POWER SUPPLY SYSTEM FOR FLOATING MOBILE BODY OR UNDERWATER MOBILE BODY
20220337085 · 2022-10-20
Inventors
Cpc classification
B63H19/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A power supply system for a floating mobile body or an underwater mobile body moving on or under water in a water channel or a water tank is configured to supply, in a non-contact manner, power from a power transmission apparatus to a power reception apparatus. The power transmission apparatus includes an AC power source that includes a first terminal and a second terminal and outputs an AC power wave, a power transmission inductance element having one terminal connected to the first terminal, and a first power transmission electrode provided in the water channel or the water tank and having an end portion connected to another terminal of the power transmission inductance element. The power reception apparatus includes a first power reception electrode, a second power reception electrode provided apart from the first power reception electrode, and a power reception inductance element connected to the first power reception electrode.
Claims
1. A power supply system for a floating mobile body or an underwater mobile body that moves on or under water in a water channel or a water tank, the power supply system being configured to supply, in a non-contact manner, power from a power transmission apparatus to a power reception apparatus of the floating mobile body or the underwater mobile body, wherein the power transmission apparatus includes an AC power source that includes a first terminal and a second terminal, and outputs an AC power wave, a power transmission inductance element having one terminal connected to the first terminal, and a first power transmission electrode provided in the water channel or the water tank, the first power transmission electrode having an end portion connected to another terminal of the power transmission inductance element, and the power reception apparatus includes a first power reception electrode, a second power reception electrode provided apart from the first power reception electrode, and a power reception inductance element connected to the first power reception electrode.
2. The power supply system for a floating mobile body or an underwater mobile body according to claim 1, wherein the power transmission apparatus further includes a second power transmission electrode provided apart from the first power transmission electrode in the water channel or the water tank, the second power transmission electrode having an end portion connected to the second terminal of the AC power source.
3. The power supply system for a floating mobile body or an underwater mobile body according to claim 2, wherein the second power transmission electrode or the second terminal is grounded.
4. The power supply system for a floating mobile body or an underwater mobile body according to claim 1, wherein the first power reception electrode is disposed so as to face the first power transmission electrode in the water channel, and the second power reception electrode is disposed above the first power reception electrode.
5. The power supply system for a floating mobile body or an underwater mobile body according to claim 2, wherein the first power reception electrode is disposed so as to face the first power transmission electrode, and the second power reception electrode is disposed so as to face the second power transmission electrode.
6. The power supply system for a floating mobile body or an underwater mobile body according to claim 1, wherein the water channel is provided with only the first power transmission electrode, the first power transmission electrode includes an electric wire or a cable formed by bundling a plurality of electric wires, the electric wire or the cable has a diameter smaller than that of the first power reception electrode, the first power reception electrode is disposed so as to face the electric wire or the cable, and the second power reception electrode is disposed vertically above the first power reception electrode.
7. The power supply system for a floating mobile body or an underwater mobile body according to claim 6, wherein the second terminal of the AC power source is grounded.
8. The power supply system for a floating mobile body or an underwater mobile body according to claim 2, wherein the first power reception electrode is disposed so as to face the first power transmission electrode in the water channel, and the second power reception electrode is disposed above the first power reception electrode.
9. The power supply system for a floating mobile body or an underwater mobile body according to claim 3, wherein the first power reception electrode is disposed so as to face the first power transmission electrode in the water channel, and the second power reception electrode is disposed above the first power reception electrode.
10. The power supply system for a floating mobile body or an underwater mobile body according to claim 3, wherein the first power reception electrode is disposed so as to face the first power transmission electrode, and the second power reception electrode is disposed so as to face the second power transmission electrode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0032] Hereinafter, an embodiment of the present invention will be described. As illustrated in
[0033] The power transmission apparatus 5 includes an alternating-current (AC) power source 51, a power transmission inductance element 52, a first power transmission electrode 53, and a second power transmission electrode 54.
[0034] The AC power source 51 has a first terminal 51a and a second terminal 51b and outputs an AC wave. While the frequency of the AC wave is not particularly limited, for example, a specific frequency within a range of 1 MHz to 10 MHz may be used.
[0035] One terminal 52a of the power transmission inductance element 52 is connected to the first terminal 51a of the AC power source 51, and the other terminal 52b of the power transmission inductance element 52 is connected to an end portion 53a of a first power transmission electrode 53, which will be described below. The power transmission inductance element 52 has a predetermined inductance value, and a coil can be normally used.
[0036] The first power transmission electrode 53 and a second power transmission electrode 54 are continuously extended along the water channel 2. The first power transmission electrode 53 and the second power transmission electrode 54 are provided apart from each other. A long metal plate (for example, a copper plate), a metal foil (for example, a copper foil), or the like can be used as the first power transmission electrode 53 and the second power transmission electrode 54. Further, to prevent corrosion or the like, the first power transmission electrode 53 and the second power transmission electrode 54 may be provided with a surface protective layer.
[0037] As described above, the end portion 53a of the first power transmission electrode 53 is connected to the other terminal 52b of the power transmission inductance element 52.
[0038] An end portion 54a of the second power transmission electrode 54 is connected to the second terminal 51b of the AC power source 51. The second power transmission electrode 54 (or the second terminal 51b of the AC power source 51) can be grounded.
[0039] The power reception apparatus 4 is mounted on the floating mobile body (or the underwater mobile body) 3. The power reception apparatus 4 has a first power reception electrode 41, a second power reception electrode 42, and a power reception inductance element 43.
[0040] The first power reception electrode 41 and the second power reception electrode 42 are provided apart from each other. A metal plate (for example, a copper plate), a metal foil (for example, a copper foil), or the like can be used as the first power reception electrode 41 and the second power reception electrode 42. One terminal 43a of the power reception inductance element 43 is connected to the first power reception electrode 41. The second power reception electrode 42 can be connected to a ground potential of the floating mobile body (or the underwater mobile body) 3. The other terminal 43b of the power reception inductance element 43 and the second power reception electrode 42 can be connected to a load 44 such as a rechargeable battery.
[0041]
[0042] Water Wa is present among each of the first power transmission electrode 53 and the second power transmission electrode 54 of the power transmission apparatus 5 and each of the first power reception electrode 41 and the second power reception electrode 42 of the power reception apparatus 4. Since the relative permittivity of the water Wa is approximately 80, C.sub.S, C.sub.G, C.sub.R, and C.sub.R′, in
[0043]
[0044] Thus, in
[0045] As described above, since the first power transmission electrode 53 and the second power transmission electrode 54 are basically provided in the water channel 2, the power supply system 1 for the floating mobile body or the underwater mobile body has a simple configuration and can easily supply power over a long moving distance.
[0046] Next, an experiment conducted by the inventor of the present application will be described.
[0047]
[0048] According to these experimental results, in the case of using water, when the position was changed to P1, P2, and P3, the corresponding kQ products (and ηmax) greatly changed, compared to those in the case of using no water, and the lowest value was obtained at the position P1. When at the position P1, for example, at the frequency of 6.78 MHz, the kQ product and ηmax in the case of using water were approximately 3.8 and 60%, respectively, and the kQ product and ηmax in the case of using no water were approximately 4.2, and 65%, respectively. That is, the kQ product and the maximum transmission efficiency ηmax in the case of using water were approximately equivalent to those in the case of using no water.
[0049] Thus, the above experimental results suggest that, compared with the system configured on the ground, the power supply system 1 compensates for a decrease in the no-load Q value due to the presence of the water Wa by an increase in the coupling coefficient k and can obtain at least approximately the same kQ product and the maximum transmission efficiency ηmax. In addition, in the water channel 2, in terms of the no-load Q value, the power supply system 1 is more suitably used in a water channel of fresh water or water Wa having a small salt content than in a water channel of seawater or water Wa having a large salt content, which is likely to cause a decrease in the no-load Q value.
[0050] Next, arrangement of the first power transmission electrode 53 and the second power transmission electrode 54 in the water channel 2 and arrangement of the first power reception electrode 41 and the second power reception electrode 42 in the floating mobile body (or the underwater mobile body) 3 will be described.
[0051] While not particularly limited, the first power transmission electrode 53 is typically disposed on a bottom portion 2a of the water channel 2 (see
[0052] The first power reception electrode 41 is disposed so as to face the first power transmission electrode 53 in the water channel 2. Thus, the first power reception electrode 41 is typically disposed on the bottom portion 3a of the floating mobile body (or the underwater mobile body) 3 so that the first power reception electrode 41 can face the first power transmission electrode 53 in the water channel 2 via the water Wa in a wide area. This can increase the capacitance value C.sub.S formed between the first power reception electrode 41 and the first power transmission electrode 53.
[0053] Further, the second power reception electrode 42 can be disposed above the first power reception electrode 41. This can secure the capacitance value C.sub.G formed between the second power reception electrode 42 and the second power transmission electrode 54 to a certain extent, while reducing the capacitance value C.sub.R (parasitic capacitance) formed between the second power reception electrode 42 and the first power transmission electrode 53.
[0054] As illustrated in
[0055] Next, a power supply system 1′ for a floating mobile body or an underwater mobile body according to an embodiment of the present invention will be described. As illustrated in
[0056] The power transmission apparatus 5′ includes an AC power source 51, a power transmission inductance element 52, a first power transmission electrode 53, and a second power transmission electrode 54, which are similar to those included in the power transmission apparatus 5 described above, while the scale of the individual components may be different. The power reception apparatus 4′ includes a first power reception electrode 41, a second power reception electrode 42, and a power reception inductance element 43, which are similar to those described above, while the scale of the individual components may be different. The first power transmission electrode 53 and the second power transmission electrode 54 have sizes and shapes suitable for the water tank 2′.
[0057] It is preferable to provide the second power transmission electrode 54 of the power transmission apparatus 5′ in an area including a ceiling portion 2c′ (for example, only on the ceiling portion 2c′ or in an area including the ceiling portion 2c′ and a part of a side portion extended therefrom) of the water tank 2′ and provide the second power reception electrode 42 of the power reception apparatus 4′ above the first power reception electrode 41 (for example, on a back portion of the fish type).
[0058] Next, a power supply system 1A for a floating mobile body or an underwater mobile body according to an embodiment of the present invention will be described. As illustrated in
[0059] A configuration of the power reception apparatus 4 in the power supply system 1A is similar to that of the power reception apparatus 4 in the power supply system 1. In the power supply system 1A, a second power reception electrode 42 is disposed vertically above a first power reception electrode 41.
[0060] The power transmission apparatus 5A includes an AC power source 51, a power transmission inductance element 52, and a first power transmission electrode 53A. The AC power source 51 and the power transmission inductance element 52 are similar to the AC power source 51 and the power transmission inductance element 52 in the power supply system 1. However, in the power supply system 1A, a second terminal 51b of the AC power source 51 is not connected to an electrode such as the second power transmission electrode 54. The second terminal 51b can be grounded.
[0061] In the power supply system 1A, only the first power transmission electrode 53A is provided along the water channel 2, and the first power transmission electrode 53A includes an electric wire (or a cable formed by bundling a plurality of electric wires) 53Aa. The electric wire (or the cable) 53Aa has a diameter smaller than that of the first power reception electrode 41. The electric wire (or the cable) 53Aa may be provided with a surface protection layer therearound to prevent corrosion or the like. The first power reception electrode 41 is disposed vertically above the electric wire (or the cable) 53Aa so as to face the electric wire 53Aa and supplied with power from the electric wire (or the cable) 53Aa in a non-contact manner.
[0062]
[0063] Next, an experiment conducted by the inventor of the present application will be described.
[0064] In place of the electric wire (or the cable) 53Aa, a copper-foil tape having a width of 2.5 cm was used as the first power transmission electrode 53A, and the first power transmission electrode 53A was attached to the bottom surface of the water channel 2. The first power reception electrode 41 was a copper-foil tape and was attached to the entire bottom surface of the floating mobile body (or the underwater mobile body) 3. The second power reception electrode 42 was a copper-foil tape and was attached to the entire upper surface of the floating mobile body (or the underwater mobile body) 3. All the above copper-foil tapes had a thickness of 80 μm.
[0065]
[0066]
[0067] According to the experimental results, for example, at the frequency of 6.78 MHz, the kQ product and ηmax were approximately 1.5 and 28%, respectively, in the power supply system 1A and approximately 2.7 and 48%, respectively, in the power supply system 1. These values do not indicate significant decrease and fall within a range in which practical use is possible.
[0068] In the power supply system 1A, since only the first power transmission electrode 53A is provided in the water channel 2, the system can be greatly simplified. Further, since the first power transmission electrode 53A is provided on the bottom surface in the water channel 2, the system can be easily applied to the water channel 2 (lake, river, or the like) where there is practically no side surface.
[0069] While the power supply systems for a floating mobile body or an underwater mobile body according to the embodiments of the present invention have thus been described, the present invention is not limited to the embodiments described above, and various design changes can be made within the scope of the matters described in the claims.
REFERENCE SIGNS LIST
[0070] 1, 1′, 1A Power supply system for floating mobile body or underwater mobile body
[0071] 2 Water channel
[0072] 2a Bottom portion of water channel
[0073] 2b Side portion of water channel
[0074] 2c Ceiling portion of water channel
[0075] 2′ Water tank
[0076] 2c′ Ceiling portion of water tank
[0077] 3, 3′ Floating mobile body (or underwater mobile body)
[0078] 3a Bottom portion of floating mobile body (or underwater mobile body)
[0079] 4, 4′ Power reception apparatus
[0080] 41 First power reception electrode
[0081] 42 Second power reception electrode
[0082] 43 Power reception inductance element
[0083] 43a One terminal of power reception inductance element
[0084] 43b Other terminal of power reception inductance element
[0085] 44 Load
[0086] 5, 5′, 5A Power transmission apparatus
[0087] 51 AC power source
[0088] 51a First terminal of AC power source
[0089] 51b Second terminal of AC power source
[0090] 52 Power transmission inductance element
[0091] 52a One terminal of power transmission inductance element
[0092] 52b Other terminal of power transmission inductance element
[0093] 53, 53A First power transmission electrode
[0094] 53a End portion of first power transmission electrode
[0095] 53Aa Electric wire (or cable)
[0096] 54 Second power transmission electrode
[0097] 54a End portion of second power transmission electrode
[0098] Wa Water