Short-range wireless communication devices
By separating and optimizing impedance settings for power receiving and communication circuits, the device achieves efficient parallel operation of wireless communication and power reception, addressing the impedance trade-offs in shared antenna configurations.
Patent Information
- Application Number
- JP2023538436
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-07-27
- Filing Date
- 2022-07-15
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2042-07-15
AI Technical Summary
Existing short-range wireless communication devices face challenges in achieving both high power receiving efficiency and communication performance simultaneously due to the impedance trade-offs in shared antenna configurations.
The device includes separate receiving and power receiving circuits with distinct impedance settings, allowing parallel operation of wireless communication and power reception by configuring the output impedances differently for power receiving and communication frequencies.
This configuration enables efficient power reception and communication performance by stabilizing current supply to the load circuit and enhancing load modulation, achieving both high power receiving and communication characteristics.
Smart Images

Figure 0007800549000001 
Figure 0007800549000002 
Figure 0007800549000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a short-range wireless communication terminal that performs short-range wireless reception and wireless power reception with respect to a predetermined short-range wireless transmission device. [Background technology]
[0002] An RFID device having a power receiving function is described in Patent Document 1. The RFID device of Patent Document 1 shares a communication antenna and a power receiving coil (a shared antenna).
[0003] The RFID device of Patent Document 1 includes a switch for switching between a power receiving line and a communication line, and the RFID device of Patent Document 1 switches between power receiving and communication by controlling this switch. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] U.S. Patent No. 10,176,415 Summary of the Invention [Problem to be solved by the invention]
[0005] However, with the configuration described in Patent Document 1, it was difficult to achieve both power receiving efficiency and communication performance. That is, in the configuration described in Patent Document 1, if the impedance of the power receiving / receiving circuit in the circuit including the shared antenna is reduced, the power receiving performance can be maintained at a predetermined level, but the load modulation level of communication decreases. On the other hand, if the impedance of the power receiving / receiving circuit is increased, the load modulation level of communication can be improved, but the power receiving performance decreases.
[0006] Therefore, an object of the present invention is to provide a short-range wireless communication terminal that realizes operation of both a receiving circuit and a wireless power receiving circuit for a specified short-range wireless transmitting device, and that can perform wireless communication and wireless power receiving in parallel and efficiently. [Means for solving the problem]
[0007] A short-range wireless communication device with a power receiving function of the present invention includes a receiving coil, a receiving antenna, a receiving resonant circuit, a receiving circuit, a load circuit, and a wireless communication circuit. The receiving coil receives power using short-range wireless communication. The receiving antenna receives a wireless communication signal using short-range wireless communication. The receiving resonant circuit forms a resonant circuit with the receiving coil and one or more resonant capacitors. The receiving circuit includes a receiving antenna. The load circuit is electrically connected to the receiving resonant circuit. The wireless communication circuit is electrically connected to the receiving circuit. The receiving resonant circuit supplies a current received using the receiving coil to the load circuit. The receiving circuit supplies a voltage received using the receiving antenna to the wireless communication circuit.
[0008] At a communication frequency for wireless communication, the output impedance for wireless communication from the receiving circuit to the wireless communication circuit is larger than the output impedance for power reception from the power receiving resonant circuit to the load circuit. At a power receiving frequency for power reception, the output impedance for power reception is smaller than the output impedance for wireless communication.
[0009] In this configuration, the output impedance of the power receiving circuit is smaller than the output impedance of the receiving circuit at the power receiving frequency, so that the current from the received power is stably supplied to the load circuit at a predetermined level or higher.
[0010] On the other hand, because the output impedance of the receiving circuit is greater than the output impedance of the power receiving circuit at the communication frequency, the Q of the resonance at the communication frequency of the receiving circuit and wireless communication circuit can be set to a large value, which increases the load modulation level due to the switching of the resonance state performed by the wireless communication circuit. [Effects of the Invention]
[0011] According to this invention, it is possible to provide a short-range wireless communication terminal that realizes operation of both a receiving circuit and a wireless power receiving circuit for a specified short-range wireless transmitting device, and that can perform wireless communication and wireless power receiving in parallel and efficiently. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a functional block diagram showing the configuration of a short-range wireless communication device according to the first embodiment. [Figure 2] FIG. 2 is a functional block diagram showing the configuration of the short-range wireless communication system according to the first embodiment. [Figure 3] 3(A) and 3(B) are diagrams explaining the concept of communication using a short-range wireless communication IC. [Figure 4] FIG. 4 is a conceptual diagram showing the change in the Q of resonance. [Figure 5] 5(A) and 5(B) are waveform diagrams showing examples of input voltages. [Figure 6] FIG. 6 is a graph showing an example of frequency characteristics of output impedance. [Figure 7] FIG. 7 is a functional block diagram showing an example of the configuration of a short-range wireless communication device including an example of a load circuit. [Figure 8] FIG. 8 is a side cross-sectional view showing an example of the structure of a short-range wireless communication device of the present invention. [Figure 9] FIG. 9 is a functional block diagram showing the configuration of a short-range wireless communication device according to the second embodiment. [Figure 10] FIG. 10 is a functional block diagram showing the configuration of a short-range wireless communication device according to the third embodiment. [Figure 11] FIG. 11 is a functional block diagram showing the configuration of a short-range wireless communication device according to the fourth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0013] [First embodiment] A short-range wireless communication device according to a first embodiment of the present invention will be described with reference to the drawings. Fig. 1 is a functional block diagram showing the configuration of the short-range wireless communication device according to the first embodiment.
[0014] 1, the short-range wireless communication device 10 includes a receiving antenna 21, a receiving coil 22, a capacitor 32, a short-range wireless communication IC 40, a rectifier circuit 50, and a load circuit 60. The capacitor 32 corresponds to the "resonant capacitor" of the present invention, and the short-range wireless communication IC 40 corresponds to the "wireless communication circuit" of the present invention. Furthermore, the component consisting of the rectifier circuit 50 and the load circuit 60 corresponds to the "load circuit" of the present invention.
[0015] The receiving antenna 21 is, for example, a loop antenna. Both ends of the receiving antenna 21 are connected to the short-range wireless communication IC 40. The receiving antenna 21 constitutes a receiving circuit 101. The impedance of the output end from the receiving circuit 101 to the short-range wireless communication IC 40 is the output impedance Zo101 of the receiving circuit 101.
[0016] The power receiving coil 22 is, for example, a loop coil. Both ends of the power receiving coil 22 are connected to the rectifier circuit 50. The power receiving coil 22 and the receiving antenna 21 are formed as separate bodies.
[0017] The capacitor 32 is connected in series between one end of the power receiving coil 22 and the rectifier circuit 50. The power receiving coil 22 and the capacitor 32 constitute a power receiving resonant circuit. The resonant frequency of the power receiving resonant circuit is set to be the same as the frequency of an alternating magnetic field (for example, 13.56 MHz in the ISM band), which will be described later. The power receiving resonant circuit constitutes the power receiving circuit 102. The impedance of the output end from the power receiving circuit 102 to the rectifier circuit 50 is the output impedance Zo102 of the power receiving circuit 102.
[0018] The short-range wireless communication IC 40 and the rectifier circuit 50 are connected to a load circuit 60 .
[0019] The short-range wireless communication IC 40 is, for example, called NFCIC, and performs communication using the receiving antenna 21.
[0020] The rectifier circuit 50 rectifies the current and voltage of AC of a predetermined frequency received by the power receiving coil 22, converts them into DC, and outputs them to the load circuit 60. The load circuit 60 performs a predetermined circuit operation based on the output voltage and output current of the rectifier circuit 50. An example of a specific circuit operation of the load circuit 60 will be described later.
[0021] 2 is a functional block diagram showing the configuration of a short-range wireless communication system according to the first embodiment. As shown in FIG. 2, the short-range wireless communication system 1 includes a transmitting device 90 and a short-range wireless communication device .
[0022] The transmitting device 90 includes a voltage conversion circuit 91, a transmission control circuit 92, and a coil 901. The voltage conversion circuit 91 converts the voltage level of the input voltage from an external power supply 99 and supplies the converted voltage to the transmission control circuit 92. The transmission control circuit 92 converts the DC voltage supplied from the voltage conversion circuit 91 into an AC voltage of a predetermined frequency and applies it to the coil 901. In this case, the predetermined frequency is, for example, 13.56 MHz in the ISM band. Note that this frequency is just an example, and other frequencies may be used.
[0023] The coil 901 is, for example, a loop coil, and passes an alternating current corresponding to the applied alternating voltage through the coil 901, generating an alternating magnetic field.
[0024] The short-range wireless communication device 10 is arranged so that the receiving antenna 21 and the receiving coil 22 are coupled to the alternating magnetic field generated by the coil 901. As a result, the receiving antenna 21 and the receiving coil 22 are electromagnetically induced with the alternating magnetic field generated by the coil 901, generating an alternating current.
[0025] The current generated in the receiving antenna 21 is output to the short-range wireless communication IC 40. The current generated in the receiving coil 22 is output to the rectifier circuit 50.
[0026] Here, the resonant frequency of the series resonant circuit of power receiving coil 22 and capacitor 32 is set to the frequency of the alternating magnetic field (for example, 13.56 MHz in the ISM band) as described above. This allows a magnetic resonance state to be achieved using power receiving coil 22 and coil 901, and a receiving current is supplied to rectifier circuit 50 with low loss. Therefore, efficient power reception with low loss is possible.
[0027] On the other hand, the short-range wireless communication IC 40 can switch its own impedance state, thereby switching the resonance Q of the circuit formed by the receiving antenna 21 and the short-range wireless communication IC 40.
[0028] Figures 3(A) and 3(B) are diagrams explaining the concept of communication using a short-range wireless communication IC. Figure 3(A) shows a state where the Q of the resonance is high, and Figure 3(B) shows a state where the Q of the resonance is low. Figure 4 is a conceptual diagram showing the change in the Q of the resonance, with the horizontal axis representing frequency and the vertical axis representing the frequency of the receiving circuit. Applied voltage Represents a value.
[0029] As shown in Figures 3(A) and 3(B), the short-range wireless communication IC40 includes a parallel circuit of a capacitor C40 and a switch SW40. Note that the short-range wireless communication IC40 is not limited to this configuration and may include other circuit configurations, but includes the configuration shown in Figures 3(A) and 3(B) as a minimum configuration for adjusting the Q of resonance.
[0030] As shown in FIG. 3A, the short-range wireless communication IC40 sets the switch SW40 to an open state (off state) as a first state. In this state, the short-range wireless communication IC40 forms a parallel circuit with the open resistance R40off of the switch SW40 and the capacitor C40. Because the open resistance R40off is very large, the current flowing from the receiving antenna 21 to the short-range wireless communication IC40 flows to the capacitor C40 of the short-range wireless communication IC40. This forms a resonant circuit by the receiving antenna 21 and the capacitor C40. Since the resonant circuit is formed only by the receiving antenna 21 and the capacitor C40, the Q of the resonance becomes high (see the solid line in FIG. 4).
[0031] As shown in FIG. 3B, the short-range wireless communication IC40 switches the switch SW40 to a conductive state (on state) as the second state. In this state, the short-range wireless communication IC40 forms a parallel circuit with the conductive resistance R40on of the switch SW40 and the capacitor C40. Because the conductive resistance R40on is very small, the current flowing from the receiving antenna 21 to the short-range wireless communication IC40 mainly flows through the conductive resistance R40on of the short-range wireless communication IC40. Therefore, a resonant circuit consisting only of the receiving antenna 21 and the capacitor C40 cannot be realized, and the Q of the resonance becomes low (see the dashed line in FIG. 4). As a result, the Q of the resonance of the circuit consisting of the receiving antenna 21 and the short-range wireless communication IC40 can be switched.
[0032] By switching the Q of the resonance, the short-range wireless communication device 10 realizes load modulation. That is, the short-range wireless communication device 10 switches the coupling state between the receiving antenna 21 and the coil 901 by switching the Q of the resonance.
[0033] The transmission control circuit 92 of the transmitting device 90 includes a voltage monitoring unit (not shown). The voltage monitoring unit monitors the input voltage of the coil 901. As described above, when the coupling state between the receiving antenna 21 and the coil 901 changes due to switching of the resonance Q by the short-range wireless communication device 10, the input voltage of the coil 901 changes in response to this change.
[0034] 5(A) and 5(B) are waveform diagrams showing examples of input voltages. Fig. 5(A) shows the case of the present invention, and Fig. 5(B) shows the case of a comparative example. The comparative example is, for example, an example in which the parameters of the receiving circuit 101 specific to the present invention are not set.
[0035] When switch SW40 is in the open state (off state), the Q of the resonance is high, the receiving antenna 21 and coil 901 are in a resonant state, and the amplitude of the input voltage Voff is large, as shown in FIG. 5(A). When switch SW40 is in the conductive state (on state), the Q of the resonance is low, the degree of coupling between the receiving antenna 21 and coil 901 is reduced, the current flowing through coil 901 is reduced, and the amplitude of the input voltage Von is small. In this way, the input voltage to coil 901 changes depending on the change between the open state and the conductive state of switch SW40, i.e., the state transition. The voltage monitoring unit detects this change in the input voltage.
[0036] When performing data communication with the transmitting device 90, the short-range wireless communication device 10 makes the bits of the communication data correspond to changes in the Q of the resonance. The transmitting device 90 can demodulate the bits of the communication data by detecting changes in the input voltage of the coil 901.
[0037] As a result, the short-range wireless communication device 10 and the transmitter 90 can transmit and receive communication data, that is, realize wireless communication, by utilizing electromagnetic induction between the coil 901 and the receiver antenna 21.
[0038] In such a short-range wireless communication device 10 and short-range wireless communication system 1, the short-range wireless communication device 10 further has the following features.
[0039] At the frequencies of the alternating magnetic field described above, in other words, the power receiving frequency fp and the communication frequency fc, the output impedance Zo102 of the power receiving circuit 102 is smaller than the output impedance Zo101 of the power receiving circuit 101. Conversely, the output impedance Zo101 of the power receiving circuit 101 is larger than the output impedance Zo102 of the power receiving circuit 102.
[0040] More specifically, at the power receiving frequency fp, the output impedance Zo102 of the power receiving circuit 102 is smaller than the output impedance Zo101 of the receiving circuit 101. Furthermore, at the communication frequency fc, the output impedance Zo101 of the receiving circuit 101 is larger than the output impedance Zo102 of the power receiving circuit 102.
[0041] FIG. 6 is a graph showing an example of frequency characteristics of output impedance.
[0042] As described above, the receiving circuit 101 is configured with the receiving antenna 21. Therefore, as shown in Fig. 6, the output impedance Zo101 of the receiving circuit 101 increases as the frequency increases.
[0043] The power receiving circuit 102 is configured as a series resonant circuit of the power receiving coil 22 and capacitor 32, and the resonant frequency is set to match the communication frequency fc and the power receiving frequency fp. Therefore, as shown in Fig. 6, the output impedance Zo102 of the power receiving circuit 102 changes to be minimal at the power receiving frequency fp and the communication frequency fc.
[0044] Here, by appropriately setting the capacitance of the capacitor 32, the output impedance Zo102 of the power receiving circuit 102 can be made smaller than the output impedance Zo101 of the receiving circuit 101 at the communication frequency fc and the power receiving frequency fp, as shown in FIG.
[0045] With this configuration, the current output from the power receiving coil 22 at the power receiving frequency fp flows as a power receiving current to the power receiving circuit 102 with high efficiency and is supplied to the rectifier circuit 50.
[0046] This reduces loss in the power receiving circuit 102, and the received current is supplied with low loss to the rectifier circuit 50. Therefore, the short-range wireless communication device 10 can achieve excellent power receiving characteristics.
[0047] Furthermore, the output impedance Zo101 of the receiving circuit 101 can be set to a desired value, not as small as the output impedance Zo102 of the power receiving circuit 102. This allows the resonance state at the communication frequency fc to be set appropriately.
[0048] More specifically, the inductance of the receiving antenna 21 can be set so as to obtain a high Q of resonance at the communication frequency fc according to the capacitor of the short-range wireless communication IC 40, etc. As a result, the short-range wireless communication device 10 can appropriately set a state in which the Q of resonance between the receiving circuit 101 and the short-range wireless communication IC 40 at the communication frequency fc is high and a state in which the Q of resonance is low, as shown in FIG. 4. Therefore, the short-range wireless communication device 10 can achieve excellent communication characteristics. More specifically, the short-range wireless communication device 10 can achieve a high load modulation level.
[0049] In this case, the short-range wireless communication device 10 appropriately sets the inductance of the receiving antenna 21 so that the rate of change in impedance of the receiving circuit 101 during load modulation is preferably 30% or more, and more preferably about 50%, thereby enabling the short-range wireless communication device 10 to achieve better communication characteristics.
[0050] In this way, the short-range wireless communication device 10 has the above-described configuration, and thus can use the receiving antenna 21 and the power receiving coil 22 to perform power reception and reception (communication) in parallel.
[0051] In this case, in the short-range wireless communication device 10, the receiving antenna 21 and the receiving coil 22 are provided separately, and the receiving circuit 101 and the receiving circuit 102 are configured as different circuits. The receiving circuit 101 and the receiving circuit 102 are not electrically connected.
[0052] This allows the short-range wireless communication device 10 to set the power receiving characteristics and the communication characteristics separately. In other words, even if the configuration of the receiving circuit 101 is determined to obtain excellent communication characteristics, the power receiving circuit 102 is not affected thereby. On the other hand, even if the configuration of the power receiving circuit 102 is determined to obtain excellent power receiving characteristics, the receiving circuit 101 is not affected thereby.
[0053] Therefore, the short-range wireless communication device 10 can achieve both excellent power receiving characteristics and excellent communication characteristics.
[0054] (An example of application of the load circuit 60) 7 is a functional block diagram showing an example of the configuration of a short-range wireless communication device including an example of a load circuit. In FIG. 7, the components other than the load circuit 60 in the short-range wireless communication device 10 have been described above, and further description of these components will be omitted.
[0055] As shown in FIG. 7, the load circuit 60 includes a voltage conversion circuit 61, a charging circuit 62, a secondary battery 63, a voltage conversion circuit 64, a charging control circuit 620, and a discharging control circuit 640.
[0056] The voltage conversion circuit 61 converts the voltage level of the output voltage of the rectifier circuit 50. The voltage conversion circuit 61 outputs the converted voltage to the charging circuit 62.
[0057] The charging circuit 62 generates a charging voltage from the DC voltage from the voltage conversion circuit 61 and charges the secondary battery 63. At this time, the charging circuit 62 outputs the charging voltage in response to a charging control signal from the charging control circuit 620. The charging control circuit 620 generates the charging control signal by referring to a charging instruction from the short-range wireless communication IC 40, for example. The charging circuit 62 can also output the charging voltage to the voltage conversion circuit 64.
[0058] The voltage conversion circuit 64 converts the voltage level of the output voltage from the charging circuit 62 or the secondary battery 63 into a voltage level for the short-range wireless communication IC 40. The voltage conversion circuit 64 supplies the converted voltage to the short-range wireless communication IC 40. At this time, the voltage conversion circuit 64 supplies the converted voltage to the short-range wireless communication IC 40 in accordance with a discharge control signal (power supply control signal) from the discharge control circuit 640. The discharge control circuit 640 generates the discharge control signal (power supply control signal) by referring to, for example, a charge instruction from the short-range wireless communication IC 40 and a monitoring state of the voltage level at a predetermined point in the load circuit 60.
[0059] (An example of the structure of the short-range wireless communication device 10) Fig. 8 is a side cross-sectional view showing an example of the structure of a short-range wireless communication device of the present invention. As shown in Fig. 8, short-range wireless communication device 10 includes support substrate 11, magnetic sheet 12, receiving antenna 21, receiving coil 22, electronic component 191, and electronic component 192. Note that, although Fig. 8 shows one electronic component 191 and one electronic component 192, there are enough electronic components 191 and 192 to configure the circuit of short-range wireless communication device 10.
[0060] The support substrate 11 is a flat plate or a flat film, and is mainly made of an insulating material, on which a conductor pattern for realizing the circuitry of the near-field wireless communication device 10 is formed.
[0061] The receiving antenna 21 and the receiving coil 22 are configured by a wound linear conductor pattern having a predetermined number of turns. The receiving antenna 21 and the receiving coil 22 are formed on one main surface of the support substrate 11. The magnetic sheet 12 is arranged on one main surface of the support substrate 11 so as to include, for example, the areas where the receiving antenna 21 and the receiving coil 22 are formed.
[0062] Electronic component 191 is an electronic component having solder bumps formed on its mounting surface. Electronic component 192 is an electronic component having terminal electrodes on both ends of its housing. Electronic component 191 is, for example, a short-range wireless communication IC 40, an IC of rectifier circuit 50, or an IC of load circuit 60. Electronic component 192 is, for example, a capacitor 32, various passive elements of rectifier circuit 50, or various passive elements of load circuit 60.
[0063] Electronic components 191 and 192 are mounted on one main surface of support base 11. Note that at least a portion of electronic components 191 and 192 may be mounted on the other main surface of support base 11. Furthermore, receiving antenna 21 and receiving coil 22 may be individually disposed on one main surface and the other main surface, respectively.
[0064] With this configuration, the short-range wireless communication device 10 can be formed thin. Furthermore, by providing the magnetic sheet 12, the magnetic flux density of the receiving antenna 21 and the receiving coil 22 can be increased. This allows the short-range wireless communication device 10 to increase the receiving energy and communication energy. Therefore, the short-range wireless communication device 10 can improve the power receiving efficiency and communication characteristics.
[0065] The load circuit 60 does not necessarily have to include the secondary battery 63. However, by including the secondary battery 63, the short-range wireless communication device 10 can store energy and achieve stable operation of the short-range wireless communication IC 40, the load circuit 60, and the like.
[0066] Furthermore, the receiving antenna 21 and the power receiving coil 22 may be arranged so as to be at least magnetically coupled. Even if the receiving antenna 21 and the power receiving coil 22 are magnetically coupled, the circuit characteristics (output impedance Zo101 and output impedance Zo102) of the receiving circuit 101 and the power receiving circuit 102 can be appropriately set by providing the configuration of the present invention. Therefore, even if the receiving antenna 21 and the power receiving coil 22 are magnetically coupled, the short-range wireless communication device 10 can achieve both excellent power receiving characteristics and excellent communication characteristics.
[0067] Furthermore, by arranging the receiving antenna 21 and the power receiving coil 22 in a positional relationship that allows them to be magnetically coupled, that is, by arranging the receiving antenna 21 and the power receiving coil 22 closely, it is possible to more optimally and reliably achieve a magnetic field coupling state with one coil 901 on the power transmitting / receiving side. This allows the near field communication device 10 to more reliably and efficiently perform power reception and reception. Furthermore, since the receiving antenna 21 and the power receiving coil 22 can be arranged closely, the shape of the near field communication device 10 can be made smaller in plan view.
[0068] [Second embodiment] A short-range wireless communication device according to a second embodiment of the present invention will be described with reference to Fig. 9. Fig. 9 is a functional block diagram showing the configuration of the short-range wireless communication device according to the second embodiment.
[0069] 9, the short-range wireless communication device 10A according to the second embodiment differs from the short-range wireless communication device 10 according to the first embodiment in that it includes a receiving circuit 101A and a power receiving circuit 102A. Other configurations of the short-range wireless communication device 10A are the same as those of the short-range wireless communication device 10, and therefore, a description of similar parts will be omitted.
[0070] The receiving circuit 101A includes a receiving antenna 21 and a capacitor 331. The receiving antenna 21 and the capacitor 331 are connected in parallel. The receiving antenna 21 and the capacitor 331 form a parallel resonant circuit. The resonant frequency of this parallel resonant circuit is set to be the same as the communication frequency fc.
[0071] The power receiving circuit 102A includes a power receiving coil 22, a capacitor 32, and a capacitor 332. The power receiving coil 22 and the capacitor 332 are connected in parallel. The capacitor 32 is connected in series to the parallel circuit of the power receiving coil 22 and the capacitor 332. The power receiving coil 22, the capacitor 32, and the capacitor 332 form a parallel-series resonant circuit. The resonant frequency of this parallel-series resonant circuit is set to be the same as the power receiving frequency fp.
[0072] In this case, the output impedance Zo101A of the receiving circuit 101A at the communication frequency fc is set to be larger than the output impedance Zo102A of the power receiving circuit 102A. Furthermore, the output impedance Zo102A of the power receiving circuit 102A at the power receiving frequency fp is set to be smaller than the output impedance Zo101A of the receiving circuit 101A.
[0073] With this configuration, the short-range wireless communication device 10A can individually and appropriately set the output impedance Zo101A of the receiving circuit 101A and the output impedance Zo102A of the power receiving circuit 102A.
[0074] This allows the short-range wireless communication device 10A to perform power reception and communication in parallel, and allows the power reception characteristics and communication characteristics to be set separately, thereby achieving both excellent power reception characteristics and excellent communication characteristics.
[0075] Furthermore, by providing the capacitor 331 in the short-range wireless communication device 10A, impedance matching between the receiving antenna 21 and the short-range wireless communication IC 40 can be achieved without changing the inductance of the receiving antenna 21 or the capacitance of the short-range wireless communication IC 40. This allows the short-range wireless communication device 10A to more reliably achieve a high resonance Q used in communication while suppressing transmission loss.
[0076] By providing the capacitor 332, the short-range wireless communication device 10A can achieve a resonance state at the power receiving frequency fp without changing the inductance of the power receiving coil 22. As a result, for example, the short-range wireless communication device 10A can achieve a resonance state at the power receiving frequency fp even if there are restrictions on the shape and inductance of the power receiving coil 22.
[0077] [Third embodiment] A short-range wireless communication device according to a third embodiment of the present invention will be described with reference to Fig. 10. Fig. 10 is a functional block diagram showing the configuration of the short-range wireless communication device according to the third embodiment.
[0078] 10, the near field communication device 10B according to the third embodiment differs from the near field communication device 10A according to the second embodiment in that it includes a receiver circuit 101B and a power receiving circuit 102B. More specifically, the near field communication device 10B differs in that the capacitor 32 in the power receiving circuit 102A of the near field communication device 10A is omitted, and the capacitance of the capacitor 331 in the receiver circuit 101B and the capacitance of the capacitor 332 in the power receiving circuit 102B are appropriately set as described below. The other configuration of the near field communication device 10B is the same as that of the near field communication device 10, and therefore a description of similar parts will be omitted.
[0079] The receiving circuit 101B includes a receiving antenna 21 and a capacitor 331. The receiving antenna 21 and the capacitor 331 are connected in parallel. The receiving antenna 21 and the capacitor 331 form a parallel resonant circuit. The resonant frequency of this parallel resonant circuit is set to be the same as the communication frequency fc.
[0080] The power receiving circuit 102B includes a power receiving coil 22 and a capacitor 332. The power receiving coil 22 and the capacitor 332 are connected in parallel. The power receiving coil 22 and the capacitor 332 form a parallel resonant circuit. The resonant frequency of this parallel resonant circuit is set to be the same as the power receiving frequency fp.
[0081] In this case, the output impedance Zo101B of the receiving circuit 101B at the communication frequency fc is set to be larger than the output impedance Zo102B of the power receiving circuit 102B. Furthermore, the output impedance Zo102A of the power receiving circuit 102B at the power receiving frequency fp is set to be smaller than the output impedance Zo101B of the receiving circuit 101B.
[0082] With this configuration, the short-range wireless communication device 10B can individually and appropriately set the output impedance Zo101B of the receiving circuit 101B and the output impedance Zo102B of the power receiving circuit 102B.
[0083] This allows the short-range wireless communication device 10B to perform power reception and communication in parallel, and allows the power reception characteristics and communication characteristics to be set separately, thereby achieving both excellent power reception characteristics and excellent communication characteristics.
[0084] Furthermore, similar to the near field communication device 10A, the near field communication device 10B can more reliably achieve a high resonance Q used for communication while suppressing transmission loss. Furthermore, similar to the near field communication device 10A, the near field communication device 10B can achieve a resonant state at the power receiving frequency fp even if there are restrictions on the shape and inductance of the power receiving coil 22.
[0085] Furthermore, short-range wireless communication device 10B differs from short-range wireless communication device 10A in that it does not include capacitor 32. Therefore, short-range wireless communication device 10B can further reduce the circuit configuration, thereby achieving a simpler configuration and smaller size.
[0086] [Fourth embodiment] A short-range wireless communication device according to a fourth embodiment of the present invention will be described with reference to the drawing Fig. 11. Fig. 11 is a functional block diagram showing the configuration of the short-range wireless communication device according to the fourth embodiment.
[0087] 11, the near field communication device 10C according to the fourth embodiment differs from the near field communication device 10A according to the second embodiment in that it includes a receiving circuit 101C, a power receiving circuit 102C, and a control circuit 70. Other configurations of the near field communication device 10C are the same as those of the near field communication device 10, and therefore, description of similar parts will be omitted.
[0088] The receiving circuit 101C includes a receiving antenna 21 and a capacitor 331. The receiving antenna 21 and the capacitor 331 are connected in parallel. The receiving antenna 21 and the capacitor 331 form a parallel resonant circuit. The resonant frequency of this parallel resonant circuit is set to be the same as the communication frequency fc.
[0089] The power receiving circuit 102C includes a power receiving coil 22, a capacitor 332, a capacitor 32, and a switch element 392.
[0090] The power receiving coil 22 and the capacitor 332 are connected in parallel. The capacitor 32 is connected in series to the parallel circuit of the power receiving coil 22 and the capacitor 332. The power receiving coil 22, the capacitor 32, and the capacitor 332 form a parallel-series resonant circuit.
[0091] The switch element 392 is connected in parallel to the capacitor 32. The switch element 392 is controlled to be turned on and off by a control signal from the control circuit .
[0092] For example, if the switch element 392 is an FET, the terminal of the capacitor 32 on the power receiving coil 22 side and the drain of the switch element 392 are connected, and the terminal of the capacitor 32 on the rectifier circuit 50 side and the source of the switch element 392 are connected.
[0093] When the switch element 392 is controlled to be turned off, the drain and source of the switch element 392 are open. In this case, the power receiving circuit 102C is configured by a parallel-series resonant circuit of the power receiving coil 22, the capacitor 32, and the capacitor 332. The resonant frequency fp1 of this parallel-series resonant circuit is set to overlap with the frequency band of the alternating magnetic field to which the power receiving coil 22 is coupled.
[0094] On the other hand, when the switch element 392 is controlled to be on, the drain and source of the switch element 392 are conductive. In this case, the power receiving circuit 102C is configured by a parallel resonant circuit of the power receiving coil 22 and the capacitor 332. The resonant frequency fp2 of this parallel resonant circuit is different from the resonant frequency fp1 of the parallel-series resonant circuit and is set to overlap with the frequency band of the alternating magnetic field to which the power receiving coil 22 is coupled.
[0095] In this case, the output impedance Zo101C of the receiving circuit 101C at the communication frequency fc is set to be larger than the output impedance Zo102C of the power receiving circuit 102C. Furthermore, the output impedance Zo102C of the power receiving circuit 102C at the resonance frequencies fp1 and fp2 is set to be smaller than the output impedance Zo101C of the receiving circuit 101C.
[0096] With this configuration, the short-range wireless communication device 10C can individually and appropriately set the output impedance Zo101C of the receiving circuit 101C and the output impedance Zo102C of the power receiving circuit 102C. This allows the short-range wireless communication device 10C to perform power reception and communication in parallel, and can individually set the power reception characteristics and the communication characteristics, thereby achieving both excellent power reception characteristics and excellent communication characteristics.
[0097] Furthermore, the short-range wireless communication device 10C can set a plurality of resonance frequencies for the power receiving circuit 102C by controlling the switch element 392. This allows the short-range wireless communication device 10C to adapt to changes in the coupling state with the transmitter 90, for example. Therefore, the short-range wireless communication device 10C can more reliably achieve a resonance state during power reception, and can achieve better power receiving characteristics.
[0098] In the near field communication device 10C, the power receiving circuit 102C and the receiving circuit 101C are separate circuits that are not electrically connected. As a result, even if the power receiving circuit 102C is adjusted, the output impedance Zo101C of the receiving circuit 101C does not change. Therefore, the near field communication device 10C can maintain excellent communication characteristics.
[0099] In the configurations of the above-described embodiments, the communication frequency fc and the power receiving frequency fp are the same. However, even if the communication frequency fc and the power receiving frequency fp are different, the above-described advantageous effects can be achieved as long as the magnitude relationship between the output impedance of the receiving circuit and the output impedance of the power receiving circuit is maintained. However, when the communication frequency fc and the power receiving frequency fp are different, it is preferable that the communication frequency band including the communication frequency fc and the power receiving frequency band including the power receiving frequency fp at least partially overlap. [Explanation of symbols]
[0100] 1: Short-range wireless communication system 10, 10A, 10B, 10C: Near field wireless communication device 11: Support base material 12: Magnetic sheet 21: Receiving antenna 22: Receiving coil 32, 331, 332: Capacitors 40: Near field wireless communication IC 50: Rectifier circuit 60:Load circuit 61: Voltage conversion circuit 62: Charging circuit 63: Secondary battery 64: Voltage conversion circuit 70: Control circuit 90:Transmitting device 91: Voltage conversion circuit 92: Transmission control circuit 99: Power supply 101, 101A, 101B, 101C: Receiving circuit 102, 102A, 102B, 102C: power receiving circuit 191, 192: Electronic components 620: Charging control circuit 640: Discharge control circuit 901: Coil 392: Switch element Zo101, Zo101A, Zo101B, Zo101C: Output impedance of the receiving circuit Zo102, Zo102A, Zo102B, Zo102C: Output impedance of the receiving circuit
Claims
1. a receiving coil that receives power via short-range wireless communication; a receiving antenna for receiving a wireless communication signal using the short-range wireless; a power receiving resonant circuit that forms a resonant circuit with the power receiving coil and one or more resonant capacitors; a receiving circuit including the receiving antenna; a load circuit electrically connected to the power receiving resonant circuit; a wireless communication circuit electrically connected to the receiving circuit; Equipped with the power receiving resonant circuit supplies a current received using the power receiving coil to the load circuit; the receiving circuit supplies a voltage received using the receiving antenna to the wireless communication circuit; At a communication frequency for short-distance wireless communication, an output impedance for wireless communication from the receiving circuit to the wireless communication circuit is larger than an output impedance for power reception from the power receiving resonance circuit to the load circuit, and a Q value of resonance at the communication frequency by the receiving circuit and the wireless communication circuit is set to be large so that a change in load modulation level caused by switching of a resonance state using switching of the impedance of the wireless communication circuit becomes large; At a power receiving frequency at which the power is received, the power receiving output impedance is smaller than the wireless communication output impedance, The power receiving coil and the receiving antenna are arranged to be at least magnetically coupled to each other, and power reception and reception are performed in parallel. A short-range wireless communication device with power receiving functionality.
2. a receiving coil that receives power via short-range wireless communication; a receiving antenna for receiving a wireless communication signal using the short-range wireless; a power receiving resonant circuit that forms a resonant circuit with the power receiving coil and one or more resonant capacitors; a receiving circuit including the receiving antenna; a load circuit electrically connected to the power receiving resonant circuit; a wireless communication circuit electrically connected to the receiving circuit; Equipped with the power receiving resonant circuit supplies a current received using the power receiving coil to the load circuit; the receiving circuit supplies a voltage received using the receiving antenna to the wireless communication circuit; At a communication frequency for short-distance wireless communication, an output impedance for wireless communication from the receiving circuit to the wireless communication circuit is larger than an output impedance for power reception from the power receiving resonance circuit to the load circuit, and a Q value of resonance at the communication frequency by the receiving circuit and the wireless communication circuit is set to be large so that a change in load modulation level caused by switching of a resonance state using switching of the impedance of the wireless communication circuit becomes large; At a power receiving frequency at which the power is received, the power receiving output impedance is smaller than the wireless communication output impedance, The power receiving resonant circuit is a series resonant capacitor connected in series to the receiving coil; a parallel resonant capacitor connected in parallel to the power receiving coil; Equipped with Switching between parallel resonance and series-parallel resonance is possible. A short-range wireless communication device with power receiving functionality.
3. The communication frequency and the power receiving frequency have at least a part of their frequency bands overlapping each other.
3. A short-range wireless communication device having a power receiving function according to claim 1.
4. The communication frequency and the power receiving frequency are in the same frequency band. The short-range wireless communication device having a power receiving function according to claim 3.
5. The communication frequency and the power receiving frequency are each in the 13.56 MHz band, which is the ISM band. The short-range wireless communication device with a power receiving function according to claim 4.
6. the resonant capacitor is provided only in the power receiving resonant circuit; 3. A short-range wireless communication device having a power receiving function according to claim 1.
7. a resonant capacitor provided in the power receiving resonant circuit is provided in the receiving circuit; 3. A short-range wireless communication device having a power receiving function according to claim 1.
8. The power receiving resonant circuit is a series resonant capacitor connected in series to the receiving coil; a parallel resonant capacitor connected in parallel to the power receiving coil; Equipped with Switching between parallel resonance and series-parallel resonance is possible. The short-range wireless communication device having a power receiving function according to claim 1 .
9. a support substrate that supports the power receiving coil, the power receiving resonant circuit, the receiving antenna, and the receiving circuit; the receiving coil, the receiving resonant circuit, the receiving antenna, and the receiving circuit are arranged on the same plane; 3. A short-range wireless communication device having a power receiving function according to claim 1.
10. a magnetic body that forms a magnetic path of magnetic flux that interlinks with the receiving coil or the receiving antenna; The short-range wireless communication device having a power receiving function according to claim 9.
11. the load circuit includes a secondary battery.
3. A short-range wireless communication device having a power receiving function according to claim 1.
12. the receiving circuit sets a rate of change in impedance due to load modulation of the short-range wireless communication to 30% or more; 3. A short-range wireless communication device having a power receiving function according to claim 1.
Citation Information
Patent Citations
Non-contact communication apparatus and method of non-contact communication
JP2011010159A
Antenna device and electronic apparatus
JP2019022238A
Dual mode NFC and WPT antenna structure using switching
KR101505456B1
Power harvesting in a passive RFID device
US10176415B2
Near-field communication (NFC) tags optimized for high performance NFC and wireless power reception with small antennas
US20170288735A1