VOL. 30, NO. 4, April 2015”. A power pickup device corresponding to the power transfer device proposed in the literature includes two pickup coils (DD type) arranged side by side.
Accordingly, there is a need to provide a power transfer system capable of satisfying the capacity and efficiency required by the standard, and capable of performing remote charging, which is not provided by a conventional power transfer system having a circular coil. For example, there is a need to provide a power transfer system capable of performing efficient wireless power transmission corresponding to a newly proposed power pickup system such as the DD type pickup coil.
In addition, there is a need to provide a power pickup device capable of satisfying the capacity and efficiency required by the standard and capable of effectively receiving power wirelessly even when there is a large deviation in the magnetic field formed by a conventional power transfer device having a circular coil.
It is an object of the present invention to provide a power transfer system and a power pickup system that can satisfy standard compatibility and at the same time improve the efficiency of wireless power transmission even when a large deviation exists, and a wireless power transfer system with integrated power transfer and power reception.
In detail, it is one object of the present invention to provide a power transfer system which is capable of being compatible with various types of conventional power pickup systems and capable of expanding compatibility with different magnetic fields or new power pickup systems to be developed in future by changing the power transfer magnetic flux pattern. In addition, it is another object of the present invention to provide a power pickup system which is capable of being compatible with various types of conventional power transfer systems and capable of expanding compatibility with different magnetic fields or new power transfer systems to be developed in future by changing the state of connecting pickup coils or controlling the phase of a current flowing through the pickup coil.
To achieve the objects, in accordance with one aspect of the present invention, there is provided a method of controlling a wireless power transfer device including four primary coils each of which partially overlaps other adjacent primary coils and is electrically independent from other primary coils, the method comprising: (a) supplying power to the four primary coils such that each of the four primary coils generates a magnetic field having a same intensity in a same direction; (b) sensing a state change of each primary coil when a magnetic field formed by the wireless power transfer device is changed by an adjacent wireless power pickup device; (c) determining a position of the adjacent wireless power pickup device based on information including the state change of each primary coil sensed in the step (b); (d) deciding an operation mode of each primary coil based on the position of the adjacent wireless power pickup device determined in the step (c); and (e) controlling an operation of each primary coil based on the operation mode of each primary coil decided in the step (d).
In accordance with another aspect of the present invention, there is provided a wireless power transfer device comprising:
at least four primary coils each of which partially overlaps other adjacent primary coils and is electrically independent from other primary coils;
a power pickup device position determining unit configured to output information including a position of an adjacent wireless power pickup device when information including a change of a current generated from each of the at least four primary coils is provided as inputs;
a control unit configured to individually control operations of the at least four primary coils by performing: (a) supplying power to said at least four primary coils such that said at least four primary coils generate magnetic fields having a same intensity in a same direction; (b) sensing a state change of each of the at least four primary coils when a magnetic field formed by the wireless power transfer device is changed by the adjacent wireless power pickup device; (c) determining the position of the adjacent wireless power pickup device based on information including the state change of each of said at least four primary coils sensed in the step (b); (d) deciding an operation mode of each of said at least four primary coils based on the position of the adjacent wireless power pickup device decided in the step (c); and (e) controlling an operation of each of said at least four primary coils based on the operation mode of each of said at least four primary coils determined in the step (d).
In accordance with still another aspect of the present invention, there is provided a primary coil unit used in a wireless power transfer device, the primary coil unit comprising: four primary coils each of which partially overlaps with other primary coils and has a rectangular shape, wherein the four primary coils are electrically independent from each other, an aspect ratio of each primary coil is in a range of 1.0 to 1.1, and a ratio of overlapping one side of each primary coil with another adjacent primary coil is in a range of 0.47 to 0.58.
In accordance with still another aspect of the present invention, there is provided a method of controlling a wireless power pickup device including four pickup coils each of which partially overlaps other adjacent pickup coils and is electrically independent from other pickup coils, the method comprising: (a) sensing states of each pickup coils; (b) determining a position of the wireless power pickup device based on information including changes in the states of each pickup coils sensed in the step (a); (c) deciding an operation mode of each pickup coil based on information including the position of the wireless power pickup device determined in the step (b); and (d) controlling an operation of each pickup coil based on the operation mode of each pickup coil decided in the step (c).
In accordance with still another aspect of the present invention, there is provided a wireless power pickup device comprising: at least four pickup coils each of which partially overlaps other adjacent pickup coils and is electrically independent from other pickup coils; a power pickup device position determining unit configured to output information including a position of the wireless power pickup device when information including a change of a current generated from each pickup coil is provided as an input; a control unit configured to individually control an operation of each pickup coil by performing: (a) sensing a state of each pickup coils; (b) determining a position of the wireless power pickup device based on information including the changes in the state of each pickup coil sensed in the step (a); (c) deciding an operation mode of each pickup coil based on information including the position of the wireless power pickup device determined in the step (b); and (d) controlling an operation of each pickup coil based on the operation mode of each pickup coil decided in the step (c).
In accordance with still another aspect of the present invention, there is provided a pickup coil unit used in a wireless power pickup device comprising: four pickup coils each of which partially overlaps with other pickup coils and has a rectangular shape, wherein the four pickup coils are electrically independent from each other, an aspect ratio of each pickup coil is in a range of 1.0 to 1.25, and a ratio of overlapping one side of each pickup coil with another adjacent pickup coil is in a range of 0.5 to 0.8.
According to the present invention, there is provided a power transfer system and a power pickup system capable of satisfying the standard compatibility and improving the efficiency of remote wireless power transmission. In addition, there is provided a wireless power transfer system in which the power transfer system and the power pickup system are combined to maximize the effect.
In addition, according to the present invention, there is provided a power transfer system which is capable of being compatible with various types of conventional power pickup systems and capable of expanding compatibility with different magnetic fields or new power pickup systems to be developed in future by changing the power transfer magnetic flux pattern.
In addition, according to the present invention, there is provided a power pickup system which is capable of being compatible with various types of conventional power transfer systems and capable of expanding compatibility with different magnetic fields or new power transfer systems to be developed in future by changing the state of connecting pickup coils or controlling the phase of a current flowing through the pickup coil.
Hereinafter, exemplary embodiments of the present invention for achieving the effects will be described in detail with reference to the accompanying drawings.
Hereinafter, an embodiment of the present invention will be described in detail with reference to accompanying drawings. In the following description, specific details are merely provided to assist the overall understanding of exemplary embodiments of the present invention. Therefore, it should be apparent to those skilled in the art that various changes and modifications of the embodiments described herein can be made without departing from the scope and spirit of the invention. In a description of the present invention, a detailed description of related known functions and configurations will be omitted when it may make the essence of the present invention unnecessarily obscure. Further, parts irrelevant to the present invention are omitted in the drawings to make the present invention clear and the same reference numerals are designated to the same or similar components throughout the specification.
Power Transfer Device
Configuration of Power Transfer Device
Meanwhile, although the standards for parking areas vary from country to country, the width is specified in the range of 2.0 m to 2.6 m and the length is specified in the range of about 5 m to about 6 m. Generally, in the case of a compact vehicle, the width is about 1.6 m. In the case of a semi-midsize vehicle, the width is about 1.8 m. Thus, when the battery of a vehicle is charged through wireless power transmission, a deviation of about 0.1 m to about 0.5 m may be generated between a power transfer device and a power pickup device.
Accordingly, in a standard power transfer/pickup system, when a deviation occurs between the positions of a power transfer device and a power pickup device, the induced power is greatly reduced even though the deviation is small. When the deviation is large, a counter voltage may be generated.
One example of the primary coil unit 110 of
Each of the primary coils 111 to 114 is connected to the inverter 140 through the medium of the switches 121 to 124. For example, each of the switches 121 to 124 may be formed to switch the direction of the power suppled to each primary coil 111 to 114 or shut off the power. Thus, high-frequency power having the same phase or an opposite phase may be provided to each primary coil 111 to 114 by the switching operation of each switch or the power supply may be shut off. Each of the primary coils 111 to 114 is connected to the inverter 140 through the medium of the resonant capacitor module 130.
Operation Mode of Primary Coil
In the table of
When sorting modes are confirmed through a simulation by type, there are three types of modes: quarter mode, all mode and half mode. In the quarter mode, the direction of the current flowing through one of the four primary coils is different from those of currents flowing through the remaining primary coils, which are the same. In the half mode, the directions of currents flowing through the primary coils adjacent to each other in a transverse or longitudinal direction are the same. In the all mode, the directions of currents flowing through the four primary coils are the same. In each mode, there is a case where the directions of the currents flowing through the coils, which are electrically symmetric to each other, are opposite to each other. Thus, the primary coil is operated in eight quarter modes, four half modes and two all modes, that is, a total of 14 operation modes.
In the case where the primary coil has a rectangular shape, the operation mode of the primary coil for generating an induced voltage which is most favorable to the standard power pickup device is changed. For example,
Shape and Arrangement of Primary Coil
The primary coils shown in the above-mentioned drawings have a rectangular shape and are partially overlapped with each other. Hereinafter, the variation of a magnetic field generated by the primary coils according to the shape of the primary coils and the overlap areas will be described.
The simulation results are summarized as follows:
1) Although the induced voltage is increased as the degree of overlap is increased when the standard power pickup device is in position to match the center of the power transfer device, the degree of reduction of the induced voltage is increased when the positional deviation of the standard power pickup device is increased.
2) Regarding the aspect ratio, even if the aspect ratio is not changed greatly, the voltage induced to the standard power pickup device varies greatly.
3) Regarding the shape of the primary coil, it is judged that the primary coil is advantageous in the case of a rectangular shape rather than a square shape. However, the difference between the voltages induced to the standard power pickup device according to the shape of the primary coil is not large. Considering the manufacturing conditions of the primary coil, the primary coil may have a square shape.
The range of each variable in the embodiments illustrated based on the aspect ratio and the degree of overlap of the primary coil unit 110 confirmed in the simulation is as follows: the aspect ratio is in the range of about 1.0 to about 1.1 and the degree of overlap is in the range of about 0.25 to about 0.55 based on the inner area of each primary coil.
Power Pickup Device
Configuration of Power Pickup Device
Each of the pickup coils 211 to 214 is connected to the rectifier module 230 through the switches 221 to 224. For example, each switch 221 to 224 is formed to switch the direction of power output from each pickup coil 211 to 214. By the switching operations of the switches, the phases of the powers output from the pickup coils 211 to 214 may be the same or opposite to each other. Unlike the primary coil, the power output from the pickup coil is not cut off.
Operation Mode of Pickup Coil
As shown in
As shown in
Shape and Arrangement of Pickup Coil
The pickup coils shown in the above-described drawings have a rectangular shape and are partially overlapped with each other. When the degree of overlap of the pickup coil is changed, the induced voltage is increased when the pickup coil is located at the position coinciding with the center of the power transfer device as the degree of overlap increases, but the degree of decrease in the induced voltage is increased when the positional deviation of the power pickup device is increased.
In the illustrated embodiment, the pickup coil has a rectangular shape, but may have a square shape. However, as a result of the simulation, it was found that it is advantageous that the inner area of the pickup coil is overlapped with a certain area. When the aspect ratio of the pickup coil and the degree of overlap are summarized by taking this into consideration, the aspect ratio is in the range of about 1 to about 1.25, and the degree of overlap of the inner area of the pickup coil with respect to the long side of the pickup coil is preferably in the range of about 0.35 to about 0.65.
Control Method
Method of Controlling Power Transfer Device
As shown in
In step 120, the position of the adjacent power pickup device is obtained by performing the method depicted in
When the power pickup device includes a plurality of pickup coils, information about the change in the state of each pickup coil, such as a voltage, a current, a power, a magnetic field, or the like, generated by the magnetic field formed by the power transfer device may be included in the information including the type of the power pickup device in step S210. Such a change in the state of the pickup coil may occur when the position of the pickup coil is not changed, and may occur as the power pickup device installed in a vehicle approaches from a remote position to the power transfer device. When the state of the pickup coil is changed as a vehicle approaches to the power transfer device, the information about the movement of the vehicle may be further transmitted to the power transfer device.
When the communication with the power pickup device is not performed, the position of the power pickup device may be determined based only on the state change of each primary coil.
In step S126, various schemes may be utilized to obtain the position of the power pickup device based on given information. In the present invention, based on simulation or experiment data, a machine learning technique such as a support vector machine or a neural network algorithm such as CNN or RNN.
When a case of using the neural network algorithm is explained as an example, a power pickup device position determining unit may be formed by performing supervised learning which includes the change of a current generated in each primary coil of the power transfer device by the adjacent power pickup device as an input and the position of the adjacent power pickup device as an output. When the information including the change of a current generated from each primary coil of the power pickup device position determining unit is provided as an input, the power pickup device position determining unit outputs the information including the position of the adjacent wireless power pickup device. The input of the neural network algorithm may include information about the type of the adjacent power pickup device and/or the state of the pickup coil changed by the magnetic field formed by the power transfer device.
Method of Controlling Power Pickup Device
First, in step S210, the states of the four pickup coils of the power pickup device are sensed. To this end, power is supplied in advance to the power transfer device to form a magnetic field and the state of each pickup coil is changed by the magnetic field. The state of the pickup coil includes at least one of a current, a voltage, a power, and a magnetic field. The state of the pickup coil may be detected in the state where the pickup coil is stopped, or may be obtained continuously while the vehicle in which the pickup coil is installed approaches from a remote position to the power transfer device.
Next, in step S220, the position of the power pickup device is determined based on only the state of each pickup coil sensed in step S210 or considering additional information together. The additional information includes information about the type of the power transfer device or the like.
In step S230, when the position of the power pickup device is obtained, the operation mode of each pickup coil is determined using the information or the additional information together. In this case, the additional information may include information about the operation mode of the power transfer device when the power feeding device is a type capable of switching the operation mode. The reason is that the state of the pickup coil is changed according to the operation mode of the power transfer device.
When the operation mode of each pickup coil is determined, the operation of the each pickup coil is controlled according to the determined operation mode.
In step S210, the power pickup device may include a power pickup device position obtaining unit for obtaining the position of the power pickup device. Like the power transfer device position obtaining unit, the power pickup device position obtaining unit utilizes a machine learning technique or a neural network algorithm.
For example, when the neural network algorithm is utilized, supervised learning including the state of each pickup coil of the power pickup device as an input and the position of the wireless power pickup device as an output is performed. When the information including the state of each pickup coil of the power pickup device is provided by the neural network algorithm as the input, the information including the position of the wireless power pickup device is output.
Control of Power Transfer Device and Power Pickup Device
As shown in
Referring to
Referring to
As shown in the drawings, in the case of using the power transfer device according to the present invention and the power pickup device according to the present invention, as compared with the case of using the power transfer device and the power pickup device according to the standard, the voltage induced to the power pickup device is still high even when a deviation occurs in the position of the power pickup device. Therefore, according to the present invention, it is possible to obtain a wireless power transfer system robust against the positional deviation of the power pickup device.
The resonant capacitor module shown in
It should be noted that the present invention is not limited to the specific forms mentioned in the detailed description of the present invention and includes all modifications and equivalents, and replacements that are within the spirit and range of the present invention, which are defined in the annexed claims.
For example, although it has been described that the phase of the current supplied to the primary coil is changed by 180 degrees by switching of the switch, the present invention is not necessarily limited thereto and the phase of the current may be continuously changed by using a phase shifter. Similarly, although it has been described that the phase of the current output from the pickup coil is changed by 180 degrees by the switch, the phase of the output current may be continuously changed by using the phase shifter.
Number | Date | Country | Kind |
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10-2017-0091154 | Jul 2017 | KR | national |
10-2017-0091168 | Jul 2017 | KR | national |
Number | Date | Country | |
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Parent | 15822343 | Nov 2017 | US |
Child | 17215303 | US |