Power transmission device, power transmission control method, power transmission control program, power transmission control device, and wireless power supply system

The power transmission device enhances efficiency and safety by adjusting beam direction and shape based on receiving surface information and monitoring for intrusions, effectively preventing exposure to high-power beams in wireless power supply systems.

JP7820739B2Active Publication Date: 2026-02-26B&PLUS

Patent Information

Application Number
JP2023502324
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-24
Filing Date
2022-02-17
Publication Date
2026-02-26
Estimated Expiration
2042-02-17

AI Technical Summary

Technical Problem

Existing wireless power transmission technologies do not adequately address safety concerns when living organisms or objects are present near the power receiving device, particularly in indoor environments, and there is a need to improve transmission efficiency while ensuring safety.

Method used

A power transmission device with a control unit that identifies dynamic and static information about the power receiving surface, adjusts the radiation direction and beam shape of the power transmission beam, and monitors for the entry of living organisms or objects into no-entry areas, stopping the beam if necessary, using cameras and light sources for edge detection and image analysis.

Benefits of technology

Enhances power transmission efficiency while ensuring safety by accurately detecting and preventing exposure of living beings or objects to high-power beams, thereby improving overall safety and efficiency in wireless power supply systems.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A power transmission device according to one embodiment of the present disclosure comprises a control unit that controls a power transmission unit that performs wireless power transmission. The control unit comprises: a means for identifying dynamic information relating to a power receiving surface that corresponds to a power receiving unit with which a target power receiving device is provided; a means for identifying static information relating to the power receiving surface; a means for referring to the dynamic information relating to the power receiving surface and the static information relating to the power receiving surface to generate control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying electrical power to the target power receiving device; a means for causing the power transmission unit to radiate the power transmission beam in accordance with the control parameters; a means for referring to a position of an edge in an image produced by imaging of an area around the target power receiving device and monitoring entry of biological bodies or objects into an entry-prohibited space arising in an area around a route of the power transmission beam; and a means for stopping radiation of the power transmission beam if entry of a biological body or an object into the entry-prohibited region has been detected.
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Description

[Technical Field]

[0001] The present disclosure relates to a power transmission device, a power transmission control method, a power transmission control program, a power transmission control device, and a wireless power feeding system. [Background technology]

[0002] In the field of wireless power supply, there is a demand for highly efficient power transmission.

[0003] Patent Document 1 describes a technology aimed at realizing efficient wireless power supply with high power receiving efficiency for an aircraft. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2019-135900 A Summary of the Invention [Problem to be solved by the invention]

[0005] In the technology described in Patent Document 1, since the power receiving device is an aircraft such as a high altitude platform station (HAPS), it can be assumed that no living organisms or objects exist around the aircraft.

[0006] On the other hand, if the power receiving device is, for example, a smartphone placed on a table indoors, there is a possibility that a living body (e.g., the owner of the smartphone) is present around the smartphone. It is undesirable for a living body to be exposed to a high-power power transmission beam. Therefore, in a situation where a living body or an object (e.g., an electronic device) is present around the power receiving device, it is necessary to ensure the safety of the living body or the object by appropriately controlling the power transmission beam.

[0007] An object of the present disclosure is to improve transmission efficiency while ensuring safety around a power receiving device in wireless power supply. [Means for solving the problem]

[0008] A power transmission device according to one aspect of the present disclosure includes a control unit that controls a power transmission unit that performs wireless power transmission, and the control unit includes: means for identifying dynamic information regarding a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information regarding the power receiving surface; means for generating control parameters regarding the radiation direction and beam shape of a power transmission beam for supplying power to the target power receiving device by referring to the dynamic information regarding the power receiving surface and the static information regarding the power receiving surface; means for causing the power transmission unit to radiate the power transmission beam according to the control parameters; means for monitoring the entry of living organisms or objects into no-entry areas that occur around the path of the power transmission beam by referring to the position of edges in an image captured around the target power receiving device; and means for stopping the radiation of the power transmission beam when entry of a living organism or object into the no-entry area is detected. [Effects of the Invention]

[0009] According to the present disclosure, it is possible to improve transmission efficiency while ensuring safety around a power receiving device in wireless power supply. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a block diagram showing a configuration of a wireless power supply system according to an embodiment of the present invention; [Figure 2] FIG. 2 is a block diagram illustrating a configuration of a power transmission device. [Figure 3] FIG. 2 is a block diagram illustrating a configuration of an input device. [Figure 4] 3 is a diagram illustrating an example of a power transmission surface corresponding to the power transmission unit of FIG. 2. FIG. [Figure 5] FIG. 2 is a block diagram illustrating a configuration of a power receiving device. [Figure 6] 6 is a diagram illustrating an example of a power receiving surface corresponding to the power receiving unit in FIG. 5. [Figure 7] FIG. 1 is a diagram illustrating an example of implementation of a wireless power supply system according to an embodiment of the present invention. [Figure 8] 8 is a diagram showing the power receiving surface of FIG. 7 as viewed from above. FIG. [Figure 9] FIG. 8 is a diagram showing a state when a user brings their hand closer in the implementation example of FIG. 7. [Figure 10] 10 is a diagram showing the power receiving surface of FIG. 9 as viewed from above. FIG. [Figure 11] FIG. 1 is a diagram illustrating an overview of the present embodiment. [Figure 12] FIG. 2 is a diagram illustrating a data structure of a stop history database according to the present embodiment. [Figure 13] 4 is a flowchart illustrating a power transmission control process according to the present embodiment. [Figure 14] 14 is a flowchart illustrating details of step S110 in FIG. 13. [Figure 15] 10A and 10B are diagrams illustrating examples of the structure of information received by a power transmitting device from a power receiving device. [Figure 16] 14 is a flowchart illustrating details of step S120 in FIG. 13. [Figure 17] FIG. 1 is a diagram illustrating an ideal beam shape. [Figure 18] FIG. 1 is a diagram illustrating an ideal beam shape. [Figure 19] 14 is a flowchart showing details of step S150 in FIG. 13. [Figure 20] 10 is a flowchart illustrating a power transmission control process according to a first modification. [Figure 21] 10A and 10B are explanatory diagrams of control of a power transmission beam when the attitude of the power receiving surface changes. [Figure 22] FIG. 10 is a diagram illustrating an example of the data structure of a power receiving unit database according to the second modification. [Figure 23] FIG. 10 is a diagram illustrating a security area according to a fourth modification example. [Figure 24] FIG. 1 is an explanatory diagram of a distance measurement technique using a monocular camera. [Figure 25] FIG. 1 is an explanatory diagram of a distance measurement technique using a monocular camera. DETAILED DESCRIPTION OF THE INVENTION

[0011] Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. In the drawings for explaining the embodiment, the same components are generally designated by the same reference numerals, and repeated description thereof will be omitted.

[0012] (1) Wireless power supply system configuration The configuration of the wireless power feeding system will be described below. Fig. 1 is a block diagram showing the configuration of the wireless power feeding system of this embodiment.

[0013] As shown in FIG. 1, the wireless power supply system 1 includes a power transmitting device 10 and a power receiving device 30.

[0014] The power transmitting device 10 and the power receiving device 30 can communicate with each other wirelessly. Any wireless communication method may be used, for example, Bluetooth (registered trademark), ZigBee (registered trademark), specified low-power wireless communication, or wireless LAN (Local Area Network).

[0015] In response to a power supply request from the power receiving device 30, the power transmitting device 10 wirelessly supplies power to the power receiving device 30. As an example, the power transmitting device 10 is installed indoors in a facility such as a food and beverage establishment (e.g., a cafe or restaurant) or a coworking space.

[0016] The power receiving device 30 includes a battery (not shown). The power receiving device 30 transmits a power supply request to the power transmitting device 10 and charges the battery using the energy of the power transmission beam radiated from the power transmitting device 10. The power receiving device 30 is any electronic device that can be powered by a battery. For example, the power receiving device 30 is a mobile computer (e.g., a smartphone, a tablet terminal, a laptop computer, or a wearable device), a display used for picking work in a warehouse, or a drone.

[0017] In FIG. 1, the number of power transmitting devices 10 and power receiving devices 30 is one, but the number of power transmitting devices 10 and power receiving devices 30 is not limited to one. When there are multiple power receiving devices 30, the power receiving device 30 may include, in the power supply request, information for identifying itself or information for identifying the owner of the power receiving device 30. This allows the power transmitting device 10 to identify the power receiving device 30 that is the target of wireless power supply (target power receiving device). When there are multiple power transmission devices 10, multiple devices may cooperate to wirelessly supply power, or one device may supply power wirelessly. The power transmission device 10 that will supply power wirelessly may be specified by the target power receiving device, or may be determined by one or more power transmission devices 10 that have received a power supply request from the target power receiving device.

[0018] (1-1) Configuration of power transmission equipment The configuration of the power transmission device 10 will be described. Fig. 2 is a block diagram illustrating an example of the configuration of the power transmission device. Fig. 3 is a block diagram illustrating an example of the configuration of an input device. Fig. 4 is a diagram illustrating an example of a power transmission surface corresponding to the power transmission unit in Fig. 2.

[0019] 2, the power transmitting device 10 includes a storage device 11, a processor 12, an input / output interface 13, a communication interface 14, and a power transmitting unit 15. The power transmitting device 10 is connectable to at least one of an input device 16 and an output device 17.

[0020] The storage device 11 is configured to store programs and data, and is, for example, a combination of a read-only memory (ROM), a random access memory (RAM), and a storage (for example, a flash memory or a hard disk).

[0021] The programs include, for example, the following programs: OS (Operating System) programs Application programs that perform information processing (e.g., power transmission control processing)

[0022] The data includes, for example, the following data: Databases referenced in information processing Data obtained by performing information processing (i.e., the results of performing information processing)

[0023] The processor 12 is configured to implement the functions of the power transmitting device 10 (particularly, the function of controlling the power transmitting unit 15) by starting a program stored in the storage device 11. The processor 12 is an example of a computer or a control unit.

[0024] The input / output interface 13 is configured to receive signals (e.g., user instructions, sensing data, or a combination thereof) from an input device 16 connected to the power transmission device 10, and to output signals to an output device 17 connected to the power transmission device 10.

[0025] The input device 16 is, for example, a keyboard, a pointing device, a touch screen, a sensor (for example, an optical sensor), or a combination thereof.

[0026] The optical sensor may include, for example, at least one of the following: ·camera Lidar ·ToF (Time Of Flight) camera

[0027] As shown in FIG. 3, the input device 16 includes a camera 161 and a light source 162 .

[0028] The camera 161 captures an image of the surroundings of the power receiving device 30 in response to, for example, a control signal from the processor 12. The camera 161 may be configured to be able to control at least one of the position and the attitude of the camera 161 in response to the position of the power receiving device 30.

[0029] The light source 162 illuminates the periphery of the power receiving device 30 in response to, for example, a control signal from the processor 12. This makes it possible to more accurately identify edges, which will be described later, from image data captured by the camera 161. For example, the light source 162 emits light along the shooting direction of the camera 161. When a monitoring target (e.g., a human hand) is present within the light irradiation range, part of the emitted light is reflected by the monitoring target, and therefore part of the emitted light does not reach the area blocked by the monitoring target. In other words, a difference occurs in the amount of light reaching the monitoring target and the area blocked by the monitoring target. Therefore, in the image data captured by the camera 161, the luminance of the monitoring target is high, while the luminance of the area around the monitoring target is relatively low (shadows are cast). Therefore, the light source 162 increases the luminance difference between the monitoring target and its surroundings, making it possible to more accurately identify the edges of the monitoring target.

[0030] The light source 162 may be configured to be capable of controlling at least one of the position and the attitude of the light source 162 in accordance with the position of the power receiving device 30. The light source 162 may be turned on in response to the start of a power transmission control process (FIG. 13) described later, and may be turned off in response to the end of the process. This allows a user of the wireless power feeding service provided by the power transmitting device 10 to intuitively recognize the start and end of power transmission.

[0031] The output device 17 is, for example, a display, a speaker, an alarm device, or a combination thereof. When the alarm device receives an alarm output instruction from the power transmitting device 10, it outputs an alarm that can be perceived by people in the vicinity. As an example, the alarm is not limited to the human sense of sight or hearing, but may stimulate the human sense of touch, smell, or taste, thereby making the worker aware of at least one of the presence of the alarm itself and the content of the alarm. The alarm device may include, for example, a light source, a lamp, a display, a projector, a machine whose physical state can be electrically controlled (e.g., an electric gate for blocking people's passage), a smoke generator, a speaker, a vibration device, a mist generator, an odor generator, a taste stimulator (e.g., a mouthpiece-type device that can supply a taste stimulator liquid to the wearer's tongue), or a combination thereof.

[0032] The communication interface 14 is configured to control communication between the power transmitting device 10 and an external device (for example, the power receiving device 30). As an example, the communication interface 14 is a wireless communication module that supports at least one of Bluetooth, ZigBee, specific low-power wireless communication, and wireless LAN.

[0033] The power transmitting unit 15 is configured to emit a power supply electromagnetic wave as a power transmission beam (i.e., to transmit power wirelessly) in response to a control signal from the processor 12. The power supply electromagnetic wave is, for example, a microwave, a millimeter wave, or a light wave (laser light or LED light). In the following description, the power supply electromagnetic wave is assumed to be a microwave.

[0034] Specifically, the power transmitting unit 15 includes a signal source, a signal processing circuit, and an antenna (an example of a "beam radiating element"). The signal source is, for example, an oscillator that generates an electromagnetic wave for power supply. The signal processing circuit performs signal processing on the power supply electromagnetic wave generated by the signal source, including, for example, at least one of phase adjustment, amplitude adjustment, and filtering. The signal processing circuit may include an amplifier for amplitude adjustment (power amplification). The antenna radiates the power supply electromagnetic waves output from the signal processing circuit into space as a power transmission beam. A lamp may be attached around the antenna as an alarm device. For example, lighting the lamp can alert people nearby that wireless power transmission is in progress.

[0035] As shown in Fig. 4, the power transmitting unit 15 includes a plurality of antennas 151. The antennas 151 may be planar antennas as shown in Fig. 4 or linear antennas. The antennas 151 may be arranged in an array as shown in Fig. 4 or may be arranged in a different manner.

[0036] The multiple antennas 151 form a power transmission plane. The power transmission plane corresponds to a portion of the power transmission unit 15 that is responsible for radiating the power transmission beam. The power transmission plane depends on the configuration of the power transmission unit 15 (for example, the size, shape, arrangement, and number of antennas 151). As an example, as shown in FIG. 4, a rectangular power transmission plane TS may be defined that encompasses all of the antennas 151 provided in the power transmission unit 15.

[0037] (1-2) Configuration of the power receiving device The configuration of the power receiving device 30 will be described below. Fig. 5 is a block diagram illustrating the configuration of the power receiving device. Fig. 6 is a diagram illustrating a power receiving surface corresponding to the power receiving section in Fig. 5.

[0038] 5, the power receiving device 30 includes a storage device 31, a processor 32, an input / output interface 33, a communication interface 34, and a power receiving unit 35. The power receiving device 30 is connectable to at least one of an input device 36 and an output device 37.

[0039] The storage device 31 is configured to store programs and data, and is, for example, a combination of ROM, RAM, and storage (for example, flash memory or a hard disk).

[0040] The programs include, for example, the following programs: OS programs Application programs that perform information processing

[0041] The data includes, for example, the following data: Databases referenced in information processing - Results of information processing

[0042] The processor 32 is configured to implement the functions of the power receiving device 30 by running a program stored in the storage device 31. The processor 32 is an example of a computer.

[0043] The input / output interface 33 is configured to acquire a signal (e.g., a user instruction, sensing data, or a combination thereof) from an input device 36 connected to the power receiving device 30. The input / output interface 33 is also configured to output a signal to an output device 37 connected to the power receiving device 30.

[0044] The input device 36 is, for example, a keyboard, a pointing device, a touch screen, a sensor (for example, an attitude sensor), or a combination thereof.

[0045] The attitude sensor may include, for example, at least one of the following: Acceleration sensor Angular rate sensor Magnetic sensors

[0046] The output device 37 is, for example, a display.

[0047] The communication interface 34 is configured to control communication between the power receiving device 30 and an external device (for example, the power transmitting device 10). As an example, the communication interface 34 transmits sensing data to the external device. The communication interface 34 is, for example, a wireless communication module that supports at least one of Bluetooth, ZigBee, specified low-power wireless communication, and wireless LAN.

[0048] The power receiving unit 35 is configured to receive the power transmission beam emitted into space by the power transmitting unit 15 and obtain power.

[0049] Specifically, the power receiving unit 35 includes an antenna and a power converter. The antenna receives the power supply electromagnetic wave (power transmission beam) propagating through space. The power converter converts the power supply electromagnetic waves received by the antenna into (DC) power. When the electromagnetic wave for power supply is a microwave, the antenna and the power converter may be a rectenna. When the electromagnetic wave for power supply is a light wave, the antenna and the power converter may be an optical-to-electrical converter.

[0050] As shown in Fig. 6, the power receiving unit 35 includes a plurality of antennas 351. The antennas 351 may be planar antennas as shown in Fig. 6, or may be linear antennas. The antennas 351 may be arranged in an array as shown in Fig. 6, or may be arranged in a different manner.

[0051] The multiple antennas 351 form a power receiving surface (which can also be called an aperture surface). The power receiving surface corresponds to the portion of the power receiving unit 35 that is responsible for receiving the power transmission beam. The power receiving surface depends on the configuration of the power receiving unit 35 (for example, the size, shape, arrangement, and number of antennas 351). As an example, as shown in FIG. 6 , a rectangular power receiving surface RS that encompasses all antennas 351 provided in the power receiving unit 35 may be defined. The power receiving surface may be an effective aperture surface based on the radio wave characteristics of the power receiving unit 35.

[0052] Furthermore, the power receiving device 30 includes a battery (not shown). The battery supplies power to each component of the power receiving device 30. The battery is charged by the power obtained by the power receiving unit .

[0053] (2) Overview of the embodiment An overview of this embodiment will be described. Fig. 7 is a diagram showing an example of implementation of a wireless power feeding system of this embodiment. Fig. 8 is a diagram showing the power receiving surface of Fig. 7 as viewed from above. Fig. 9 is a diagram showing the implementation example of Fig. 7 when a user brings their hand close. Fig. 10 is a diagram showing the power receiving surface of Fig. 9 as viewed from above. Fig. 11 is a diagram showing an overview of this embodiment.

[0054] The power transmitting device 10 of this embodiment specifies the size and shape of the power receiving surface in addition to the position and attitude of the power receiving surface corresponding to the power receiving unit 35 included in the power receiving device 30. As shown in Fig. 7 , the power transmitting device 10 adjusts the radiation direction and shape of the power transmitting beam PTB and radiates the power transmitting beam PTB so that the beam is focused at the position of the power receiving surface into a spot that matches the attitude, size, and shape of the power receiving surface. As an example, the power transmitting device 10 causes multiple antennas 151 to radiate RF beams with different phases and different amplitudes.

[0055] As a result, as shown in FIG. 8, the range ("power receiving range") RR in which the power receiving surface RS can receive the power transmission beam PTB covers almost the entire area of ​​the power receiving surface RS, making it possible to bring out the overall power receiving performance of the multiple antennas 351 provided in the power receiving unit 35. In other words, the amount of power that can be received per unit time can be increased, and highly efficient power transmission can be achieved. Around the path of the power transmission beam PTB (for example, around the power receiving range RR), there is an area where a living body or object is irradiated with a large amount of power. An area where the power received by the power transmission beam PTB in the human body may exceed a threshold is defined as a no-entry area RA. The threshold is determined, for example, with reference to the Radio Wave Protection Guidelines.

[0056] As shown in FIG. 7, the camera 161 captures an image of the periphery of the power receiving device 30. The light source 162 illuminates the periphery of the power receiving device 30. The power transmitting device 10 acquires image data from the camera 161 and performs edge analysis on the image data to obtain edge information. The edge information is information about edges in an image. An edge is a point where the luminance of an image changes (for example, a point where the first-order differential of a spatial function of luminance becomes a maximum or minimum, or a point where the second-order differential of a spatial function of luminance crosses zero).

[0057] The power transmitting device 10 monitors the entry of a living body or an object into the forbidden area RA by referring to the edge information. As an example, when the power transmitting device 10 detects an edge in the forbidden area RA, it determines that the edge has appeared due to a living body or an object that has entered the forbidden area RA (i.e., a living body or an object has entered the forbidden area RA). However, even if the power transmitting device 10 detects an edge of a predetermined object in the forbidden area RA, the power transmitting device 10 can ignore the edge. Examples of the predetermined object include the power receiving device 30 and objects that do not need to be protected from radio waves (e.g., tables, tableware, food and drink, menus, and books). If the predetermined object is a stationary object located in the forbidden area RA, the power transmitting device 10 can determine whether to ignore an edge detected in the forbidden area RA during wireless power supply by, for example, registering position information of the edge of the stationary object as a whitelist before starting wireless power supply. Alternatively, the power transmitting device 10 may use image recognition processing to recognize at least one of a predetermined object or other living body or object (i.e., a living body or object that needs to be protected from radio waves) from the image data. This makes it possible to determine which object or living body an edge found in the no-entry area RA belongs to. As shown in FIG. 9, assume that the user US brings their hand close to the power receiving device 30. As a result, the hand of the user US enters the no-entry area RA, as shown in FIG. 10. In this case, the power transmitting device 10 analyzes edges in the image data and detects the entry of the hand of the user US into the no-entry area RA by referring to the edge information.

[0058] In particular, by using the edge information, it is possible to accurately grasp the positional relationship between the living body or object and the no-entry area RA. Therefore, even when the living body or object and the power receiving device 30 coexist in a small space, it is possible to actively wirelessly feed power to the living body or object while the living body or object is in a safe position, and to accurately detect the event and stop the power transmission beam when the living body or object accidentally enters the no-entry area RA.

[0059] When detecting the entry of the hand of the user US into the restricted entry area RA, the power transmission device 10 stops the transmission of the power transmission beam PTB as shown in Fig. 11. This makes it possible to prevent the hand of the user US from being irradiated with the power transmission beam.

[0060] (3) Database The database of this embodiment will now be described. Fig. 12 is a diagram showing the data structure of the stop history database of this embodiment.

[0061] The transmission stop history database is stored in the storage device 11. The transmission stop history database stores transmission stop history information, which is information about the history of events that caused the power transmitting device 10 to stop emitting the power transmission beam.

[0062] 12, the outage history database includes an event ID field, an outage date and time field, a power receiving device field, a user field, an environment field, and a beam field. Each field is associated with another field.

[0063] The event ID field stores an event ID. The event ID is information for identifying an event that caused the power transmitting device 10 to stop emitting a power transmission beam due to the detection of a living body or object entering a no-entry area.

[0064] The stop date and time field stores stop date and time information. The stop date and time information is information about the date and time when the power transmitting device 10 stopped emitting the power transmission beam.

[0065] The power receiving device field stores power receiving device information. The power receiving device information is information related to the power receiving device 30. For example, the power receiving device information includes at least one of a power receiving device ID or power receiving device attribute information. The power receiving device ID is information for identifying the power receiving device 30. The power receiving device attribute information is information related to the attributes of the power receiving device 30. The power receiving device attribute information may include at least one of static information of the power receiving device 30 or dynamic information of the power receiving device 30 at the date and time when the power transmitting device 10 stopped emitting the power transmission beam.

[0066] The user field stores user information. The user information is information about a user of the wireless power supply service provided by the power transmitting device 10. For example, the user information includes at least one of a user ID and user attribute information. The user ID is information for identifying a user. The user attribute information is information about the attributes of the user.

[0067] The environment field stores environmental information. The environmental information is information about the wireless power supply environment around the time when the radiation of the power transmission beam is stopped. The environmental information may include, for example, information about the number of living organisms (e.g., the number of customers in a store or the number of people accompanying the user) or objects (e.g., the user's personal belongings) present around the power receiving device 30. The objects present around the power receiving device 30 may include, for example, an information processing device capable of wireless communication, such as a smartphone, a tablet terminal, or a laptop. The power transmitting device 10 can recognize the presence of such an information processing device by wirelessly communicating with it. Alternatively, the power transmitting device 10 may recognize objects or living organisms present within the image capturing range by performing image recognition processing on image data captured by the camera 161. For example, it can be predicted that the user is less likely to touch the power receiving device 30 in an environment where the user's personal belongings (e.g., a laptop), ordered meals, or people accompanying the user are present around the power receiving device 30.

[0068] The beam field stores beam information. The beam information is information about the state of the power transmission beam at the time when entry of a living body or object into the no-entry area is detected (e.g., information about the spot on which the power transmission beam is focused at the position of the power receiving surface). The beam information can include, for example, one or both of size information and reference position information. The size information is information about the size of the spot. The reference position information is information about the reference position of the spot. The reference position is the position of a predetermined point (e.g., a center point, a vertex, or a corner) of the spot.

[0069] (4) Power transmission control processing The power transmission control process of this embodiment will be described. Fig. 13 is a flowchart illustrating the power transmission control process of this embodiment. Fig. 14 is a flowchart illustrating details of step S110 in Fig. 13. Fig. 15 is a diagram illustrating an example of the structure of information received by the power transmitting device from the power receiving device. Fig. 16 is a flowchart illustrating details of step S120 in Fig. 13. Fig. 17 is a diagram illustrating an ideal beam shape. Fig. 18 is a diagram illustrating an ideal beam shape. Fig. 19 is a flowchart illustrating details of step S150 in Fig. 13.

[0070] The power transmission control process in FIG. 13 starts, for example, in response to the processor 12 acquiring a power supply request received from the power receiving device 30 via the communication interface 14.

[0071] As shown in FIG. 13, the power transmitting device 10 executes identification of static information related to the power receiving surface (S110). Specifically, the processor 12 identifies static information about the power receiving surface.

[0072] The static information about the power receiving surface is information about the attributes or state of the power receiving surface that is not expected to change between the start and end of wireless power supply. For example, the static information is the size and shape of the power receiving surface.

[0073] The size of the power receiving surface represents the actual size of the power receiving surface. For example, the size of the power receiving surface may include at least one of the following: The length of part or all of the contour line defining the receiving surface (for example, the length of the side of the receiving surface or the total length of the receiving surface) The length between two points on the contour that defines the receiving surface (for example, the length of the diagonal of the receiving surface, the radius of the receiving surface, the length of the major axis of the receiving surface, or the length of the minor axis of the receiving surface) The area enclosed by the contour line that defines the power receiving surface

[0074] The shape of the power receiving surface represents the geometric shape of the power receiving surface, and may be, for example, a combination of any curves (e.g., a circle or an ellipse), a combination of any straight lines (e.g., a polygon), or a combination of any curves and straight lines (e.g., a sector).

[0075] As an example, the static information regarding the power receiving surface is identified (S110) according to FIG.

[0076] As shown in FIG. 14, the power transmitting device 10 executes size identification (S111). Specifically, the processor 12 refers to the information received from the power receiving device 30 and identifies the size of the power receiving surface.

[0077] As an example, the communication interface 14 of the power transmitting device 10 receives information having the structure shown in Fig. 15 from the power receiving device 30. A part or all of this information may be included in a power supply request transmitted from the power receiving device 30 to the power transmitting device 10, for example. As shown in FIG. 15, the information received from the power receiving device 30 may include size information, shape information, and attitude information in addition to the power receiving unit ID. The power receiving unit ID is information for identifying the power receiving unit 35 included in the power receiving device 30 that is the transmission source. The power receiving unit ID is stored in the storage device 31 of the power receiving device 30, for example. The size information is information relating to the size of the power receiving surface corresponding to the power receiving unit 35 identified by the power receiving unit ID. The size information is stored in the storage device 31 of the power receiving device 30, for example. The shape information is information relating to the shape of the power receiving surface corresponding to the power receiving unit 35 identified by the power receiving unit ID. The shape information is stored in the storage device 31 of the power receiving device 30, for example. The attitude information is information about the attitude of the power receiving surface corresponding to the power receiving unit 35 identified by the power receiving unit ID. As one example, the attitude information is generated by the processor 32 of the power receiving device 30 according to the sensing result of the attitude sensor (one example of the input device 36). As another example, the attitude information can also be generated using the reception phase difference between the power receiving antenna elements for the incoming signal.

[0078] The processor 12 extracts information about the size of the power receiving surface from the information received from the power receiving device 30. The processor 12 identifies the size of the power receiving surface by referring to the extracted information.

[0079] As shown in FIG. 14, the power transmitting device 10 executes the shape specification (S112). Specifically, the processor 12 refers to the information received from the power receiving device 30 and identifies the shape of the power receiving surface. As an example, the processor 12 extracts information about the shape of the power receiving surface from the information (FIG. 15) received from the power receiving device 30. The processor 12 identifies the shape of the power receiving surface by referring to the extracted information. Step S112 may be executed after step S111 as in FIG. 14, or may be executed before step S111 or simultaneously with step S111.

[0080] As shown in FIG. 13, the power transmitting device 10 executes identification of dynamic information related to the power receiving surface (S120). Specifically, the processor 12 determines dynamic information about the power receiving surface. Step S120 may be performed after step S110 as in FIG. 14, or may be performed before step S110 or simultaneously with step S110.

[0081] The dynamic information about the power receiving surface is information about the attributes or state of the power receiving surface that is assumed to change between the start and end of wireless power feeding. For example, the dynamic information is the position and attitude of the power receiving surface. If the power receiving device 30 moves or rotates between the start and end of wireless power feeding, at least one of the position and attitude of the power receiving surface will change.

[0082] The position of the power receiving surface represents the relative position of the power receiving surface with respect to the power transmitting surface. For example, the position of the power receiving surface can include at least one of the following: The coordinates of one or more reference points (e.g., vertices) on the contour that defines the power receiving surface The coordinates of one or more reference points (e.g., the center point and / or the center of gravity) within the power receiving surface

[0083] The attitude of the power receiving surface represents the relative orientation of the power receiving surface with respect to a reference plane (e.g., a horizontal plane or a power transmitting plane). As an example, the attitude of the power receiving surface is the inclination of the power receiving surface with respect to the reference plane (e.g., at least one of the roll angle, pitch angle, and yaw angle of the power receiving surface).

[0084] As an example, the dynamic information regarding the power receiving surface is identified (S120) according to FIG.

[0085] As shown in FIG. 16, the power transmitting device 10 executes the location specification (S121). Specifically, the processor 12 identifies the position of the power receiving surface. The position of the power receiving surface can be identified using various techniques. The processor 12 preferably identifies the position of the power receiving surface without wirelessly transmitting power. This eliminates the need to emit a power transmission beam to identify the position of the power receiving surface, and therefore does not adversely affect surrounding living organisms or objects when the position of the power receiving surface is identified. In this embodiment, the processor 12 identifies the position of the power receiving surface by referring to the sensing result of the optical sensor (an example of the input device 16).

[0086] As an example, the processor 12 refers to an image of the power receiving device 30 captured by the camera 161 and measures the distance from the camera 161 to the target location. Then, the processor 12 can identify the position of the power receiving surface based on the measured distance and known parameters (for example, the positional relationship between the camera 161 and the power transmitting surface, the imaging conditions of the camera 161 (for example, the angle of view and the angle), and the positional relationship between the target location and the power receiving surface (for example, the center point of the power receiving surface)). The processor 12 may also identify the position of the power receiving surface by referring to the measurement results of a distance measurement sensor (for example, an ultrasonic sensor, Lidar, etc.).

[0087] The target portion is a feature that can be observed from the outside of the power receiving device 30. The target portion can include, for example, at least one of the following: A portion of the power receiving device 30 or a cover covering the power receiving device 30 that has a mark (for example, at least one of a two-dimensional barcode, a specific unevenness, a specific pattern, a specific color, and a specific shape) attached thereto. At least one vertex, corner, edge, or the entirety of the antenna 351 The vertices, corners, sides, or entirety of the power receiving unit 35

[0088] As shown in FIG. 16, the power transmitting device 10 executes the step of identifying the posture (S122). Specifically, the processor 12 refers to the information received from the power receiving device 30 to identify the orientation of the power receiving surface. As an example, the processor 12 extracts information about the orientation of the power receiving surface from the information (FIG. 15) received from the power receiving device 30. The processor 12 identifies the orientation of the power receiving surface by referring to the extracted information. Step S122 may be executed after step S121 as in FIG. 16, or may be executed before step S121 or simultaneously with step S121.

[0089] After steps S110 and S120, the power transmitting device 10 generates control parameters (S130). Specifically, the processor 12 generates control parameters (e.g., beam excitation conditions) related to beam formation by referring to the static information of the power receiving surface identified in step S110 and the dynamic information of the power receiving surface identified in step S120. The control parameters determine the radiation direction and beam shape of the power transmission beam. As an example, the processor 12 generates control parameters so that the power transmission beam emitted from the power transmission unit 15 is focused at the position of the power receiving surface into a spot that matches the size, shape, and attitude of the power receiving surface. As a result, the transmission beam is concentrated over almost the entire area of ​​the receiving surface, making it possible to bring out the most of the power receiving performance of the antenna 351 provided in the receiving unit 35 (i.e., achieving highly efficient power transmission), while at the same time suppressing leakage of electromagnetic waves to the surroundings of the receiving unit 35.

[0090] The control parameters in the first example are determined so that the intensity of the power transmission beam is half of the maximum value (i.e., half value) at least on a part of the edge (i.e., side or vertex) of the power receiving surface as shown in Fig. 17. This makes it possible to efficiently transmit power while suppressing variations in received power between the antennas 351.

[0091] The control parameters in the second example are determined so that the intensity of the power transmission beam becomes null (i.e., zero value) at least on a part of the edge of the power receiving surface as shown in Fig. 18. This can further increase the efficiency of power transmission.

[0092] After step S130, the power transmitting device 10 performs wireless power transmission (S140). Specifically, the processor 12 causes the power transmitter 15 to emit a power transmission beam in accordance with the control parameters generated in step S130 or step S150, which will be described later.

[0093] After step S140, the power transmitting device 10 executes a safety process (S150). Specifically, the processor 12 monitors the entry of a living body or an object into the forbidden area. When the processor 12 detects the entry of a living body or an object into the forbidden area, the processor 12 stops the emission of the power transmission beam. Furthermore, when the processor 12 detects the entry of a living body or an object into the forbidden area, the processor 12 may change the control parameters.

[0094] As an example, the security process (S150) is performed according to FIG.

[0095] As shown in FIG. 19, the power transmitting device 10 acquires an image (S151). Specifically, the processor 12 acquires image data representing the surroundings of the power receiving device 30 from the camera 161.

[0096] After step S151, the power transmitting device 10 performs edge analysis (S152). Specifically, the processor 12 obtains edge information by analyzing edges in the image data acquired in step S151.

[0097] After step S152, the power transmitting device 10 performs an intrusion determination (S153). Specifically, the processor 12 refers to the edge information (eg, edge position) obtained in step S152 and determines whether or not a living body or object has entered the no-entry area.

[0098] When it is determined in step S153 that a living body or an object has entered the entry-restricted area, the power transmitting device 10 stops emitting the power transmission beam (S154). Specifically, the processor 12 stops the radiation of the power transmission beam from the power transmission unit 15. The processor 12 generates stop history information and stores it in the stop history database (FIG. 12).

[0099] After step S154, the power transmitting device 10 generates control parameters (S155). Specifically, the processor 12 changes, as necessary, the control parameters currently applied to the power transmitting unit 15. For example, the processor 12 may generate control parameters to change at least one of the transmission power of the power transmission beam, or the size or position of the spot where the power transmission beam is focused at the position of the power receiving surface. This changes the position or size of the no-entry area, so that even if the living body or object continues to remain in the same place, the living body or object may move out of the no-entry area and the emission of the power transmission beam may resume.

[0100] In a first example of generating control parameters (S155), the processor 12 performs at least one of the following. Generate control parameters to reduce the transmission power of the transmission beam. Generate control parameters to reduce the size of the spot where the transmitted beam is focused at the position of the receiving surface. A control parameter is generated so that the reference position of the spot where the transmitted beam is focused at the position of the receiving surface moves in a direction away from the living body or object.

[0101] According to the first example of generating the control parameters (S155), the no-entry area is small or the entry area is farther away from the living body or object, so that the living body or object is less likely to enter the no-entry area. In other words, it is possible to suppress a decrease in transmission efficiency due to the stop of radiation of the power transmission beam.

[0102] In a second example of generating control parameters (S155), the processor 12 generates the control parameters by referring to the stop history information. The processor 12 may refer to all the stop history information stored in the stop history database (FIG. 12), or may refer to at least one of the following stop history information: User information corresponding to a user receiving wireless power supply services, or outage history information associated with user information corresponding to other users similar to the user (e.g., matching some attributes) Power receiving device information corresponding to the power receiving device 30 receiving the wireless power supply service, or power receiving device information corresponding to another power receiving device 30 similar to the power receiving device 30 (for example, matching some of the attributes) Environmental information corresponding to the current wireless power supply environment or outage history information associated with environmental information corresponding to other environments similar to the current environment (e.g., matching some attributes)

[0103] The user and the power receiving device 30 receiving the wireless power supply service may be identified, for example, by information transmitted from the power receiving device 30, or by performing user authentication when applying to use the service.

[0104] The processor 12 generates a control parameter so as to increase (e.g., maximize) an expected value of the amount of power transmitted to the power receiving device 30. As an example, the processor 12 refers to the static information acquired in step S110 and the dynamic information acquired in step S120, and calculates, for each of a plurality of candidates that can be used as the control parameter, the received power of the power receiving device 30 due to the emission of the power transmission beam when that candidate is adopted (hereinafter referred to as "normal received power"). The processor 12 refers to the static information acquired in step S110, the dynamic information acquired in step S120, and the stop history information, and predicts, for each of the plurality of candidates, the probability that the emission of the power transmission beam will be stopped when that candidate is adopted (e.g., the probability that the emission of the power transmission beam will be stopped at a randomly selected time point). The processor 12 refers to the calculated normal received power and the predicted probability, and calculates an expected value of the amount of power transmitted to the power receiving device 30. For example, if the normal received power is R and the probability is p, the processor 12 may calculate R*(1-p) as the expected value. The processor 12 calculates the expected value for each of a plurality of candidates, and determines the candidate for which the expected value is not the smallest (for example, the largest) as the new control parameter.

[0105] According to a second example of generating control parameters (S155), the control parameters are generated according to the stop history information. Therefore, the probability that the radiation of the power transmission beam will be stopped can be statistically estimated, and appropriate control parameters can be determined based on the probability. By narrowing down the stop history information to be referenced to information related to a specific user, power receiving device 30, environment, or a combination thereof, the control parameters can be adapted to characteristic factors (e.g., user habits) when providing services to the specific user, power receiving device 30, environment, or combination thereof.

[0106] If it is not determined in step S153 that a living body or an object has entered the entry-restricted area, the power transmitting device 10 ends the security process (S150).

[0107] After step S150, the power transmitting device 10 returns to wireless power transmission (S140) and repeats the process described above.

[0108] The power transmitting device 10 terminates the power transmission control process (FIG. 13) when a termination condition is met. The termination condition may be, for example, at least one of the following. The termination condition may be determined to be met at a predetermined timing, or may be determined to be met in response to the occurrence of an interrupt event. The capacity of the battery of the power receiving device 30 reaches a threshold (for example, a fully charged state) (for example, by referring to information received from the power receiving device 30). The power receiving device 30 cannot be detected (for example, the wireless connection with the power receiving device 30 is lost). A power transmission end request is received from the power receiving device 30. Vibration of the power receiving device 30 is detected (the power receiving device 30 can transmit a vibration detection signal when vibration of the power receiving device 30 is detected by a vibration sensor provided in the power receiving device 30). A power transmission end signal is received (for example, from a remote controller not shown). A specified time has passed since the start of wireless power transmission Another power receiving device 30 that has a higher power transmission priority than the power receiving device 30 in the same power transmission area becomes active.

[0109] Here, the power transmission area refers to an area in which the power transmitting device 10 provides wireless power supply. The power transmission priority is an index used by the power transmitting device 10 to determine a target power receiving device from multiple active power receiving devices 30. The power transmission priority can be determined based on, for example, the remaining battery level of the power receiving device 30, the user's usage history of the power receiving device 30, or a combination thereof. When a power receiving device 30 becomes active, it means that the power receiving device 30 is in a waiting state for wireless power supply. For example, the power receiving device 30 can become active when it becomes in a state (position / posture) in which it can receive power, when it becomes in a state in which it can communicate, or when the remaining battery level of the power receiving device 30 falls below a threshold.

[0110] Assume that a first power receiving device 30A (e.g., a smartphone) and a second power receiving device 30B (a laptop) are present in the same power transmission area, and wireless power feeding is being performed to the first power receiving device 30A. When a user uses the second power receiving device 30B and the remaining battery power of the second power receiving device 30B runs out, the power transmission priority of the second power receiving device 30B becomes higher than the power transmission priority of the first power receiving device 30A. When the power transmitting device 10 detects this reversal of the power transmission priorities, it can temporarily suspend wireless power feeding to the first power receiving device 30A and start wireless power feeding to the second power receiving device 30B (switching of the target power receiving device).

[0111] (5) Summary As described above, the power transmitting device 10 of this embodiment generates control parameters related to the radiation direction and beam shape of a power transmission beam by referring to dynamic information and static information related to the power receiving surface corresponding to the power receiving unit 35 of the power receiving device 30, and causes the power transmitting unit 15 to emit the power transmission beam. The power transmitting device 10 monitors the intrusion of a living body or object into a no-entry area by referring to the position of an edge in an image captured around the power receiving device 30, and stops the power transmission beam when the intrusion is detected. This makes it possible to improve transmission efficiency while ensuring safety around the power receiving device 30 in wireless power transfer. For example, even when a living body or object coexists with the power receiving device 30 in a narrow space, it is possible to actively wirelessly transfer power while the living body or object is in a safe position, while accurately detecting if the living body or object accidentally enters the no-entry area and stopping the power transmission beam to ensure safety.

[0112] The power transmitting device 10 may generate control parameters so that, when the radiation of the power transmission beam is stopped, at least one of the transmission power of the power transmission beam or the size or position of the spot where the power transmission beam is focused at the position of the power receiving surface is changed. This makes it possible to further improve transmission efficiency by changing the control parameters so that the probability of the radiation of the power transmission beam being stopped decreases or the normal receiving power increases.

[0113] The power transmitting device 10 may generate control parameters by referring to the stop history information. This allows statistical estimation of the probability that radiation of the power transmission beam will be stopped and appropriate control parameters to be determined based on the probability. The power transmitting device 10 may generate control parameters by referring to the stop history information related to a specific user, power receiving device 30, environment, or a combination thereof. This allows the control parameters to be adapted to characteristic factors (e.g., user habits) when providing services to a specific user, power receiving device 30, environment, or a combination thereof. The power transmitting device 10 may calculate, for each of multiple candidates that can be used as control parameters, the normal received power when the candidate is used and predict the probability that radiation of the power transmission beam will be stopped when the candidate is used. The power transmitting device 10 may generate control parameters by referring to the calculated normal received power and the predicted probability so as to increase the expected value of the amount of power transmitted by the power transmission beam. This allows determination of control parameters that improve (e.g., maximize) the expected value of the amount of transmitted power.

[0114] (6) Variations A modification of this embodiment will now be described.

[0115] (6-1) Variation 1 A description will be given of Modification 1. Modification 1 is an example in which the control parameters are updated in response to changes in dynamic information related to the power receiving surface.

[0116] The following describes the power transmission control process of Modification 1. Fig. 20 is a flowchart illustrating the power transmission control process of Modification 1. Fig. 21 is an explanatory diagram of the control of the power transmission beam when the attitude of the power receiving surface changes.

[0117] As shown in Figure 20, the power transmission device 10 performs the steps of identifying static information about the power receiving surface (S110), identifying dynamic information about the power receiving surface (S120), generating control parameters (S130), wireless power transmission (S140), and security processing (S150), similar to Figure 13.

[0118] After step S150, unlike FIG. 13, the power transmitting device 10 returns to the step of identifying the dynamic information related to the power receiving surface (S120) and repeats the process described above. This makes it possible to update the control parameters in response to changes in dynamic information about the power receiving surface. For example, if the attitude of the power receiving surface changes due to rotation, the change in the attitude of the power receiving surface can be tracked by changing the rotation angle of the power transmission beam PTB, as shown in Figure 21.

[0119] As described above, according to the power transmitting device of Modification 1, even if at least one of the position and the attitude of the power receiving surface changes, the power transmitting beam can be adaptively shaped. In other words, highly efficient power transmission can be realized while suppressing leakage of electromagnetic waves in a manner that is robust against the movement (translation or rotation) of the power receiving device.

[0120] (6-2) Variation 2 A description will be given of Modification 2. Modification 2 is an example in which static information relating to the power receiving surface is stored in advance in the storage device 11 of the power transmitting device 10.

[0121] In the second modification, the processor 12 identifies static information related to the power receiving surface by referring to the power receiving unit database stored in the storage device 11 in step S110 of FIG. 13 or FIG.

[0122] 22 is a diagram illustrating an example of the data structure of the power receiving unit database of Modification 2. The power receiving unit database is stored in the storage device 11.

[0123] d 22, the power receiving unit database includes a "power receiving unit ID" field, a "shape" field, and a "size" field. Each field is associated with the other fields. In the power receiving unit database, static information regarding the power receiving surface corresponding to each power receiving unit 35 is registered.

[0124] The "power receiving unit ID" field stores the power receiving unit ID described above.

[0125] The "shape" field stores the above-mentioned shape information.

[0126] The "size" field stores the size information described above.

[0127] For example, when the power transmission device 10 transmits power wirelessly to the power receiving unit 35 for the first time, or when the power receiving unit 35 is registered in the power transmission device 10 as one of the power supply targets, the processor 12 may refer to the information received from the power receiving device 30 and register static information regarding the power receiving surface corresponding to the power receiving unit 35 in the power receiving unit database, or a person may manually register the static information regarding the power receiving surface corresponding to the power receiving unit 35 in the power receiving unit database.

[0128] At least one of the shape information and the size information may be associated with model information instead of the power receiving unit ID. The model information is information about the model of at least one of the power receiving device 30 and the power receiving unit 35.

[0129] As described above, according to the power transmitting device of the second modification, static information about the power receiving surface is stored in advance in the storage device 11 of the power transmitting device 10. Therefore, it is possible to identify the static information about the power receiving surface and shape the power transmission beam without receiving the static information about the power receiving surface from the power receiving device 30 every time wireless power transmission is performed. In other words, even in a situation where it is difficult or impossible to receive information from the power receiving device 30, it is possible to achieve highly efficient power transmission while suppressing leakage of electromagnetic waves.

[0130] (6-3) Variation 3 A description will be given of Modification 3. Modification 3 is an example in which a control parameter is generated in accordance with the movement of a living body or an object around the power receiving device.

[0131] The processor 12 refers to an image captured around the power receiving device 30 and analyzes the movement of a living organism or an object around the power receiving device 30. The processor 12 may refer to the image data acquired in step S151 of FIG. 19 or may refer to image data acquired at another timing. As an example, the processor 12 analyzes the amount of movement of a living organism or an object and calculates an index relating to the amount of movement.

[0132] Processor 12 generates the control parameters by further referring to the analysis results of the movement of the living body or object. For example, processor 12 may generate the control parameters by referring to the analysis results in step S130 of Fig. 13 or 20, or may generate the control parameters by referring to the analysis results in step S155 of Fig. 19.

[0133] When the index relating to the amount of movement exceeds the first threshold, the processor 12 generates the control parameters by prioritizing avoidance of stopping the radiation of the power transmission beam. The processor 12 can perform at least one of the following, for example. Generate control parameters to reduce the transmission power of the transmission beam. Generate control parameters to reduce the size of the spot where the transmitted beam is focused at the position of the receiving surface. A control parameter is generated so that the reference position of the spot where the transmitted beam is focused at the position of the receiving surface moves in a direction away from the living body or object.

[0134] On the other hand, when the index related to the amount of movement is equal to or less than the second threshold (< the first threshold), the processor 12 generates the control parameters by prioritizing an increase in the normal received power. The processor 12 can perform at least one of the following, for example. Generate control parameters to increase the transmission power of the transmission beam. The control parameters are generated so that the size of the spot where the power transmission beam is focused at the power receiving surface is increased. However, if the power transmission beam is concentrated over almost the entire power receiving surface, the spot size is not increased any further. Generate control parameters so that the reference position of the spot that focuses the power transmission beam at the power receiving surface moves in a direction approaching the optimal position that maximizes the normal power reception. For example, if the reference position is the center of the spot, the center of the power receiving surface may be the optimal position.

[0135] As described above, the power transmitting device 10 of the third modification generates control parameters according to the movement of a living organism or an object around the power receiving device 30. This allows the control parameters to be adapted to the movement of the living organism or object, which may change from moment to moment. When the movement of the living organism or object is large, the power transmitting device 10 generates control parameters by prioritizing avoidance of stopping the emission of the power transmission beam. This makes it possible to prevent the living organism or object from entering a no-entry area and suppress a decrease in transmission efficiency caused by stopping the emission of the power transmission beam.

[0136] (6-4) Variation 4 Modification 4 will be described. Modification 4 is an example in which control parameters are generated in accordance with the entry / exit of a living body or object into / from a security area defined around a no-entry area. Fig. 23 is a diagram illustrating a security area in Modification 4.

[0137] 23, a warning area AA is defined around the no-entry area RA. The warning area AA can be defined based on at least one of the following criteria: Incoming power Distance from the restricted area RA Camera 161 coverage

[0138] Because the power received by a living body or object outside the no-entry area RA is small, there is no need to stop the emission of the power transmission beam. However, the closer the position of the living body or object is to the no-entry area RA, the higher the probability that the living body or object will enter the no-entry area RA. When a living body or object enters the alert area AA, the power transmission device 10 of the fourth modification reduces the no-entry area RA or moves it away from the living body or object, thereby preventing the living body or object from entering the no-entry area RA.

[0139] As in step S153 of FIG. 19, the processor 12 refers to the edge information obtained in step S152 and determines whether or not a living body or an object has entered the alert area.

[0140] When the processor 12 determines that the living body or object has entered the alert area but has not entered the prohibited area, the processor 12 generates control parameters with a priority on avoiding the stop of the radiation of the power transmission beam. The processor 12 can perform, for example, at least one of the following: Generate control parameters to reduce the transmission power of the transmission beam. Generate control parameters to reduce the size of the spot where the transmitted beam is focused at the position of the receiving surface. A control parameter is generated so that the reference position of the spot where the transmitted beam is focused at the position of the receiving surface moves in a direction away from the living body or object.

[0141] On the other hand, if the processor 12 determines that a living organism or object has not entered the alert area, the processor 12 maintains the control parameters generated in the immediately preceding step S130 of FIG. 13 or FIG.

[0142] As described above, when the power transmitting device 10 of the fourth modification detects the entry of a living body or an object into the alert area, the power transmitting device 10 generates control parameters by prioritizing the avoidance of the suspension of the radiation of the power transmission beam. This makes it possible to prevent the living body or object from entering the restricted area and to suppress a decrease in transmission efficiency due to the suspension of the radiation of the power transmission beam.

[0143] (6-5) Variation 5 A description will be given of Modification 5. Modification 5 is an example in which information regarding improved charging speed is provided to the user.

[0144] The power transmitting device 10 of the fifth modification provides the user with information regarding an improvement in the charging rate, triggered by the occurrence of an event that causes a decrease in the charging rate. The event that causes a decrease in the charging rate is, for example, at least one of the following. -Stopped the power beam The frequency of power transmission beam outages exceeded the threshold. The expected or measured amount of power transmitted by the transmission beam falls below a threshold. -Control parameters were generated so that the transmission power of the transmission beam was below the threshold. The control parameters were generated so that the size of the spot that focuses the power transmission beam at the position of the receiving surface is below a threshold. The control parameters were generated so that the distance between the reference position of the spot where the transmitted beam is focused and the optimal position at the position of the receiving surface is equal to or greater than a threshold value.

[0145] The power transmitting device 10 performs at least one of the following operations to provide the user with information about improving the charging speed. A message is transmitted to the power receiving device 30, and the power receiving device 30 outputs the message. A message is sent to an information processing device other than the power receiving device 30 that can communicate with the power transmitting device 10 (for example, a wearable device worn by the user, or a store tablet terminal installed at the user's seat), and the message is output by the information processing device. · Changing the color or blinking pattern of light source 162 or other light sources.

[0146] The message may be an image (including imaged text) or sound that urges the user to keep a living body (e.g., the user's hand) or an object (e.g., an electronic device that needs to be protected from radio waves) away from the power receiving device 30. Alternatively, the message may be an image (including imaged text) or sound that urges the user to keep the power receiving device 30 away from a living body or an object.

[0147] The power transmitting device of the fifth modification example makes the user aware of desirable behaviors for improving the charging speed and encourages the user to take such behaviors. This prevents the user's unconscious behavior from reducing the charging speed and degrading the user experience of the wireless power supply service.

[0148] (7) Other variations The storage device 11 may be connected to the power transmitting device 10 via a network NW. The storage device 31 may be connected to the power receiving device 30 via a network NW.

[0149] In the embodiment, an example has been described in which the power receiving device 30 transmits a power supply request to the power transmitting device 10. However, the power transmitting device 10 may wirelessly supply power to any of the power receiving devices 30 without receiving a power supply request. As an example, the power transmitting device 10 may wirelessly supply power according to a predetermined schedule, or may collect battery capacity information from the power receiving device 30 and determine whether wireless power supply is necessary.

[0150] In the above description, an example has been shown in which the power transmitting device 10 generates the control parameters by referring to the stop history information in step S155 of Fig. 19. However, the power transmitting device 10 may generate the control parameters by referring to the stop history information in step S130 of Fig. 13 or Fig. 20. This makes it possible to statistically estimate the probability that radiation of the power transmission beam will be stopped at the timing when the control parameters are determined for the first time after the start of provision of a wireless power feeding service, and to optimize the control parameters by referring to the probability.

[0151] The static information of the power receiving surface (eg, size and / or shape) can also be determined by techniques different from those described above. For example, the processor 12 may read a code (e.g., a two-dimensional barcode) attached to the power receiving device 30 or a cover covering the power receiving device 30, and read information about the size of the power receiving surface stored in the code.

[0152] In the embodiment, an example has been shown in which an image of the power receiving device 30 captured by the camera 161 is referenced to measure the distance from the camera 161 to a target location. The camera 161 may be a stereo camera or a monocular camera. By using a monocular camera, the power transmitting device 10 can be realized at a smaller size and lower cost than when a stereo camera is used. An example of a technique for measuring the distance from the monocular camera to a target location by referencing an image of the power receiving device 30 captured by the monocular camera will be described below. As shown in FIG. 24, the monocular camera captures an image of a subject including a target portion OP. As shown in FIG. 25, the processor 12 extracts a region corresponding to the target portion OP by performing image processing on the image captured by the monocular camera. The processor 12 counts the number of pixels in the region corresponding to the target portion OP. Here, the number of pixels in the region corresponding to the target portion OP depends on the distance from the monocular camera to the target portion OP. Assuming that the number of pixels when distance = L is S1 and the number of pixels when distance = X is S2, then X = L × √(S1 / S2) holds. By previously determining the reference distance L and the reference number of pixels S1 as constants, the processor 12 can derive X as a function of S2. As an example, if L = 100 cm, S1 = 600 × 400 pixels, and S2 is counted as 300 × 200 pixels, then X = 200 cm according to the above formula. The reference distance L and the reference pixel number S1 may be included in the static information of the power receiving surface. That is, the reference distance L and the reference pixel number S1 may be determined by reading information stored in a code (e.g., a two-dimensional barcode) attached to the power receiving device 30 or a cover that covers the power receiving device 30, or the power receiving device 30 may transmit such information to the power transmitting device 10.

[0153] The location of the power receiving surface can also be determined by techniques different from those described above. As a first example, the power receiving device 30 may identify the position of the power transmitting surface relative to the power receiving surface by referring to the sensing result of, for example, an optical sensor (an example of the input device 36), and transmit information about the identified position to the power transmitting device 10. The power transmitting device 10 can identify the relative position of the power receiving surface with respect to the power transmitting surface by converting the position identified by the power receiving device 30 so that the position of the power transmitting surface becomes the origin. As a second example, the power receiving device 30 may be fixed by a support that is installed so that the relative position of the power receiving surface with respect to the power transmitting surface is a predetermined value. This allows the processor 12 to specify the position of the power receiving surface as the predetermined value without having to measure the relative position of the power receiving surface with respect to the power transmitting surface. The predetermined value can be stored in the storage device 11 before wireless power supply is started. As a third example, the power transmitting device 10 measures the absolute coordinates (e.g., latitude, longitude, and altitude) of the power transmitting surface using, for example, a Global Positioning System (GPS). Similarly, the power receiving device 30 measures the absolute coordinates of the power receiving surface using, for example, a GPS, and transmits information on the measured absolute coordinates to the power transmitting device 10. The power transmitting device 10 can identify the relative position of the power receiving surface with respect to the power transmitting surface by subtracting the absolute coordinates of the power transmitting surface from the absolute coordinates of the power receiving surface.

[0154] The orientation of the power receiving surface can also be determined by techniques different from those described above. Specifically, the processor 12 may identify the orientation of the power receiving surface by referring to the sensing result of the optical sensor. As an example, the processor 12 may identify the orientation of the power receiving surface by performing image processing on the image of the power receiving device 30 captured by the camera 161 (e.g., extracting vertices of the power receiving surface and matching the extracted vertices with the shape of the power receiving surface). As a second example, the power receiving device 30 may be fixed by a support that is installed so that the orientation of the power receiving surface relative to the power transmitting surface is a predetermined value. This allows the processor 12 to specify the orientation of the power receiving surface as the predetermined value without having to measure the orientation of the power receiving surface relative to the power transmitting surface. The predetermined value may be stored in the storage device 11 before wireless power supply begins.

[0155] In the embodiment, an example has been shown in which the control parameters are generated by referring to the position, size, shape, and orientation of the power receiving surface. However, the control parameters may be generated without referring to at least one of the shape and orientation. As a first example, the processor 12 may generate control parameters so that the power transmission beam emitted from the power transmitting unit 15 is focused into a spot that matches the size of the power receiving surface at the position of the power receiving surface. As a second example, the processor 12 may generate the control parameters so that the power transmission beam emitted from the power transmission unit 15 is focused at the position of the power receiving surface into a spot that matches the size and shape of the power receiving surface. As a third example, the processor 12 may generate the control parameters so that the power transmission beam emitted from the power transmission unit 15 is focused at the position of the power receiving surface into a spot that matches the size and attitude of the power receiving surface.

[0156] In the embodiment, an example has been described in which the power receiving device 30 transmits static information about the power receiving surface to the power transmitting device 10. However, the power receiving device 30 may transmit class information instead of or in addition to the static information. The class information indicates a power receiving class to which the power receiving capability of the power receiving unit 35 belongs. The power receiving class is a concept that categorizes the power receiving capabilities of the power receiving units 35 included in various power receiving devices 30. The power receiving capability includes, for example, at least one of the following: - Receiving surface size - Shape of the receiving surface - Power range that can be received by the power receiving unit 35 - Receivable frequencies of the power receiving unit 35 Types of polarization that can be received by the power receiving unit 35 The power transmitting device 10 has a database in which information about various power receiving classes (power receiving class information) is stored. The power transmitting device 10 can identify the power receiving capability of the power receiving unit 35 included in the power receiving device 30 by using the class information received from the power receiving device 30. It is also possible for the power transmitting device 10 to identify the power receiving class information of the power receiving device 30 without the power receiving device 30 transmitting the power receiving class information. For example, the processor 12 may read a code (e.g., a two-dimensional barcode) attached to the power receiving device 30 or a cover that covers the power receiving device 30, and thereby read the power receiving class information stored in the code.

[0157] In the embodiment, an example has been described in which the power transmission device 10 includes one power transmission unit 15. However, the power transmission device 10 may include multiple power transmission units 15 that can be controlled individually. Furthermore, the power transmission unit 15 and other components (e.g., a control unit) in the power transmission device 10 may be configured as separate devices that can communicate with each other. In other words, the power transmission device 10 does not need to include the power transmission unit 15. In this case, the power transmission unit 15 may be incorporated into a device that includes a communication interface for receiving control parameters from the power transmission device 10 and a processor (e.g., a microcomputer) for driving the power transmission unit 15 in accordance with the control parameters from the power transmission device 10. Similarly, the power receiving unit 35 and other components (for example, a control unit) in the power receiving device 30 may be configured as separate devices that can communicate with each other. In other words, the power receiving device 30 does not need to include the power receiving unit 35.

[0158] In the embodiments, an antenna is given as an example of a beam-emitting element. However, when a light wave is used as the electromagnetic wave for power supply, the beam-emitting element may be a light-emitting element such as a laser element or an LED chip.

[0159] Although the embodiments of the present invention have been described in detail above, the scope of the present invention is not limited to the above-described embodiments. Furthermore, the above-described embodiments can be improved or modified in various ways without departing from the spirit of the present invention. Furthermore, the above-described embodiments and modifications can be combined. [Explanation of symbols]

[0160] 1: Wireless power supply system 10: Power transmission equipment 11:Storage device 12: Processor 13: Input / output interface 14: Communication interface 15: Power transmission unit 16: Input device 17: Output device 30: Power receiving device 31:Storage device 32: Processor 33: Input / output interface 34: Communication interface 35: Power receiving unit 36: Input device 37: Output device 151: Antenna 161: Camera 162 :Light source 351: Antenna

Claims

1. The power supply device includes a control unit that controls a power transmission unit that performs wireless power transmission, and the control unit means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information about the power receiving surface; means for generating control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; means for causing the power transmitting unit to emit a power transmission beam in accordance with the control parameters; a means for monitoring whether a living body or an object has entered a no-entry area around the path of the power transmission beam by referring to an edge position in an image of the surroundings of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; Equipped with the means for generating the control parameter further references history information regarding the stoppage of radiation of the power transmission beam to generate the control parameter. Power transmission equipment.

2. the means for generating the control parameter references, among the history information, history information associated with user information corresponding to a user receiving the wireless power supply service from the power transmitting device, or history information associated with user information corresponding to another user similar to the user, and generates the control parameter. The power transmitting device according to claim 1 .

3. the means for generating the control parameter references, among the history information, history information associated with power receiving device information corresponding to a target power receiving device that is provided with a wireless power supply service by the power transmitting device, or history information associated with power receiving device information corresponding to another power receiving device similar to the target power receiving device, and generates the control parameter. The power transmitting device according to claim 1 or 2.

4. the means for generating the control parameter references, among the history information, history information associated with environmental information corresponding to an environment of wireless power feeding at the time of generation of the control parameter, or history information associated with environmental information corresponding to another environment similar to the environment, to generate the control parameter. The power transmitting device according to claim 1 .

5. the means for generating the control parameter refers to dynamic information about the power receiving surface and static information about the power receiving surface, and calculates, for each of a plurality of candidates that can be used as the control parameter, a normal received power that is the power received by the target power receiving device due to the emission of the power transmission beam when that candidate is used; refers to the dynamic information about the power receiving surface, the static information about the power receiving surface, and the history information, and predicts, for each of a plurality of candidates that can be used as the control parameter, a probability that the emission of the power transmission beam will be stopped when that candidate is used; and refers to the normal received power and the probability, and generates the control parameter so as to increase an expected value of the amount of power transmitted by the power transmission beam. The power transmitting device according to claim 1 .

6. The power supply device includes a control unit that controls a power transmission unit that performs wireless power transmission, and the control unit means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information about the power receiving surface; means for generating control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; means for causing the power transmitting unit to emit a power transmission beam in accordance with the control parameters; a means for monitoring whether a living body or an object has entered a no-entry area around the path of the power transmission beam by referring to an edge position in an image of the surroundings of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; a means for analyzing the movement of a living body or an object around the target power receiving device by referring to an image of the surroundings of the target power receiving device; Equipped with the means for generating the control parameter generates the control parameter by referring to an analysis result of the movement of the living body or object; the means for generating the control parameter generates the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when the index related to the amount of movement of the living body or object exceeds a threshold. Power transmission equipment.

7. The power supply device includes a control unit that controls a power transmission unit that performs wireless power transmission, and the control unit means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information about the power receiving surface; means for generating control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; means for causing the power transmitting unit to emit a power transmission beam in accordance with the control parameters; a means for monitoring whether a living body or an object has entered a no-entry area around the path of the power transmission beam by referring to an edge position in an image of the surroundings of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; a means for monitoring the intrusion of a living body or object into a security area defined around the no-entry area by referring to the position of the edge; Equipped with the means for generating the control parameter generates the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when entry of a living body or an object into the surveillance area is detected. Power transmission equipment.

8. The computer Identifying dynamic information regarding a power receiving surface corresponding to a power receiving unit included in a target power receiving device; identifying static information about the power receiving surface; generating control parameters related to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information related to the power receiving surface and static information related to the power receiving surface; causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; referring to an edge position in an image captured around the target power receiving device, and monitoring entry of a living body or object into a no-entry area occurring around the path of the power transmission beam; When an intrusion of a living body or an object into the no-entry area is detected, the radiation of the power transmission beam is stopped. Equipped with generating the control parameter includes generating the control parameter by further referring to historical information regarding the cessation of radiation of the power transmission beam; Power transmission control method.

9. The computer Identifying dynamic information regarding a power receiving surface corresponding to a power receiving unit included in a target power receiving device; identifying static information about the power receiving surface; generating control parameters related to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information related to the power receiving surface and static information related to the power receiving surface; causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; referring to an edge position in an image captured around the target power receiving device, and monitoring entry of a living body or object into a no-entry area occurring around the path of the power transmission beam; stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; analyzing the movement of a living body or an object around the target power receiving device by referring to an image of the surroundings of the target power receiving device; Equipped with generating the control parameter includes generating the control parameter with reference to an analysis result of the movement of the living body or object; generating the control parameter includes generating the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when an index related to the amount of movement of the living body or object exceeds a threshold value; Power transmission control method.

10. The computer Identifying dynamic information regarding a power receiving surface corresponding to a power receiving unit included in a target power receiving device; identifying static information about the power receiving surface; generating control parameters related to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information related to the power receiving surface and static information related to the power receiving surface; causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; referring to an edge position in an image captured around the target power receiving device, and monitoring entry of a living body or object into a no-entry area occurring around the path of the power transmission beam; stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; referring to the position of the edge, and monitoring the entry of a living body or object into a security area defined around the no-entry area; Equipped with generating the control parameter includes generating the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when entry of a living body or an object into the surveillance area is detected. Power transmission control method.

11. Computer, means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for determining static information about the power receiving surface; means for generating control parameters relating to the radiation direction and beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; a means for causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; a means for monitoring the intrusion of a living body or an object into a no-entry area occurring around the path of the power transmission beam by referring to an edge position in an image captured of the periphery of the target power receiving device; a means for stopping the radiation of the power transmission beam when the intrusion of a living body or an object into the no-entry area is detected; It functions as the means for generating the control parameter further references history information regarding the stoppage of radiation of the power transmission beam to generate the control parameter. Power transmission control program.

12. Computer, means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for determining static information about the power receiving surface; means for generating control parameters relating to the radiation direction and beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; a means for causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; a means for monitoring the intrusion of a living body or an object into a no-entry area occurring around the path of the power transmission beam by referring to an edge position in an image captured of the periphery of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; A means for analyzing the movement of a living body or an object around the target power receiving device by referring to an image of the surroundings of the target power receiving device. It functions as the means for generating the control parameter generates the control parameter by referring to an analysis result of the movement of the living body or object; the means for generating the control parameter generates the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when the index related to the amount of movement of the living body or object exceeds a threshold. Power transmission control program.

13. Computer, means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for determining static information about the power receiving surface; means for generating control parameters relating to the radiation direction and beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; a means for causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; a means for monitoring the intrusion of a living body or an object into a no-entry area occurring around the path of the power transmission beam by referring to an edge position in an image captured of the periphery of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; a means for monitoring the intrusion of a living body or object into a security area defined around the no-entry area by referring to the position of the edge; It functions as the means for generating the control parameter generates the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when entry of a living body or an object into the surveillance area is detected. Power transmission control program.

14. means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information about the power receiving surface; means for generating control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; a means for causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; a means for monitoring whether a living body or an object has entered a no-entry area around the path of the power transmission beam by referring to an edge position in an image of the surroundings of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; Equipped with the means for generating the control parameter further references history information regarding the stoppage of radiation of the power transmission beam to generate the control parameter. Power transmission control device.

15. means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information about the power receiving surface; means for generating control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; a means for causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; a means for monitoring whether a living body or an object has entered a no-entry area around the path of the power transmission beam by referring to an edge position in an image of the surroundings of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; a means for analyzing the movement of a living body or an object around the target power receiving device by referring to an image of the surroundings of the target power receiving device; Equipped with the means for generating the control parameter generates the control parameter by referring to an analysis result of the movement of the living body or object; the means for generating the control parameter generates the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when the index related to the amount of movement of the living body or object exceeds a threshold. Power transmission control device.

16. means for identifying dynamic information relating to a power receiving surface corresponding to a power receiving unit included in a target power receiving device; means for identifying static information about the power receiving surface; means for generating control parameters relating to a radiation direction and a beam shape of a power transmission beam for supplying power to the target power receiving device by referring to dynamic information relating to the power receiving surface and static information relating to the power receiving surface; a means for causing a power transmission device that performs wireless power transmission to emit a power transmission beam in accordance with the control parameters; a means for monitoring whether a living body or an object has entered a no-entry area around the path of the power transmission beam by referring to an edge position in an image of the surroundings of the target power receiving device; a means for stopping the radiation of the power transmission beam when entry of a living body or an object into the no-entry area is detected; a means for monitoring the intrusion of a living body or object into a security area defined around the no-entry area by referring to the position of the edge; Equipped with the means for generating the control parameter generates the control parameter by prioritizing avoidance of stopping the radiation of the power transmission beam when entry of a living body or an object into the surveillance area is detected. Power transmission control device.

17. The power transmission control device according to any one of claims 14 to 16, At least one power transmission device; A wireless power supply system comprising:

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