Communication System, Slave Station, and Communication Method
20220368430 · 2022-11-17
Inventors
- Naoki Miura (Tokyo, JP)
- Hideyuki Nosaka (Tokyo, JP)
- Hiroaki Taguchi (Tokyo, JP)
- Takeshi Komatsu (Tokyo, JP)
Cpc classification
H04B11/00
ELECTRICITY
International classification
Abstract
An embodiment communication system includes: one or more slave stations, each of the slave stations including a sensor configured to detect a sensor signal, a controller configured to generate a first electrical signal at a predetermined frequency using the sensor signal, and a sound wave transmitter configured to convert the first electrical signal into a sound wave signal and to emit the sound wave signal; and a master station including a sound wave receiver configured to receive the sound wave signal and to convert the sound wave signal into a second electrical signal, and a controller configured to detect that the sensor of one of the slave stations has detected the sensor signal based on the second electrical signal.
Claims
1.-8. (canceled)
9. A communication system comprising: one or more slave stations, each of the slave stations comprising a sensor configured to detect a sensor signal, a controller configured to generate a first electrical signal at a predetermined frequency using the sensor signal, and a sound wave transmitter configured to convert the first electrical signal into a sound wave signal and to emit the sound wave signal; and a master station comprising a sound wave receiver configured to receive the sound wave signal and to convert the sound wave signal into a second electrical signal, and a controller configured to detect that the sensor of one of the slave stations has detected the sensor signal based on the second electrical signal.
10. The communication system of claim 9, wherein the controller of each of the slave stations comprises a first switch configured to operate in accordance with the sensor signal, and a first oscillation circuit configured to generate the first electrical signal at the predetermined frequency in accordance with operation of the first switch.
11. The communication system of claim 10, wherein the sound wave transmitter of each of the slave stations comprises at least one transistor configured to operate in accordance with the first electrical signal, and a speaker configured to be driven by the at least one transistor.
12. The communication system of claim 9, wherein: the communication system comprises a plurality of the slave stations, the controller of each of the slave stations is configured to generate a plurality of the first electrical signals at mutually different frequencies, and the controller of the master station is configured to identify each of the slave stations that has transmitted the sound wave signal based on a frequency of the second electrical signal.
13. The communication system of claim 10, wherein: the communication system comprises a plurality of the slave stations, the controller of each of the slave stations comprises a second oscillation circuit configured to generate a third electrical signal at a lower frequency than the first electrical signal in accordance with operation of the first switch, and to generate a signal corresponding to a unique identification number allocated to each of the slave stations in accordance with the third electrical signal, the first electrical signal being configured to be modulated based on the signal corresponding to the unique identification number, and the controller of the master station is configured to identify each of the slave stations that has transmitted the sound wave signal based on the unique identification number obtained by demodulating the second electrical signal.
14. The communication system of claim 13, wherein the controller of each of the slave stations is configured to output the first electrical signal at a mutually different timing.
15. A communication method comprising: by each of one or more slave stations: detecting a sensor signal; generating a first electrical signal at a predetermined frequency using the sensor signal; converting the first electrical signal into a sound wave signal; and emitting the sound wave signal; and by a master station: receiving the sound wave signal; converting the sound wave signal into a second electrical signal; and detecting that the slave station has detected the sensor signal based on the second electrical signal.
16. A slave station comprising: a first oscillation circuit configured to generate a first electrical signal at a first frequency; a photodiode configured to turn on the first oscillation circuit in response to detecting light; a speaker configured to convert the first electrical signal into a sound wave signal when the first oscillation circuit is turned on; and a first organic transistor configured to drive the speaker.
17. The slave station of claim 16 further comprising: a second oscillation circuit configured to generate a second electrical signal at a second frequency, the second frequency lower than the first frequency, the photodiode being configured to turn on the second oscillation circuit in response to detecting the light; a storage circuit configured to output an identification number in accordance with the second electrical signal; and a modulator configured to modulate the first electrical signal with the second electrical signal.
18. The slave station of claim 16, wherein the first oscillation circuit comprises a resistor, a capacitor, and a logical inverter.
19. The slave station of claim 18, wherein the logical inverter comprises a second organic transistor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0029] Hereinafter, embodiments of the present invention will be described based on the drawings. The present invention is not limited to the following embodiments.
First Embodiment
[0030]
[0031]
[0032] The configuration example is different from the related art in that a component corresponding to a radio wave emitting unit 103 is formed of the sound wave emitting unit 13. In the configuration example, the power supply unit 14 can be formed of a general button battery or the like. The sensor 11 can be formed of a general photodiode configured to generate a current when the photodiode detects light.
[0033] A configuration example of the control unit 12 is illustrated in
[0034] A configuration example of the sound wave emitting unit 13 is illustrated in
[0035] First, communication operations in the present embodiment will be described. In the slave station 10, when the sensor 11 does not detect light, the sensor signal output from the sensor 11 is not valid, and the switch of the control unit 12 is in an OFF state in a state in which the sensor 11 has not detected light. Thus, no power is supplied to the oscillation circuit 15, no electrical signal is generated, and no sound waves are transmitted to the master station. Because the master station has not received any sound waves from the slave station, it is possible to determine that the slave station has not detected light.
[0036] On the other hand, in a state in which the sensor 11 in the slave station 10 has detected light, the sensor signal is valid, and the switch of the control unit 12 is brought into an ON state. In this manner, the power is supplied to the oscillation circuit 15, the RC oscillation circuit 15 performs oscillation, and an electrical signal is generated at a predetermined frequency determined by the R and C values. The electrical signal is converted into a sound wave signal by the piezoelectric speaker and is then transmitted as the sound wave signal to the master station. The master station can detect that the slave station has detected light based on the reception of the sound wave from the slave station.
[0037] A configuration example of the master station according to the present embodiment is illustrated in
[0038] As illustrated in
[0039]
[0040] As described above, according to the present embodiment, it is possible to enable communication at a low frequency using sound waves caused by oscillation of air and to provide a communication system that operates with an electronic circuit at a low operation frequency.
[0041] In the present embodiment, the slave station can be formed of a transistor having a low operation frequency. However, effects obtained by the present embodiment are not limited thereto. For example, it is possible to obtain effects such as an improvement in ease of design due to the low operation frequency, an improvement in noise tolerance (communication quality), and reduction of power consumption. Further, it is possible to use the transistor having a low operation frequency such as an organic semiconductor and thereby to expect effects such as production by a printing process and cost reduction.
[0042] In the present embodiment, the example in which the power supply unit is formed of a battery has been described. However, the power supply unit is not limited to the battery and may be any device as long as the device can supply power. For example, an energy harvesting device using light, electromagnetic induction, or oscillation may be used.
[0043] In the present embodiment, the example in which the sensor in the slave station is formed of an optical sensor such as a photodiode has been described. However, the sensor is not limited to the optical sensor, and another sensor may be used. For example, the sensor may be formed of a device sensing, for example, temperature, humidity, water, soil constituents, smoke, oscillation, positions, distortions, or mechanical operations (ON/OFF).
[0044] In the present embodiment, the example in which the sound wave emitting unit is configured with a piezoelectric speaker has been described. However, the sound wave emitting unit is not limited to the piezoelectric speaker, and another speaker can also be used as long as the speaker is configured to be able to generate sound waves. For example, the sound wave emitting unit may be configured with an electrostatic-type speaker using a capacitor or a magnetic-type speaker using a magnet.
[0045] In the present embodiment, the example in which the piezoelectric speaker is driven with one transistor has been described. However, the configuration of the piezoelectric speaker is not limited to the configuration. For example, a configuration in which the piezoelectric speaker is driven using two transistors as in
[0046] In the present embodiment, the configuration example in which the RC oscillation circuit is used as the oscillation circuit of the control unit has been described. However, the oscillation circuit is not limited to the RC oscillation circuit and may be configured with an LC oscillation circuit or a solid oscillator such as quartz.
Second Embodiment
[0047] Although the case in which a sound wave signal is transmitted from the master station and the slave station to the slave station in a one-to-one correspondence has been described in the configuration example in the first embodiment, a case in which sound wave signals are transmitted from a plurality of slave stations to a master station in a multiple-to-one correspondence will be described in a second embodiment. The slave station 10 is configured to emit sound waves of about 10 kHz and notify the master station 20 of the fact that the slave station 10 has detected light when the slave station 10 detects light in the second embodiment similarly to the first embodiment.
[0048] A configuration example of a communication system 1 according to the present embodiment is illustrated in
[0049] In the configuration example in
[0050] If a unique frequency is allocated to each of the slave stations (10-1 to 10-3), and the master station 20 receives a sound wave at a frequency f1, for example, then the master station 20 can detect that the slave station 10-1 has detected light. Also, in a case in which the master station 20 has received sound waves at a plurality of frequencies, for example, the frequency f1 and the frequency f2 at the same time, the master station 20 can detect that the slave station 10-1 and the slave station 10-2 have detected light.
[0051] A configuration example of the master station according to the present embodiment is illustrated in
[0052] As described above, according to the present embodiment, it is possible to configure the communication system in which the master station and the slave stations perform communication in one-to-multiple correspondence using sound waves. The master station can identify each of the slave stations by allocating mutually different frequencies to the slave stations such that no collision occurs even in a case in which the plurality of slave stations transmit sound waves at the same time.
Third Embodiment
[0053] A third embodiment relates to a case in which sound signals are transmitted from a plurality of slave stations to a master station in a multiple-to-one correspondence similarly to the second embodiment. The third embodiment is different from the second embodiment in terms of the method in which the master station identifies the slave stations. The slave stations 10 are configured to emit sound waves of about 10 kHz and notify the master station 20 of the fact that the slave stations 10 have detected light when the slave stations 10 detect light in the present embodiment similarly to the first embodiment.
[0054] A configuration example of a communication system 1 according to the present embodiment is illustrated in
[0055] The slave stations (10-1 to 10-3) according to the present embodiment modulate the electrical signal with the identification numbers allocated to the stations themselves. A configuration example of the control unit 12 according to the present embodiment is illustrated in
[0056] The storage circuit 16 stores the identification number unique to the slave station. In the configuration example of
[0057] When the slave station 10 detects light, a first switch is turned on, and the first oscillation circuit (15-1) and the second oscillation circuit (15-2) perform oscillation to generate electrical signals. Signals 0, 1, and 0 corresponding to the identification number are output from the storage circuit 16 in order in accordance with the electrical signal (third electrical signal) from the second oscillation circuit (15-2). The signals 0, 1, and 0 corresponding to the identification number serve as an ON/OFF signal of the second switch, and the electrical signal output from the first oscillation circuit (15-1) is modulated through an ON/OFF operation of the second switch. With such a configuration, the slave station 10 can transmit the sound wave signal modulated with the signals corresponding to the identification number allocated to the slave station 10 itself to the master station 20. The master station 20 can identify from which slave station the master station 20 has received radio waves with the identification number obtained by demodulating an electrical signal obtained by converting the received sound signal.
[0058] The configuration of the master station according to the present embodiment is illustrated in
[0059] In the present embodiment, the configuration example in which amplitude modulation is performed on the electrical signal based on the identification number has been described. However, the scheme for modulating the sound wave is not limited to the amplitude modulation, and another modulation scheme may be used as long as it is possible to modulate the sound wave with the identification number and to transmit the modulated sound wave to the master station with the configuration. For example, phase modulation or frequency modulation may be used.
[0060] In the configuration of the control units in the slave stations in
[0061] As described above, according to the present embodiment, it is possible to enable communication at a low frequency using sound waves caused by oscillation of air and to provide a communication system that operates with an electronic circuit with a low operation frequency.
REFERENCE SIGNS LIST
[0062] 1 Communication system [0063] 10, 10-1 to 10-3 Slave station [0064] 11 Sensor [0065] 12 Control unit [0066] 13 Sound wave emitting unit [0067] 14 Power supply unit [0068] 15 Oscillation circuit [0069] 16 Storage circuit [0070] 17 Counter [0071] 20 Master station [0072] 21 Sound wave receiving unit [0073] 22 Control unit [0074] 23 Communication unit [0075] 24 Power supply unit [0076] 25 Frequency correspondence table [0077] 26 Identification number correspondence table