Resonance-type power transfer coil
11521794 · 2022-12-06
Assignee
Inventors
Cpc classification
H01F27/323
ELECTRICITY
International classification
Abstract
A conductor (31) wound into a multiple-layered helical shape, and an insulating member (32) provided between layers of the conductor are provided.
Claims
1. A resonance-type power transfer coil, comprising: a conductor wound into a multiple-layered helical shape; and an insulating member provided between layers of the conductor, wherein each conductor wound into the multiple-layered helical shape is separated from any other conductor wound into the multiple-layered helical shape from a sectional view in all directions, and each conductor wound into the multiple-layered helical shape is separated by the insulating member.
2. The resonance-type power transfer coil according to claim 1, wherein a thickness of the insulating member is proportional to a voltage to be generated between the layers when a current flows through the conductor in a state in which there is no insulating member.
3. The resonance-type power transfer coil according to claim 1, wherein the conductor is wound into a cylindrical, prismatic, or conical helical shape.
4. The resonance-type power transfer coil according to claim 1, wherein the conductor is arranged alternately between the layers.
5. The resonance-type power transfer coil according to claim 1, wherein the conductor is wound on an outermost layer in a direction opposite to a winding direction in other layers.
6. The resonance-type power transfer coil according to claim 5, wherein a thickness of the insulating member is uniform between the outermost layer and a layer adjacent to the outermost layer, and is, between other layers, proportional to a voltage generated between the other layers when a current flows through the conductor in a state in which there is no insulating member.
7. A resonance-type power transfer coil, comprising: a conductor wound into a multiple-layered helical shape; and an insulating member provided between layers of the conductor, wherein the conductor is wound on an outermost layer in a direction opposite to a winding direction in other layers, and the outermost layer is concentrically stacked on a layer adjacent to the outermost layer.
8. The resonance-type power transfer coil according to claim 7, wherein the conductor is wound into a cylindrical, prismatic, or conical helical shape.
9. The resonance-type power transfer coil according to claim 7, wherein the conductor is arranged alternately between the layers.
10. The resonance-type power transfer coil according to claim 7, wherein a thickness of the insulating member is uniform between the outermost layer and the layer adjacent to the outermost layer, and the thickness of the insulating member is, between other layers, proportional to a voltage generated between the other layers when a current flows through the conductor in a state in which there is no insulating member, and is increased in a direction from one end opposed to a turning point to the other end opposed to a next fuming point of the conductor.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
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(3)
(4)
(5)
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DESCRIPTION OF EMBODIMENTS
(11) Hereinafter, one embodiment of the present invention will be described in detail with reference to the drawings.
First Embodiment
(12)
(13) As illustrated in
(14) The resonance-type transmission power supply device 2 is a resonance-type switching inverter circuit such as an E-class inverter circuit which converts the power output from the primary power supply 1 into high-frequency power having the same frequency (including substantially the same frequency) as a resonance frequency (fo1 in
(15) The power transmitting coil (resonance-type power transfer coil) 3 performs power transfer by resonating at the same frequency (including substantially the same frequency) as the frequency of the high-frequency power output from the resonance-type transmission power supply device 2.
(16) The power receiving coil (resonance-type power transfer coil) 4 receives the high-frequency power transferred from the power transmitting coil 3 by resonating at the same frequency (including substantially the same frequency) as the resonance frequency of the power transmitting coil 3. The high-frequency power (AC power) received by the power receiving coil 4 is output to the receiving circuit 5.
(17) Note that, a power transferring method between the power transmitting coil 3 and the power receiving coil 4 is not especially limited and may be any one of a method by magnetic field resonance, a method by electric field resonance, or a method by electromagnetic induction. In addition, the power transmitting coil 3 and the power receiving coil 4 are not limited to a non-contact type as illustrated in
(18) A configuration example of the power transmitting coil 3 and the power receiving coil 4 is to be described later.
(19) The receiving circuit 5 performs rectification or rectification and voltage conversion on the AC power output from the power receiving coil 4 corresponding to a specification of the load 6. That is, as the receiving circuit 5, there may be a configuration including a rectifying circuit, or a configuration including a rectifying circuit and a receiving power supply (DC/DC converter, DC/AC converter or the like). The power obtained by the receiving circuit 5 is output to the load 6.
(20) The load 6 is a circuit or a device which functions by the power output from the receiving circuit 5.
(21) Next, the configuration example of the power transmitting coil 3 and the power receiving coil 4 is described with reference to
(22)
(23) The power transmitting coil illustrated in
(24) In this case, as illustrated in
(25) Since the parasitic capacitance is generated between the layers of the conductor 31 in this manner, in the power transmitting coil 3 according to the first embodiment, as illustrated in
(26) In this manner, by providing the insulating member 32 between the layers of the conductor 31, the parasitic capacitance between the layers of the conductor 31 can be made smaller. Also, by winding the conductor 31 into a multiple-layered helical shape, the power transmitting coil 3 can be downsized.
(27) Note that, in a case where the input voltage V1 is small, the number of turns of the power transmitting coil 3 is small or the like, the parasitic capacitance between the layers of the conductor 31 can be made uniform even if the thickness of the insulating member 32 is made uniform.
(28)
(29) For example, as illustrated in
(30) With the configuration illustrated in
(31) In addition, in the configuration illustrated in
(32) Also, as illustrated in
(33) Although the case where the conductor 31 is wound into two layers is described above, no limitation is intended to this, and the conductor 31 may be wound into three or more layers.
(34) The case where the conductor 31 is wound into a cylindrical helical shape is described above. However, no limitation is intended to this, and the conductor 31 may also be wound into a prismatic or conical helical shape, for example.
(35) Also, in the above description, the case where the conductor 31 are wound such that the layer parts of the conductor 31 are opposed to each other is described. However, no limitation is intended to this; for example, as illustrated in
(36) The case where the conductor 31 is wound in the same winding direction in each layer is described above. However, no limitation is intended to this; for example, as illustrated in
(37) Also, in this case, as illustrated in
(38) As described above, according to the first embodiment, since the conductor 31 wound into a multiple-layered helical shape and the insulating member 32 provided between the layers of the conductor 31 are provided, the parasitic capacitance between the layers of the conductor 31 can be made small.
(39) Note that, in the invention of the present application, any component of the embodiment may be modified, or any component of the embodiment may be omitted without departing from the scope of the invention.
INDUSTRIAL APPLICABILITY
(40) The resonance-type power transfer coil according to the present invention can make the parasitic capacitance between the portions of the conductor small and is suitable to be used as the resonance-type power transfer coil or the like used for resonance-type power transfer.
REFERENCE SIGNS LIST
(41) 1: Primary power supply, 2: Resonance-type transmission power supply device, 3: Power transmitting coil (resonance-type power transfer coil), 4: Power receiving coil (resonance-type power transfer coil), 5: Receiving circuit, 6: Load, 31: Conductor, 32: Insulating member