Non-contact power supply equipment
The contactless power supply system synchronizes AC currents using electromagnetic induction between adjacent power supply lines, reducing costs and improving detection accuracy without signal transmission devices, addressing the inefficiencies of existing systems.
Patent Information
- Application Number
- JP2022163965
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-10-12
- Publication Date
- 2025-10-07
- Estimated Expiration
- 2042-10-12
AI Technical Summary
Existing contactless power supply systems require multiple synchronization signal transmission devices and lines, increasing material and installation costs, as well as maintenance costs, to synchronize AC currents across multiple power supply devices.
A contactless power supply system synchronizes AC currents using electromagnetic induction between adjacent power supply lines, employing a phase detection unit, AC current generation unit, and phase control unit to adjust the phase of AC currents without signal transmission devices, utilizing a coupling unit that electromagnetically couples target and adjacent power feeders.
This configuration reduces material, installation, and maintenance costs while ensuring accurate synchronization of AC currents, enhancing detection accuracy and reducing power transmission inefficiencies.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a contactless power supply facility that includes a plurality of power supply lines arranged in a row along a travel path of a mobile body equipped with a power receiving device, and a plurality of power supply devices that supply AC current to each of the plurality of power supply lines, and that supplies power to the power receiving device in a contactless manner. [Background technology]
[0002] Japanese Patent Application Laid-Open Publication No. 2002-67747 discloses a power supply system (contactless power supply system) in which a plurality of induction lines (47) acting as power supply lines through which AC current flows are arranged along the path of travel of a moving object (V) to supply power to the moving object (V) in a contactless manner (reference numerals in parentheses in the Background Art section refer to those in the referenced document). A power supply device (inverter (M)) is connected to the plurality of induction lines (47) to supply power to each of the induction lines (47). A moving object (V) equipped with a power receiving device (pickup coil (5)) travels by connecting between the plurality of induction lines (47) and receiving power contactlessly from each of the induction lines (47). For smooth travel of the moving object (V), stable power supply is preferable even in the transfer section of the induction lines (47), and it is important that the AC currents of adjacent induction lines (V) are synchronized.
[0003] In this power supply facility, an optical transmission device (51) is connected to each power supply device (inverter (M)). A clock pulse signal specifying electrical characteristics such as the frequency of the AC current supplied from a specific inverter (M) to an induction line (47) is output from the optical transmission device (51) connected to that inverter (M). This clock pulse signal is transmitted in parallel to the other inverters (M) via the optical transmission devices (51) connected to the other inverters (M). Based on the transmitted clock pulse signal, the other inverters (M) output AC currents synchronized with the AC current output by the specific inverter (M) that output the clock pulse signal to the induction line (47) connected to the respective inverters (M). This synchronizes the AC currents flowing through the induction lines (47), allowing the mobile object (V) to receive stable power while transferring between the induction lines (47) and enabling the mobile object (V) to travel smoothly. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2002-67747 Summary of the Invention [Problem to be solved by the invention]
[0005] As described above, when transmitting a reference synchronization signal such as a clock pulse signal to each power supply device and synchronizing the multiple power supply devices based on the synchronization signal, in addition to the power supply lines, synchronization signal transmission lines must be installed along the movement path, and many signal transmission devices, such as optical transmission devices, are required to transmit the synchronization signals to the transmission lines. This tends to increase the material costs of the equipment and the installation labor. Furthermore, the need for many signal transmission devices tends to increase the maintenance costs of these devices.
[0006] In view of the above background, it is desirable to provide a technology for appropriately synchronizing the AC currents flowing through the power supply lines in a contactless power supply facility having a plurality of power supply lines arranged in a row along the movement path of a moving object while reducing material costs and installation labor. [Means for solving the problem]
[0007] In view of the above, a contactless power supply facility includes a plurality of power feeders arranged in a line along a moving path of a moving body equipped with a power receiving device, and a power supply device connected to each of the plurality of power feeders and supplying AC current to the connected power feeders, and supplies power to the power receiving device in a contactless manner, wherein one of the plurality of power feeders is a target power feeder, the power supply device connected to the target power feeder is a target power supply device, the power feeder adjacent to the target power feeder along the moving path is an adjacent power feeder, and the power supply device connected to the adjacent power feeder is an adjacent power supply device, a part of the target power supply line and a part of the adjacent power supply line are caused to function as coils; The target power supply line and the adjacent power supply line By mutual induction a coupling unit for electromagnetic coupling, and the target power supply device is configured to receive an AC current from the adjacent power supply device via the coupling unit when AC current is being supplied to the adjacent power supply line by the adjacent power supply device; The target power supply line and the adjacent power supply line are electromagnetically coupled, and an AC current flows through the adjacent power supply line. Electromagnetic induction in, The target power supply line arise The target power supply line includes a phase detection unit that detects an induced current phase, which is the phase of an induced current; an AC current generation unit that generates an AC current to be supplied to the target power supply line; and a phase control unit that controls the AC current generation unit so that the phase of the AC current to be supplied to the target power supply line approaches the induced current phase detected by the phase detection unit.
[0008] Conventionally, in order to synchronize the phases of AC currents supplied from multiple power supply devices to their respective power feeders, it was necessary to supply a synchronization signal to the multiple power supply devices using a signal transmission line and a signal transmission device. According to this configuration, the phase of the AC current supplied from an adjacent power supply device to an adjacent power feeder is detected as an induced current phase by the target power supply device. The target power supply device then controls its AC current generator so that the phase of the AC current supplied to the target power feeder approaches the induced current phase, thereby supplying AC current to the target power feeder. This allows the AC current flowing through the adjacent power feeder to be synchronized with the AC current flowing through the target power feeder without using a synchronization signal from a signal transmission device. Since each power supply device functions as an adjacent power supply device and a target power supply device, the AC currents output from each power supply device in the contactless power supply equipment can be synchronized. According to this configuration, in a contactless power supply equipment having multiple power feeders arranged in a row along a moving object's path, the AC currents flowing through the power feeders can be appropriately synchronized while reducing material costs and installation labor. Furthermore, maintenance costs after installation can also be reduced.
[0009] Further, in view of the above, a contactless power supply facility includes a plurality of power feeders arranged in a row along a moving path of a moving body having a power receiving device, and a power supply device connected to each of the plurality of power feeders and supplying AC current to the connected power feeders, and supplies power to the power receiving device in a contactless manner, wherein one of the plurality of power feeders is a target power feeder, the power supply device connected to the target power feeder is a target power supply device, the power feeder adjacent to the target power feeder along the moving path is an adjacent power feeder, and the power supply device connected to the adjacent power feeder is an adjacent power supply device, and a coupling unit that electromagnetically couples the target power feeder with the adjacent power feeder. the target power supply device comprises: a phase detection unit that detects an induced current phase, which is the phase of an induced current flowing in the target power supply line by electromagnetic induction via the coupling unit, when an AC current is supplied to the adjacent power supply line by the adjacent power supply device; an AC current generation unit that generates an AC current to be supplied to the target power supply line; and a phase control unit that controls the AC current generation unit so that the phase of the AC current supplied to the target power supply line approaches the induced current phase detected by the phase detection unit, and the phase detection unit detects the induced current phase when no AC current is supplied to the target power supply line by the target power supply device.
[0010] As described above, this configuration allows for proper synchronization of AC currents flowing through the power feeders in a wireless power supply system having multiple power feeders arranged in a line along a moving path of a moving object while reducing material costs and installation labor. This configuration also reduces maintenance costs after installation. Furthermore, this configuration ensures that the current flowing through the target power feeder is almost entirely induced by the current flowing through the adjacent power feeder. Therefore, the detection accuracy of the induced current phase can be easily improved without being affected by the AC current supplied from the target power supply device to the target power feeder.
[0011] Further, in view of the above, a contactless power supply facility is provided which includes a plurality of power feeders arranged in a line along a moving path of a moving body provided with a power receiving device, and a power supply device connected to each of the plurality of power feeders and supplying AC current to the connected power feeders, and supplies power to the power receiving device in a contactless manner, wherein one of the plurality of power feeders is a target power feeder, a power supply device connected to the target power feeder is a target power supply device, a power feeder adjacent to the target power feeder along the moving path is an adjacent power feeder, and a power supply device connected to the adjacent power feeder is an adjacent power supply device, and the contactless power supply facility further includes a coupling unit which electromagnetically couples the target power feeder with the adjacent power feeder, and the target power supply device is connected to the adjacent power supply device by the adjacent power supply device. the coupling unit includes a phase detection unit that detects an induced current phase, which is the phase of an induced current flowing in the target feeder line due to electromagnetic induction via the coupling unit, when an AC current is supplied to the adjacent feeder line; an AC current generation unit that generates an AC current to be supplied to the target feeder line; and a phase control unit that controls the AC current generation unit so that the phase of the AC current supplied to the target feeder line approaches the induced current phase detected by the phase detection unit, wherein the coupling unit includes a target coil unit formed by a part of the target feeder line, an adjacent coil unit formed by a part of the adjacent feeder line, and a magnetic core, and the target coil unit, the adjacent coil unit, and the magnetic core are concentrically arranged.
[0012] As described above, this configuration allows for a wireless power supply system having multiple power supply lines arranged in a line along a moving object's path of travel, while reducing material costs and installation labor. It also reduces maintenance costs after installation. Furthermore, this configuration includes a magnetic core, which concentrates magnetic flux from a magnetic field generated by a current flowing through an adjacent coil unit in the magnetic core, thereby electromagnetically coupling a large amount of magnetic flux with the target coil unit and increasing the amplitude of the induced current. Furthermore, the concentric arrangement of the target coil unit, the adjacent coil unit, and the magnetic core facilitates magnetic flux from the adjacent coil unit to interlink with the magnetic core and the target coil unit, thereby increasing the amplitude of the induced current. In other words, this configuration facilitates increasing the coupling rate (coupling coefficient) of electromagnetic coupling between the target power supply line and the adjacent power supply line by the coupling unit, thereby increasing the amplitude of the induced current and improving the detection accuracy of the induced current phase.
[0013] Further features and advantages of the contactless power transfer arrangement will become apparent from the following description of exemplary, non-limiting embodiments, which are given with reference to the drawings. [Brief explanation of the drawings]
[0014] [Figure 1] Plan view of an article transport facility equipped with a non-contact power supply facility [Figure 2] Front view of goods transport vehicle [Figure 3]Schematic block diagram showing the system configuration of a wireless power supply facility [Figure 4] Schematic circuit block diagram showing the configuration of a power receiving device [Figure 5] FIG. 1 is a perspective view showing an example of a coupling unit; [Figure 6] Cross section of the coupling unit [Figure 7] A block diagram showing an example of a power supply device. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, an embodiment of a contactless power supply system will be described using, as an example, power supply equipment that supplies power to a moving body that transports goods in an article transport facility. In this embodiment, as shown in FIGS. 1 and 2 , an article transport vehicle 30 that transports goods by moving along a travel path 10, which is a rail 20 suspended from the ceiling of a building, will be described as an example of the moving body. The article transport vehicle as a moving body is not limited to a ceiling transport vehicle that travels along the ceiling, but may also be other article transport vehicles, such as a floor transport vehicle or a stacker crane, that transport goods by moving along a rail installed on the floor as a travel path 10. Furthermore, when these article transport vehicles are configured with multiple parts, such as a running section and a main body, it is acceptable to consider only a part of the article transport vehicle, such as the running section, as the moving body, rather than the entire article transport vehicle. For example, if the article transport vehicle is a ceiling transport vehicle as in this embodiment, the running section 12, which will be described later, may be considered to correspond to the moving body. Furthermore, in the case of a stacker crane, the running cart on which the crane unit is mounted and supported may be considered to correspond to the moving body.
[0016] 1 and 2, an article transport facility 200 according to this embodiment includes a travel rail 20 arranged along a travel path 10, which is the travel path of the article transport vehicle 30, and the article transport vehicle 30 that travels along the travel path 10 while being guided by the travel rail 20. In this embodiment, the articles to be transported by the article transport vehicle 30 are, for example, FOUPs (Front Opening Unified Pods) that store semiconductor substrates, glass substrates that are used as display materials, etc. The article transport facility 200 also includes a storage facility (not shown) that stores semiconductor substrates, and an article processing unit P that performs various processes to form circuits, etc. on the semiconductor substrates.
[0017] As shown in Figure 2, in this embodiment, article transport vehicle 30 includes a running section 12 that runs along travel path 10 while being guided by a pair of running rails 20 that are arranged and suspended from the ceiling along travel path 10, a main body 13 that is positioned below the running rails 20 and suspended from running section 12, and a power receiving device 4 that receives driving power in a non-contact manner from a power supply line 3 that is arranged along travel path 10. Although not shown in the figures or in detailed description, main body 13 includes an article support section that is provided on main body 13 so as to be able to rise and fall and that supports articles in a suspended state. As described above, article transport vehicle 30 corresponds to a moving body, but in a narrow sense, it can also be said that only running section 12 corresponds to a moving body.
[0018] As shown in FIG. 2, the traveling section 12 is provided with a pair of traveling wheels 15 that are driven to rotate by an electric drive motor 14. The traveling wheels 15 roll on a traveling surface formed by the upper surfaces of the traveling rails 20. The traveling section 12 also has a pair of guide wheels 16 that freely rotate around an axis (around a vertical axis) along the vertical direction Z, in contact with the inner surfaces of the pair of traveling rails 20. The traveling section 12 is also configured with a driving motor 14 for traveling and its drive circuit, etc., and causes the article transport vehicle 30 to travel along the traveling rails 20. The main body 13 is provided with an actuator that raises and lowers the article support section, an actuator that drives the gripping section that grips articles, etc., and their drive circuits, etc. The drive motor 14, actuator, drive circuit, etc. correspond to an electrical load LD in the article transport vehicle 30 (see FIG. 4).
[0019] The article transport facility 200 is equipped with an equipment controller (not shown), which issues transport commands to each article transport vehicle 30 to transport articles. Based on the transport commands, the article transport vehicles 30 travel autonomously, and, for example, deliver articles between the article processing facility P and the article transport vehicles 30, and transport articles between the above-mentioned storage facility (not shown) and the article processing facility P.
[0020] Electric power for the drive motor 14, various actuators, and the drive circuits that drive them is supplied contactlessly from the power supply line 3 to the power receiving device 4. As described above, the power supply line 3 that supplies drive power to the article transport vehicle 30 via the power receiving device 4 is arranged along the movement path 10. In this embodiment, the power supply line 3 is arranged on both sides of the power receiving device 4 in the path width direction H (here, the direction perpendicular to both the path direction L and the up-down direction Z) that is perpendicular to the path direction L, which is the direction along the movement path 10.
[0021] As shown in FIG. 4, the power receiving device 4 includes a pickup coil 40 (see FIG. 2) disposed on the article transport vehicle 30 so as to face the power feeder 3, and a power receiving circuit (details of which will be described later) formed on a wiring board inside the article transport vehicle 30. As described above, the power supply device 2 passes a high-frequency current through the power feeder 3, which is an induction wire, to generate a magnetic field around the power feeder 3. The pickup coil 40 generates an induced electromotive force due to the AC current flowing through the power feeder 3. As shown in FIG. 4, a power receiving circuit is electrically connected to the pickup coil 40, and an electrical load LD is connected to the power receiving circuit. This electrical load LD may be, for example, the drive motor 14 for travel, the actuator that raises and lowers the article support unit, the actuator that drives the gripper that grips the article, and the drive circuits for these components.
[0022] The power receiving circuit includes, for example, a portion of a resonant circuit 42 configured together with the pickup coil 40, a rectifier circuit 43, and a power adjustment unit 45 such as a chopper circuit or regulator circuit. Here, the resonant circuit 42 is illustrated as a parallel circuit of the pickup coil 40 and a resonant capacitor 41. The resonant circuit is not limited to this, and may be configured as a series resonant circuit in which a capacitor is connected in series to the pickup coil 40. The rectifier circuit 43 is connected in parallel to the resonant circuit 42 (resonant capacitor 41). The rectifier circuit 43 is connected to the pickup coil 40 (connected to the resonant circuit 42) and rectifies the AC current and AC voltage induced in the pickup coil 40 into DC current and DC voltage. While the present embodiment illustrates a full-wave rectifier circuit as the rectifier circuit 43, the rectifier circuit 43 may also be a half-wave rectifier circuit. Although not shown, it is preferable that at least one of the output section from the rectifier circuit 43 and the output section from the power adjustment section 45 is provided with a smoothing capacitor for smoothing the pulsating component.
[0023] The contactless power supply equipment 100 of this embodiment supplies driving power to the electrical load LD of the goods transport vehicle 30 using a wireless power supply technology known as HID (High Efficiency Inductive Power Distribution Technology). As shown in FIG. 3 , the contactless power supply equipment 100 includes a power feeder 3 and a power supply device 2 connected to the power feeder 3 and supplying AC current to the power feeder 3. The power supply device 2 passes a high-frequency current through the power feeder 3, which is an inductive wire, to generate a magnetic field around the power feeder 3. The goods transport facility 200 of this embodiment is a relatively large facility, as illustrated in FIG. 1 . Therefore, in order to prevent a decrease in power transmission efficiency and a complete shutdown of the facility in the event of a malfunction, not just one power supply system 1 including the power feeder 3 and the power supply device 2 is provided, but multiple systems. Each power supply system 1 supplies power to multiple goods transport vehicles 30.
[0024] The article transport vehicle 30 travels within the article transport facility 200 while switching between multiple power supply systems 1 and receiving a continuous supply of power. For the article transport vehicle 30 to travel smoothly, it is preferable that power be supplied stably even in the transfer section of the power supply system 1, i.e., the power supply line 3. Specifically, by adjusting the phases of the AC currents of the multiple power supply systems 1 to match, the article transport vehicle 30 can travel autonomously within the article transport facility 200 while receiving a continuous supply of power from the multiple power supply systems 1.
[0025] Conventionally, in order to synchronize the phases of AC currents supplied from multiple power supply devices 2 to their respective power supply lines 3, a synchronization signal has been supplied to each power supply device 2, for example, by providing a synchronization signal transmission device and a signal transmission line for transmitting the synchronization signal. Each power supply device 2 then outputs AC current based on the synchronization signal so that the phase of the AC current matches the phase of the AC current output from the other power supply devices 2. However, providing such a transmission device and signal transmission line tends to increase the material costs of the equipment and the installation labor. Furthermore, since multiple signal transmission devices are required, the costs required for maintaining these devices are likely to be high. The wireless power supply equipment 100 of this embodiment is capable of synchronizing AC currents among multiple power supply systems 1 without using such synchronization signals.
[0026] As described above, the contactless power supply equipment 100 of this embodiment includes a plurality of power feeders 3 arranged in a row along a movement path 10 of a moving body such as an article transport vehicle 30 equipped with a power receiving device 4, and a plurality of power supply devices 2 connected to the plurality of power feeders 3 and supplying AC current to the connected power feeders 3, thereby contactlessly supplying power to each of the power receiving devices 4. Here, as shown in FIG. 3 , one of the plurality of power feeders 3 is referred to as a target power feeder 3T, and the power supply device 2 connected to the target power feeder 3T is referred to as a target power supply device 2T. In addition, the power feeder 3 adjacent to the target power feeder 3T along the movement path 10 is referred to as an adjacent power feeder 3N, and the power supply device 2 connected to the adjacent power feeder 3N is referred to as an adjacent power supply device 2N.
[0027] Here, for one set of target power feeder 3T and target power supply device 2T, there can be two sets of adjacent power feeder 3N and adjacent power supply device 2N in terms of layout. However, in the following explanation, one of the two sets of adjacent power feeder 3N and adjacent power supply device 2N will be referred to as the adjacent power feeder 3N and adjacent power supply device 2N. Furthermore, the target power feeder 3T and adjacent power feeder 3N are not fixed, and all power feeders 3 can be the target power feeder 3T and adjacent power feeder 3N. The same is true for the target power supply device 2T and adjacent power supply device 2N.
[0028] As will be described later, a target power feeder 3T is a power feeder 3 that is to be adjusted so that the phase of the AC current matches that of other power feeders 3, and a target power supply device 2T is a power supply device 2 that outputs AC current so that the phase of the AC current matches. For example, by sequentially setting multiple power feeders 3 and the power supply devices 2 connected thereto as the target power feeder 3T and target power supply device 2T, it is possible to adjust the phase of the AC current flowing from all the power supply devices 2 to each power feeder 3. Naturally, in this case, an adjacent power feeder 3N and an adjacent power supply device 2N are sequentially set according to the settings of the target power feeder 3T and the target power supply device 2T.
[0029] 5 to 7, in this embodiment, as shown in Fig. 3, a coupling unit 5 is provided that electromagnetically couples the target feeder 3T and the adjacent feeder 3N. As described above, all feeders 3 can be the target feeder 3T and the adjacent feeder 3N, so it is preferable to provide a coupling unit 5 between all adjacent feeders 3, as shown in Fig. 3. As will be described in detail later, the coupling unit 5 is a unit that causes a part of the target feeder 3T and a part of the adjacent feeder 3N to function as coils, and electromagnetically couples the adjacent feeder 3N and the target feeder 3T by mutual induction, as shown in Fig. 7.
[0030] When the coupling unit 5 electromagnetically couples the target feeder 3T and the adjacent feeder 3N, an induced current is generated in the target feeder 3T due to the AC current flowing through the adjacent feeder 3N. The target power supply device 2T connected to the target feeder 3T detects the induced current phase, which is the phase of the induced current, and outputs an AC current that matches this induced current phase, thereby synchronizing the AC current flowing through the target feeder 3T and the AC current flowing through the adjacent feeder 3N.
[0031] 7, the target power supply device 2T is equipped with a phase detection unit 8, a phase control unit 7, and an AC current generation unit 6. Other power supplies 2 including adjacent power supply device 2N can also be target power supply devices 2T as appropriate, and therefore power supplies 2 other than the target power supply device 2T also have a phase detection unit 8, a phase control unit 7, and an AC current generation unit 6. The same applies to the following description of other functional units, etc. equipped in the target power supply device 2T.
[0032] The phase detector 8 detects the phase of an induced current flowing through the target feeder 3T due to electromagnetic induction via the coupling unit 5 when an AC current is supplied to the target feeder 3T by the adjacent power supply device 2N. The phase controller 7 controls the AC generator 6 so that the phase of the AC current supplied to the target feeder 3T approaches, and preferably matches, the induced current phase detected by the phase detector 8. The AC generator 6 generates an AC current to be supplied to the target feeder 3T. As shown in FIG. 7 , the AC generator 6 is configured, for example, as a full-bridge circuit using switching elements. The AC generator 6 switches based on the switching control signal generated by the phase controller 7 to output an AC current to the target feeder 3T. Naturally, the AC generator 6 is not limited to a full-bridge circuit, and may have other structures, such as a half-bridge circuit.
[0033] The phase detection unit 8 is configured to include at least an AC voltage sensor 81 and a phase identification unit 82. An AC current sensor may be provided instead of the AC voltage sensor 81. That is, the phase detection unit 8 may include a sensor capable of detecting electrical characteristics (frequency, phase) of an induced current induced in the target power feeder 3T and a phase identification unit 82 capable of identifying the induced current phase based on the detection result of the sensor. In one embodiment, the AC voltage sensor 81 preferably detects a voltage across both ends of the target power feeder 3T in the coupling unit 5. As will be described later, the phase detection unit 8 may be configured to include the AC voltage sensor 81, the phase identification unit 82, and a phase memory unit 83, or may be configured to include the AC voltage sensor 81 and the phase identification unit 82 without the phase memory unit 83.
[0034] The AC current generating unit 6 is a so-called inverter circuit configured with a full-bridge circuit, and has an AC-to-DC converter (AC / DC converter 67) connected to its DC side and a power feeder 3 connected to its AC side. A commercial power supply 69 is connected to the AC / DC converter 67, and the AC current generating unit 6 receives DC power from the AC commercial power supply 69 via the AC / DC converter 67 and outputs AC current to the power feeder 3.
[0035] The phase control unit 7 includes a switching control unit 71 and a phase adjustment unit 72. The phase adjustment unit 72 adjusts the phase of the AC current output by the AC current generation unit 6 so that it approaches the phase of the induced current detected by the phase detection unit 8, and sets a command value for the AC current (and may also set a command value for the AC voltage). If the AC current generation unit 6 is configured, for example, by a voltage-type inverter circuit, the switching control unit 71 generates and outputs a switching control signal for controlling the switching of the AC current generation unit 6 based on the command value for the AC voltage.
[0036] 7 , in this embodiment, the phase detection unit 8 further includes a phase memory unit 83 that stores the induced current phase. Furthermore, a load power detection unit 9 that detects load power, which is power supplied from the target power supply device 2T to the target power feeder 3T, is provided on the DC side of the AC current generation unit 6, specifically between the AC / DC converter 67 and the AC current generation unit 6. In other words, the target power supply device 2T further includes the phase memory unit 83 and the load power detection unit 9.
[0037] In AC, the relationship between the voltage phase and the current phase changes depending on the power consumption. From the perspective of the power supply line 3, this power consumption corresponds to load power. When the power consumption of the electrical load LD connected to the power receiving device 4 increases or decreases, the current phase of the AC current flowing through the power supply line 3 changes relative to the voltage phase in accordance with the fluctuation in power consumption. As described above, the electrical load LD also includes the drive motor 14 for the running wheels 15 of the article transport vehicle 30. For example, the article transport vehicle 30 repeatedly stops and moves, and power consumption is extremely small when stopped, but increases when starting or accelerating compared to when the vehicle is moving steadily. In addition, the article transport vehicle 30 is equipped with electrical loads LD, such as an actuator that raises and lowers the article support unit and an actuator that drives the gripper that grips the article, and power consumption fluctuates.
[0038] The phase control unit 7 corrects the phase of the AC current in response to the fact that the phase difference between the AC voltage applied to the target power feeder 3T and the AC current flowing through the target power feeder 3T changes in response to the load power, which is the power consumption of the electrical load LD. That is, the phase control unit 7 controls the AC current generating unit 6 in response to the change in the phase difference in response to the load power so that the phase of the AC current flowing through the target power feeder 3T matches the induced current phase stored in the phase memory unit 83. This makes it easier for the target power supply device 2T to improve the degree of match between the phase of the AC current supplied to the target power feeder 3T by the target power supply device 2T and the phase of the AC current supplied to the adjacent power feeder 3N by the adjacent power supply device 2N, even if the load power changes.
[0039] As described above, the AC current generating unit 6 receives DC power from the commercial power supply 69 via the AC / DC converter 67 and outputs AC current to the power feeder 3. Therefore, in order to increase the AC power output to the power feeder 3, it is necessary to also increase the DC power supplied from the commercial power supply 69 via the AC / DC converter 67 to the AC current generating unit 6. In other words, as the load power increases, the AC power output to the power feeder 3 also increases, and the DC power on the DC side of the AC current generating unit 6 also increases. In other words, there is a correlation between the load power and the DC power.
[0040] As shown in Fig. 7, the load power detection unit 9 includes a DC voltage sensor 91, a DC current sensor 92, and a multiplier 93, and detects the load power by detecting the DC power on the DC side of the AC current generation unit 6. Specifically, the load power is detected by multiplying the detected value of the DC voltage sensor 91 by the detected value of the DC current sensor 92 using the multiplier 93. The phase control unit 7 includes a map storage unit (not shown) that stores map data indicating the phase of the AC current relative to the load power, and adjusts the phase of the AC current based on the map data. In other words, the phase control unit 7 feedback-controls the phase of the AC current based on the load power.
[0041] To accurately detect the induced current phase, it is preferable that the amplitude of the induced current flowing through the target power supply line 3T be appropriately secured (large). Therefore, the coupling unit 5 is configured to increase the electromagnetic coupling rate between the target power supply line 3T and the adjacent power supply line 3N. Specifically, as shown in FIGS. 5 and 6 , the coupling unit 5 includes a target coil section 5T formed by a part of the target power supply line 3T, an adjacent coil section 5N formed by a part of the adjacent power supply line 3N, and a magnetic core 51. The target coil section 5T, the adjacent coil section 5N, and the magnetic core 51 are concentrically arranged. The concentric arrangement does not necessarily mean that they are arranged on the same axis, but may be offset within a range that allows electromagnetic coupling. The magnetic core 51 is, for example, a ferrite core.
[0042] By providing the magnetic core 51, the magnetic flux of the magnetic field generated by the current flowing through the adjacent coil portion 5N is collected in the magnetic core 51, and much of the magnetic flux is electromagnetically coupled with the target coil portion 5T, making it easy to increase the amplitude of the induced current. Also, by concentrically arranging the target coil portion 5T, the adjacent coil portion 5N, and the magnetic core 51, the magnetic flux from the adjacent coil portion 5N easily interlinks with the magnetic core 51 and the target coil portion 5T, making it easy to increase the amplitude of the induced current.
[0043] As shown in FIG. 6, which is a cross-sectional view taken along line VI-VI in FIG. 5, in this embodiment, the coupling unit 5 includes a target coil section 5T, an adjacent coil section 5N, a magnetic core 51, and a unit case 52. The unit case 52 is made of, for example, resin and houses the magnetic core 51 therein. As shown in FIG. 5, the unit case 52 is annular so as to surround the movement trajectory of the traveling section 12 as a moving body. For simplicity, although not shown in FIG. 5, the magnetic core 51 is also annular so as to surround the movement trajectory of the traveling section 12. Here, the annular shape is not limited to a circular annular shape but also includes a rectangular annular shape. Furthermore, the annular shape is not limited to a continuous annular shape but may also be an annular shape with a missing portion.
[0044] 5, the magnetic core 51 is preferably formed in a rectangular ring shape, similar to the unit case 52, such that the lower side in the vertical direction Z is open and the moving locus of the running part 12 of the article transport vehicle 30 running on the running rail 20, which is the moving path 10, is surrounded from three sides, namely, the upper side in the vertical direction Z and both outer sides in the path width direction H. The target coil part 5T and the adjacent coil part 5N are arranged such that the target power feeder 3T and the adjacent power feeder 3N, respectively, surround the moving locus of the running part 12 from three sides, similar to the magnetic core 51, from the upper side in the vertical direction Z and both outer sides in the path width direction H.
[0045] In this embodiment, the article transport vehicle 30 includes a running section 12 that runs on running rails 20 and a main body 13 that is suspended from the running section 12. Therefore, the coupling unit 5 is formed in a ring shape that surrounds the running path of the running section 12 on three sides, with the bottom of the running section 12 open. However, for example, in the case of an article transport vehicle in which the main body is located above the running section 12, the coupling unit 5 may be formed in a ring shape that surrounds the movement path of the running section 12 on all four sides. Naturally, this does not preclude the coupling unit 5 from being formed in a ring shape that surrounds the entire movement path of the article transport vehicle 30, including the main body 13, on all four sides.
[0046] Furthermore, for example, when the article transport vehicle is a floor transport vehicle, it is often difficult to place the coupling unit 5 below the floor. Therefore, even when the article transport vehicle is a floor transport vehicle, it is preferable that the coupling unit 5 is formed in a rectangular ring shape that surrounds the movement trajectory of the floor transport vehicle as a moving body from three sides: the upper side in the vertical direction Z and both outer sides in the path width direction H.
[0047] Note that when referring to a ring surrounding a moving trajectory, the object being surrounded does not have to be the entire moving trajectory. For example, in the case of a ring surrounding the moving trajectory from three sides, when surrounding the moving trajectory from both outsides of the path width direction H of the moving trajectory, the coupling unit 5 does not need to surround the entire range of the moving trajectory in the up-down direction Z in the path width direction H of the moving trajectory. In other words, when viewed from the direction along the path width direction H, the coupling unit 5 does not have to overlap the entire moving trajectory; it is sufficient that the coupling unit 5 and the moving trajectory overlap at least partially. Therefore, for example, even when the entire article transport vehicle 30 including the main body 13 is considered to be the moving body and the entire moving trajectory of the article transport vehicle 30 is the target, the coupling unit 5 can be said to surround the moving trajectory from three sides.
[0048] As shown in FIG. 6 , the magnetic core 51 is, for example, hollow and cylindrical. The target coil portion 5T and the adjacent coil portion 5N corresponding to the target coil portion 5T and the adjacent coil portion 5N are disposed within the cylindrical space located radially inside the magnetic core 51. Therefore, the target coil portion 5T, the adjacent coil portion 5N, and the magnetic core 51 are disposed along the same plane. That is, the target coil portion 5T, the adjacent coil portion 5N, and the magnetic core 51 are disposed so as to surround the movement locus of the traveling unit 12 along a plane intersecting the path direction L. Therefore, the coupling unit 5 can be appropriately positioned so that the target coil portion 3T and the adjacent coil portion 3N are electromagnetically coupled with each other at a high coupling rate without interfering with the movement of the article transport vehicle 30 along the movement path 10. Here, the magnetic core 51 containing the target coil portion 5T and the adjacent coil portion 5N of the target coil portion 3T and the adjacent coil portion 3N is housed within the unit case 52. However, the coupling unit 5 may be configured without the unit case 52.
[0049] The phase detector 8 preferably detects the induced current phase when no AC current is being supplied from the target power supply device 2T to the target power feeder 3T. The phase detector 8 may detect the induced current phase when AC current is being output from the target power supply device 2T to the target power feeder 3T. However, in this case, the detection accuracy of the induced current phase may be reduced due to the influence of the AC current being supplied from the target power supply device 2T to the target power feeder 3T. Because the AC current supplied from the target power supply device 2T and the induced current are superimposed, the phase may be detected at, for example, two locations. Since the phase of the AC current output from the target power supply device 2T is known to the target power supply device 2T, even if the phase is detected at multiple locations, the induced current phase can be identified by excluding the phase of the AC current. However, when the two phases are close to each other, it is difficult to distinguish them, which may reduce the detection accuracy of the induced current phase.
[0050] Therefore, it is preferable that the phase detector 8 detects the induced current phase when no AC current is supplied to the target power feeder 3T by the target power supply device 2T. The current flowing through the target power feeder 3T is almost entirely a current induced by the current flowing through the adjacent power feeder 3N. This makes it easy to improve the detection accuracy of the induced current phase without being affected by the AC current supplied to the target power feeder 3T from the target power supply device 2T.
[0051] In one preferred embodiment, in a contactless power supply equipment 100 including a plurality of power supply systems 1, it is preferable to start up the power supply systems 1 sequentially. For example, assume that the contactless power supply equipment 100 includes n power supply systems 1 in the order of a first power supply system 1, a second power supply system 1, and a third power supply system 1. First, the first power supply system 1 is started up in a state in which the power supply devices 2 are stopped in all the power supply systems 1. At this point, there is no power supply system 1 to be synchronized with.
[0052] Next, the power supply device 2 and the power feed line 3 of the second power supply system 1 adjacent to the first power supply system 1 are set as the target power supply device 2T and the target power feed line 3T. The power supply device 2 and the power feed line 3 of the first power supply system 1 correspond to the adjacent power supply device 2N and the adjacent power feed line 3N. As described above, since the first power supply system 1 is operating, an induced current is generated in the power feed line 3 of the second power supply system 1 due to the current flowing through the power feed line 3 of the first power supply system 1. The power supply device 2 of the second power supply system 1 supplies, to the power feed line 3 of the second power supply system 1, an AC current synchronized with the AC current flowing through the power feed line 3 of the first power supply system 1.
[0053] Next, the power supply device 2 and the power feed line 3 of the third power supply system 1 adjacent to the second power supply system 1 are set as the target power supply device 2T and the target power feed line 3T. The power supply device 2 and the power feed line 3 of the second power supply system 1 that were the target power supply device 2T and the target power feed line 3T now correspond to the adjacent power supply device 2N and the adjacent power feed line 3N. As described above, an induced current is generated in the power feed line 3 of the third power supply system 1 due to the current flowing through the power feed line 3 of the second power supply system 1, which operates in synchronization with the first power supply system 1. The power supply device 2 of the third power supply system 1 is activated to supply an AC current synchronized with the AC current flowing through the power feed line 3 of the second power supply system 1 to the power feed line 3 of the third power supply system 1. The AC current flowing through the power supply line 3 of the first power supply system 1 and the AC current flowing through the power supply line 3 of the second power supply system 1 are synchronized, so that the AC current flowing through the power supply line 3 of the first power supply system 1, the AC current flowing through the power supply line 3 of the second power supply system 1, and the AC current flowing through the power supply line 3 of the first power supply system 1 are synchronized.
[0054] Thereafter, the fourth power supply system 1, the fifth power supply system 1, ..., the (n-1)th power supply system 1, and the nth power supply system 1 are sequentially started up. With the power supply device 2 and the power feed line 3 of the (n-1)th power supply system 1 as the adjacent power supply device 2N and the adjacent power feed line 3N, and the power supply device 2 and the power feed line 3 of the nth power supply system 1 as the target power supply device 2T and the target power feed line 3T, when AC current is supplied to the power feed line 3 of the nth power supply system 1, the AC currents flowing through the n power feed lines 3 from the first power supply system 1 to the nth power supply system 1 are synchronized.
[0055] Other Embodiments Other embodiments will be described below. Note that the configurations of the embodiments described below are not limited to being applied independently, and can also be applied in combination with the configurations of other embodiments as long as no contradiction occurs.
[0056] (1) As described above, the phase detection unit 8 may detect the induced current phase while an AC current is being output from the target power supply device 2T to the target power feeder 3T. For example, if the phase detection unit 8 detects the induced current phase after all power supply systems 1 have been started up, fine adjustment of the current phase becomes possible during operation of the contactless power supply equipment 100. Furthermore, a configuration in which the induced current phase is detected while an AC current is being output from the target power supply device 2T to the target power feeder 3T and a configuration in which the induced current phase is detected while no AC current is being output from the target power supply device 2T to the target power feeder 3T are not necessarily mutually exclusive. The target power supply device 2T may be configured to detect the induced current phase in either state. For example, when starting up the contactless power supply equipment 100, the induced current phase may be detected while no AC current is being supplied to the target power feeder 3T. After starting up the contactless power supply equipment 100, the induced current phase may be detected while an AC current is being supplied to the target power feeder 3T.
[0057] (2) In the above, an example has been given in which the target power supply device 2T includes a phase memory unit 83 that stores an induced current phase. However, the phase control unit 7 may control the AC current generation unit 6 in real time using the induced current phase identified by the phase identification unit 82, without including the phase memory unit 83. For example, in an operation in which the target power supply device 2T detects an induced current phase only when the contactless power supply equipment 100 is started up, the target power supply device 2T may not include the phase memory unit 83. Naturally, the target power supply device 2T may be operated in such a way that it detects an induced current phase only when the contactless power supply equipment 100 is started up, and may also include the phase memory unit 83.
[0058] (3) In the above, a configuration in which the target power supply device 2T includes a load power detection unit 9 has been described as an example. However, the target power supply device 2T does not necessarily have to include a load power detection unit 9. As described above, fluctuations in load power cause a change in the phase difference between the phase of the AC voltage and the phase of the AC current in the power supply line 3. Since the phase difference at startup is the phase difference when there is almost no load, the phase control unit 7 can determine the impact of changes in the electrical load LD based on the difference between the phase difference at this time and the phase difference after the article conveying equipment 200 is in operation. The phase control unit 7 may then adjust the phase of the AC voltage, for example, by adjusting the switching control signal of the AC current generation unit 6, which is configured using a voltage-controlled inverter circuit, to change the phase of the AC voltage so that the phase of the AC current is synchronized. In this case, the phase of the AC current can be adjusted without detecting the load power. Therefore, this does not preclude a configuration in which the target power supply device 2T does not include a load power detection unit 9.
[0059] (4) In the above example, the coupling unit 5 includes a magnetic core 51. However, the magnetic core 51 may not be included as long as the target coil section and the adjacent coil section can be arranged to be electromagnetically coupled with a sufficiently high coupling rate. The target coil section 5T and the adjacent coil section 5N may be arranged in close proximity to each other in a straight line. Therefore, regardless of the presence or absence of a magnetic core 51, the target coil section 5T and the adjacent coil section 5N do not have to be arranged in a concentric ring shape. Furthermore, since the target coil section 5T and the adjacent coil section 5N may be arranged in close proximity to each other in a straight line, the target coil section 5T, the adjacent coil section 5N, and the magnetic core 51 do not have to be arranged to surround the movement path 10 along a plane intersecting the path direction L, regardless of the presence or absence of a magnetic core 51.
[0060] [Outline of the embodiment] The following briefly describes the outline of the contactless power supply equipment described above.
[0061] In one aspect, a contactless power supply facility includes a plurality of power feeders arranged in a line along a moving path of a moving body equipped with a power receiving device, and a power supply device connected to each of the plurality of power feeders and supplying AC current to the connected power feeders, and supplies power to the power receiving device in a contactless manner. The contactless power supply facility defines one of the plurality of power feeders as a target power feeder, defines a power supply device connected to the target power feeder as a target power supply device, defines a power feeder adjacent to the target power feeder along the moving path as an adjacent power feeder, and defines a power supply device connected to the adjacent power feeder as an adjacent power supply device. The target power supply device includes a coupling unit that electromagnetically couples an electric line with the adjacent power supply line, and the target power supply device includes a phase detection unit that detects an induced current phase, which is the phase of an induced current that flows in the target power supply line by electromagnetic induction via the coupling unit, when an AC current is supplied to the adjacent power supply line by the adjacent power supply device, an AC current generation unit that generates an AC current to be supplied to the target power supply line, and a phase control unit that controls the AC current generation unit so that the phase of the AC current supplied to the target power supply line approaches the induced current phase detected by the phase detection unit.
[0062] Conventionally, in order to synchronize the phases of AC currents supplied from multiple power supply devices to their respective power feeders, it was necessary to supply a synchronization signal to the multiple power supply devices using a signal transmission line and a signal transmission device. According to this configuration, the phase of the AC current supplied from an adjacent power supply device to an adjacent power feeder is detected as an induced current phase by the target power supply device. The target power supply device then controls its AC current generator so that the phase of the AC current supplied to the target power feeder approaches the induced current phase, thereby supplying AC current to the target power feeder. This allows the AC current flowing through the adjacent power feeder to be synchronized with the AC current flowing through the target power feeder without using a synchronization signal from a signal transmission device. Since each power supply device functions as an adjacent power supply device and a target power supply device, the AC currents output from each power supply device in the contactless power supply equipment can be synchronized. According to this configuration, in a contactless power supply equipment having multiple power feeders arranged in a row along a moving object's path, the AC currents flowing through the power feeders can be appropriately synchronized while reducing material costs and installation labor. Furthermore, maintenance costs after installation can also be reduced.
[0063] Preferably, the phase detection unit detects the induced current phase in a state where no AC current is supplied to the target power supply line by the target power supply device.
[0064] With this configuration, the current flowing through the target power supply line is almost entirely induced by the current flowing through the adjacent power supply line, which makes it easier to improve the accuracy of detecting the phase of the induced current without being affected by the AC current supplied to the target power supply line from the target power supply device.
[0065] Preferably, the target power supply device further includes a phase memory unit that stores the induced current phase, and a load power detection unit that detects load power, which is power supplied to the target power supply line by the target power supply device, and the phase control unit controls the AC current generation unit to match the phase of the AC current flowing through the target power supply line with the induced current phase stored in the phase memory unit, in response to a change in phase difference of the AC current flowing through the target power supply line with respect to the AC voltage applied to the target power supply line, which changes in response to the load power.
[0066] In AC, the relationship between the voltage phase and the current phase varies depending on the load. Therefore, the current phase of the target power feeder may shift from the current phase of an adjacent power feeder depending on the load fluctuation of the power supply destination via the target power feeder. This configuration can correct the phase shift according to the load power detected by the load power detection unit so that the phase matches the induced current phase stored in the phase memory unit. Therefore, this configuration makes it easier to increase the degree of agreement between the phase of the AC current supplied to the target power feeder by the target power supply device and the phase of the AC current supplied to the adjacent power feeder by the adjacent power supply device.
[0067] Preferably, the coupling unit includes a target coil portion formed by a part of the target power supply line, an adjacent coil portion formed by a part of the adjacent power supply line, and a magnetic core, and the target coil portion, the adjacent coil portion, and the magnetic core are concentrically arranged.
[0068] By providing a magnetic core, the magnetic flux of the magnetic field generated by the current flowing through the adjacent coil section is collected in the magnetic core, and a large amount of magnetic flux is electromagnetically coupled with the target coil section, making it easy to increase the amplitude of the induced current. Also, by concentrically arranging the target coil section, the adjacent coil section, and the magnetic core, the magnetic flux from the adjacent coil section easily interlinks with the magnetic core and the target coil section, making it easy to increase the amplitude of the induced current. In other words, with this configuration, it is easy to increase the coupling rate (coupling coefficient) of the electromagnetic coupling between the target feeder line and the adjacent feeder line by the coupling unit, making it easy to increase the amplitude of the induced current and improve the detection accuracy of the induced current phase.
[0069] It is also preferable that the magnetic core is formed in a ring shape, and the direction along the movement path is the path direction, and the target coil portion, the adjacent coil portion, and the magnetic core are arranged to surround the movement trajectory of the moving body along a plane that intersects the path direction.
[0070] According to this configuration, the coupling units can be appropriately arranged so that the target feeder line and the adjacent feeder line are electromagnetically coupled with each other at a high coupling rate without interfering with the movement of the moving body along the movement path. [Explanation of symbols]
[0071] 2: Power supply 2N: Adjacent power supply 2T: Target power supply 3:Power line 3N: Adjacent feeder line 3T:Target feeder line 4: Power receiving device 5: Coupling unit 5N: Adjacent coil section 5T: Target coil section 6:AC current generation section 7: Phase control section 8: Phase detection section 9: Load power detection section 10: Travel route 30: Goods transport vehicle (mobile) 51: Magnetic core 83: Phase memory section 100: Non-contact power supply equipment L: Route direction
Claims
1. a plurality of power supply lines arranged in a line along a moving path of a moving body equipped with a power receiving device; a power supply device connected to each of the plurality of power supply lines and supplying AC current to the connected power supply lines; A wireless power supply facility that supplies power to the power receiving device in a wireless manner, one of the plurality of power feed lines is a target power feed line, a power supply device connected to the target power feed line is a target power supply device, a power feed line adjacent to the target power feed line along the movement path is an adjacent power feed line, and a power supply device connected to the adjacent power feed line is an adjacent power supply device; a coupling unit that causes a part of the target power supply line and a part of the adjacent power supply line to function as coils and electromagnetically couples the target power supply line and the adjacent power supply line by mutual induction; The target power supply device is a phase detection unit that detects an induced current phase, which is a phase of an induced current generated in the target power supply line by electromagnetic induction caused by an AC current flowing through the adjacent power supply line when the target power supply line and the adjacent power supply line are electromagnetically coupled via the coupling unit in a state in which an AC current is supplied to the adjacent power supply line by the adjacent power supply device; an AC current generating unit that generates an AC current to be supplied to the target power supply line; a phase control unit that controls the AC current generating unit so that a phase of the AC current supplied to the target power supply line approaches a phase of the induced current detected by the phase detection unit.
2. The wireless power supply facility according to claim 1 , wherein the phase detection unit detects the induced current phase in a state in which the target power supply device does not supply AC current to the target power supply line.
3. 3. The wireless power supply facility according to claim 2, wherein the target power supply device further includes: a phase storage unit that stores the induced current phase; and a load power detection unit that detects load power that is power supplied to the target power feeder by the target power supply device, and the phase control unit controls the AC current generation unit to make the phase of the AC current flowing through the target power feeder coincide with the induced current phase stored in the phase storage unit, in response to a change in a phase difference of the AC current flowing through the target power feeder with respect to an AC voltage applied to the target power feeder, which changes in response to the load power.
4. 4. The contactless power supply equipment according to claim 1, wherein the coupling unit includes a target coil portion configured by a part of the target power supply line, an adjacent coil portion configured by a part of the adjacent power supply line, and a magnetic core, and the target coil portion, the adjacent coil portion, and the magnetic core are concentrically arranged.
5. The magnetic core is formed in an annular shape, The direction along the movement path is defined as a path direction, The contactless power supply facility according to claim 4 , wherein the target coil section, the adjacent coil section, and the magnetic core are arranged to surround a movement trajectory of the moving body along a plane intersecting the path direction.
6. A plurality of power supply lines arranged in a line along a moving path of a moving body equipped with a power receiving device; a power supply device connected to each of the plurality of power supply lines and supplying AC current to the connected power supply lines; A wireless power supply facility that supplies power to the power receiving device in a wireless manner, one of the plurality of power feed lines is a target power feed line, a power supply device connected to the target power feed line is a target power supply device, a power feed line adjacent to the target power feed line along the movement path is an adjacent power feed line, and a power supply device connected to the adjacent power feed line is an adjacent power supply device; a coupling unit that electromagnetically couples the target feeder line with the adjacent feeder line, The target power supply device is a phase detection unit that detects an induced current phase, which is a phase of an induced current flowing in the target power supply line due to electromagnetic induction via the coupling unit, in a state in which an AC current is supplied to the adjacent power supply line by the adjacent power supply device; an AC current generating unit that generates an AC current to be supplied to the target power supply line; a phase control unit that controls the AC current generating unit so that a phase of the AC current supplied to the target power supply line approaches a phase of the induced current detected by the phase detection unit, The phase detection unit detects the induced current phase in a state where no AC current is supplied to the target power supply line by the target power supply device.
7. A plurality of power supply lines arranged in a line along a moving path of a moving body equipped with a power receiving device; a power supply device connected to each of the plurality of power supply lines and supplying AC current to the connected power supply lines; A wireless power supply facility that supplies power to the power receiving device in a wireless manner, one of the plurality of power feed lines is a target power feed line, a power supply device connected to the target power feed line is a target power supply device, a power feed line adjacent to the target power feed line along the movement path is an adjacent power feed line, and a power supply device connected to the adjacent power feed line is an adjacent power supply device; a coupling unit that electromagnetically couples the target feeder line with the adjacent feeder line, The target power supply device is a phase detection unit that detects an induced current phase, which is a phase of an induced current flowing in the target power supply line due to electromagnetic induction via the coupling unit, in a state in which an AC current is supplied to the adjacent power supply line by the adjacent power supply device; an AC current generating unit that generates an AC current to be supplied to the target power supply line; a phase control unit that controls the AC current generating unit so that a phase of the AC current supplied to the target power supply line approaches a phase of the induced current detected by the phase detection unit, the coupling unit includes a target coil section formed by a part of the target power supply line, an adjacent coil section formed by a part of the adjacent power supply line, and a magnetic core, and the target coil section, the adjacent coil section, and the magnetic core are concentrically arranged.
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