FILTER CIRCUIT AND WIRELESS POWER TRANSMISSION SYSTEM
20180069434 ยท 2018-03-08
Assignee
Inventors
Cpc classification
International classification
Abstract
A filter circuit includes: a first coil electromagnetically coupled to a current-carrying coil inserted into a current flow path; and a parallel circuit of a second coil and a capacitor, the parallel circuit being connecting across the first coil. The element constants of the second coil and the capacitor are set such that parallel resonance occurs at a frequency at which an impedance between the terminals of the current-carrying coil is equivalent to an impedance of the current-carrying coil alone.
Claims
1. A filter circuit comprising: a first coil electromagnetically coupled to a current-carrying coil inserted into a current flow path; and a parallel circuit of a second coil and a capacitor, the parallel circuit being connecting across the first coil, wherein element constants of the second coil and the capacitor are set such that parallel resonance occurs at a frequency where an impedance between terminals of the current-carrying coil is equivalent to an impedance of the current-carrying coil alone.
2. The filter circuit according to claim 1, wherein the second coil has an inductance that is set equal to or less than an inductance of the first coil.
3. The filter circuit according to claim 1, wherein the first coil is disposed on one side of a substrate while the current-carrying coil is disposed on the other side of the substrate.
4. The filter circuit according to claim 1, wherein the current-carrying coil is formed as one of an internal conductor and an external conductor of a coaxial cable, and the first coil is formed as the other of the internal conductor and the external conductor.
5. The filter circuit according to claim 1, wherein the parallel circuit has a neutral point to which a predetermined potential is applied.
6. The filter circuit according to claim 2, wherein the parallel circuit has a neutral point to which a predetermined potential is applied.
7. The filter circuit according to claim 3, wherein the parallel circuit has a neutral point to which a predetermined potential is applied.
8. The filter circuit according to claim 4, wherein the parallel circuit has a neutral point to which a predetermined potential is applied.
9. A wireless power transmission system comprising: a power transmitter comprising; a power transmitting coil, and a filter circuit comprising a first coil electromagnetically coupled to the power transmitting coil; and a parallel circuit of a second coil and a capacitor, the parallel circuit being connected across the first coil, wherein element constants of the second coil and the capacitor are set such that parallel resonance occurs at a frequency where an impedance between terminals of the power transmitting coil is equivalent to an impedance of the power transmitting coil alone; a power receiver comprising; a power receiving coil; and a filter circuit comprising a first coil electromagnetically coupled to the power receiving coil; and a parallel circuit of a second coil and a capacitor that are connected across the first coil, wherein element constants of the second coil and the capacitor are set such that parallel resonance occurs at a frequency where an impedance between terminals of the power receiving coil is equivalent to an impedance of the power receiving coil alone.
10. The wireless power transmission system according to claim 9, wherein the second coil of the filter circuit has an inductance that is set equal to or less than an inductance of the first coil.
11. The wireless power transmission system according to claim 9, wherein the first coil of the filter circuit is disposed on one side of a substrate while the power transmitting coil and the power receiving coil are disposed on the other side of the substrate.
12. The wireless power transmission system according to claim 9, wherein the power transmitting coil and the power receiving coil are each formed as one of an internal conductor and an external conductor of a coaxial cable, and the first coil of the filter circuit is formed as the other of the internal conductor and the external conductor.
13. The wireless power transmission system according to claim 9, wherein the parallel circuit of the filter circuit has a neutral point to which a predetermined potential is applied.
14. The wireless power transmission system according to claim 10, wherein the parallel circuit of the filter circuit has a neutral point to which a predetermined potential is applied.
15. The wireless power transmission system according to claim 11, wherein the parallel circuit of the filter circuit has a neutral point to which a predetermined potential is applied.
16. The wireless power transmission system according to claim 12, wherein the parallel circuit of the filter circuit has a neutral point to which a predetermined potential is applied.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENT
[0024] The present embodiment provides a filter circuit that can reduce influence on the impedance of a current flow path, and a wireless power transmission system including the filter circuit.
[0025] The filter circuit according to an embodiment includes: a first coil electromagnetically coupled to a current-carrying coil inserted into a current flow path; and
[0026] a parallel circuit having a second coil and a capacitor, the parallel circuit being connected across the first coil,
[0027] wherein the element constants of the second coil and the capacitor are set such that parallel resonance occurs at a frequency where an impedance between the terminals of the current-carrying coil is equivalent to the impedance of the current-carrying coil alone.
[0028] A wireless power transmission system according to the embodiment includes:
[0029] a power transmitter provided with the filter circuit according to the embodiment with the current-carrying coil serving as a power transmitting coil; and
[0030] a power receiver provided with the filter circuit according to the embodiment with the current-carrying coil serving as a power receiving coil.
First Embodiment
[0031] Referring to
[0032] The power receiver 3 includes a series circuit having a capacitor 8 and a power receiving coil 9 and an AC-DC converter 10, the series circuit being connected between the input terminals of the AC-DC converter 10. The AC-DC converter 10 converts inputted alternating power into direct-current power and then outputs the converted power. Likewise, the power receiver 3 includes a filter circuit 11 electromagnetically coupled to the power receiving coil 9. The DC-AC converter 4 and the AC-DC converter 10 also serve as noise sources in the power transmission system 1.
[0033] The filter circuits 7 and 11 are identical in configuration. Referring to
[0034] Thus, as shown in
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[0036] The effects of the filter circuits 7 and 11 of the present embodiment will be discussed below according to simulation results. The power transmitting coil 6 and the coil L1 that are identical in shape are patterned with, for example, a line width of 2.5 mm and an inductance of 1 H. If a clearance between the facing coils, that is, the thickness of the insulating layer 13 is 0.1 mm, a coupling coefficient k is 0.97 to 0.98. If the clearance is changed to 0.025 mm, the coupling coefficient k is 0.99.
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[0042] As described above, according to the present embodiment, the filter circuit 7 includes the coil L1 electromagnetically coupled to the power transmitting coil 6 inserted into the current flow path of the power transmitter 2 and the parallel circuit 12 having the coil L2 and the capacitor C2 that are connected across the coil L1. The element constants of the coil L2 and the capacitor C2 are set such that parallel resonance occurs at an arbitrary frequency where an impedance between the terminals of the power transmitting coil 6 is equivalent to an impedance of the coil 6 alone. In other words, the time constant of the LC parallel resonator 12 is selected so as to have a maximum impedance at the frequency, that is, when the power transmitter 2 has a power transmission frequency of 6.76 MHz.
[0043] This can filter noise at a higher frequency without providing attenuation for an electromagnetic signal of a frequency used for power transmission. At this point, the inductance of the coil L2 is set equal to or less than the inductance of the coil L1, thereby improving the effect of filtering.
[0044] Moreover, the coil L1 is disposed on one side of the insulating layer 13 while the power transmitting coil 6 is disposed on the other side of the insulating layer 13. Thus, a clearance between the power transmitting coil 6 and the coil L1 facing each other can be easily adjusted according to the thickness of the insulating layer 13. This can easily adjust the level of electromagnetic coupling of the coil L1 to the power transmitting coil 6. Furthermore, the filter circuits 7 and 11 are applied to the wireless power transmission system 1 including the power transmitter 2 and the power receiver 3, thereby transmitting power with high efficiency.
Second Embodiment
[0045] In the following description, the same parts as in the first embodiment are indicated by the same reference numerals and the explanation thereof is omitted. Different parts will be discussed below. As shown in
Third Embodiment
[0046] As shown in
[0047] A current-carrying coil 34 is connected between the output terminals of a signal generating source 33 and the ground terminal of the signal generating source 33 is connected to the ground via a capacitor C4. In this configuration, a coil L1 of the filter circuit 32 is electromagnetically coupled to the current-carrying coil 34. At this point, the presence of a parasitic capacitance between the current-carrying coil 34 and the coil L1 as indicated by broken lines in
Other Embodiments
[0048] A frequency, the constants of circuit elements, and the dimensions of a filter circuit may be optionally changed according to individual designs.
[0049] In the third embodiment, the predetermined potential is not limited to a ground potential. Moreover, the predetermined potential does not always need to be applied to the neutral point and one ends of the coil L2 and the capacitor C2 may be connected to the predetermined potential.
[0050] The present embodiment is not always applied to a wireless power transmission system and is also applicable to a wireless signal transmission system and a transmitter and a receiver of an electromagnetic signal.
[0051] The embodiments of the present embodiment are merely exemplary and are not intended to limit the scope of the embodiment. The new embodiments can be implemented in various other forms or can be omitted, replaced, and changed without departing from the spirit of the embodiment. The embodiments and modifications are included in the scope and spirit of the embodiment and are also included in embodiments described in claims and the equivalent range.