Charging device
The charging device employs a dipole antenna and rectifier circuit to efficiently store electric field energy from various sources, addressing the inefficiencies in existing technologies by optimizing energy harvesting and storage.
Patent Information
- Application Number
- JP2023539645
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-08-04
- Filing Date
- 2022-03-31
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2042-03-31
AI Technical Summary
Existing technologies struggle to efficiently store a wide range of electric field energy present in space, including electric fields near objects and those propagating through the air.
A charging device with an antenna unit having a dipole structure, a rectifier circuit, and a power storage unit that includes a charging control unit to manage the storage of electric field energy efficiently, utilizing a dipole antenna with separate conductors for maximum energy extraction and voltage control.
The device effectively stores and manages electric field energy over a wide range by using a dipole antenna structure and rectifier circuit, optimizing power storage and control to maximize energy harvesting.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present technology relates to a charging device applicable to energy harvesting. [Background technology]
[0002] Patent Document 1 describes a power supply circuit that uses an energy harvesting device as a power generation source. In this power supply circuit, the power generation source is connected to a power storage device via a switching element and a boost circuit. A charging device is also connected between the power generation source and the switching element. When the charging device is charged, the switching element is turned on, and the power storage device is charged. When the charging device is discharged, the switching element is turned off, and the charging path for the power storage device is interrupted. This makes it possible to store minute amounts of power from the energy harvesting device in the power storage device (see, for example, paragraphs
[0005] ,
[0009] , and
[0010] , and Figures 1 and 2 of the specification of Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-38941 Summary of the Invention [Problem to be solved by the invention]
[0004] In recent years, energy harvesting using electric field energy present in space has been investigated. The electric field present in space includes various electric fields, such as those distributed near objects, such as electrostatic charges, and those propagating through the air, such as radio waves. There is a demand for technology that can efficiently store such wide-ranging electric field energy.
[0005] In view of the above circumstances, an object of the present technology is to provide a charging device capable of efficiently storing a wide range of electric field energy. [Means for solving the problem]
[0006] In order to achieve the above object, a charging device according to an embodiment of the present technology includes an antenna unit, a rectifier circuit, a power storage unit, and a charging control unit. The antenna unit has a dipole structure including a first antenna conductor electrically coupled to a target object, such as a metal object or a human body, and a second antenna conductor that is a conductor separate from the first antenna conductor and not connected to the target object. That is, the antenna unit is an antenna with a dipole structure consisting of the first and second antenna conductors. Of these, the first antenna conductor is coupled to the metal object or the human body to form one antenna element of the dipole antenna. The rectifier circuit rectifies the output of the antenna unit. The power storage unit generates electric power based on the output of the rectifier circuit and charges an electric storage element using the electric power. The charge control unit controls the operation of the power storage unit according to the voltage level of the power.
[0007] This charging device is provided with an antenna unit having a dipole structure including first and second antenna conductors. The first antenna conductor is electrically coupled to a target object, such as a metal body or a human body, while the second antenna conductor is configured not to be connected to the target object. By using such an antenna unit, it is possible to extract electric field energy over a wide range. The output of the antenna unit is rectified by a rectifier circuit. Furthermore, the power generated from the output of the rectifier circuit is used to charge a storage element. The charging operation is controlled according to the voltage level of this power. This makes it possible to efficiently store electric field energy over a wide range.
[0008] The power storage unit may include a first selector switch disposed between the rectifier circuit and the power storage element, for switching ON / OFF a connection between the rectifier circuit and the power storage element. In the present disclosure, SW1 shown in FIG. 10 is one embodiment of the first selector switch.
[0009] The charging control unit may detect an output voltage of the rectifier circuit as a voltage level of the charging power, and switch the first changeover switch ON / OFF in accordance with the detection result.
[0010] The charging control unit may turn off the first changeover switch when the output voltage of the rectifier circuit exceeds a threshold voltage for the first changeover switch.
[0011] The first changeover switch may be either a MOSFET or a load switch.
[0012] The power storage unit may have a second selector switch that controls the supply of power to the power storage element. In the present disclosure, SW2 shown in Figures 14 and 19 is one embodiment of the second selector switch.
[0013] The power storage unit may include a storage capacitor that stores the output of the rectifier circuit and is connected to the second selector switch. In this case, the charge control unit may detect the voltage of the storage capacitor as the voltage level of the power and switch the second selector switch ON / OFF in accordance with the detection result.
[0014] The charge control unit may turn on the second changeover switch when the voltage of the storage capacitor exceeds a threshold voltage for the second changeover switch.
[0015] the charging control unit outputs a control signal to turn on the second selector switch; The power storage unit may include an adjustment capacitor that is charged by the control signal.
[0016] The second changeover switch may have a control terminal to which the control signal is input. In this case, the capacitance of the adjustment capacitor may be set so that the voltage state of the control terminal is equivalent to the voltage state when the control signal is input, until the voltage of the storage capacitor drops to a predetermined voltage.
[0017] The second changeover switch may be configured as a voltage adjusting element that adjusts the voltage of the power.
[0018] The voltage adjusting element may be a linear regulator that adjusts the voltage of the storage capacitor and applies the adjusted voltage to the storage element.
[0019] The voltage adjustment element may be a boost converter that boosts the voltage of the storage capacitor and applies the boosted voltage to the storage element.
[0020] The power storage unit may include a storage capacitor that stores the output of the rectifier circuit and is connected to the boost converter, and in this case, the capacity of the storage capacitor may be set to be able to store power three times or more the power consumed by the boost converter.
[0021] At least one of the voltage adjusting element and the charge control unit may be driven using the output of the rectifier circuit as a power source.
[0022] The power storage unit may include a first storage capacitor and a second storage capacitor, each storing an output of the rectifier circuit, a third selector switch that selects one of the first and second storage capacitors to connect it to the rectifier circuit, and a fourth selector switch that selects one of the first and second storage capacitors to connect it to the power storage element. In this case, the charge control unit may control the third and fourth selector switches so that the second storage capacitor is charged while the first storage capacitor supplies power to the power storage element. In the present disclosure, SW3 shown in FIG. 21 is an embodiment of the third changeover switch, and SW4 is an embodiment of the fourth changeover switch.
[0023] The charging control unit may control the third and fourth changeover switches so that the storage element and the first storage capacitor are connected and the rectifier circuit and the second storage capacitor are connected when the voltage of the first storage capacitor exceeds a threshold voltage, and may also control the third and fourth changeover switches so that the storage element and the second storage capacitor are connected and the rectifier circuit and the first storage capacitor are connected when the voltage of the first storage capacitor is less than the threshold voltage.
[0024] The charging control unit may output a control signal to control the third and fourth selector switches. In this case, the power storage unit may have a first adjustment capacitor that is charged by the control signal input to the third selector switch, and a second adjustment capacitor that is charged by the control signal input to the fourth selector switch.
[0025] The capacitances of the first and second adjustment capacitors may be set so that the third changeover switch is switched before the fourth changeover switch is switched.
[0026] The power storage unit may include a backflow prevention diode provided between the rectifier circuit and the power storage element to prevent a reverse current from flowing back from the power storage element.
[0027] The charging control unit may have an internal resistance of 2 MΩ or more. [Brief explanation of the drawings]
[0028] [Figure 1] 1 is a block diagram showing an example of a functional configuration of a charging device according to a first embodiment of the present technology. [Figure 2] 1 is a schematic diagram for explaining reception of power by a power receiver via a target object; [Figure 3] 1A and 1B are schematic diagrams showing an example of a planar configuration and a cross-sectional configuration of a charging device. [Figure 4]FIG. 2 is a schematic diagram illustrating an example of the configuration of a circuit board. [Figure 5] FIG. 10 is a schematic diagram showing another example of the configuration of the circuit board. [Figure 6] FIG. 2 is a circuit diagram illustrating an example of a rectifier circuit mounted on the charging device. [Figure 7] 5A and 5B are schematic diagrams for explaining the operation of the antenna unit. [Figure 8] FIG. 2 is a schematic diagram for explaining an example of use of the charging device. [Figure 9] 1 is a block diagram showing an example of the configuration of a charging device according to a first embodiment. [Figure 10] 1 is a circuit diagram showing an example of the configuration of a charging device according to a first embodiment. [Figure 11] FIG. 2 is a circuit diagram showing an example of the configuration of a charging control unit. [Figure 12] FIG. 10 is a circuit diagram showing another example of the configuration of the charging device. [Figure 13] FIG. 10 is a block diagram showing an example of the configuration of a charging device according to a second embodiment. [Figure 14] FIG. 10 is a circuit diagram showing an example of the configuration of an energy harvesting charging device according to a second embodiment. [Figure 15] 4 is a schematic graph showing changes over time in charging voltage and charging current in a CV system. [Figure 16] 1 is a graph showing the relationship between the charging voltage and the charging rate in the CV method. [Figure 17] 10 is a graph showing charging characteristics of an actual charging device. [Figure 18] FIG. 10 is a block diagram showing an example of the configuration of a charging device according to a third embodiment. [Figure 19] FIG. 10 is a circuit diagram showing an example of the configuration of a charging device according to a third embodiment. [Figure 20] FIG. 10 is a block diagram showing an example of the configuration of a charging device according to a fourth embodiment. [Figure 21] FIG. 10 is a circuit diagram showing an example of the configuration of a charging device according to a fourth embodiment. [Figure 22] FIG. 10 is a schematic diagram showing a connection example of a harvester device according to a fifth embodiment. [Figure 23]FIG. 10 is a circuit diagram showing an example of the configuration of a harvester device incorporating a leakage current countermeasure. [Figure 24] FIG. 1 is a schematic diagram showing a measurement circuit for measuring the relationship between the output of the harvester device and the ground resistance. [Figure 25] 10 is a table showing a measurement example of the relationship between the output of the harvester device and the ground resistance. [Figure 26] FIG. 10 is a circuit diagram showing another example of the configuration of a harvester device incorporating a leakage current countermeasure. [Figure 27] FIG. 10 is a schematic diagram showing a configuration example of a harvester device according to a sixth embodiment. [Figure 28] FIG. 13 is a schematic diagram showing a configuration example of equipment equipped with a harvester device according to a seventh embodiment. [Figure 29] 29 is a block diagram showing an example of the functional configuration of a device equipped with the harvester device shown in FIG. 28. FIG. DETAILED DESCRIPTION OF THE INVENTION
[0029] Hereinafter, embodiments of the present technology will be described with reference to the drawings.
[0030] First Embodiment [Charging device overview] 1 is a block diagram showing an example of a functional configuration of a charging device according to a first embodiment of the present technology. The charging device 100 is a device that extracts electric field energy present in space from a metal body, a human body, etc., and charges the energy as power. Hereinafter, the metal body or human body from which the charging device 100 extracts electric field energy will be referred to as a target body 1.
[0031] As shown in FIG. 1, the charging device 100 includes an antenna unit 22, a rectifier circuit 23, a power storage unit 24, a power storage element 25, a charging control unit 26, and a load 27. The antenna unit 22 functions as a receiving antenna for receiving power via the target object 1, which may be a metal object or a human body. For example, the antenna unit 22 receives, as power, electric field energy of radio waves or quasi-electrostatic fields in the space surrounding the target object 1. This will be described in detail later with reference to Figs. 7 and 8, etc. The rectifier circuit 23 is connected to the antenna unit 22 and rectifies the received AC power. In this embodiment, the power receiver 21 is configured by the antenna unit 22 and the rectifier circuit 23. The power receiver 21 is capable of extracting electric field energy present around the target object 1 as electric power. In other words, the power receiver 21 is capable of energy harvesting (environmental power generation) that harvests electric power from the surrounding environment. When the target object 1 is a human body, it is preferable that the antenna unit 22 and the rectifier circuit 23 are connected in series, which makes it possible to efficiently collect the relatively weak electric field energy received through the human body.
[0032] The power storage unit 24 is a circuit that charges the power storage element 25. The power storage unit 24 generates power based on the output of the rectifier circuit 23, and uses the generated power to charge the power storage element 25. The power generated by the power storage unit 24 may be, for example, the output of the rectifier circuit 23 itself, or may be power stored in a capacitor or the like. The power storage element 25 is charged using such power. Hereinafter, the power generated by the power storage unit 24 and used to charge the power storage element 25 may be referred to as charging power. The power storage element 25 is an element that stores the power rectified by the rectifier circuit (power received by the antenna unit 22), and supplies the power to the load 27 as needed. The charging control unit 26 detects the voltage level of the charging power generated by the power storage unit 24, and operates the power storage unit 24 according to the detection result. That is, the charging control unit 26 controls the operation of the power storage unit 24 according to the voltage level of the charging power. The load 27 is a circuit or element that is driven by the power of the storage element 25. For example, the load 27 may be a control unit such as a microcomputer, a communication unit, or various sensors.
[0033] FIG. 2 is a schematic diagram for explaining reception of power by the power receiver 21 via the target object 1. As shown in FIG. The antenna unit 22 of the power receiver 21 is provided with a first antenna conductor 31 and a second antenna conductor 32. The first antenna conductor 31 is a conductor that is electrically coupled to a target object 1, which may be a metal object or a human body. The second antenna conductor 32 is a conductor that is separate from the first antenna conductor 31 and is not connected to the target object 1. FIG. 2 schematically illustrates the antenna section 22 (power receiver 21) provided so that the first antenna conductor 31 is in contact with the surface of the target object 1.
[0034] The antenna section 22 is an antenna with a dipole structure having a first antenna conductor 31 and a second antenna conductor 32 . In the present disclosure, an antenna with a dipole structure is an antenna that uses two antenna elements (also called antenna elements) to transmit and receive an electric field.
[0035] Since an electric field is an alternating current wave, there are always places where the voltage is high and places where the voltage is low on a conductor on which the electric field acts, regardless of the frequency. Generally, the length of the conductor that makes up the antenna element is set to match the wavelength of the frequency to be received. In a dipole antenna, the length of each antenna element is typically adjusted to 1 / 4 of the wavelength of the frequency to be received. In this case, the high and low points of the induced voltage at the frequency to be received coincide, maximizing the power that can be obtained. In this structure, the sum of the lengths of each antenna element is 1 / 2 of the wavelength. This is what is known as a half-wavelength dipole antenna.
[0036] The structure of the antenna unit 22 utilizes the structure of the antenna described above. Specifically, the antenna unit 22 is composed of two antenna elements: a first antenna conductor 31 electrically coupled to the target object 1, and a second antenna conductor 32 which is a conductor separate from the first antenna conductor 31 and is not connected to the target object 1. The target object 1 to which the first antenna conductor 31 is coupled is a metal object or a human body that is insulated (floating) from the ground (GND). Therefore, the target object 1 functions as one of the antenna elements via the first antenna conductor 31.
[0037] As described above, there are always high and low voltage areas on a conductor on which an electric field acts, regardless of the frequency of the electric field. Therefore, when an electric field acts on two antenna elements (first antenna conductor 31 and second antenna conductor 32), current always flows through the two antenna elements. The current flowing through each antenna element is not necessarily the maximum current that can be extracted from the electric field, but in any case, it is possible to extract current (electric field energy) from each antenna element. The antenna section 22 utilizes this effect to receive the energy of the electric field.
[0038] Note that the configuration example of the charging device 100 in the present disclosure also includes a configuration in which the second antenna conductor 32 is connected to the ground (GND) using a cable, as will be described with reference to Fig. 8B. Such a configuration is generally sometimes called a monopole antenna. On the other hand, in this configuration, the antenna unit 22 is connected to the ground (GND) via the second antenna conductor 32, and there is no change in the configuration in which an electric field is received using two antenna elements, the first antenna conductor 31 and the second antenna conductor 32. In this sense, the configuration in which the second antenna conductor 32 is connected to the ground (GND) as described above can also be said to be a dipole structure in the present disclosure.
[0039] In the power receiver 21, alternating current (AC) power (electric field energy power) received by the antenna unit 22 (first antenna conductor 31 and second antenna conductor 32) is input to the rectifier circuit 23. Then, the rectifier circuit 23 outputs power rectified to direct current (DC). In this way, the power receiver 21 receives power corresponding to the electric field energy via the target object 1.
[0040] The target object 1 may be, for example, a dielectric object in which electric charge is induced by electric field energy. As described above, the target object 1 includes a metal object or a human body. A metal object is an industrial product (car, vending machine, refrigerator, microwave oven, metal rack, guardrail, mailbox, traffic light, etc.) that is found in our daily lives, or a metal object that is in a floating state above the ground (GND) in order to extract power. The metal object may be made of any metal, such as iron, aluminum, copper, or a metal alloy, and the type of material is not limited as long as it is metal.
[0041] [Configuration of charging device 100] Fig. 3 is a schematic diagram showing an example of a planar configuration and a cross-sectional configuration of charging device 100. Fig. 3A and Fig. 3B are schematic diagrams showing a plan view and a cross-sectional view of charging device 100. Fig. 3C is a schematic diagram showing a cross-sectional view of another example of the configuration of charging device 100. 3A and 3B, the charging device 100 has a conductor electrode 40, a dielectric portion 41, a conductive pin 42, a circuit board 43, a board ground 44, a circuit portion 45, and a case 46. In the charging device 100, the conductor electrode 40, the dielectric portion 41, and the circuit board 43 are arranged in layers in this order.
[0042] The conductor electrode 40 is a conductor that is electrically coupled to the target object 1 and is arranged in a position in the charging device 100 that allows it to come into contact with the target object 1. Here, the conductor electrode 40 is arranged so as to be exposed from the surface of the case 46. The conductor electrode 40 functions as the first antenna conductor 31 described with reference to FIG. 2.
[0043] The conductor electrode 40 may be, for example, an electrode made of a metal. Examples of metals that can be used for the conductor electrode 40 include gold, silver, aluminum, copper, iron, nickel, and alloys. For example, by using gold or silver, it is possible to form a low-resistance electrode. Furthermore, by using aluminum, copper, iron, nickel, or the like, it is possible to reduce the cost of the conductor electrode 40. Furthermore, by using these metals or alloys with other metals, it is possible to appropriately form lightweight electrodes, highly durable electrodes, and the like. Conductive resin or conductive rubber containing, for example, carbon or metal may be used as the conductor electrode 40. By using conductive resin, for example, electrodes of various shapes can be easily formed. Furthermore, by using conductive rubber, it is possible to form electrodes that are elastically deformable or have high adhesion. In addition, the material of the conductor electrode 40 is not limited, and the above-mentioned materials may be used alone, or the electrode may be formed by combining the materials.
[0044] In this embodiment, a thin plate-like (patch-like) conductor electrode 40 is used. That is, the conductor electrode 40 is a planar electrode. In this case, the conductor electrode 40 functions as an antenna that comes into contact with the target object 1. This makes it possible to make the area that comes into contact with or is capacitively coupled to the target object 1 (see FIG. 8, etc.) sufficiently large. The shape of the conductor electrode 40 is not limited, and may be a shape that matches the shape of the charging device 100 or the part of the subject 1 to which it is attached. For example, in addition to a flat electrode, a pin-shaped, hemispherical, or uneven electrode may be used as the conductor electrode 40.
[0045] The conductor electrode 40 may be configured so that the conductor constituting the electrode comes into contact with the target object 1, or the surface that comes into contact with the target object 1 may be resin-coated. The conductor electrode 40 may be coated with a resin that is water-resistant, such as waterproof and drip-proof, and weather-resistant to ultraviolet rays and the like. This prevents the conductor electrode 40 from corroding when the charging device 100 is used outdoors, in a pool, or the like.
[0046] The dielectric portion 41 is a plate-shaped dielectric provided between the conductor electrode 40 and the circuit board 43. The dielectric portion 41 is arranged, for example, so as to contact the surface of the conductor electrode 40 opposite to the surface that comes into contact with the subject 1. By providing the dielectric portion 41, for example, it is possible to improve the efficiency of power transmission from the conductor electrode 40 to the subject 1 and reduce the distance between the antennas. Alternatively, a certain space may be formed between the conductor electrode 40 and the circuit board 43 without providing the dielectric portion 41 . The conductive pin 42 is a pin-shaped wire that passes through the dielectric portion 41 and connects the conductor electrode 40 to the circuit board 43. One end of the conductive pin 42 is connected to the conductor electrode 40, and the other end is connected to an electrode (connection point 47a) of the circuit board 43.
[0047] Circuit board 43 is a board on which board ground 44 and circuit section 45 are provided. In the example shown in Fig. 3B, circuit board 43 has board ground 44, circuit section 45, and connection point 47a formed on the surface opposite to dielectric section 41. Connection point 47a is an electrode that connects circuit section 45 and conductor electrode 40. Conductive pin 42 penetrates circuit board 43 and is soldered to connection point 47a. In addition, the board ground 44, the circuit section 45, etc. may be formed on the surface of the circuit board 43 facing the dielectric section 41. Also, the board ground 44, the circuit section 45, etc. may be formed on both sides of the circuit board 43.
[0048] The board ground 44 is a conductor pattern (ground pattern) that serves as a ground on the circuit board 43. As the board ground 44, a copper foil ground pattern is typically used.
[0049] 3B, the board ground 44 functions as the second antenna conductor 32. That is, the second antenna conductor 32 is configured by a ground pattern provided on the circuit board 43 of the charging device 100. The antenna section 22 of the charging device 100 is configured by the conductor electrode 40 (first antenna conductor 31) and the board ground 44 (second antenna conductor 32).
[0050] The substrate ground 44, which becomes the second antenna conductor 32, is configured so as not to come into contact with the target object 1 and to be capacitively coupled to the earth ground. Alternatively, the substrate ground 44 may be connected to the earth ground. In other words, the substrate ground 44 may be configured to be electrically coupled to the earth ground. For example, if the target object 1 is a human body, the board ground 44 is configured to be capacitively coupled to the earth ground so that the user can freely move around while wearing the charging device 100. On the other hand, if the target object 1 is, for example, a stationary metal object, the charging device 100 may be immobile and the board ground 44 may be connected to the earth ground. The same is true for the other elements that form the second antenna conductor 32. In the following description, it is assumed that the element that becomes the second antenna conductor 32 is capacitively coupled to the earth ground.
[0051] The circuit section 45 is a unit including various circuits that are provided so as not to overlap with the substrate ground 44. In this embodiment, the rectifier circuit 23 is formed in the circuit section 45. In addition, the power storage section 24, the power storage element 25, the charge control section 26, the load 27, and the like shown in FIG. 1 may be provided in the circuit section 45. The power storage section 24 and the like may be provided separately from the circuit section 45.
[0052] The case 46 is a housing of the charging device 100. The case 46 accommodates the power receiver 21 configured with the antenna unit 22 and the rectifier circuit 23, as well as other boards, circuits, and the like. Furthermore, the portions of the case 46 that come into contact with the subject 1 other than the conductive electrodes 40 are made of insulating material. Therefore, even if the case 46 comes into contact with the subject 1, the main body of the case 46 does not conduct electricity to the subject 1 except for the portions (conductive electrodes 40) that are provided to come into contact with the subject 1. Materials such as insulating resins and rubbers are used as insulating materials. 3B, the case 46 is configured using an insulating material on the side and opposite surfaces of the case in addition to the surface that comes into contact with the target object 1. This allows the board ground 44 (second antenna conductor 32) to be unshielded, making it possible to achieve good capacitive coupling with the earth ground.
[0053] The charging device 100 shown in Fig. 3C has a different configuration of the case 46 from that shown in Fig. 3B. Here, case 46a and case 46b are used as the case 46. Case 46a is a housing that covers the side on which the conductor electrodes 40 are provided, and is made of an insulating material. Case 46b is a housing that covers the side opposite the side on which the conductor electrodes 40 are provided, and is made of a conductive material such as metal. The case 46a and the case 46b are connected via a connection part 48 using screws or fittings.
[0054] 3C, the side that does not come into contact with the target object 1 is configured using the conductive case 46b. In this case, the case 46b can be used as the second antenna conductor 32. For example, the board ground 44 provided on the circuit board 43 and the conductive case 46b are electrically connected using a metal wire 49 or the like. That is, the second antenna conductor 32 is formed of a conductive member (case 46b) provided in a part of the housing of the charging device 100 that does not come into contact with the target object 1. This makes it possible to realize the second antenna conductor 32 that is sufficiently capacitively coupled to the earth ground.
[0055] Furthermore, in a configuration in which the board ground 44 is used as the second antenna conductor 32 (see FIG. 4), if a conductive case 46b is used in a portion of the case 46 that does not contact the target object 1, the board ground 44 and the case 46b are connected via a metal wire 49. In this case, both the board ground 44 and the case 46b function as the second antenna conductor 32. Furthermore, if the case 46b is used as the ground, the area of the board ground 44 may be reduced.
[0056] Furthermore, in a configuration (see FIG. 5) in which a conductor pattern 52 (described later) is used as the second antenna conductor 32, if a conductive case 46b is used in a portion of the case 46 that does not contact the target object 1, the case 46b and the conductor pattern 52 are connected via a metal wire 49. In this case, the conductor pattern 52 and the case 46b both function as the second antenna conductor 32. Furthermore, when connecting to the case 46b, it is possible to reduce the area of the conductor pattern 52 and increase the area of the board ground 44.
[0057] Fig. 4 is a schematic diagram showing an example of the configuration of the circuit board 43. Fig. 4 shows a schematic diagram of an example of the planar configuration of the circuit board 43 described with reference to Fig. 3. The hatched area in the figure is the substrate ground 44 (second antenna conductor 32). The substrate ground 44 is configured so as not to overlap with a circuit section 45 in which the rectifier circuit 23 and the like are provided. The shape and arrangement of the substrate ground 44 are not limited and may be set appropriately depending on, for example, the configuration of the circuit section 45. In addition, the wiring connecting the conductor electrode 40 (first antenna conductor 31) and the circuit section 45 is configured so as not to overlap with the substrate ground 44.
[0058] 4, the conductor electrode 40 (first antenna conductor 31) and the substrate ground 44 (second antenna conductor 32) that constitute the antenna unit 22 are connected to the rectifier circuit 23 via two connection points 47a and 47b. The rectifier circuit 23 also has two output terminals 71a and 71b that output rectified power. An electrostatic protection component 51 is provided between the conductor electrode 40 and the board ground 44 as a countermeasure against static electricity. A varistor or the like is used as the electrostatic protection component 51. When a high voltage is applied between the conductor electrode 40 and the board ground 44, the elements on the circuit section 45 side can be protected.
[0059] Fig. 5 is a schematic diagram showing another configuration example of the circuit board 43. In the example shown in Fig. 5, the second antenna conductor 32 is formed by another conductor pattern 52 provided on the circuit board 43 separately from the board ground 44. Here, the board ground 44 and the conductor pattern 52 electrically isolated from the board ground 44 are formed so as not to overlap the circuit section 45 (rectifier circuit 23 and the like). The conductor pattern 52 is configured so as not to come into contact with the target object 1 and to be capacitively coupled to the earth ground.
[0060] In the circuit board 43 shown in FIG. 5, the conductor electrode 40 (first antenna conductor 31) and the conductor pattern 52 (second antenna conductor 32) that constitute the antenna section 22 are connected to the rectifier circuit 23 via two connection points 47a and 47b. 4, an electrostatic protection component 51 such as a varistor is provided between the conductor electrode 40 and the board ground 44 as a countermeasure against static electricity.
[0061] FIG. 6 is a circuit diagram showing an example of the rectifier circuit 23 mounted on the charging device 100. As shown in FIG. In the charging device 100, for example, a voltage of several volts is generated between the conductor electrode 40 and the substrate ground 44, but the current that can be extracted is considered to be relatively small (see FIGS. 15, 16, etc.). When rectifying such a signal, it is important to sufficiently suppress leakage current, etc.
[0062] As shown in FIG. 6, the rectifier circuit 23 is configured as a full-wave rectifier circuit. The rectifier circuit 23 has four diodes 68a to 68d, two Zener diodes 69a and 69b, a backflow prevention diode 70, and output terminals 71a and 71b. Diodes 68a and 68b are connected in series in the forward direction, with diode 68a at the head. A connection point 47a is provided between diodes 68a and 68b. Diodes 68c and 68d are connected in series in the forward direction, with diode 68c at the head. The cathodes of the diode 68a, the diode 68c, the Zener diode 69a, and the Zener diode 69b are connected to the anode of the backflow prevention diode 70. The cathode of the backflow prevention diode 70 is connected to the output terminal 71a. The anodes of the diode 68b, the diode 68d, the Zener diode 69a, and the Zener diode 69b are connected to the output terminal 71b.
[0063] The conductor electrode 40 is connected to a connection point 47a between the diodes 68a and 68b, and the substrate ground 44 is connected to a connection point 47b between the diodes 68c and 68d. For example, AC power received by the antenna unit 22 (conductor electrode 40 and substrate ground 44) is full-wave rectified by four diodes 68a to 68d and output as DC power from output terminals 71a and 71b. As such, the rectifier circuit 23 shown in Fig. 6 is configured using the minimum number of diodes 68a to 68d required for full-wave rectification. This suppresses unnecessary leakage current and makes it possible to sufficiently improve the power receiving efficiency.
[0064] The Zener diode 69a is an element for dissipating static electricity and the like that occurs, for example, between the conductor electrode 40 and the substrate ground 44. For example, when a high voltage such as static electricity occurs, the Zener diode 69a functions as an electrostatic protection component that dissipates the static electricity. Zener diode 69b is an element for protecting a downstream IC circuit (such as power storage unit 24) connected to output terminals 71a and 71b. For example, when the voltage between conductor electrode 40 and substrate ground 44 becomes 6.5 V or higher, Zener diode 69b functions as a low-resistance conductor. This makes it possible to prevent damage to downstream circuits. The backflow prevention diode 70 is a diode that prevents reverse current flow. By providing the backflow prevention diode 70, it is possible to suppress reverse current when the voltage at the antenna unit drops, and to ensure stable operation of the subsequent circuit.
[0065] The configuration of the rectifier circuit 23 is not limited. For example, a voltage doubler rectifier circuit or a voltage quadruple rectifier circuit that multiplies the voltage using a capacitor, or a rectifier circuit incorporating a Cockcroft-Walton circuit may be used. Alternatively, for example, a half-wave rectifier circuit may be used. Alternatively, the rectifier circuit 23 may be configured as appropriate depending on the power reception characteristics of the antenna unit 22, the characteristics of the elements and circuits used as the load 27, and the like.
[0066] [Antenna operation] Fig. 7 is a schematic diagram for explaining the operation of the antenna section 22. Fig. 8 is a schematic diagram for explaining an example of how the charging device 100 is used. Fig. 7 shows a schematic model of antenna unit 22 of charging device 100 used in combination with target object 1. Fig. 8A and Fig. 8B show a schematic model of charging device 100a worn on human body 2 and charging device 100b fixed to a steel rack, which is a metal body 3, respectively. Here, the operation of the antenna section 22 will be described with reference to FIGS.
[0067] Generally, various types of electric field energy exist in the environment in which humans live, and these electric field energies can be classified into low-frequency components and high-frequency components. For example, the leakage electric field (50Hz / 60Hz) from a home AC power supply, noise near a personal computer, and the voltage generated when a person walks (see Figure 8A) are electric field energy with low frequency components and are called quasi-electrostatic fields (near fields).On the other hand, radio broadcasts (AM / FM), television broadcasts, and mobile phone communication radio waves are electric field energy with high frequency components and are called radio waves (far fields).
[0068] 8A, charging device 100 is attached to the arm of human body 2. Also, human body 2 is wearing shoes or the like and is in a state of being floating above earth ground 4. In this case, various electric field energies act on human body 2, such as radio waves propagating around human body 2 and quasi-electrostatic fields generated by walking, and electric power is induced in human body 2.
[0069] In the example shown in FIG. 8B, charging device 100 is attached to the legs of a steel rack, which is metal body 3. The steel rack is placed on carpet 66 and is floating above earth ground 4. In this case, power is induced in metal body 3 by various electric field energies such as radio waves and power supply noise. In this case, board ground 44, which serves as second antenna conductor 32 on the side not in contact with metal body 3 in order to receive more power, is connected to the earth line (earth ground 4) of the indoor power supply using a cable with a coating or the like.
[0070] The diagram shown in Fig. 7 is a diagram that schematically illustrates the state of the antenna unit 22 of the charging device 100 in the scenes shown in Fig. 8A and Fig. 8B. As shown in Fig. 7, the first antenna conductor 31 (conductor electrode 40) of the antenna unit 22 and the target object 1 are, for example, electrically capacitively coupled, and the target object 1 as seen from the charging device 100 is an ungrounded antenna element.
[0071] 8A, the second antenna conductor 32 (substrate ground 44) forms a pseudo ground by capacitively coupling with the earth ground 4. In the example shown in Fig. 8B, the second antenna conductor 32 (substrate ground 44) has the same potential as the earth ground 4. As a result, the second antenna conductor 32 functions as a ground for the target object 1, such as the human body 2 or the metal object 3, which serves as the antenna element.
[0072] With this configuration, the antenna unit 22 can take in both electric field energy from quasi-electrostatic fields such as noise, which is leakage current, and radio waves such as broadcast waves, using the human body 2 or metal body 3 as an antenna element. Furthermore, the antenna unit 22 receives power that is a combination of the energy of the quasi-electrostatic field and the radio wave. Figure 7 shows a schematic diagram of the waveform of the power received via the target object 1 (human body 2 or metal object 3). The power waveform contains a wide range of frequency components.
[0073] The antenna unit 22 configured as described above can receive quasi-electrostatic field energy at a low frequency, such as 50 Hz. The reason why the antenna unit 22 resonates at such a low frequency is thought to be that, for example, if the target object 1 is a human body 2, iron contained in the blood inside the human body 2 functions as an antenna. Also, if the target object 1 is a metal body 3, a frame or the like included in its structure is thought to function as an antenna. This action allows the antenna unit 22 to capture electric field energy over a very wide band. Furthermore, when only high-frequency radio wave energy is to be taken in, the second antenna conductor 32 does not necessarily have to be capacitively coupled to the ground.
[0074] [Configuration of charging device 100] 9 is a block diagram showing an example of the configuration of the charging device 100 according to the first embodiment. As described above, the charging device 100 includes the antenna unit 22, the rectifier circuit 23, the power storage unit 24, the power storage element 25, the charge control unit 26, and the load 27.
[0075] The antenna unit 22 receives power via a target object 1 including a metal object or a human body. The rectifier circuit 23 is connected to the antenna unit 22 and rectifies the received AC power. A first changeover switch SW1 is provided in the power storage unit 24. The first changeover switch SW1 switches the connection between the rectifier circuit 23 and the power storage element 25 between ON and OFF. The power storage element 25 is charged by the power supplied via the first selector switch SW1, and supplies power to the load 27 as required. The charging control unit 26 operates the first changeover switch SW1 in accordance with the voltage level of the output of the rectifier circuit 23 (power for charging).
[0076] Fig. 10 is a circuit diagram showing an example of the configuration of the charging device 100 according to the first embodiment. Fig. 10 shows a specific circuit configuration of the power storage unit 24, which is included in the configuration of the charging device 100. Note that Fig. 10 does not show the load 27.
[0077] 10 is illustrated as an AC signal source including a first antenna conductor 31 and a second antenna conductor 32. As described above, the first antenna conductor 31 is a conductor electrode 40 electrically coupled to the target object 1. The second antenna conductor 32 is a substrate ground 44 that is not connected to the target object 1.
[0078] The rectifier circuit 23 is connected to the first antenna conductor 31 (conductor electrode 40) and the second antenna conductor 32 (substrate ground 44), and rectifies AC power output from the antenna unit 22 to output DC power from output terminals 71a and 71b. Here, the output terminals 71a and 71b serve as the positive and negative electrodes (GND electrodes) of the rectifier circuit 23, respectively (see FIG. 6).
[0079] The power storage unit 24 is an element that charges the power storage element 25. In this embodiment, in order to charge the storage element 25, the output of the rectifier circuit 23 is input to the storage element 25. That is, the output power of the rectifier circuit 23 is used as it is as the charging power for charging the storage element 25.
[0080] The power storage unit 24 includes a reverse current prevention diode 80 and a first selector switch SW1. The first selector switch SW1 includes an input terminal 5a, an output terminal 5b, and a control terminal 5c. In FIG. 10, the first selector switch SW1 is referred to as SW1. 10, the anode of the blocking diode 80 is connected to the output terminal 71a of the rectifier circuit 23, and the cathode is connected to the input terminal 5a of the first selector switch SW1. The output terminal 5b of the first selector switch SW1 is connected to the positive electrode 28a of the energy storage element 25. The negative electrode 28b of the energy storage element 25 is connected to the output terminal 71b of the rectifier circuit 23.
[0081] In the following, the path connecting the output terminal 71a of the rectifier circuit 23 and the positive electrode 28a of the storage element 25 may be referred to as the positive charging line 35a, and the path connecting the output terminal 71b of the rectifier circuit 23 and the negative electrode 28b of the storage element 25 may be referred to as the negative charging line 35b. The power storage unit 24 is configured as a circuit in which a backflow prevention diode 80 and a first selector switch SW1 are inserted in series in this order from the rectifier circuit 23 side on the positive charging line 35a.
[0082] The backflow prevention diode 80 is provided between the rectifier circuit 23 and the energy storage element 25, and prevents a reverse flow of current from the energy storage element 25. The position where the backflow prevention diode 80 is provided may be set arbitrarily as long as it is between the output terminal 71a of the rectifier circuit 23 and the positive electrode 28a of the energy storage element 25. A plurality of backflow prevention diodes 80 may be used, and for example, an additional backflow prevention diode 80 may be provided between the energy storage element 225 and the first selector switch SW1. The blocking diode 80 is, for example, one whose reverse leakage current is sufficiently smaller than the current output from the rectifier circuit 23. Besides this, the specific configuration of the blocking diode 80 is not limited.
[0083] The first selector switch SW1 is a switch element that switches the connection between the input terminal 5a and the output terminal 5b between on and off in response to a control signal input to the control terminal 5c. This makes it possible to connect or disconnect the path (positive charging line 35a) between the rectifier circuit 23 and the power storage element 25. In this way, the first selector switch SW1 is disposed between the rectifier circuit 23 and the power storage element 25, and switches the connection between the rectifier circuit 23 and the power storage element 25 between on and off.
[0084] The first switch SW1 may be, for example, a P-type MOSFET (Metal-Oxide-Semiconductor Field Effect Transistor). In this case, the voltage level of the control signal for turning the switch ON can be suppressed, thereby reducing power consumption. Alternatively, a load switch or the like may be used as the first switch SW1. This allows reliable ON / OFF control of the positive charging line 35a. Here, when the control signal is at a low level, the first changeover switch SW1 is turned on, and when the control signal is at a high level, the first changeover switch SW1 is turned off.
[0085] The power storage element 25 is an element that stores the power output from the power storage unit 24. A secondary battery is typically used as the power storage element 25. For example, a lithium ion battery, a nickel-metal hydride battery, a nickel-cadmium battery, or the like can be used. Note that a capacitor or the like may also be used as the power storage element 25.
[0086] In the following, it is assumed that a lithium ion battery is used as power storage element 25. The characteristics of this battery are that the voltage during discharge (the voltage when the charge rate is 0%) is 1.5V, the voltage when fully charged (the voltage when the charge rate is 100%) is 2.7V, and the output voltage (nominal voltage) is 2.3V.
[0087] For example, charging begins when the voltage applied to storage element 25 is equal to or higher than the voltage during discharging. On the other hand, when storage element 25 is fully charged, overcharging occurs when the voltage applied to storage element 25 is equal to or higher than the allowable voltage (2.7 V in this case). The characteristics of the storage element 25 are not limited to the above example, and any storage element 25 having characteristics that allow charging using the charging device 100 may be used.
[0088] Charging control unit 26 is provided with a detection terminal 10 connected to output terminal 71a on the positive output side of rectifier circuit 23, a GND terminal 13 connected to output terminal 71b on the negative output side (GND side) of rectifier circuit 23, and an output terminal 11 connected to control terminal 5c of first selector switch SW1. Charging control unit 26 detects the voltage level of charging power induced between detection terminal 10 and GND terminal 13, and outputs a control signal according to the result from output terminal 11 to first selector switch SW1. In this embodiment, the charge control unit 26 detects the output voltage of the rectifier circuit 23 as the voltage level of the charging power, and switches the first selector switch SW1 ON / OFF according to the detection result. Specifically, the output voltage of the rectifier circuit 23 is subjected to a threshold determination, and a control signal (a binary signal of low level and high level) that switches the first selector switch SW1 ON / OFF is output according to the result.
[0089] FIG. 11 is a circuit diagram showing an example of the configuration of the charging control unit 26. As shown in FIG. The charging control unit 26 has a detection terminal 10 (SENSE), an output terminal 11 (VOUT), a power supply terminal 12 (VDD (Vin)), a GND terminal 13 (GND), and an adjustment terminal 14. The charging control unit 26 also includes voltage detection resistors R1 and R2, a reference voltage source 15 (Vref), a voltage comparator 16, a delay circuit 17, an N-type transistor 18, a pull-up resistor 19, and a delay capacitor CD. The charging control section 26 functions as a voltage detector that detects the voltage at the detection terminal 10 and outputs a control signal from the output terminal 11 in accordance with the detection result.
[0090] The detection terminal 10 is connected to the voltage line to be monitored. In this embodiment, the detection terminal 10 is connected between the output terminal 71a of the rectifier circuit 23 and the anode of the backflow prevention diode 80, as shown in FIG. The output terminal 11 is a terminal that outputs a control signal. As shown in Fig. 10, in this embodiment, the output terminal 11 is connected to the control terminal 5c of the first changeover switch SW1. The power supply terminal 12 is a terminal connected to the power supply of the charging control unit 26. In this embodiment, the power supply terminal 12, like the detection terminal 10, is connected between the output terminal 71a of the rectifier circuit 23 and the anode of the backflow prevention diode 80. The power supply terminal 12 can also serve as the detection terminal 10. In this way, charging control unit 26 is driven using the output of rectifier circuit 23 as a power source. Therefore, driving charging control unit 26 does not consume the power of storage element 25. This allows for efficient storage of power without reducing the power of storage element 25. The GND terminal 13 is connected to the negative charge line 35b (GND line). The adjustment terminal 14 is connected to the negative charge line 35b (GND line) via a delay capacitor CD.
[0091] The voltage detection resistors R1 and R2 are connected in series in this order between the detection terminal 10 and the GND terminal 13. The negative input of a voltage comparator 16 is also connected between R1 and R2. The reference voltage source 15 is provided between the positive input of the voltage comparator 16 and the GND terminal 13, and outputs a predetermined reference voltage. The voltage comparator 16 outputs the power supply voltage level (High level) when the voltage of the positive input is greater than the voltage of the negative input, and outputs the GND level (Low level) when the voltage of the positive input is less than the voltage of the negative input. In this way, charging control unit 26 is an element that detects (monitors) the voltage level using voltage comparator 16. Furthermore, the internal resistance of charging control unit 26, i.e., the resistance of the detection system including voltage comparator 16, is set to 2 MΩ or more. More preferably, the internal resistance of charging control unit 26 is set to 10 MΩ or more. This makes it possible to sufficiently suppress the power consumed during voltage detection, and to sufficiently reduce the impact on power storage.
[0092] Delay circuit 17 is connected between the output of voltage comparator 16 and the gate of N-type transistor 18. This circuit maintains the signal level output from voltage comparator 16 for a certain period of time, i.e., delays the switching of the level. This makes it possible to delay the switching of the level of a control signal, for example. In addition, delay capacitor CD is connected to delay circuit 17 to adjust the delay time. The source of the N-type transistor 18 is connected to the GND terminal 13 , and the drain is connected to the output terminal 11 . The pull-up resistor 19 is connected between the output terminal 11 and the power supply voltage (the line to which the detection terminal 10 and the power supply terminal 12 are connected).
[0093] A threshold voltage V1 for controlling the first selector switch SW1 is set in the charging control unit 26. V1 can be appropriately adjusted, for example, by setting the reference voltage source 15 or the voltage detection resistors R1 and R2. Hereinafter, the voltage at the detection terminal 10 will be referred to as a detection voltage Vs. When the detected voltage Vs is less than the threshold voltage V1 (V1>Vs), the control signal of the charging control unit 26 becomes low level, and when the detected voltage Vs is equal to or greater than the threshold voltage V1 (V1≦Vs), the control signal becomes high level.
[0094] [Operation of charging device 100] The operation of the charging device 100 according to this embodiment will be described with reference to FIG. In this embodiment, when the detection voltage Vs detected by the charging control unit 26 exceeds the threshold voltage V1, the charging control unit 26 outputs a control signal (here, a High-level signal) that turns off the first selector switch SW1. That is, when the output voltage of the rectifier circuit 23 exceeds the threshold voltage V1 for the first selector switch SW1, the charging control unit 26 turns off the first selector switch SW1. In this embodiment, the threshold voltage V1 for the first changeover switch SW1 is set to the voltage (2.7V) when the power storage element 25 is fully charged.
[0095] First, consider the state where first selector switch SW1 is ON. In this case, output terminal 71a of rectifier circuit 23 is directly connected to positive electrode 28a of energy storage element 25, and therefore the voltage of output terminal 71a is pulled by the voltage of energy storage element 25 and becomes an equivalent voltage. In this way, when first selector switch SW1 is ON, it can be said that detection voltage Vs detected by detection terminal 10 becomes the voltage of energy storage element 25.
[0096] For example, when charging of storage element 25 is not completed, the voltage of storage element 25 (detection voltage Vs) is equal to or lower than the voltage when storage element 25 is fully charged. In this case, first selector switch SW1 is maintained in the ON state (control signal is at a low level), and storage element 25 is charged with the output of rectifier circuit 23.
[0097] Furthermore, as charging of the storage element 25 progresses, the voltage (detection voltage Vs) of the storage element 25 increases. When the detection voltage Vs becomes equal to or higher than the threshold voltage V1, the control signal becomes a high-level signal, and the first changeover switch SW1 is switched OFF. As described above, threshold voltage V1 is the voltage when the battery is fully charged, and therefore, it can be said that charging of storage element 25 is stopped when the battery is fully charged.
[0098] When the first selector switch SW1 is in the OFF state, the output voltage of the rectifier circuit 23 is monitored by the charge control unit 26. The output voltage of the rectifier circuit 23 increases or decreases depending on the electric field energy, and may become lower than the threshold voltage V1, for example. In this case, the first selector switch SW1 is switched ON again, but if the storage element 25 remains fully charged, the first selector switch SW1 is immediately switched OFF.
[0099] Furthermore, when the power of the storage element 25 is consumed and the charge rate of the storage element 25 drops, if the first changeover switch SW1 is switched ON again, charging will resume. When charging of the storage element 25 starts, it is conceivable that the voltage induced by the rectifier circuit 23 is higher than the threshold voltage V1 (2.7 V in this case) set in the first selector switch. In this case, if the charge control unit 26 and the first selector switch SW1 are operated immediately after charging starts, the first selector switch SW1 will return to the OFF state, and the storage element 25 will not be charged. For this reason, the first selector switch SW1 is switched after observing the voltage level for a certain period of time. For example, the charge control unit 26 maintains the ON state for at least a certain period of time after turning the first selector switch ON. The period of time for which the ON state is maintained is appropriately set, for example, using the delay circuit 17 and delay capacitor CD shown in FIG. 11. This prevents the charging from stopping immediately after the charging starts, and allows the storage element 25 to be charged appropriately.
[0100] 10, the detection terminal 10 (SENSE) of the charging control unit 26 and the power supply terminal 12 (VDD (Vin)) are the same. It is also possible to configure the detection terminal 10 and the power supply terminal 12 separately and independently. For example, power supply terminal 12 may be connected to output terminal 71a of rectifier circuit 23, and detection terminal 10 may be connected to an electrode (e.g., output terminal 5b) that passes through first selector switch SW1 and connects to positive electrode 28a of storage element 25. In this case, it is possible to detect the voltage level of storage element 25 regardless of the ON / OFF state of first selector switch SW1. This makes it possible to properly switch charging ON / OFF even in cases where, for example, a time constant related to switching of operation is not set in charge control unit 26.
[0101] In this way, in the charging device 100, the threshold voltage V1 of the charging control unit 26 is set to the voltage of the storage element 25 when it is fully charged. Therefore, when the detected voltage Vs reaches the voltage of the storage element 25 when it is fully charged, a signal to turn off the first selector switch SW1 is sent, and charging can be stopped. This makes it possible to prevent the storage element 25 from becoming overcharged, and suppresses deterioration of the storage element 25. Therefore, it is possible to maintain the storage performance of the storage element 25 for a long period of time, and as a result, it becomes possible to efficiently store a wide range of electric field energy extracted via the antenna unit 22.
[0102] As described above, the charging device 100 according to this embodiment is provided with an antenna unit 22 including first and second antenna conductors 31 and 32. The first antenna conductor 31 is electrically coupled to the target object 1, which may be a metal object 3 or a human body 2, while the second antenna conductor 32 is configured not to be connected to the target object. By using such an antenna unit 22, it becomes possible to extract electric field energy over a wide range. The output of the antenna unit 22 is rectified by the rectifier circuit 23. Furthermore, charging power generated from the output of the rectifier circuit 23 is used to charge the storage element 25. The charging operation is controlled according to the voltage level of this charging power. This makes it possible to efficiently store electric field energy over a wide range.
[0103] As described above, the antenna unit 22 (power receiver 21) according to this embodiment has a dipole antenna structure that captures electric field energy, and functions as an electric field-type energy harvester by electrically coupling the first antenna conductor 31 to the target object 1 (a human body or a metal object such as a refrigerator or a car). When power is generated with this configuration, the voltage of the output signal is relatively high, but the current is low (see, for example, FIGS. 15 and 16).
[0104] For example, although the voltage induced via the antenna section 22 varies depending on the size of the antenna, a voltage of about 5 V can be obtained. On the other hand, the amount of current is, for example, about 1 μA, and the power is about 5 μW. As described above, the current that can be extracted using the power receiver 21 is relatively small, so it is important to store the current without any loss.
[0105] 10, a first selector switch SW1 is provided between the storage element 25 and the rectifier circuit 23. The first selector switch SW1 is turned on to continue charging by the rectifier circuit 23 until the storage element 25 is fully charged, and once the storage element 25 is fully charged, the first selector switch SW1 is turned off to stop charging. This prevents the storage element 25 from being overcharged, and makes it possible to maintain a high level of storage performance of the storage element 25. This makes it possible to maintain an environment for a long period of time in which even a minute current can be reliably stored.
[0106] Furthermore, damage to the storage element 25 and unstable operation can be avoided, and the reliability and robustness of the device can be improved. For example, it is possible to realize sensors, communication devices, etc. that can continue to operate without power supply by utilizing energy harvesting. By applying this technology to such devices, it is possible to sufficiently maintain the performance of the storage element 25 that serves as the battery for the devices, and it is possible to reduce the maintenance costs of the devices.
[0107] In the charging device 100 described above, the charging control unit 26 and the first selector switch SW1 are used to control the charging of the power storage element 25 using the antenna unit 22 and the rectifier circuit 23. However, the present invention is not limited to this, and it is also possible to configure a charging device that does not include the charging control unit 26 and the first selector switch SW1.
[0108] FIG. 12 is a circuit diagram showing another example of the configuration of the charging device. In this charging device 110, output terminal 71a of rectifier circuit 23 is connected to positive electrode 28a of power storage element 25 via backflow prevention diode 80. Output terminal 71b of rectifier circuit 23 is connected to negative electrode 28b of power storage element 25. Therefore, the configuration of charging device 110 is the same as that of charging device 100 shown in FIG. 10 except that first selector switch SW1 and charging control unit 26 are removed.
[0109] For example, depending on the voltage induced in antenna unit 22 (the output voltage of rectifier circuit 23), current may be consumed by the internal resistance of power storage element 25, and the voltage applied from antenna unit 22 to power storage element 25 may not reach the fully charged voltage of power storage element 25. In such a case, a voltage that would overcharge power storage element 25 is not applied, and therefore, like charging device 110, a configuration without first selector switch SW1 and charging control unit 26 may be used. The charging device 110 does not include the first selector switch SW1 and the charging control unit 26, and can use the power generated by the antenna unit 22 directly to charge the storage element 25. This makes it possible to charge the storage element 25 efficiently without unnecessarily consuming a minute current.
[0110] <Second embodiment> A charging device according to a second embodiment of the present technology will be described. In the following description, the description of the same configurations and operations as those of the charging device 100 described in the above embodiment will be omitted or simplified.
[0111] [Configuration of charging device 200] Fig. 13 is a block diagram showing an example of the configuration of a charging device according to embodiment 2. As shown in Fig. 13, the charging device 200 includes an antenna unit 222, a rectifier circuit 223, a power storage unit 224, a power storage element 225, a charging control unit 226, and a load 227. The charging device 200 differs from the above-described embodiment mainly in the configuration of the power storage unit 224. The antenna unit 222, the rectifier circuit 223, the power storage element 225, the charge control unit 226, and the load 227 are configured in the same manner as the antenna unit 22, the rectifier circuit 23, the power storage element 25, the charge control unit 26, and the load 27 of the charging device 100 described with reference to Figs. 9 and 10 .
[0112] The power storage unit 224 is provided with a storage capacitor 282 and a linear regulator 281. The storage capacitor 282 is charged by the output of the rectifier circuit 223. The linear regulator 281 adjusts the power stored in the storage capacitor 282 to an appropriate voltage and charges the storage element 225. In this embodiment, the linear regulator 281 also functions as a second changeover switch SW2 that controls the supply of charging power to the power storage element 225. Specifically, the supply of power to the power storage element 225 is controlled by switching the operation of the linear regulator 281 between ON and OFF. The charging control section 226 operates the linear regulator 281 (second changeover switch SW2) in accordance with the voltage level of the storage capacitor 282.
[0113] Fig. 14 is a circuit diagram showing an example of the configuration of a charging device 200 according to the second embodiment. Fig. 14 shows a specific circuit configuration of the power storage unit 224, which is part of the configuration of the charging device 200. Note that Fig. 14 does not show the load 227.
[0114] 14, the power storage unit 224 has a backflow prevention diode 280, a linear regulator 281, a storage capacitor 282, and an adjustment capacitor 283. The linear regulator 281 also has an input terminal 6a, an output terminal 6b, a control terminal 6c, and a GND terminal 6d. In this embodiment, the power storage unit 224 stores the output of the rectifier circuit 223 in the storage capacitor 282 to generate charging power for charging the power storage element 225. That is, the power of the storage capacitor 282 is used as charging power.
[0115] 14, the anode of the blocking diode 280 is connected to the output terminal 71a of the rectifier circuit 223, and the cathode is connected to the input terminal 6a of the linear regulator 281. The output terminal 6b of the linear regulator 281 is connected to the positive electrode 28a of the storage element 225, and the GND terminal 6d is connected to the negative charge line 35b (GND line). In addition, the negative electrode 28b of the storage element 225 is connected to the output terminal 71b of the rectifier circuit 223.
[0116] The storage capacitor 282 has one terminal connected to the positive charging line 35a between the backflow prevention diode 280 and the linear regulator 281 (input terminal 6a), and the other terminal connected to the negative charging line 35b. The tuning capacitor 283 is connected between the control terminal 6c of the linear regulator 281 and the negative charge line 35b. The detection terminal 10 (power supply terminal 12) of the charging control unit 226 is connected between the output terminal 71a of the rectifier circuit 223 and the anode of the backflow prevention diode 280, the GND terminal 13 is connected to the negative charging line 35b, and the output terminal 11 is connected to the control terminal 6c of the linear regulator 281.
[0117] The backflow prevention diode 280 is provided between the rectifier circuit 223 and the power storage element 225, and prevents a reverse current from flowing back from the power storage element 225. The position where the backflow prevention diode 280 is provided may be set arbitrarily as long as it is between the output terminal 71a of the rectifier circuit 223 and the positive electrode 28a of the power storage element 225. A plurality of backflow prevention diodes 280 may be used, and an additional one may be provided between the power storage element 225 and the linear regulator 281, for example. The blocking diode 280 is configured in the same manner as the blocking diode 80 described with reference to FIG. 10, for example.
[0118] The linear regulator 281 is an element that adjusts the voltage input to the input terminal 6a to a set voltage Va and outputs it from the output terminal 6b. More specifically, an input voltage higher than the set voltage Va of the linear regulator 281 is adjusted to the set voltage Va, and an input voltage lower than the set voltage Va is output as a voltage corresponding to that value. 14, the linear regulator 281 is connected between the storage capacitor 282 and the storage element 225. Therefore, the linear regulator 281 adjusts the voltage of the storage capacitor 282 and applies it to the storage element 225. In this embodiment, the linear regulator 281 is an example of a voltage adjusting element that adjusts the voltage of the charging power.
[0119] Furthermore, the linear regulator 281 is driven using the output of the rectifier circuit 223 as a power source. For example, it is driven by obtaining power from the input terminal 6a. Therefore, even when the linear regulator 281 is driven, the power of the storage element 225 is not consumed. This allows for efficient power storage without reducing the power of the storage element 225.
[0120] As described above, the linear regulator 281 is provided with the control terminal 6c. The linear regulator 281 is configured to be able to switch ON / OFF of the voltage adjustment operation in response to a control signal input to the control terminal 6c. When the operating state is OFF, the linear regulator 281 consumes almost no power, has a sufficiently high input resistance, and is an element that does not allow current to pass through. Thus, when the linear regulator 281 is not operating, it is desirable that the resistance be high so that it does not consume current. Here, when the control signal is at a low level, the linear regulator 281 is in an OFF state, and when the control signal is at a high level, the linear regulator 281 is in an ON state.
[0121] Storage capacitor 282 is a capacitor that stores the output of rectifier circuit 223 and supplies it to linear regulator 281. As shown in Fig. 14, storage capacitor 282 is connected in parallel to the front stage of linear regulator 281. That is, the output of rectifier circuit 223 charges storage capacitor 282 before being input to linear regulator 281. The power thus stored in storage capacitor 282 is used as charging power for charging storage element 225.
[0122] The adjustment capacitor 283 is a capacitor that is charged by a control signal output from the charge control unit 226. For example, when a high-level control signal is output, the adjustment capacitor 283 is charged. For example, after the control signal becomes low, a constant voltage is supplied to the control terminal 6c of the linear regulator 281 by the power stored in the adjustment capacitor 283. This supply of voltage continues, for example, until the adjustment capacitor 283 is discharged.
[0123] This makes it possible to maintain for a certain period of time the same state as when a control signal is applied to the control terminal 6c. In this way, the adjustment capacitor 283 has the function of extending the effect of the control signal for a certain period of time. The extension time can be changed by setting the capacitance of the adjustment capacitor 283. Here, the delay time is set only by the capacitance of adjustment capacitor 283. In addition to this, an RC circuit may be configured by connecting a resistor in series on the line through which the control signal passes (the line connecting output terminal 11 of charging control unit 226 and control terminal 6c of linear regulator 281). In this case, it is possible to set the delay time according to the time constant of the RC circuit, for example.
[0124] The charging control unit 226 detects the voltage level of the charging power, and outputs a control signal to the linear regulator 281 according to the result of the detection. In this embodiment, the charging control section 226 detects the voltage of the storage capacitor 282 as the voltage level of the power for charging, and switches the linear regulator 281 on and off according to the detection result. Specifically, a threshold voltage V2 for controlling the linear regulator 281 is set, and the voltage (detection voltage Vs) of the storage capacitor 282 detected by the detection terminal 10 is subjected to threshold determination using the threshold voltage V2.
[0125] In this embodiment, when the detection voltage Vs is less than the threshold voltage V2 (V2>Vs), the control signal goes to low level and the linear regulator 281 is turned off. When the detection voltage Vs is equal to or greater than the threshold voltage V2 (V2≦Vs), the control signal goes to high level and the linear regulator 281 is turned on. That is, the High-level and Low-level control signals respectively turn on and off the linear regulator 281. In this way, the charging control unit 226 outputs a control signal that turns on the linear regulator 281. This signal charges the above-mentioned adjustment capacitor 283.
[0126] Here, the amount of current used to charge power storage element 225 in charging device 200 will be described. FIG. 15 is a schematic graph showing the change over time in the charging voltage and charging current in the CV mode. The CV (Constant Voltage) method is a charging method in which the storage element 225 (battery) is charged at a constant voltage. For example, when charging is performed using the linear regulator 281, charging by the CV method becomes possible.
[0127] The horizontal axis of the graph shown in Fig. 15 is time. This graph also shows a graph that shows the general shape of the time change in the voltage (charging voltage) of storage element 225 that accompanies charging by the CV method, and the general shape of the time change in the current (charging current) used to charge storage element 225. When charging the storage element 225 using the CV method, the charging voltage increases rapidly as soon as charging begins and reaches the same level as the voltage used for charging at a relatively early stage. On the other hand, the current value for charging the storage element 225 gradually decreases toward full charge. In the following, the amount of current used for charging in charging device 200 is derived based on data obtained when power storage element 225 is charged using the CV method.
[0128] 16 is a graph showing the relationship between the charging voltage and the charging rate in the CV system. The horizontal axis of the graph represents the charging rate of the storage element 225, and the vertical axis represents the charging voltage. In this graph, the charging voltage is measured at 30-minute intervals starting from a charging rate of 0%. Here, a constant voltage charging curve of 2.7V at 1C = 1.4mA is plotted for a battery (storage element 225) with a nominal capacity of 14mAh. Note that 1C is a current value that is 1 / 10 of the nominal capacity. In this case, it took 15 minutes for the charge rate to reach 5%, at which point the voltage was 2.21V. That is, the amount of current required for this storage element 225 to change from a charging rate of 0% (charging voltage 2.1V) to a charging rate of 5% (charging voltage 2.21V) can be converted to 1.4mA x 15min.
[0129] 17 is a graph showing the charging characteristics of an actual charging device 200. The horizontal axis of the graph represents time, and the vertical axis represents charging voltage. This graph plots data on the change in charging voltage over time when energy storage element 225 is actually charged under conditions in which a voltage signal of about 4 V is induced in antenna unit 222, which is the harvester. An approximation curve for this charging characteristic is also shown by a dotted line.
[0130] Here, we calculate the time required to charge the battery at the same current amount calculated in FIG. 16, i.e., the time required for the charging voltage to rise from 2.1V to 2.21V. The difference between the time required to reach 2.21V (17,000 min) and the time required to reach 2.1V (9,000 min) is 8,000 min. Therefore, the current consumed per unit time during actual charging is 1.4mA × (15 min / 8,000 min), or approximately 2.6 μA. Furthermore, the current consumed by the power storage unit 224, which is the charging circuit, is estimated to be 0.5 μA. Therefore, the current output from the power receiver (antenna unit 222 and rectifier circuit 223), which is the harvester, is approximately 3 μA. Thus, the current that can be drawn using the power receiver is low.
[0131] [Operation of charging device 200] The operation of the charging device 200 according to this embodiment will be described with reference to FIG. In this embodiment, when the detected voltage Vs detected by the charging control unit 226 exceeds the threshold voltage V2, a control signal (here, a High-level signal) is output to turn on the linear regulator 281. That is, when the voltage of the storage capacitor 282 exceeds the threshold voltage V2 for the linear regulator 281, the charging control unit 226 turns on the linear regulator 281.
[0132] The set voltage Va of the linear regulator 281 is set to, for example, the voltage when the power storage element 225 is fully charged. This allows the power storage element 225 to be charged efficiently. Furthermore, the threshold voltage V2 set in the charging control unit 226 is set to a voltage higher than the set voltage Va of the linear regulator 281. Specifically, the threshold voltage V2 is set to a value slightly higher than the set voltage Va. For example, a value 1% to 10% higher than the set voltage Va of the linear regulator 281, more preferably a value 3% to 5% higher, is used as the threshold voltage V2. This reduces power consumption in the linear regulator 281, and enables efficient charging of the power output from the antenna unit 222.
[0133] For example, the set voltage Va of the linear regulator 281 is set to 2.7V, and the threshold voltage V2 is set to 2.8V, which is 0.1V higher than the set voltage Va. If the set voltage Va of the linear regulator 281 is set low, the threshold voltage V2 may be set low accordingly. For example, if the set voltage Va is 2.6 V, the threshold voltage V2 may be set to 2.7 V. There are no other limitations on the method for setting the set voltage Va and the threshold voltage V2.
[0134] For example, when the voltage (Vs) of the storage capacitor 282 is lower than the threshold voltage V2, the linear regulator 281 is turned off. In this state, the power output from the rectifier circuit 223 is charged into the storage capacitor 282 without passing through the linear regulator 281. At this time, the linear regulator 281 is not operating, so that unnecessary consumption of current is avoided, and the efficiency of charging the storage capacitor 282 is improved.
[0135] When the voltage (Vs) of the storage capacitor 282 rises and exceeds the threshold voltage V2, the charge control unit 226 outputs a control signal to turn on the linear regulator 281, and the linear regulator 281 is activated. As a result, the voltage of the power stored in the storage capacitor 282 is adjusted and charged to the storage element 225. Here, the storage element 225 is charged with the power of 2.7 V set as the output voltage Va of the linear regulator 281. This makes it possible to reliably charge the storage element 225.
[0136] As described above, the current obtained from antenna unit 222 is small. For example, consider a configuration in which linear regulator 281 is always ON and storage capacitor 282 is not provided. In this case, the output of rectifier circuit 223 is input to linear regulator 281. At this time, even if the voltage of the input power is at a level that operates linear regulator 281, the current is small and there is a possibility that it will be consumed by linear regulator 281. In this case, no current is supplied to storage element 225.
[0137] Therefore, in this embodiment, the charge control unit 226 detects that a certain amount of power has been stored in the storage capacitor 282, and operates the linear regulator 281. Stable charging is possible by performing a charging operation by the linear regulator 281 when sufficient power has been stored in the storage capacitor 282. Furthermore, until power is stored in the storage capacitor 282, that is, until the voltage of the storage capacitor 282 reaches the threshold voltage V2, the linear regulator 281 does not operate, thereby reducing power consumption. As a result, power can be stored in the storage capacitor 282 without waste, and power storage efficiency can be significantly improved.
[0138] Here, the operation of the adjustment capacitor 283 will be described. Adjustment capacitor 283 controls the operation time of linear regulator 281. Specifically, adjustment capacitor 283 is adjusted to a capacitance such that linear regulator 281 is turned off after the voltage of storage capacitor 282 drops to the lower limit voltage of the voltage range in which the power of storage capacitor 282 can be appropriately supplied to storage element 225.
[0139] In this way, the capacitance of the adjustment capacitor 283 is set so that the voltage state of the control terminal 6c is equivalent to the voltage state when the control signal is input until the voltage of the storage capacitor 282 drops to a predetermined voltage. Here, the predetermined voltage is, for example, the lower limit voltage at which the power of storage capacitor 282 can be charged to storage element 225. This makes it possible to keep linear regulator 281 ON when storage capacitor 282 is within a chargeable voltage range. As a result, it is possible to avoid situations in which linear regulator 281 is unnecessarily switched ON / OFF, and to achieve stable charging operation.
[0140] For example, the capacitance of storage capacitor 282 that stores electric charge is set to 47 μF, and the capacitance of adjustment capacitor 283 that controls the operating time of linear regulator 281 is set to 1 μF. This makes it possible to achieve stable charging operation. The capacitances of storage capacitor 282 and adjustment capacitor 283 are not limited to the above examples, and may be set appropriately depending on the characteristics of antenna unit 222, the characteristics of storage element 225, etc. Also, an RC circuit in which a resistor is connected in series on a line through which a control signal passes may be configured to set the operating time of linear regulator 281. Furthermore, it is not always necessary to provide the adjustment capacitor 283, and the operating time of the linear regulator 281 may be controlled by a method other than the method using the adjustment capacitor 283.
[0141] In the above example, the threshold voltage V2 of the charge control unit 226 is set to 2.8 V, and the operating time of the linear regulator 281 is determined using the adjustment capacitor 283. However, this is not limiting, and a charge control unit capable of setting two threshold voltages may be used, for example. In this case, for example, control is performed such that the linear regulator 281 is turned ON when the detection voltage Vs rises to 2.8 V or higher, and the linear regulator 281 is turned OFF when the detection voltage Vs falls to 2.0 V or lower. This makes it possible to control the operating time of the linear regulator 281 without using the adjustment capacitor 283.
[0142] As explained with reference to Figures 16 and 17, when the current used for charging is small, unless the input resistance is very high when performing energy conversion such as voltage adjustment, the small current will be consumed, and there is a problem that charge cannot be stored in the battery, etc. For example, there are step-down DC / DC converters that can be used even when the input resistance is high and the current is small. On the other hand, step-down converters need to step down high-voltage signals to the charging voltage required for charging the battery. For example, the voltage input to a step-down converter must be at least 0.5 V higher than the voltage required for charging the battery, which makes charging difficult. As a result, harvesters are required to perform at or above the battery charging voltage, narrowing the usable range.
[0143] In contrast to this, charging device 200 according to this embodiment is provided with storage capacitor 282 that stores the output of rectifier circuit 223, and linear regulator 281 that charges storage element 225 with the power of storage capacitor 282. When voltage Vs of storage capacitor 282 exceeds threshold voltage V2, charging control section 226 sets linear regulator 281 to ON. The linear regulator 281 can operate stably as long as the input is slightly higher than the set voltage Va. Furthermore, even if the input voltage Vs is lower than the set voltage Va, the charging operation can be continued. Furthermore, by providing the storage capacitor 282, a stable charging operation can be realized. As a result, even if the voltage of the signal obtained from the antenna unit 222 is relatively low or the electric field strength is unstable, it is possible to reliably charge a weak current, and it is possible to efficiently store a wide range of electric field energy.
[0144] <Third embodiment> [Configuration of charging device 300] Fig. 18 is a block diagram showing an example of the configuration of a charging device according to embodiment 3. As shown in Fig. 18, the charging device 300 includes an antenna unit 322, a rectifier circuit 323, a power storage unit 324, a power storage element 325, a charging control unit 326, and a load 327. The charging device 300 differs from the above-described embodiment mainly in the configuration of the power storage unit 324. The antenna unit 322, the rectifier circuit 323, the power storage element 325, the charge control unit 326, and the load 327 are configured in the same manner as the antenna unit 22, the rectifier circuit 23, the power storage element 25, the charge control unit 26, and the load 27 of the charging device 100 described with reference to Figs. 9 and 10 . This charging device 300 is configured assuming that the voltage level of the power taken in by the antenna section 322 is relatively low (for example, 1 V or less).
[0145] The power storage unit 324 is provided with a storage capacitor 382 and a step-up DC / DC converter 381. The storage capacitor 382 is charged by the output of the rectifier circuit 323. The step-up DC / DC converter 381 boosts the power stored in the storage capacitor 382 and charges the power storage element 325. In this embodiment, the step-up DC / DC converter 381 also functions as a second selector switch SW2 that controls the supply of charging power to the energy storage element 25. Specifically, the operation of the step-up DC / DC converter 381 is switched ON / OFF to control the supply of power to the energy storage element 325. The charging control section 326 operates the step-up DC / DC converter 381 (second changeover switch SW2) in accordance with the voltage level of the storage capacitor 382.
[0146] Fig. 19 is a circuit diagram showing an example of the configuration of a charging device 300 according to the third embodiment. Fig. 19 shows a specific circuit configuration of a power storage unit 324, which is included in the configuration of the charging device 300. Note that Fig. 19 does not show a load 327.
[0147] 19, the power storage unit 324 has a backflow prevention diode 380, a step-up DC / DC converter 381, a storage capacitor 382, and an adjustment capacitor 383. The step-up DC / DC converter 381 has an input terminal 7a, an output terminal 7b, a control terminal 7c, and a GND terminal 7d. In this embodiment, the power storage unit 324 stores the output of the rectifier circuit 323 in the storage capacitor 382 to generate charging power for charging the power storage element 325. That is, the power of the storage capacitor 382 is used as charging power.
[0148] As shown in FIG. 19, the circuit configuration of the power storage unit 324 is configured to use a step-up DC / DC converter 381 instead of the linear regulator 281 of the power storage unit 224 described with reference to FIG. The anode of the blocking diode 380 is connected to the output terminal 71a of the rectifier circuit 323, and the cathode is connected to the input terminal 7a of the step-up DC / DC converter 381. The output terminal 7b of the step-up DC / DC converter 381 is connected to the positive electrode 28a of the power storage element 325, and the GND terminal 7d is connected to the negative charge line 35b (GND line). In addition, the negative electrode 28b of the power storage element 325 is connected to the output terminal 71b of the rectifier circuit 323.
[0149] One terminal of the storage capacitor 382 is connected to the positive charging line 35a between the backflow prevention diode 380 and the step-up DC / DC converter 381 (input terminal 7a), and the other terminal is connected to the negative charging line 35b. The adjustment capacitor 383 is connected between the control terminal 7c of the step-up DC / DC converter 381 and the negative charge line 35b. The detection terminal 10 (power supply terminal 12) of the charging control unit 326 is connected between the output terminal 71a of the rectifier circuit 323 and the anode of the backflow prevention diode 380, the GND terminal 13 is connected to the negative charging line 35b, and the output terminal 11 is connected to the control terminal 7c of the boost DC / DC converter 381.
[0150] The blocking diode 380 is provided between the rectifier circuit 323 and the power storage element 325, and prevents a reverse current from flowing backward from the power storage element 325. The position where the blocking diode 380 is provided may be set arbitrarily as long as it is between the output terminal 71a of the rectifier circuit 323 and the positive electrode 28a of the power storage element 325. A plurality of blocking diodes 380 may be used, and an additional one may be provided between the power storage element 325 and the step-up DC / DC converter 381, for example. The blocking diode 380 is configured in the same manner as the blocking diode 80 described with reference to FIG. 10, for example.
[0151] The step-up DC / DC converter 381 is an element that steps up the voltage input to the input terminal 7a and outputs it from the output terminal 7b. The step-up DC / DC converter 381 is specified to have a minimum step-up voltage that it can step up, and it steps up voltages that exceed the minimum step-up voltage to a predetermined output voltage. 19, the boost DC / DC converter 381 is connected between the storage capacitor 382 and the storage element 325. Therefore, the boost DC / DC converter 381 boosts the voltage of the storage capacitor 382 and applies it to the storage element 325. In this embodiment, the boost DC / DC converter 381 is an example of a voltage adjustment element that adjusts the voltage of the charging power, and corresponds to a boost converter.
[0152] The boost DC / DC converter 381 is driven using the output of the rectifier circuit 323 as a power source. For example, it is driven by obtaining power from the input terminal 7a. Therefore, even when the boost DC / DC converter 381 is driven, the power of the storage element 325 is not consumed. This allows for efficient power storage without reducing the power of the storage element 325.
[0153] As described above, the step-up DC / DC converter 381 is provided with a control terminal 7c. The step-up DC / DC converter 381 is configured so that the voltage boosting operation can be switched on and off in response to a control signal input to the control terminal 7c. When the operation state is OFF, the step-up DC / DC converter 381 consumes almost no power and has a sufficiently high input resistance that does not allow current to pass through. In this way, when the step-up DC / DC converter 381 is not operating, it is desirable that the resistance be high so as not to consume current. Here, when the control signal is at a low level, the operation state of the step-up DC / DC converter 381 is turned OFF, and when the control signal is at a high level, the operation state of the step-up DC / DC converter 381 is turned ON.
[0154] The storage capacitor 382 is a capacitor that stores the output of the rectifier circuit 323 and supplies it to the step-up DC / DC converter 381. The power stored in the storage capacitor 382 is used as power for charging the power storage element 325.
[0155] The adjustment capacitor 383 is a capacitor that is charged by a control signal output from the charge control unit 326. For example, the adjustment capacitor 383 is charged by a high-level control signal, and continues to supply a constant voltage to the control terminal 7c of the step-up DC / DC converter 381 even after the control signal becomes low. The function of the adjustment capacitor 383 is similar to that of the adjustment capacitor 283 described with reference to FIG. 14, for example.
[0156] The charging control section 326 detects the voltage level of the charging power, and outputs a control signal according to the result to the step-up DC / DC converter 381 . In this embodiment, the charging control section 326 detects the voltage of the storage capacitor 382 as the voltage level of the power for charging, and switches the step-up DC / DC converter 381 on and off according to the detection result. Specifically, a threshold voltage V3 for controlling the step-up DC / DC converter 381 is set, and the voltage (detected voltage Vs) of the storage capacitor 382 detected by the detection terminal 10 is subjected to threshold determination using the threshold voltage V3.
[0157] In this embodiment, when the detected voltage Vs is less than the threshold voltage V3 (V3>Vs), the control signal goes to low level, and the step-up DC / DC converter 381 is turned off. When the detected voltage Vs is equal to or greater than the threshold voltage V3 (V3≦Vs), the control signal goes to high level, and the step-up DC / DC converter 381 is turned on. That is, the High-level and Low-level control signals respectively turn on and off the step-up DC / DC converter 381. In this way, the charging control unit 326 outputs a control signal that turns on the step-up DC / DC converter 381. This signal charges the above-mentioned adjustment capacitor 383.
[0158] [Operation of charging device 300] The operation of the charging device 300 according to this embodiment will be described with reference to FIG. In this embodiment, when the detected voltage Vs detected by the charging control unit 326 exceeds the threshold voltage V3, the charging control unit 326 outputs a control signal (here, a High-level signal) to turn on the step-up DC / DC converter 381. In other words, when the voltage of the storage capacitor 382 exceeds the threshold voltage V3 for the step-up DC / DC converter 381, the charging control unit 326 turns on the step-up DC / DC converter 381.
[0159] In this embodiment, the output voltage of the step-up DC / DC converter 381 is set to, for example, the voltage (2.7V) when the power storage element 325 is fully charged. In this case, a step-up DC / DC converter 381 with a minimum step-up voltage of about 0.5V is used. Furthermore, the threshold voltage V3 for the step-up DC / DC converter 381 is set to a value higher than the minimum boost voltage that the step-up DC / DC converter 381 can boost and lower than the output voltage. Here, V3 is set to 1 V. There are no other limitations on the method for setting the threshold voltage V3.
[0160] For example, when the voltage (Vs) of the storage capacitor 382 is lower than the threshold voltage V3, the step-up DC / DC converter 381 is turned off. In this state, the power output from the rectifier circuit 323 is charged into the storage capacitor 382 without passing through the step-up DC / DC converter 381. At this time, the step-up DC / DC converter 381 is not operating, so that unnecessary consumption of current is avoided, and the efficiency of charging the storage capacitor 382 is improved.
[0161] When the voltage (Vs) of the storage capacitor 382 rises and exceeds the threshold voltage V3, a control signal is output from the charge control unit 326 to turn on the step-up DC / DC converter 381, and the step-up DC / DC converter 381 is started. As a result, the power stored in the storage capacitor 382 is boosted to a charging voltage and charged to the storage element 325. Here, the voltage of the storage capacitor 382, which is 1V or less, is boosted to 2.7V and the storage element 325 is charged.
[0162] Here, the relationship between the power consumption of the step-up DC / DC converter 381 and the capacitance of the storage capacitor 382 will be described. When the voltage of a capacitor with capacitance C is V, the energy E (amount of electricity) stored in the capacitor is expressed by the following equation (1). E[J]=0.5×C×V^2 (1) The relationship between power P and energy E (amount of power) is expressed by the following equation (2). E[J]=t[sec]×P[W] (2)
[0163] For example, suppose the voltage induced in the antenna unit 322 is 1 V. In this case, the power of the minimum boost voltage (here, 0.5 V) is consumed in the boost operation. At this time, the charge that corresponds to the difference between the voltage induced in the antenna unit 322 and the minimum boost voltage (1 V - 0.5 V) becomes the charge that can be stored. The energy of the charge at this time is stored in the storage capacitor 382. For example, if the capacitance of the storage capacitor 382 is 100 μF, then from equation (1), the energy E stored in the storage capacitor 382 is E=0.5×100[μF]×0.5[V]×0.5[V]=12.5[μJ] This is converted to power P per second using equation (2) to be 12.5 μW.
[0164] Incidentally, the estimated startup power for boost DC / DC converter 381, which can boost from 0.5V and output 2.7V, is approximately 9μW. Thus, for boost DC / DC converter 381 that uses 9μW for startup power, if the power of storage capacitor 382 is approximately 12.5μW, it may be possible to start up, but not be able to properly perform the boost operation, and therefore may not be able to be used for charging. When charging storage element 325, it is preferable to use storage capacitor 382 with a capacity at least three times the above-mentioned capacity, i.e., 0.3mF or more.
[0165] In this embodiment, the capacity of the storage capacitor 382 is set so as to be able to store, for example, three times or more the power consumption of the step-up DC / DC converter 381. More preferably, the capacity of the storage capacitor 382 is set so as to be able to store ten times or more the power consumption of the step-up DC / DC converter 381. This allows the power of the storage capacitor 382 to be stored in the storage element 325 without waste using the step-up DC / DC converter 381.
[0166] For example, the boost DC / DC converter 381 is characterized by its higher power consumption during startup compared to steady-state operation. Therefore, the more frequently it is started, the greater the amount of unnecessary power consumption. In response to this, by making the capacity of the storage capacitor 382 sufficiently large, the number of times the boost DC / DC converter 381 is switched on and off decreases, making it possible to reduce unnecessary power consumption. For example, an electric double capacitor can be used as this high-capacity storage capacitor 382. It is also possible to increase the capacity by connecting multiple capacitors in parallel.
[0167] The adjustment capacitor 383 controls the operating time of the step-up DC / DC converter 381. Specifically, the capacitance of the adjustment capacitor 383 is set so that the voltage state of the control terminal 7c is equivalent to the voltage state when the control signal is input, until the voltage of the storage capacitor 382 drops to a predetermined voltage. Here, the predetermined voltage is set to, for example, a voltage slightly higher than the minimum boost voltage of the boost DC / DC converter 381 (for example, a voltage 5% to 10% higher than the minimum boost voltage), thereby making it possible to charge the power of the storage capacitor 382 to the storage element 325 within a range that can be reliably boosted.
[0168] In the above example, threshold voltage V3 of charge control unit 326 is set to 1.0 V, and adjustment capacitor 383 is used to define the operation time of step-up DC / DC converter 381. However, this is not limiting, and for example, a charge control unit 326 that can set two threshold voltages may be used. In this case, for example, control is performed such that step-up DC / DC converter 381 is turned ON when detection voltage Vs rises to 1.0 V or higher, and step-up DC / DC converter 381 is turned OFF when detection voltage Vs falls to 0.5 V or lower. Furthermore, if the step-up DC / DC converter 381 is provided with a power good terminal or the like, the output of the power good terminal may be referenced to switch the step-up DC / DC converter 381 OFF.
[0169] In the above-described charging device 300, the second changeover switch SW2 for switching ON / OFF of the operation is built into the step-up DC / DC converter 381. For example, the step-up DC / DC converter 381 may not have a built-in second selector switch SW2 that switches operation ON / OFF. In this case, a second selector switch SW2 that switches operation may be provided separately upstream of the input terminal 7a of the step-up DC / DC converter 381. Even with this configuration, the step-up DC / DC converter 381 can be operated properly by outputting a control signal from the charging control unit 326 to SW2 that switches operation and turning SW2 ON / OFF as appropriate.
[0170] As described above, in this embodiment, because the current obtained from the antenna unit 322 is small, the charging control unit 326 is used to detect that a certain amount of power has been stored in the storage capacitor 382, and the step-up DC / DC converter 381 is then operated. Stable charging is possible by performing a charging operation using the step-up DC / DC converter 381 when sufficient power is stored in the storage capacitor 382. Furthermore, because the step-up DC / DC converter 381 consumes a large amount of current during boosting, the capacity of the storage capacitor 382 is set to be sufficiently large. This reduces unnecessary power consumption. As a result, it is possible to efficiently store electric field energy over a wide range.
[0171] <Fourth embodiment> [Configuration of charging device 400] Fig. 20 is a block diagram showing an example of the configuration of a charging device according to embodiment 4. As shown in Fig. 20, a charging device 400 includes an antenna unit 422, a rectifier circuit 423, a power storage unit 424, a power storage element 425, a charging control unit 426, and a load 427. The charging device 400 differs from the above-described embodiment mainly in the configuration of the power storage unit 424. The antenna unit 422, the rectifier circuit 423, the power storage element 425, and the load 427 are configured in the same manner as the antenna unit 22, the rectifier circuit 23, the power storage element 25, and the load 27 of the charging device 100 described with reference to Figs. 9 and 10.
[0172] The power storage unit 424 is provided with a third changeover switch SW3, a fourth changeover switch SW4, a step-up DC / DC converter 481, a first storage capacitor 482a, and a second storage capacitor 482b. The third selector switch SW3 switches and connects either the first storage capacitor 482a or the second storage capacitor 482b to the rectifier circuit 423. The fourth selector switch SW4 switches and connects either the first storage capacitor 482a or the second storage capacitor 482b to the step-up DC / DC converter 481. The step-up DC / DC converter 481 charges the power storage element 425 by stepping up the power stored in either the first storage capacitor 482a or the second storage capacitor 482b. The charging control section 426 operates the third changeover switch SW3 and the fourth changeover switch SW4 in accordance with the voltage level of the first storage capacitor 482a.
[0173] Fig. 21 is a circuit diagram showing an example of the configuration of a charging device 400 according to the fourth embodiment. Fig. 21 shows a specific circuit configuration of a power storage unit 424, which is included in the configuration of the charging device 400. Note that Fig. 21 does not show a load 427. In this embodiment, the charging control section 426 is configured such that the detection terminal 10 for detecting the voltage and the power supply terminal 12 connected to the operating power supply are separate terminals. Similar to the charging device 300 described with reference to FIGS. 18 and 19, this charging device 400 is configured assuming that the voltage level of the power taken in by the antenna section 422 is relatively low.
[0174] As shown in FIG. 21, the power storage unit 424 includes a first backflow prevention diode 480a, a second backflow prevention diode 480b, a third selector switch SW3, a fourth selector switch SW4, a step-up DC / DC converter 481, a first storage capacitor 482a, a second storage capacitor 482b, a first adjustment capacitor 483a, and a second adjustment capacitor 483b. The third switch SW3 has an input terminal 8a, a first output terminal 8b, a second output terminal 8c, and a control terminal 8d, while the fourth switch SW4 has a first input terminal 9a, a second input terminal 9b, an output terminal 9c, and a control terminal 9d. The step-up DC / DC converter 481 also has an input terminal 7a, an output terminal 7b, and a GND terminal 7d. In this embodiment, the power storage unit 424 alternately charges the first storage capacitor 482a and the second storage capacitor 482b with the output of the rectifier circuit 423 to generate charging power for charging the power storage element 425. That is, in this embodiment, the power of the first storage capacitor 482a and the second storage capacitor 482b is used as charging power.
[0175] 21, the anode of the first reverse current prevention diode 480a is connected to the output terminal 71a of the rectifier circuit 423, and the cathode is connected to the input terminal 8a of the third selector switch SW3. The first output terminal 8b of the third selector switch SW3 is connected to the second input terminal 9b of the fourth selector switch SW4. The second output terminal 8c of the third selector switch SW3 is connected to the first input terminal 9a of the fourth selector switch SW4. The output terminal 9c of the fourth selector switch SW4 is connected to the anode of the second reverse current prevention diode 480b. The cathode of the second reverse current prevention diode 480b is connected to the input terminal 7a of the step-up DC / DC converter 481. The output terminal 7b of the step-up DC / DC converter 481 is connected to the positive electrode 28a of the power storage element 425, and the GND terminal 7d is connected to the negative charge line 35b (GND line). Furthermore, negative electrode 28b of power storage element 425 is connected to output terminal 71b of rectifier circuit 423.
[0176] The first storage capacitor 482a is connected between the first output terminal 8b of the third switch SW3 and the negative charge line 35b, and the second storage capacitor 482b is connected between the second output terminal 8c of the third switch SW3 and the negative charge line 35b. The first adjustment capacitor 483a is connected between the control terminal 8d of the third switch SW3 and the negative charge line 35b, and the second adjustment capacitor 483b is connected between the control terminal 9d of the fourth switch SW4 and the negative charge line 35b. The detection terminal 10 of the charging control unit 426 is connected to the first output terminal 8b of the third changeover switch SW3 (the second input terminal 9b of the fourth changeover switch SW4), the power supply terminal 12 is connected between the output terminal 71a of the rectifier circuit 423 and the anode of the first backflow prevention diode 480a, the GND terminal 13 is connected to the negative charging line 35b, and the output terminal 11 is connected to the control terminals 8d and 9d of the third and fourth changeover switches SW3 and SW4.
[0177] The first and second reverse current prevention diodes 480a and 480b are provided between the rectifier circuit 423 and the power storage element 425, and are diodes that prevent reverse current from flowing back from the power storage element 425. The first and second reverse current prevention diodes 480a and 480b are configured in the same manner as the reverse current prevention diode 80 described with reference to FIG. If the step-up DC / DC converter 481 has a backflow prevention function, the second backflow prevention diode 480b does not need to be provided.
[0178] The third selector switch SW3 is a switch element that switches and connects the input terminal 8a to either one of the first and second output terminals 8b and 8c. As described above, the input terminal 8a is connected to the rectifier circuit 423 (output terminal 71a) via the first backflow prevention diode 480a. Therefore, the third selector switch SW3 switches and connects either one of the first and second storage capacitors 482a and 482b to the rectifier circuit 423.
[0179] The fourth selector switch SW4 is a switch element that switches and connects either one of the first and second input terminals 9a and 9b to the output terminal 9c. As described above, the output terminal 9c is connected to the power storage element 425 via the second backflow prevention diode 480b and the step-up DC / DC converter 481 (input terminal 7a). Therefore, the fourth selector switch SW4 switches and connects either one of the first and second storage capacitors 482a and 482b to the power storage element 425.
[0180] In this embodiment, the third and fourth changeover switches SW3 and SW4 are controlled by a common control signal output from the charging control unit 426. This will be described in detail later.
[0181] The step-up DC / DC converter 481 is an element that steps up the voltage input to the input terminal 7a and outputs it from the output terminal 7b. As described above, the first and second storage capacitors 482a and 482b are connected to the input terminal 7a of the step-up DC / DC converter 481 in a switchable manner. Therefore, the step-up DC / DC converter 481 steps up the voltage of the first storage capacitor 482a or the second storage capacitor 482b. The stepped-up voltage is applied to the storage element 425.
[0182] The first storage capacitor 482a and the second storage capacitor 482b both store the output of the rectifier circuit 423. As described above, the first and second storage capacitors 482a and 482b are switched and connected to the output terminal 71a of the rectifier circuit 423. Therefore, the first and second storage capacitors 482a and 482b are alternately charged with the output of the rectifier circuit 423.
[0183] The first adjustment capacitor 483a is charged by a control signal input to the third switch SW3, and the second adjustment capacitor 483b is charged by a control signal input to the fourth switch SW4. The first and second adjustment capacitors 483a and 483b adjust the switching timing of the third and fourth changeover switches SW3 and SW4, respectively.
[0184] The charging control section 426 detects the voltage level of the charging power, and outputs control signals according to the result to the third and fourth changeover switches SW3 and SW4. In this embodiment, the charging control section 426 detects the voltage of the first storage capacitor 482a as the voltage level of the power for charging, and switches the third and fourth changeover switches SW3 and SW4 in accordance with the detection result. A threshold voltage V4 for determining the voltage of the first storage capacitor 482a is set in the charging control unit 426. The threshold voltage V4 is a threshold that defines the voltage input to the step-up DC / DC converter 481, and is set, for example, in the same manner as the threshold voltage V3 described with reference to FIG. Here, it is assumed that the output voltage of the step-up DC / DC converter 481 is 2.7 V and the minimum step-up voltage is 0.5 V. Furthermore, the threshold voltage V4 is set to 1 V.
[0185] [Operation of charging device 400] The operation of the charging device 400 according to this embodiment will be described with reference to FIG. In this embodiment, the first storage capacitor 482a is connected to the step-up DC / DC converter 481, and while the storage element 425 is being charged, the output from the rectifier circuit 423 is stored in the second storage capacitor 482b. Also, while the second storage capacitor 482b is connected to the step-up DC / DC converter 481, and while the storage element 425 is being charged, the output from the rectifier circuit 423 is stored in the first storage capacitor 482a. The third and fourth selector switches SW3 and SW4 are controlled to realize the above operations. That is, the third and fourth switches SW3 and SW4 are controlled so that the second storage capacitor 482b is charged while the first storage capacitor 482a is supplying power to the storage element 425, and so that the first storage capacitor 482a is charged while the second storage capacitor 482b is supplying power to the storage element 425.
[0186] Specifically, when the voltage of the first storage capacitor 482a exceeds the threshold voltage V4 (V4≦Vs), the third and fourth switches SW3 and SW4 are controlled so that the storage element 425 and the first storage capacitor 482a are connected via the boost DC / DC converter 481, and the rectifier circuit 423 and the second storage capacitor 482b are connected. Furthermore, when the voltage of the first storage capacitor 482a is less than the threshold voltage V4 (V4>Vs), the third and fourth switches SW3 and SW4 are controlled so that the storage element 425 and the second storage capacitor 482b are connected via the boost DC / DC converter 481, and the rectifier circuit 423 and the first storage capacitor 482a are connected.
[0187] In this embodiment, the third switch SW3 is switched earlier than the fourth switch SW4. For example, when the first storage capacitor 482a is charged and exceeds 1V, the third switch SW3 is switched first. At this time, the connection of the rectifier circuit 423 is switched from the first storage capacitor 482a to the second storage capacitor 482b. Next, the fourth changeover switch SW4 is switched after a short delay. At this time, the second storage capacitor 482b connected to the step-up DC / DC converter 481 is switched to the first storage capacitor 482a which is fully charged.
[0188] The operation timing of the third and fourth switches SW3 and SW4 can be controlled by setting the capacitances of the first and second adjustment capacitors 483a and 483b. That is, the capacitances of the first and second adjustment capacitors 483a and 483b are set so that the third switch SW3 switches before the fourth switch SW4 switches. Specifically, the capacitance of the first adjustment capacitor 483a is set smaller than the capacitance of the second adjustment capacitor 483b. This makes the third switch SW3 switch faster than the fourth switch SW4. This allows, for example, a capacitor that stores charge to be used to charge the storage element 425 to store the charge before connecting it to the step-up DC / DC converter 481. This makes it possible to use the charge to charge the storage element 425 without waste, thereby improving the storage efficiency. Furthermore, in setting the time constant that defines the operation timing, the operation sequence of the third and fourth switches SW3 and SW4 is determined solely by the capacitances of the first and second adjustment capacitors 483a and 483b. In addition, a resistor may be connected in series to the line through which the control signal passes to form an RC circuit. In this case, it is possible to set the operation timing according to the time constant of the RC circuit, for example.
[0189] Alternatively, a charge control unit 426 or the like that can set two threshold voltages may be used. In this case, for example, control may be performed such that the first storage capacitor 482a is discharged when the detection voltage Vs increases to 1.0 V or higher, and the first storage capacitor 482a is charged when the detection voltage Vs decreases to 0.5 V or lower.
[0190] As described above, in this embodiment, the power storage element 425 is charged by repeating a control in which one of the two storage capacitors 482a and 482b is charged and the other is connected to the step-up DC / DC converter 481. 19, for example, when the charge in the storage capacitor 382 is depleted, the step-up DC / DC converter 381 cannot operate until it is recharged. In contrast, in this embodiment, while one capacitor is operating, the other capacitor is charging. This makes it possible to store the power output from the antenna unit 422 even while the storage element 425 is being charged, allowing for sufficiently efficient power storage.
[0191] <Fifth embodiment> [Harvester equipment with leakage current protection] FIG. 22 is a schematic diagram showing a connection example of a harvester device 500 according to a fifth embodiment. The harvester device 500 is an energy harvesting device (electric field harvester) that harvests electric field energy present in the surrounding environment as electric power. The harvester device 500 is typically configured as a charging device that charges a battery with the harvested electric power. In this case, the components of the charging device described above are used as appropriate. The harvester device 500 may also be a device that supplies electric power directly to a load without charging it.
[0192] In this embodiment, the harvester device 500 is connected to a device 90 that is grounded to the earth ground 4 (hereinafter simply referred to as GND4). In this case, the device 90 that is grounded to GND4 corresponds to the target object 1 (metal body 3). The following mainly describes a case where the harvester device 500 is connected to a device 90 that is required to be grounded to GND4 in accordance with safety standards. Note that the following description is not limited to devices 90 that are required to be installed to GND4, but can be applied to any device 90 that is used while being grounded to GND4.
[0193] Generally, there is a device 90 that must be grounded if there is a possibility of electric shock to the human body 10 or a fire. Such a device 90 is provided with, for example, a grounding cable 91 (earth wire), and is required to be grounded to GND4.
[0194] For example, the device 90 shown in FIG. 22A is connected to an AC 100V power supply, and appears as a voltage source of up to 100V when viewed from the human body 10. Now, let's calculate the ground resistance for the human body 10 connected between the device 90 and GND 4. For example, when a current flows through the human body 10, the resistance is calculated as the sum of the resistance of the skin where the current flows in, the resistance inside the body (blood, internal organs, muscles, etc.), and the resistance of the part where the current flows out (e.g., the resistance of the feet). For example, when the skin is sufficiently dry, the resistance of the human body 10 is about 5 kΩ. Let's also assume that the human body 10 is wearing electrostatic shoes that do not easily conduct electricity. The resistance of electrostatic shoes is, for example, 100 kΩ or more, but here we will use electrostatic shoes with a resistance of 100 kΩ. In this case, the ground resistance for the human body 10 is 5 kΩ + 100 kΩ = 105 kΩ. Therefore, for example, if device 90 shown in FIG. 22A is floating from GND 4 and a voltage of 100 V is applied to human body 10 in contact with device 90, a current of about 100 V / 105 kΩ≈0.95 mA will flow through human body 10.
[0195] For example, a current of about 1 mA will only cause a momentary electrical stimulation, but 5 mA will cause pain, and 20 mA will cause convulsions and breathing difficulties, and currents greater than this can be life-threatening. Therefore, in order to connect and operate harvester device 500 between device 90 and GND4 (on ground cable 91), sufficient leakage prevention measures are required.
[0196] The leakage current countermeasure is a countermeasure to prevent a state in which current leaks from device 90 to GND 4 via, for example, human body 10. As a leakage current countermeasure for harvester device 500, a method of realizing so-called earthing is used, in which, with harvester device 500 and device 90 connected, device 90 and GND 4 are connected with a resistance value lower than the electrical resistance of human body 10.
[0197] Incidentally, with reference to current safety standards in Japan, equipment 90 to which harvester device 500 is applied includes equipment 90 that requires type D grounding (hereinafter referred to as D grounding). D grounding is grounding performed on low-voltage machinery and equipment of 300V or less, metal outer casings, and metal pipes. For example, D grounding is performed on equipment 90 that is used and requires installation and is connected to a 100V AC power source. As examples, the grounding of equipment 90 such as microwave ovens, refrigerators, washing machines, dryers, air conditioners, dehumidifiers, various measuring instruments, factory robots, and server devices conforms to this standard. Thus, D grounding is the standard when targeting general equipment 90. In the following, it is assumed that D grounding is performed on equipment 90 to which harvester device 500 is applied.
[0198] D-grounding requires a ground resistance with a DC resistance of 100 Ω or less. However, if a low-voltage circuit is equipped with a device that automatically shuts off the circuit within 0.5 seconds in the event of a ground fault (earth leakage), a ground resistance with a DC resistance of 500 Ω or less may be used. For example, if there is a mechanism that shuts off the power supplied to equipment 90 when dark current is detected, a change in ground resistance from 100 Ω to 500 Ω is permitted for D-grounding. The harvester device 500 is configured to be able to achieve such D-grounding.
[0199] Here, an example of connection between the harvester device 500 and the device 90 will be described with reference to Fig. 22. Fig. 22A schematically illustrates the harvester device 500 connected to the device 90 provided with a ground cable 91. The device 90 is provided with a ground terminal 92 to which a ground cable 91 is connected. The harvester device 500 has a connection point 47a and a connection point 47b. The connection point 47a is a node that connects the first antenna conductor 31 to a rectifier circuit (not shown). The connection point 47b is a node that connects the second antenna conductor 32 to a rectifier circuit (not shown). Hereinafter, the connection point 47a and the connection point 47b will be referred to as the first connection point 47a and the second connection point 47b.
[0200] 22A, the first connection point 47a of the harvester device 500 is connected to a ground terminal 92 of the device 90. In this case, a ground (such as a ground pattern or a housing connected to the ground) provided in the device 90 serves as the first antenna conductor 31. The second connection point 47b is connected to GND4. In this case, the wiring connected to GND4 serves as the second antenna conductor 32. The leakage current countermeasure in the harvester device 500 is, for example, D-grounding the device 90 and the GND 4. This corresponds to D-grounding between the first connection point 47a and the second connection point 47b.
[0201] 22B, harvester device 500 is connected, and another harvester device 501 is provided inside device 90. For example, when device 90 is floating from GND4, the ground of device 90 functions well as first antenna conductor 31. Furthermore, even if the device 90 is grounded to satisfy the conditions for D grounding, it is possible to set the resistance (impedance) to an AC signal passing through the current path used for grounding high. In this case, the ground of the device 90 or the like functions well as the first antenna conductor 31 for AC signals in a frequency band with high impedance.
[0202] In this way, when the ground or the like of the device 90 can be considered to be sufficiently floating with respect to GND4, it becomes possible to efficiently harvest electric field energy by providing another harvester device 501 inside the device 90. A configuration for increasing the impedance of the current path used for grounding will be specifically described with reference to Fig. 23 etc.
[0203] Note that measures against static electricity are also taken in the harvester device 500. For example, in the harvester device 500, the voltage applied between the first connection point 47a and the second connection point 47b may be sufficiently high in some cases, but the current flowing therethrough may be small. For this reason, it is possible to address this issue by providing an anti-static component, such as a resistor or varistor of about 100 kΩ, between the first connection point 47a and the second connection point 47b (see FIGS. 4 and 5, etc.). On the other hand, in order to prevent leakage current that may lead to electric shock to the human body 10 or fire, measures to limit the current are required. This will be explained in detail below.
[0204] [Configuration example of harvester device 500] Fig. 23 is a circuit diagram showing an example of the configuration of a harvester device incorporating leakage current countermeasures. As shown in Fig. 23, harvester device 500a has rectifier circuit 523 and inductor 510, and inductor 510 is added to the part where the ground of device 90 is connected to GND4. The rectifier circuit 523 is configured in the same manner as the rectifier circuit 23 described with reference to Fig. 6. In the following description, the elements constituting the rectifier circuit 523 are assigned the same reference numerals as those in the rectifier circuit 23.
[0205] The inductor 510 is connected between the first connection point 47a and the second connection point 47b, which serve as the input of the rectifier circuit 523. For example, a choke coil that suppresses high-frequency components is used as the inductor 510. Any element having inductance, such as a wound coil, a transformer coil, or a laminated coil, may also be used. The harvester device 500a has a configuration in which the input side (the first connection point 47a and the second connection point 47b) of the rectifier circuit 23 described with reference to FIG. 6 is short-circuited by the inductor 510. A method for setting the DC resistance Rdc and inductance L of the inductor 510 will be described below.
[0206] Fig. 24 is a schematic diagram showing a measurement circuit for measuring the relationship between the output of a harvester device and ground resistance. Fig. 25 is a table showing an example of a measurement of the relationship between the output of a harvester device and ground resistance. In the measurement circuit shown in Fig. 24, a test harvester device 500b is connected between ground terminal 92 of device 90 (here, a measuring device powered by AC 100V) that requires D-grounding and GND4 provided in the socket of AC power supply 85. Harvester device 500b is a device in which resistance element 511, which becomes a DC resistance component, is connected instead of inductor 510 of harvester device 500a.
[0207] 24, the first connection point 47a of the harvester device 500b is connected to the ground terminal 92 of the device 90, and the second connection point 47b is connected to GND4. Note that the two power supply terminals 93a and 93b provided on the device 90 are connected to output terminals 86a and 86b of an AC power supply 85, respectively, and AC 100V is supplied thereto.
[0208] Furthermore, a resistive element 511 is connected between the first connection point 47a and the second connection point 47b. The resistive element 511 is an element such as a wound resistor having a predetermined DC resistance value. The resistive element 511 functions as a ground resistor connecting the device 90 to GND4. For example, if the resistive element 511 is sufficiently large, the device 90 is substantially floating relative to GND4.
[0209] 24, the output voltage (voltage between output terminals 71a and 71b) of harvester device 500b is measured by changing the DC resistance value of resistor element 511. In harvester device 500b, elements that conduct at 6.5V are used as Zener diodes 69a and 69b provided in the subsequent stage of rectifier circuit 523. Therefore, the voltage between output terminals 71a and 71b is approximately 6.5V at most.
[0210] 25 shows the DC resistance value [Ω] of resistor element 511, which serves as a ground resistor, and the detected voltage [V] between output terminals 71a and 71b of harvester device 500b when each resistance value is set. For example, when the DC resistance value is a relatively low 1 kΩ, the detected voltage is 0.60 V. When the DC resistance value is 10 kΩ, a voltage of 2.00 V is detected, and when the DC resistance value is 47 kΩ, a voltage of 4.60 V is detected. In this way, the higher the DC resistance value, the closer the ground of device 90, which is first antenna conductor 31, is to a floating state relative to GND4, which is the earth ground, and the higher the detected voltage becomes.
[0211] If the DC resistance value is further increased, for example, when it reaches 100 kΩ, the detected voltage becomes 6.55 V. This is approximately the same as the value (6.77 V) when resistive element 511 is removed and the ground of device 90 is completely floating (DC resistance value = ∞). In other words, by inserting an element with a DC resistance of about 100 kΩ between first connection point 47a and second connection point 47b, first connection point 47a is essentially floating with respect to second connection point 47b, and voltage is induced without any problems. Even if the DC resistance is in the range of 100 kΩ or less, if the resistance is, for example, 10 kΩ or more, it is possible to induce a voltage of 2 V or more. This makes it possible to sufficiently operate the charging device described in the above embodiment, for example.
[0212] 24 and 25 show the DC resistance component of the ground resistance. Meanwhile, the electric field energy harvested by the harvester device 500a is primarily AC signal energy. Therefore, if the resistance (impedance) to an AC signal of a target frequency is sufficiently large, the ground of the device 90 can be brought close to a floating state at that frequency, thereby inducing a high voltage.
[0213] For example, when connected to a 50 Hz (or 60 Hz) AC power supply, the 50 Hz (or 60 Hz) AC signal is considered to be the main source of electric field energy. Therefore, if the impedance at 50 Hz (or 60 Hz) is 100 kΩ or higher, the ground of the device 90 is substantially floating, as described above, and energy can be efficiently taken in.
[0214] Here, a description will be given of the relationship between impedance Z and inductance L in inductor 510. In the following, the impedance Z derived from inductance L will be mainly described, assuming that the component of impedance Z derived from the capacitance of inductor 510 is sufficiently small. The impedance Z of the inductor 510 can be expressed as Z=jωL (where j is an imaginary number). Therefore, the magnitude of the impedance Z is expressed by the following equation. |Z|=ωL=2πfL (1) where f is the frequency. As shown in equation (1), the magnitude of impedance Z is proportional to frequency f and inductance L. For example, if L=1 [H], then at a frequency of 50 Hz, Z=314 Ω.
[0215] Here, consider setting the DC resistance Rdc of inductor 510 to 500Ω or less so as to satisfy the above-mentioned D-grounding standard. That is, the DC resistance Rdc of inductor 510 is set to an upper limit (500Ω) or less that is set to prevent leakage current.
[0216] For example, it is possible to use a choke coil with an inductance of 10 [H] and a DC resistance of 53 Ω. If inductor 510 is configured by connecting such elements in series, nine elements can be used in the range of Rdc≦500 Ω. In this case, inductor 510 has Rdc=9×53=477 Ω and L=9×10=90 [H]. Therefore, from equation (1), the impedance Z of inductor 510 at 50 Hz is Z=28.3 kΩ. 25, the voltage obtained at 28.3 kΩ is estimated to be approximately 3.5 V. In this way, even when inductor 510 is configured so that DC resistance Rdc satisfies the D-grounding condition, it is possible to induce a sufficiently high voltage.
[0217] When L=1[H], Z=376.8Ω at a frequency of 60 Hz. If an element with an inductance of 10[H] and a DC resistance of 53Ω is used, then, using the same calculation as above, inductor 510 is configured by connecting nine elements in series, and the impedance Z at 60 Hz is 34 kΩ, making it possible to induce a voltage of nearly 4 V.
[0218] 23, by configuring inductor 510 as described above, it becomes possible to maintain the energy capture efficiency of harvester device 500a while grounding device 90 to GND4 so as to satisfy the D-grounding condition as a leakage current countermeasure. In this way, harvester device 500a can be said to be configured with inductor 510 to separate the resistance value (impedance Z) of frequencies in the 50 Hz band / 60 Hz band from the resistance value of the DC component.
[0219] Furthermore, in the harvester device 500a, it is preferable to lower the DC resistance Rdc of the inductor 510 and increase the inductance L. This makes it possible to increase the impedance Z at 50 Hz, thereby improving the performance of the harvester device 500a. For example, the Rdc and L of the inductor 510 are set so that the impedance Z at 50 Hz is Z≧100 kΩ. This makes it possible to recover energy very efficiently while achieving reliable leakage countermeasures.
[0220] Fig. 26 is a circuit diagram showing another example of the configuration of a harvester device incorporating a leakage current countermeasure. As shown in Fig. 26, harvester device 500c has rectifier circuit 523, inductor 510, and relay switch 520. Harvester device 500c is configured by adding relay switch 520 to harvester device 500a shown in Fig. 23.
[0221] The relay switch 520 has a switch control element 521 and a switch 522. The relay switch 520 is an element in which the switch 522 is turned ON when an operating current equal to or greater than a threshold current Ith flows through the switch control element 521. Note that when the operating current flowing through the switch control element 521 is less than the threshold current Ith, the switch 522 is maintained in the OFF state. For example, an electromagnetic relay is used as the relay switch 520. In this case, the switch control element 521 is configured using a coil, and the switch 522 is physically moved by electromagnetic induction to switch ON / OFF. Alternatively, the switch control element 521 may be a solid relay or the like configured using a semiconductor element such as a photocoupler.
[0222] 26, the switch control element 521 is provided in a current path connecting the first antenna conductor 31 and the first connection point 47a, and operates in response to the current flowing from the first antenna conductor 31 to the first connection point 47a. The switch 522 is connected between the first connection point 47a and the second connection point 47b. Therefore, the relay switch 520 is configured to short-circuit the first connection point 47a and the second connection point 47b and cause the current to flow to GND4 when the current flowing into the rectifier circuit 523 exceeds a predetermined threshold current Ith.
[0223] For example, an element with a threshold current Ith of 1 mA or less (e.g., Ith = 0.6 mA) can be used as relay switch 520. The current taken in by harvester device 500c is, for example, several μA to several tens of μA. Therefore, during normal operation, the taken in current does not exceed threshold current Ith.
[0224] The ON resistance of switch 522 is set to about several ohms. Therefore, for example, when switch 522 is ON, first connection point 47a is reliably grounded to GND4 via second connection point 47b. In this state, the resistance of the current path from device 90 to GND4 is sufficiently smaller than the resistance value of human body 10, and no current flows to the human body 10 side, making it safe. Furthermore, the structure allows static electricity to escape to the ground via the anti-static components of harvester device 500c.
[0225] Furthermore, harvester device 500c is equipped with inductor 510 described above. As a result, device 90 is D-grounded to GND4 even during normal operation. In this way, harvester device 500c uses two leakage prevention measures, inductor 510 and relay switch 520, in combination. This makes it possible to sufficiently improve the safety of harvester device 500c, and makes it possible to attach harvester device 500c to and use it safely even in devices that require D-grounding, for example.
[0226] 26, harvester device 500c is provided with inductor 510 and relay switch 520. The present invention is not limited to this, and a harvester device may be configured that is provided with only relay switch 520. In other words, a configuration in which inductor 510 of harvester device 500c is removed may be used. For example, if there is no limit to the ground resistance, by installing only the relay switch 520, it is possible to realize a state in which the device 90 is floating from GND4 during normal operation. In this case, current does not leak to GND4, and it is possible to fully utilize the performance of the electric field harvester. Of course, providing the relay switch 520 also provides a measure against leakage current.
[0227] Sixth Embodiment [Harvester device connected to GND terminal] 27 is a schematic diagram showing a configuration example of a harvester device according to a sixth embodiment. The harvester device 600 is an electric field harvester that is used by connecting to various connectors 94 provided on the equipment 90. The harvester device 600 is typically configured as a charging device, but is not limited to this, and may be configured as a device that directly drives a load with harvested energy, for example. In this embodiment, the harvester device 600 is connected to a device 90 that can be used without being grounded to GND4 (earth ground).
[0228] For example, devices 90 such as televisions, game consoles, desktop and notebook PCs that are not provided with a grounding cable prevent electrical leakage by covering the surface of the device 90 with resin. In devices 90 covered with resin in this way, there are few metal parts that can come into direct contact with the harvester device. Meanwhile, the device 90 is provided with various connectors 94, and each connector 94 basically includes a GND terminal 95. Therefore, in the harvester device 600, the GND terminal 95 of the connector 94 provided on the device 90 is used as the first antenna conductor 31. In this way, by connecting directly to the device 90 and actively using the GND of the device 90, it is possible to significantly improve the amount of power received compared to connecting to a part covered with resin.
[0229] 27 schematically illustrates a device 90 provided with multiple connectors 94. Each connector 94 includes a GND terminal 95 connected to the ground of the device 90 and a signal terminal 96 for transmitting and receiving electrical signals. 27 is provided with two USB (Universal Serial Bus) A-type female connectors as connectors 94. There are no other limitations on the format or type of connectors 94 provided in device 90, as long as device 90 is provided with at least one connector 94 used for communicating electrical signals.
[0230] For example, if the device 90 is a video device such as a television, various connectors may be used in addition to the USB connector described above, such as an HDMI (registered trademark) input connector, a D connector, an AV input connector, an RGB input connector, a PC audio input connector, a LAN connector, etc. In these connectors 94, a signal terminal 96 is provided so as to be shielded from, for example, a GND terminal 95. Normally, not all connectors 94 are used, so it is possible to connect harvester devices 600 to unused connectors 94 .
[0231] The lower part of Fig. 27 schematically illustrates an example configuration of a harvester device 600. The harvester device 600 has a connector connection unit 610, a harvester main body 620, and a GND connection cable 630. The connector connection unit 610 is a terminal for connecting to the connector 94 of the device. Here, a USB A-type male connector is used as the connector connection unit 610 so that it can be connected to the connector 94 provided on the device 90. Note that the connector connection unit 610 may be set appropriately to match the type of connector 94 on the device 90 side. Alternatively, the connector connection unit 610 may be configured to be interchangeable with different types of connectors.
[0232] The harvester main body 620 is a circuit provided with a rectifier circuit, a charging circuit, and the like (not shown). The harvester main body 620 is provided with a first connection point 47a and a second connection point 47b, which serve as input nodes of the rectifier circuit. The first connection point 47a is connected to the GND of the connector connection part 610. Therefore, when the harvester device 600 is connected to the connector 94 of the device 90, the first connection point 47a is connected to the GND terminal 95 of the device 90, and the ground of the device 90 functions as the first antenna conductor 31. On the other hand, the second connection point 47b is connected to a second antenna conductor 32 that is electrically independent from the first connection point 47a. Here, the second connection point 47b is connected to a GND connection cable 630. Therefore, the GND connection cable 630 functions as the second antenna conductor 32.
[0233] In this way, the harvester device 600 connects the connector 94 of the device 90 to its GND terminal 95, and uses the metal part of the device 90 as an antenna. That is, using a general-purpose connector 94, only the connection part (GND terminal 95) of the device 90 to the ground is connected to the harvester device 600. This configuration makes it possible to easily attach the harvester device 600 to the device 90, and to significantly increase the amount of power received without modifying the device 90 itself. Furthermore, by using a Type A USB connector that is adopted in various devices 90, the harvester device 600 can be used as is with devices 90 such as game consoles and PCs.
[0234] Furthermore, the antenna length of the second antenna conductor 32 may be short. That is, although the present embodiment uses the GND connection cable 630, it may also be configured with a meander line or a plate-shaped antenna configured on a substrate. To harvest greater energy, a longer antenna length is preferable. Furthermore, extending the antenna length allows the second antenna conductor 32 to be grounded (earthed). For these reasons, the example shown in FIG. 27 is configured so that the second antenna conductor 32 (second connection point 47b) can be grounded to GND 4 using the GND connection cable 630.
[0235] A metal clip 631 for connecting to an external earth wire or the like is provided at the tip of the GND connection cable 630. Note that a crimp terminal or the like may be provided instead of the metal clip 631. The GND connection cable 630 is also provided with a cable clip 632 for fixing other cables. By using the cable clip 632, the GND connection cable 630 can be routed together with the power cable or the like of the device 90. This allows the area around the cables to be tidy and looks neat.
[0236] For example, if the harvester device 600 is attached to a device 90 such as a television, it is possible to construct an environmental sensor that uses the power received by the harvester device 600 to transmit information such as temperature, humidity, and whether the television is on or off. This allows the temperature and other information at the actual location of the television to be known, enabling optimal control of room temperature in cooperation with an air conditioner, for example. It can also be used as a sensor to acquire data for managing air conditioning in factories with many monitors and PCs, for example.
[0237] Seventh Embodiment [Harvester device built into the equipment] Fig. 28 is a schematic diagram showing a configuration example of a device equipped with a harvester device according to the seventh embodiment. The configuration has been described above with reference to Fig. 27 in which the first connection point 47a is connected to a metal part serving as the ground of the device 90 using the GND terminal 95 of the connector 94 provided in the device 90, thereby utilizing the metal part as the first antenna conductor 31. Here, a harvester device 700 built into the device 90 in advance will be described. Harvester device 700 is typically configured as a charging device, but is not limited to this, and may be configured, for example, as a device that directly drives a load with harvested energy.
[0238] 28, a harvester device 700 is incorporated into a notebook PC (device 90). Harvester device 700 is provided with a first connection point 47a and a second connection point 47b, which serve as input nodes of a rectifier circuit (not shown). Furthermore, the power cable 97 of the device 90 includes a pair of power lines 98 for supplying power to the device 90, and an antenna line 99. The pair of power lines 98 are connected to the device 90 and supply power for driving the circuits within the device 90. The antenna line 99 is housed in the power cable 97 together with the pair of power lines 98, and is routed together with the power lines 98.
[0239] The first connection point 47a of the harvester device 700 is connected to a ground section 101 that serves as the ground of the device 90. The ground section 101 is a ground pattern provided on the device 90, a metal housing that constitutes the device 90, or the like. Therefore, the ground section 101 functions as a first antenna conductor 31. Furthermore, the second connection point 47b of the harvester device 700 is connected to an antenna line 99. Therefore, the antenna line 99 functions as a second antenna conductor 32.
[0240] 29 is a block diagram showing an example of the functional configuration of a device 90 equipped with a harvester device 700. Here, an AC adapter 102 is provided midway through a power cable 97, and a DC voltage is generated from an AC power supply. Hereinafter, of a pair of power lines 98 output from the AC adapter 102, the one with the higher voltage will be referred to as a positive power line 98a, and the one with the lower voltage will be referred to as a negative power line 98b. The device 90 equipped with the harvester device 700 also includes a connector 103 , a PMIC (Power Management IC) 104 , a battery 105 , a DC-DC converter 106 , and a load 107 .
[0241] The connector 103 is a three-terminal connector to which a positive power line 98a, a negative power line 98b, and an antenna line 99 are connected. The PMIC 104 is, for example, an IC that controls power used in the device 90, and is connected to the positive power line 98a and the negative power line 98b via the connector 103. The PMIC 104 controls charging of a battery 105 using power supplied from, for example, an AC adapter 102. The battery 105 is the main battery of the device 90, which is a notebook PC. The DC-DC converter 106 adjusts the voltage of the battery 105 and supplies it to a load 107. The load 107 is a CPU, a display, a speaker, various circuit modules (sensor module, communication module), etc., mounted on the device 90. As shown in FIG. 29 , the PMIC 104, the DC-DC converter 106, and the load 107 are each connected to a ground unit 101.
[0242] The first connection point 47 a of the harvester device 700 is connected to the ground part 101 , and the second connection point 47 b is connected to the antenna line 99 via the connector 94 . In this way, by adding the antenna wire 99 to the power cable 97, it becomes possible to configure the second antenna conductor 32 (antenna wire 99) to run together with the power wire 98, thereby improving the power receiving efficiency of the harvester device 700 built into the device 90. Note that the end of the antenna wire 99 opposite the second connection point 47b may be open or may be configured to be connectable to GND4.
[0243] With this configuration, it is possible to actively harvest leakage power during charging, for example, when charging the battery 105 of a device 90 such as a PC. In addition, the harvested power can be used to charge an internal clock, for example. This eliminates the need for a button battery or the like to power the internal clock, which helps reduce the environmental impact.
[0244] It is also possible to combine at least two of the features of the present technology described above. That is, the various features described in each embodiment may be arbitrarily combined without distinction between the embodiments. Furthermore, the various effects described above are merely examples and are not limiting, and other effects may also be achieved.
[0245] In this disclosure, the terms "same," "equal," "orthogonal," etc. are concepts that include "substantially the same," "substantially equal," "substantially orthogonal," etc. For example, they also include states that fall within a predetermined range (e.g., a range of ±10%) based on "completely the same," "completely equal," "completely orthogonal," etc.
[0246] The present technology can also be configured as follows. (1) An antenna unit having a dipole structure including a first antenna conductor electrically coupled to a target object including a metal body or a human body, and a second antenna conductor which is a conductor different from the first antenna conductor and is not connected to the target object; a rectifier circuit that rectifies the output of the antenna unit; a power storage unit that generates power based on the output of the rectifier circuit and charges a power storage element using the power; a charge control unit that controls the operation of the power storage unit in accordance with a voltage level of the power; A charging device comprising: (2) The charging device according to (1), The power storage unit is disposed between the rectifier circuit and the power storage element, and includes a first changeover switch that switches ON / OFF of a connection between the rectifier circuit and the power storage element. Charging device. (3) The charging device according to (2), The charging control unit detects the output voltage of the rectifier circuit as the voltage level of the power, and switches the first changeover switch ON / OFF in accordance with the detection result. Charging device. (4) The charging device according to (3), The charging control unit turns off the first changeover switch when the output voltage of the rectifier circuit exceeds a threshold voltage for the first changeover switch. Charging device. (5) A charging device according to any one of (2) to (4), The first changeover switch is either a MOSFET or a load switch. Charging device. (6) The charging device according to (1), The power storage unit has a second changeover switch that controls the supply of the power to the power storage element. Charging device. (7) The charging device according to (6), the power storage unit has a storage capacitor that stores the output of the rectifier circuit and is connected to the second selector switch; The charging control unit detects the voltage of the storage capacitor as the voltage level of the power, and switches the second changeover switch ON / OFF in accordance with the detection result. Charging device. (8) The charging device according to (7), The charging control unit turns on the second changeover switch when the voltage of the storage capacitor exceeds a threshold voltage for the second changeover switch. Charging device. (9) A charging device according to any one of (6) to (8), the charging control unit outputs a control signal to turn on the second selector switch; The power storage unit has an adjustment capacitor that is charged by the control signal. Charging device. (10) The charging device according to (9), the second changeover switch has a control terminal to which the control signal is input, The capacitance of the adjustment capacitor is set so that the voltage state of the control terminal is equivalent to the voltage state when the control signal is input until the voltage of the storage capacitor drops to a predetermined voltage. Charging device. (11) A charging device according to any one of (6) to (10), The second changeover switch is configured as a voltage adjusting element that adjusts the voltage of the power. Charging device. (12) The charging device according to (11), The voltage adjusting element is a linear regulator that adjusts the voltage of the storage capacitor and applies the adjusted voltage to the storage element. Charging device. (13) The charging device according to (11), The voltage adjustment element is a boost converter that boosts the voltage of the storage capacitor and applies the boosted voltage to the storage element. Charging device. (14) The charging device according to (13), the power storage unit has a storage capacitor that stores the output of the rectifier circuit and is connected to the boost converter; The capacity of the storage capacitor is set so as to be able to store power three times or more the power consumption of the boost converter. Charging device. (15) A charging device according to any one of (11) to (14), At least one of the voltage adjusting element and the charging control unit is driven using the output of the rectifier circuit as a power source. Charging device. (16) The charging device according to (1), the power storage unit includes a first storage capacitor and a second storage capacitor, each of which stores an output of the rectifier circuit, a third selector switch which selects one of the first and second storage capacitors to connect it to the rectifier circuit, and a fourth selector switch which selects one of the first and second storage capacitors to connect it to the power storage element, The charge control unit controls the third and fourth changeover switches so that the second storage capacitor is charged while the first storage capacitor supplies power to the storage element. Charging device. (17) The charging device according to (16), The charging control unit controls the third and fourth changeover switches so that the storage element and the first storage capacitor are connected and the rectifier circuit and the second storage capacitor are connected when the voltage of the first storage capacitor exceeds a threshold voltage, and controls the third and fourth changeover switches so that the storage element and the second storage capacitor are connected and the rectifier circuit and the first storage capacitor are connected when the voltage of the first storage capacitor is less than the threshold voltage. Charging device. (18) The charging device according to (16) or (17), the charging control unit outputs a control signal to control the third and fourth changeover switches; The power storage unit has a first adjustment capacitor that is charged by the control signal input to the third changeover switch, and a second adjustment capacitor that is charged by the control signal input to the fourth changeover switch. Charging device. (19) The charging device according to (18), The capacitances of the first and second adjustment capacitors are set so that the third changeover switch is switched before the fourth changeover switch is switched. Charging device. (20) A charging device according to any one of (1) to (19), The power storage unit has a backflow prevention diode that is provided between the rectifier circuit and the power storage element and that prevents a backflow of current from the power storage element. Charging device. (21) A charging device according to any one of (1) to (20), The charging control unit has an internal resistance of 2MΩ or more. Charging device. [Explanation of symbols]
[0247] 1...Target 2…Human body 3...Metal body 4...Daichi Ground 22, 222, 322, 422...Antenna section 23, 223, 323, 423…rectifier circuit 24, 224, 324, 424...Storage unit 25, 225, 325, 425... Energy storage element 26, 226, 326, 426...Charging control unit 31...First antenna conductor 32...Second antenna conductor 40...Conductor electrode 44...Board ground 80, 280, 380, 480a, 480b... Reverse current prevention diode 281...Linear regulator 381, 481...Step-up DC / DC converter 282, 382, 482a, 482b...Storage capacitors 283, 383, 483a, 483b...adjustment capacitors SW1: First switch SW2: Second selector switch SW3: Third switch SW4: Fourth switch 100, 100a, 100b, 110, 200, 300, 400...charging device 500, 500a, 500b, 500c, 501, 600, 700...Harvester device
Claims
1. An antenna unit having a dipole structure composed of a first antenna conductor and a second antenna conductor, which receives electric field energy of radio waves and quasi-electrostatic fields (near fields) in space; a rectifier circuit that rectifies the output of the antenna unit; a power storage unit that generates power based on the output of the rectifier circuit and charges a power storage element using the power; a charge control unit that controls the operation of the power storage unit in accordance with a voltage level of the power; Equipped with the first antenna conductor is a conductor for electrically coupling to a target object, including a metal object or a human body, that is insulated from the earth ground, and for using the target object as an antenna; The second antenna conductor is a conductor separate from the first antenna conductor and is not connected to the target object, and is connected to the earth ground by capacitive coupling or by using a cable. Charging device.
2. A charging device as described in claim 1, The connection path between the antenna unit and the rectifier circuit is capable of passing frequency components of both the frequency band of radio waves in the space and the frequency band of the quasi-electrostatic field (near field) in the space. Charging device.
3. A charging device according to claim 1, The rectifier circuit has a first input terminal connected to the first antenna conductor and a second input terminal that is paired with the first input terminal and is connected to the second antenna conductor, and rectifies the output of the antenna unit generated between the first input terminal and the second input terminal. Charging device.
4. A charging device according to claim 3, the first antenna conductor is directly connected to the first input terminal; The second antenna conductor is directly connected to the second input terminal. Charging device.
5. The charging device according to claim 1, The power storage unit is disposed between the rectifier circuit and the power storage element, and includes a first changeover switch that switches ON / OFF a connection between the rectifier circuit and the power storage element. Charging device.
6. The charging device according to claim 5, The charging control unit detects the output voltage of the rectifier circuit as the voltage level of the power, and switches the first changeover switch ON / OFF in accordance with the detection result. Charging device.
7. 7. The charging device according to claim 6, The charging control unit turns off the first changeover switch when the output voltage of the rectifier circuit exceeds a threshold voltage for the first changeover switch. Charging device.
8. The charging device according to claim 5, The first changeover switch is either a MOSFET or a load switch. Charging device.
9. The charging device according to claim 1, The power storage unit has a second changeover switch that controls the supply of the power to the power storage element. Charging device.
10. 10. The charging device according to claim 9, the power storage unit has a storage capacitor that stores the output of the rectifier circuit and is connected to the second selector switch; The charging control unit detects the voltage of the storage capacitor as the voltage level of the power, and switches the second changeover switch ON / OFF in accordance with the detection result. Charging device.
11. The charging device according to claim 10, The charging control unit turns on the second changeover switch when the voltage of the storage capacitor exceeds a threshold voltage for the second changeover switch. Charging device.
12. The charging device according to claim 10, the charging control unit outputs a control signal to turn on the second selector switch; The power storage unit has an adjustment capacitor that is charged by the control signal. Charging device.
13. 13. The charging device according to claim 12, the second changeover switch has a control terminal to which the control signal is input, The capacitance of the adjustment capacitor is set so that the voltage state of the control terminal is equivalent to the voltage state when the control signal is input until the voltage of the storage capacitor drops to a predetermined voltage. Charging device.
14. The charging device according to claim 10, The second changeover switch is configured as a voltage adjusting element that adjusts the voltage of the power. Charging device.
15. 15. The charging device according to claim 14, The voltage adjusting element is a linear regulator that adjusts the voltage of the storage capacitor and applies the adjusted voltage to the storage element. Charging device.
16. 15. The charging device according to claim 14, The voltage adjustment element is a boost converter that boosts the voltage of the storage capacitor and applies the boosted voltage to the storage element. Charging device.
17. 17. The charging device according to claim 16, the power storage unit has a storage capacitor that stores the output of the rectifier circuit and is connected to the boost converter; The capacity of the storage capacitor is set so as to be able to store power three times or more the power consumption of the boost converter. Charging device.
18. 15. The charging device according to claim 14, At least one of the voltage adjusting element and the charging control unit is driven using the output of the rectifier circuit as a power source. Charging device.
19. The charging device according to claim 1, the power storage unit includes a first storage capacitor and a second storage capacitor, each of which stores an output of the rectifier circuit; a third selector switch which selects one of the first and second storage capacitors to connect it to the rectifier circuit; and a fourth selector switch which selects one of the first and second storage capacitors to connect it to the power storage element; The charge control unit controls the third and fourth changeover switches so that the second storage capacitor is charged while the first storage capacitor supplies power to the storage element. Charging device.
20. 20. The charging device of claim 19, The charging control unit controls the third and fourth changeover switches so that the storage element and the first storage capacitor are connected and the rectifier circuit and the second storage capacitor are connected when the voltage of the first storage capacitor exceeds a threshold voltage, and controls the third and fourth changeover switches so that the storage element and the second storage capacitor are connected and the rectifier circuit and the first storage capacitor are connected when the voltage of the first storage capacitor is less than the threshold voltage. Charging device.
21. 20. The charging device of claim 19, the charging control unit outputs a control signal for controlling the third and fourth changeover switches; The power storage unit has a first adjustment capacitor that is charged by the control signal input to the third changeover switch, and a second adjustment capacitor that is charged by the control signal input to the fourth changeover switch. Charging device.
22. 22. The charging device of claim 21, The capacitances of the first and second adjustment capacitors are set so that the third changeover switch is switched before the fourth changeover switch is switched. Charging device.
23. The charging device according to claim 1, The power storage unit has a backflow prevention diode that is provided between the rectifier circuit and the power storage element and that prevents a backflow of current from the power storage element. Charging device.
24. The charging device according to claim 1, The charging control unit has an internal resistance of 2 MΩ or more. Charging device.
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