TRANSMISSION COIL FOR WIRELESS POWER SUPPLY, TRANSMISSION ANTENNA, WIRELESS POWER TRANSMITTER, AND CHARGER
20200312545 ยท 2020-10-01
Inventors
Cpc classification
H02J50/80
ELECTRICITY
International classification
H02J7/00
ELECTRICITY
Abstract
A transmission coil used in a wireless power transmitter includes a first coil, a second coil electrically connected in series with the first coil, and a tap provided at a connection node of the first coil and the second coil, the first coil and the second coil being stacked to at least partially overlap with each other. A transmission antenna includes the transmission coil, a first capacitor and a second capacitor connected in series with the transmission coil, and a switch provided in parallel to a series connection circuit of the second coil of the transmission coil and the second capacitor. A wireless power transmitter includes the transmission antenna and a bridge circuit that drives the transmission antenna. A charger includes the wireless power transmitter.
Claims
1. A transmission coil used in a wireless power transmitter, the transmission coil comprising: a first coil; a second coil electrically connected in series with the first coil; and a tap provided at a connection node of the first coil and the second coil, wherein the first coil and the second coil are stacked to at least partially overlap with each other.
2. The transmission coil according to claim 1, wherein centers of the first coil and the second coil match.
3. The transmission coil according to claim 1, wherein inner diameters of the first coil and the second coil are substantially equal.
4. The transmission coil according to claim 1, wherein outer diameters of the first coil and the second coil are substantially equal.
5. A transmission antenna comprising: a transmission coil used in a wireless power transmitter, the transmission coil including a first coil, a second coil electrically connected in series with the first coil, and a tap provided at a connection node of the first coil and the second coil, the first coil and the second coil being stacked to at least partially overlap with each other; a first capacitor and a second capacitor connected in series with the transmission coil; and a switch provided in parallel to a series connection circuit of the second coil of the transmission coil and the second capacitor.
6. A wireless power transmitter comprising: a transmission antenna including a transmission coil used in the wireless power transmitter, the transmission coil including a first coil, a second coil electrically connected in series with the first coil, and a tap provided at a connection node of the first coil and the second coil, the first coil and the second coil being stacked to at least partially overlap with each other, a first capacitor and a second capacitor connected in series with the transmission coil, and a switch provided in parallel to a series connection circuit of the second coil of the transmission coil and the second capacitor; and a bridge circuit that drives the transmission antenna.
7. The wireless power transmitter according to claim 6, wherein the wireless power transmitter is compliant with at least one of a Qi standard and a Power Matters Alliance standard.
8. A charger comprising: a wireless power transmitter including a transmission antenna including a transmission coil used in the wireless power transmitter, the transmission coil including a first coil, a second coil electrically connected in series with the first coil, and a tap provided at a connection node of the first coil and the second coil, the first coil and the second coil being stacked to at least partially overlap with each other, a first capacitor and a second capacitor connected in series with the transmission coil, and a switch provided in parallel to a series connection circuit of the second coil of the transmission coil and the second capacitor, and a bridge circuit that drives the transmission antenna.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0040] The present disclosure will now be described based on a preferred embodiment with reference to the drawings. The same reference symbols are provided to the same or equivalent constituent elements, members, and processes illustrated in the drawings, and overlapping description will be appropriately removed. The embodiment does not limit the disclosure, and the embodiment is an example. All features and combinations of the features described in the embodiment may not be necessarily essential for the disclosure.
[0041] In the present specification, a state in which a member A is connected to a member B includes not only a case in which the member A and the member B are physically and directly connected, but also a case in which the member A and the member B are indirectly connected through another member that does not substantially affect the electrical connection state of the member A and the member B or that does not reduce the functions or the effects attained by the coupling of the member A and the member B.
[0042] Similarly, a state in which a member C is provided between a member A and a member B includes not only a case in which the member A and the member C or the member B and the member C are directly connected, but also a case in which the member A and the member C or the member B and the member C are indirectly connected through another member that does not substantially affect the electrical connection state of the member A and the member C or the member B and the member C or that does not reduce the functions or the effects attained by the coupling of the member A and the member C or the member B and the member C.
Example 1
[0043]
[0044] As illustrated in
[0045]
[0046] In Example 1, inner diameters r1 and r2 of the first coil 502 and the second coil 504 are substantially the same (r1r2), and outer diameters R1 and R2 of the first coil 502 and the second coil 504 are different (R1>R2).
[0047] The configuration of the transmission coil 500 has been described. With this transmission coil 500, an alternating-current (AC) driving signal can be applied between one of terminals E1 and E2 and the tap TP to excite only one of the first coil 502 and the second coil 504 to transmit relatively low power.
[0048] In addition, an AC driving signal can be applied between the terminals E1 and E2 to excite both the first coil 502 and the second coil 504 to transmit relatively high power.
[0049] By putting the inner circumferences together, the tap of the first coil 502 and the second coil 504 can be easily provided on the inner circumference side. Note that the first coil 502 and the second coil 504 may be formed by two independent wires first, and then the first coil 502 and the second coil 504 may be connected later. Alternatively, the first coil 502 and the second coil 504 may be formed by one common wire.
[0050] An advantage of the transmission coil 500 becomes clear by contrast with a compared technique.
[0051] Next, some examples of a method of winding the transmission coil 500 will be described.
[0052]
[0053]
[0054]
[0055]
[0056] The numbers of layers of the first coil 502 and the second coil 504 may be further increased.
Example 2
[0057]
[0058] The transmission coil 500A according to Example 2 is similar to the transmission coil 500 of Example 1 in that the first coil 502A and the second coil 504A are stacked such that centers O of the first coil 502A and the second coil 504A match, and the windings partially overlap with each other.
[0059] In Example 2, outer diameters R1 and R2 of the first coil 502A and the second coil 504A are substantially the same (R1R2), and inner diameters r1 and r2 of the first coil 502A and the second coil 504A are different (r1>r2).
[0060] The configuration of the transmission coil 500A has been described. With this transmission coil 500A, the same advantageous effects as in Example 1 can be obtained. Different intensity distributions (profiles) of an electromagnetic field can be obtained in Example 1 and Example 2, and an appropriate one can be selected according to the usage.
[0061]
Modification 1
[0062] Next, a modification of the transmission coil 500 will be described.
Modification 2
[0063] Although the centers of two coils substantially match in the embodiment, the arrangement is not limited to this, and the centers may be offset.
Modification 3
[0064] The inner diameters of the first coil 502 and the second coil 504 are equal in Example 1, and the outer diameters of the first coil 502 and the second coil 504 are equal in Example 2. However, the arrangement is not limited to this, and for example, a relation of r1<r2<R2<R1 may hold.
[0065] Next, a power transmitter including the transmission coil 500 (or the transmission coil 500A) will be described.
[0066] The wireless power transmitter 100 includes a transmission antenna 600 and a bridge circuit 700. The transmission antenna 600 includes the transmission coil 500, a first capacitor C1, a second capacitor C2, and a switch SW1. The first capacitor C1 and the second capacitor C2 are connected in series with the transmission coil 500. The switch SW1 is provided in parallel to a series connection circuit of the second coil 504 of the transmission coil 500 and the second capacitor C2.
[0067] The bridge circuit 700 applies an AC driving voltage VDRV between both ends of the transmission antenna 600. The bridge circuit 700 is, for example, a full-bridge circuit (H-bridge circuit). A pre-driver 720 drives the bridge circuit 700 based on a control signal from a controller not illustrated.
[0068] With this wireless power transmitter 100, the switch SW1 can be turned on or off according to the range of the transmission power to thereby switch a state in which only the first coil 502 is excited and a state in which both the first coil 502 and the second coil 504 are excited.
[0069] The inductance of the transmission coil 500 includes inductance components L1 of the first coil 502 when the switch SW1 is on. The inductance of the transmission coil 500 includes a sum L1+L2 of the inductance of two coils 502 and 504 when the switch SW1 is off.
[0070] Providing the two capacitors C1 and C2 and optimizing the capacity values of the capacitors C1 and C2 can independently set the resonant frequency of the antenna when the switch SW1 is on and the resonant frequency of the antenna when the switch SW1 is off.
[0071]
[0072] Next, usage of the power transmitter 100 will be described.
[0073]
[0074]
[0075] The charger 400 may receive a DC voltage from an AC/DC converter 410, or an AC/DC converter may be built in the charger 400. Alternatively, the charger 400 may be supplied with DC power from the outside through a bus including a power supply line, such as a Universal Serial Bus (USB).
[0076] Although specific terms are used to describe the present disclosure based on the embodiment, the embodiment merely illustrates the principle and the application of the present disclosure, and a large number of modifications and changes in arrangement can be made to the embodiment without departing from the scope of the present disclosure described in the claims.
[0077] The present disclosure contains subject matter related to that disclosed in Japanese Priority Patent Application JP 2019-065944 filed in the Japan Patent Office on Mar. 29, 2019, the entire content of which is hereby incorporated by reference.