Intelligent ring
By integrating the communication module, processing module and electrical stimulation module in the intelligent ring, and using the electrical stimulation module to output the electrical stimulation prompt signal, the problem of the inappropriate interaction mode of the existing intelligent ring is solved, and efficient and low-power user interaction is achieved.
Patent Information
- Application Number
- CN202421620463.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-09
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-07-09
AI Technical Summary
When existing smart rings interact, lighting interaction may cause discomfort for users, while vibration interaction is not suitable for setting them on smart rings due to their large power consumption and volume.
An intelligent ring is designed, including a communication module, a processing module and an electrical stimulation module. By receiving preset data sent by the terminal, a control signal is generated and an electrical stimulation prompt signal is output to achieve interaction with the user.
It achieves obvious reminder effects, while avoiding settings with larger volume and higher power consumption, achieving the purpose of good interaction with users.
Smart Images

Figure CN223038496U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of wearable devices, and particularly to an intelligent ring. Background Art
[0002] Intelligent ring devices on the market are widely popular. Existing intelligent rings usually interact with users through means such as lighting and vibration. Strong lighting can cause discomfort to users, while weak lighting is difficult to achieve an interaction effect. Vibration is a relatively friendly interaction method, but the power consumption and volume of vibration devices are large, making it inconvenient to be set on an intelligent ring. Summary of the Utility Model
[0003] The main purpose of the utility model is to propose an intelligent ring, aiming to solve the problem of how to achieve good interaction of an intelligent ring in the prior art.
[0004] To achieve the above purpose, the utility model provides an intelligent ring, including:
[0005] A communication module, a processing module, and an electrostimulation module; the communication module is communicatively connected to the terminal, the communication module is also connected to the processing module, and the output end of the processing module is connected to the control end of the electrostimulation module; wherein:
[0006] The communication module is configured to receive preset data sent by the terminal and send the preset data to the processing module;
[0007] The processing module is configured to determine a control signal according to the preset data and send the control signal to the electrostimulation module;
[0008] The electrostimulation module is configured to output an electrostimulation prompt signal according to the control signal output by the processing module.
[0009] Optionally, the electrostimulation module includes a voltage regulation unit and a signal output unit; the input end of the voltage regulation unit is connected to a power supply, the output end of the voltage regulation unit is connected to the input end of the signal output unit, the control end of the voltage regulation unit is connected to the output end of the processing module, and the control end of the signal output unit is connected to the output end of the processing module; wherein:
[0010] The voltage regulation unit is configured to output a voltage corresponding to the control signal to the signal output unit;
[0011] The signal output unit is configured to output an electrostimulation prompt signal according to the control signal output by the processing module.
[0012] Optionally, the signal output unit includes a first circuit, a second circuit, a third circuit, a fourth circuit, and an electrode. The electrode includes a first electrode and a second electrode. Among them, the input ends of the first circuit and the third circuit are respectively connected to the output end of the voltage regulation unit. The output end of the first circuit is connected to the first electrode, and the first electrode is also connected to the second circuit. The output end of the third circuit is connected to the second electrode, and the second electrode is also connected to the fourth circuit. The control ends of the first circuit, the second circuit, the third circuit, and the fourth circuit are respectively connected to the output end of the processing module. Among them:
[0013] When the first circuit and the fourth circuit are triggered, the first circuit, the first electrode, the human body, the second electrode, and the fourth circuit form a loop.
[0014] When the second circuit and the third circuit are triggered, the third circuit, the second electrode, the human body, the first electrode, and the second circuit form a loop.
[0015] Optionally, both the first circuit and the third circuit include a first switching tube, a second switching tube, a first resistor, a second resistor, a third resistor, and a fourth resistor. Among them:
[0016] The input end of the first switching tube is connected to the output end of the voltage regulation unit. The output end of the first switching tube is connected to the electrode. The control end of the first switching tube is connected to the output end of the voltage regulation unit through the first resistor. The control end of the first switching tube is also connected to the input end of the second switching tube through the second resistor. The output end of the second switching tube is grounded. The control end of the second switching tube is connected to the first end of the third resistor. The second end of the third resistor is connected to the output end of the processing module, and the second end of the third resistor is also grounded through the fourth resistor.
[0017] Optionally, both the second circuit and the fourth circuit include a third switching tube, a fifth resistor, and a sixth resistor. Among them:
[0018] The output end of the third switching tube is grounded. The input end of the third switching tube is connected to the electrode. The control end of the third switching tube is connected to the first end of the fifth resistor. The second end of the fifth resistor is connected to the output end of the processing module, and the second end of the fifth resistor is also grounded through the sixth resistor.
[0019] Optionally, the voltage regulation unit includes a switching subunit and a boosting subunit; an input end of the switching subunit is connected to the power supply, a control end of the switching subunit is connected to an output end of the processing module, an output end of the switching subunit is connected to an input end of the boosting subunit, a control end of the boosting subunit is connected to the output end of the processing module, and an output end of the boosting subunit is connected to an input end of the signal output unit; wherein:
[0020] The switching subunit is configured to output the voltage of the power supply to the boosting subunit based on the control signal output by the processing module;
[0021] The boosting subunit is configured to boost the voltage of the power supply based on the control signal output by the processing module and then output it to the signal output unit.
[0022] Optionally, the switching subunit includes a fourth switching transistor, a fifth switching transistor, a first capacitor, a seventh resistor, and an eighth resistor; wherein:
[0023] An input end of the fourth switching transistor is connected to the power supply, an output end of the fourth switching transistor is grounded through the first capacitor, the output end of the fourth switching transistor is further connected to the boosting subunit, a control end of the fourth switching transistor is connected to the power supply through the seventh resistor, the control end of the fourth switching transistor is further connected to an input end of the fifth switching transistor, an output end of the fifth switching transistor is grounded, a control end of the fifth switching transistor is connected to the output end of the processing module, and the control end of the fifth switching transistor is further grounded through the eighth resistor.
[0024] Optionally, the boosting subunit includes a first inductor, a first diode, a sixth switching transistor, a second capacitor, a ninth resistor, a tenth resistor, and an eleventh resistor; wherein:
[0025] A first end of the first inductor is connected to the output end of the switching subunit, a second end of the first inductor is connected to an input end of the sixth switching transistor, an output end of the sixth switching transistor is grounded, a control end of the sixth switching transistor is connected to a first end of the ninth resistor, a second end of the ninth resistor is connected to the output end of the processing module, and the second end of the ninth resistor is further grounded through the tenth resistor;
[0026] The second end of the first inductor is further connected to a positive electrode of the first diode, a negative electrode of the first diode is connected to the input end of the signal output unit, the negative electrode of the first diode is further grounded through the second capacitor, and the second capacitor is connected in parallel with the eleventh resistor.
[0027] Optionally, the intelligent ring further includes an event trigger module, which is connected to the processing module; wherein:
[0028] The event trigger module is configured to send a trigger signal to the processing module when triggered;
[0029] The processing module is configured to send the event information corresponding to the trigger signal to the terminal after receiving the trigger signal.
[0030] Optionally, the event trigger module includes a first button; wherein:
[0031] The first end of the first button is connected to the input / output end of the processing module, and the second end of the first button is grounded.
[0032] An intelligent ring proposed by the present utility model includes a communication module, a processing module, and an electrical stimulation module; the communication module is communicatively connected to the terminal, the communication module is further connected to the processing module, and the output end of the processing module is connected to the control end of the electrical stimulation module; wherein: the communication module is configured to receive preset data sent by the terminal and send the preset data to the processing module; the processing module is configured to determine a control signal according to the preset data and send the control signal to the electrical stimulation module; the electrical stimulation module is configured to output an electrical stimulation prompt signal according to the control signal output by the processing module. By setting the electrical stimulation module, when the preset data is received, a reminder operation corresponding to the preset data can be performed on the user through electrical stimulation. While the reminder effect is obvious, it is not necessary to set relatively large-sized related devices, and at the same time, large power consumption is also avoided, realizing good interaction with the user. Description of the Drawings
[0033] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on the structures shown in these drawings without creative efforts.
[0034] Figure 1 It is a functional module diagram of an embodiment of the intelligent ring of the present utility model;
[0035] Figure 2 It is a functional module diagram of another embodiment of the intelligent ring of the present utility model;
[0036] Figure 3 It is for the intelligent ring of the present utility model applied in Figure 2 The circuit structure diagram in the embodiment.
[0037] The implementation, functional features and advantages of the present utility model will be further described in conjunction with embodiments and with reference to the accompanying drawings.
[0038] Explanation of the reference numerals in the drawings:
[0039]
[0040] Detailed implementation manners
[0041] It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0042] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0043] It should be noted that all directional indications (such as up, down, left, right, front, back...) in the embodiments of the present utility model are only used to explain the relative positional relationship and movement conditions between components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.
[0044] In addition, the descriptions involving "first", "second", etc. in the present utility model are only for descriptive purposes, and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, the technical solutions between various embodiments can be combined with each other, but it must be based on the fact that those of ordinary skill in the art can implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the protection scope required by the present utility model.
[0045] The present utility model provides an intelligent ring, which is applied to the intelligent ring. Please refer to Figure 1 , Figure 1This is a functional block diagram of an embodiment of the intelligent ring of the present utility model. In this embodiment, the intelligent ring is communicatively connected to a terminal; the intelligent ring includes a communication module 100, a processing module 200, and an electrical stimulation module 300; the communication module 100 is communicatively connected to the terminal, the communication module 100 is further connected to the processing module 200, and the output end of the processing module 200 is connected to the control end of the electrical stimulation module 300; wherein:
[0046] The communication module 100 is configured to receive preset data sent by the terminal and send the preset data to the processing module 200;
[0047] The processing module 200 is configured to determine a control signal according to the preset data and send the control signal to the electrical stimulation module 300;
[0048] The electrical stimulation module 300 is configured to output an electrical stimulation prompt signal according to the control signal output by the processing module 200.
[0049] The terminal is the sender of the preset data; the terminal can be a device capable of data transmission, including but not limited to a mobile phone, a tablet.
[0050] The communication module 100 and the terminal are communicatively connected, and the specific communication protocol can be set according to actual needs, such as Bluetooth.
[0051] The terminal sends the corresponding preset data to the communication module 100 based on the received data or by triggering a preset condition; for example, preset data corresponding to events such as incoming calls, incoming messages, and notifications are pre-set in the terminal. When there is an incoming call on the terminal, the terminal sends the preset data corresponding to the incoming call to the communication module 100. The same applies to other events and will not be elaborated here;
[0052] For another example, preset data corresponding to specific events of specific objects are pre-set in the terminal. For example, preset data corresponding to the event of missing object A is set. When the event of missing object A triggered by object A is received, the preset data corresponding to the event of missing is sent to the communication module 100; in specific applications, the event of missing can be triggered by the terminal corresponding to object A or the intelligent ring, etc. For example, see Figure 2 , two associated intelligent rings are respectively connected to the cloud through the terminal. A specific event can be triggered by a button on one of the intelligent rings or the connected terminal. The terminal sends the specific event to the cloud, so that the cloud sends the specific event to another terminal. At this time, the other terminal receives the specific event and then determines the corresponding preset data.
[0053] The preset data is used to indicate the electrical stimulation operation of the electrical stimulation module 300; a correspondence relationship between the preset data and the control signal is set in the processing module 200. This correspondence relationship can be factory-set or set by the user, such as the user setting it through the intelligent ring application on the terminal; after receiving the preset data, the processing module 200 can match the corresponding control signal based on the correspondence relationship and send the control signal to the electrical stimulation module 300.
[0054] The electrical stimulation module 300 reminds the user by outputting an electrical stimulation prompt signal; specifically, the electrical stimulation prompt signal output by the electrical stimulation module 300 can be set according to actual needs. For example, the electrical stimulation module 300 can be set to EMS (Electrical Muscle Stimulation).
[0055] In this embodiment, by setting the electrical stimulation module 300, when the preset data is received, it can remind the user of the operation corresponding to the preset data through the electrical stimulation prompt signal. While the reminder effect is obvious, there is no need to set relatively large-sized related devices, and at the same time, large power consumption is also avoided, realizing good interaction with the user.
[0056] Further, the electrical stimulation module 300 includes a voltage regulation unit 310 and a signal output unit 320; the input end of the voltage regulation unit 310 is connected to the power supply, the output end of the voltage regulation unit 310 is connected to the input end of the signal output unit 320, the control end of the voltage regulation unit 310 is connected to the output end of the processing module 200, and the control end of the signal output unit 320 is connected to the output end of the processing module 200; where:
[0057] The voltage regulation unit 310 is configured to output a voltage corresponding to the control signal to the signal output unit 320;
[0058] The signal output unit 320 is configured to output an electrical stimulation prompt signal according to the processing module 200.
[0059] The power supply supplies power to the electrical components in the intelligent ring. The specific structure of the power supply can be set according to actual needs and will not be limited here.
[0060] The voltage regulation unit 310 is used to control the intensity of the output voltage. It can be understood that the greater the voltage of the electrical stimulation prompt signal, the greater the stimulation to the user and the more obvious the reminder effect; the smaller the voltage of the electrical stimulation prompt signal, the smaller the stimulation to the user and the weaker the reminder effect.
[0061] The signal output unit 320 is used to adjust the state of the electrical stimulation prompt signal; the state of the electrical signal includes but is not limited to direction and stimulation frequency; it can be understood that when the states of the output electrical stimulation prompt signals are different, the user's perception is different. Therefore, by adjusting the state of the electrical stimulation prompt signal, the diversity of the prompt can be increased, that is, the difference in the presence prompts of different events.
[0062] It should be noted that the control signals obtained by the processing module 200 according to the preset data include control signals for both the voltage adjustment unit 310 and the signal output unit 320. The control signals for different correspondences are different. For example, the control signal for the voltage adjustment unit 310 acts on the voltage, and the control signal for the signal output unit 320 acts on the electrical signal state.
[0063] Further, the signal output unit 320 includes a first circuit 321, a second circuit 322, a third circuit 323, a fourth circuit 324, and an electrode P. Among them, the electrode includes a first electrode P1 and a second electrode P2. The input ends of the first circuit 321 and the third circuit 323 are respectively connected to the output end of the voltage adjustment unit. The output end of the first circuit 321 is connected to the first electrode P1, and the first electrode P1 is also connected to the second circuit 322. The output end of the third circuit 323 is connected to the second electrode P2, and the second electrode P2 is also connected to the fourth circuit 324. The control ends of the first circuit 321, the second circuit 322, the third circuit 323, and the fourth circuit 324 are respectively connected to the output end of the processing module; where:
[0064] When the first circuit 321 and the fourth circuit 324 are triggered, the first circuit 321, the first electrode P1, the human body, the second electrode P2, and the fourth circuit 324 form a loop.
[0065] When the second circuit 322 and the third circuit 323 are triggered, the third circuit 323, the second electrode P2, the human body, the first electrode P1, and the second circuit 322 form a loop.
[0066] The first circuit 321 and the third circuit 323 are connected to the output end of the voltage adjustment unit, so the voltage output by the voltage adjustment unit can be output through the first circuit 321 and the third circuit 323.
[0067] The first electrode P1 and the second electrode P2 are respectively connected to the human body. When the first circuit 321 and the fourth circuit 324 are triggered, the voltage output by the voltage adjustment unit sequentially passes through the first circuit 321, the first electrode P1, the human body, the second electrode P2, and the fourth circuit 324 to form a loop, and the current in the loop realizes the stimulation of the human body.
[0068] When the second circuit 322 and the third circuit 323 are triggered, the voltage output by the voltage regulation unit sequentially forms a loop through the third circuit 323, the second electrode P2, the human body, the first electrode P1, and the second circuit 322, and the current in the loop realizes the stimulation of the human body.
[0069] It can be understood that the current directions in the above two loops are opposite, that is, when the first circuit 321 and the fourth circuit 324 are triggered, the current flows from the first electrode P1 to the second electrode P2; when the second circuit 322 and the third circuit 323 are triggered, the current flows from the second electrode P2 to the first electrode P1, realizing more diverse stimulation forms.
[0070] Further, both the first circuit 321 and the third circuit 323 include a first switching transistor Q1, a second switching transistor Q2, a first resistor R1, a second resistor R2, a third resistor R3, and a fourth resistor R4; where:
[0071] The input end of the first switching transistor Q1 is connected to the output end of the voltage regulation unit 310, the output end of the first switching transistor Q1 is connected to the electrode P, the control end of the first switching transistor Q1 is connected to the output end of the voltage regulation unit 310 through the first resistor R1, the control end of the first switching transistor Q1 is further connected to the input end of the second switching transistor Q2 through the second resistor R2, the output end of the second switching transistor Q2 is grounded, the control end of the second switching transistor Q2 is connected to the first end of the third resistor R3, the second end of the third resistor R3 is connected to the output end of the processing module 200, and the second end of the third resistor R3 is further grounded through the fourth resistor R4.
[0072] The output end of the first switching transistor Q1 of the first circuit 321 is connected to the first electrode P1, and the output end of the first switching transistor Q1 of the third circuit 321 is connected to the second electrode P2.
[0073] When the processing module 200 outputs a high-level signal to the control end of the second switching transistor Q2, the second switching transistor Q2 conducts, the control end of the first switching transistor Q1 is grounded through the second resistor R2, the control end of the first switching transistor Q1 presents a low level, and the first switching transistor Q1 conducts;
[0074] When the processing module 200 outputs a low-level signal to the control end of the second switching transistor Q2, the second switching transistor Q2 turns off, the control end of the first switching transistor Q1 is connected to the voltage regulation unit 310 through the first resistor R1, the control end of the first switching transistor Q1 presents a high level, and the first switching transistor Q1 turns off;
[0075] Specifically, the control signal output by the processing module 200 to the second switching transistor Q2 is a PWM signal. By controlling the PMW signal and the duty cycle of the PWM signal, the frequency of the output electrical signal can be adjusted, such as realizing pulse signals of 100HZ and 1KHZ.
[0076] The specific types of the first switching transistor Q1 and the second switching transistor Q2 can be selected based on actual needs; in this embodiment, the first switching transistor Q1 is a PNP-type triode, the control end of the first switching transistor Q1 is the base of the PNP-type triode, the input end of the first switching transistor Q1 is the emitter of the PNP-type triode, and the output end of the first switching transistor Q1 is the collector P of the PNP-type triode; the second switching transistor Q2 is an NPN-type triode, the control end of the second switching transistor Q2 is the base of the NPN-type triode, the input end of the second switching transistor Q2 is the collector P of the NPN-type triode, and the output end of the second switching transistor Q2 is the emitter of the NPN-type triode.
[0077] Further, both the second circuit 322 and the fourth circuit 324 include a third switching transistor Q3, a fifth resistor R5, and a sixth resistor R6; where:
[0078] The output end of the third switching transistor Q3 is grounded, the input end of the third switching transistor Q3 is connected to the electrode P, the control end of the third switching transistor Q3 is connected to the first end of the fifth resistor R5, the second end of the fifth resistor R5 is connected to the output end of the processing module 200, and the second end of the fifth resistor R5 is also grounded through the sixth resistor R6.
[0079] When the processing module 200 outputs a high-level signal to the control end of the third switching transistor Q3, the third switching transistor Q3 conducts. At this time, the connected electrode P is grounded through the third switching transistor Q3;
[0080] When the processing module 200 outputs a low-level signal to the control end of the third switching transistor Q3, the third switching transistor Q3 turns off.
[0081] The input end of the third switching transistor Q3 of the second circuit is connected to the first electrode P1, and the input end of the third switching transistor Q3 of the fourth circuit is connected to the second electrode P2.
[0082] The specific type of the third switching transistor Q3 can be selected based on actual needs; in this embodiment, the third switching transistor Q3 is an NPN-type triode, the control end of the third switching transistor Q3 is the base of the NPN-type triode, the input end of the third switching transistor Q3 is the collector P of the NPN-type triode, and the output end of the third switching transistor Q3 is the emitter of the NPN-type triode.
[0083] It should be noted that the above structure is the basic circuit structure for realizing the functions of this circuit, and it can also be adjusted according to needs in actual applications, such as setting the input resistance RI, output capacitance RO, output resistance RO, and Zener diode Z1 for voltage regulation.
[0084] Further, the voltage regulation unit 310 includes a switch sub-unit 311 and a boost sub-unit 312; the input end of the switch sub-unit 311 is connected to the power supply, the control end of the switch sub-unit 311 is connected to the output end of the processing module 200, the output end of the switch sub-unit 311 is connected to the input end of the boost sub-unit 312, the control end of the boost sub-unit 312 is connected to the output end of the processing module 200, and the output end of the boost sub-unit 312 is connected to the input end of the signal output unit 320; where:
[0085] The switch sub-unit 311 is configured to output the voltage of the power supply to the boost sub-unit 312 based on the control signal output by the processing module 200;
[0086] The boost sub-unit 312 is configured to boost the voltage of the power supply based on the control signal output by the processing module 200 and then output it to the signal output unit 320.
[0087] The switch sub-unit 311 controls whether the circuit works. It can be understood that when there is no need to prompt the user, the subsequent electrical stimulation module does not work. To avoid large power consumption of the circuit when it is not working, the switch sub-unit 311 is set so that the power is cut off when there is no need to prompt the user, and the power is turned on when it is necessary to prompt the user.
[0088] The boost sub-unit 312 is used to boost the output voltage of the power supply voltage.
[0089] Further, the switch sub-unit 311 includes a fourth switch tube Q4, a fifth switch tube Q5, ·, a seventh resistor R7, and an eighth resistor R8; where:
[0090] The input end of the fourth switch tube Q4 is connected to the power supply, the output end of the fourth switch tube Q4 is grounded through the first capacitor C1, the output end of the fourth switch tube Q4 is also connected to the boost sub-unit 312, the control end of the fourth switch tube Q4 is connected to the power supply through the seventh resistor R7, the control end of the fourth switch tube Q4 is also connected to the input end of the fifth switch tube Q5, the output end of the fifth switch tube Q5 is grounded, the control end of the fifth switch tube Q5 is connected to the output end of the processing module 200, and the control end of the fifth switch tube Q5 is also grounded through the eighth resistor R8.
[0091] When the processing module 200 outputs a high-level signal to the fifth switching transistor Q5, the fifth switching transistor Q5 conducts, the control terminal of the fourth switching transistor Q4 is grounded through the fifth switching transistor Q5, the fourth switching transistor Q4 conducts, and the voltage is output to the boost sub-unit 312;
[0092] When the processing module 200 outputs a low-level signal to the fifth switching transistor Q5, the fifth switching transistor Q5 turns off, the control terminal of the fourth switching transistor Q4 is connected to the power supply through the seventh resistor R7, the fourth switching transistor Q4 turns off, and the voltage output stops.
[0093] The specific types of the fourth switching transistor Q4 and the fifth switching transistor Q5 can be selected based on actual needs; in this embodiment, the fourth switching transistor Q4 is a PMOS transistor, the control terminal of the fourth switching transistor Q4 is the gate of the PMOS transistor, the input terminal of the fourth switching transistor Q4 is the source of the PMOS transistor, and the output terminal of the fourth switching transistor Q4 is the drain of the PMOS transistor; the fifth switching transistor Q5 is an NMOS transistor, the control terminal of the fifth switching transistor Q5 is the gate of the NMOS transistor, the input terminal of the fifth switching transistor Q5 is the drain of the NMOS transistor, and the output terminal of the fifth switching transistor Q5 is the source of the NMOS transistor.
[0094] Further, the boost sub-unit 312 includes a first inductor L1, a first diode D1, a sixth switching transistor Q6, a second capacitor C2, a ninth resistor R9, a tenth resistor R10, and an eleventh resistor R11; wherein:
[0095] The first end of the first inductor L1 is connected to the output terminal of the switching sub-unit 311, the second end of the first inductor L1 is connected to the input terminal of the sixth switching transistor Q6, the output terminal of the sixth switching transistor Q6 is grounded, the control terminal of the sixth switching transistor Q6 is connected to the first end of the ninth resistor R9, the second end of the ninth resistor R9 is connected to the output terminal of the processing module 200, and the second end of the ninth resistor R9 is also grounded through the tenth resistor R10;
[0096] The second end of the first inductor L1 is also connected to the positive electrode of the first diode D1, the negative electrode of the first diode D1 is connected to the input terminal of the signal output unit 320, the negative electrode of the first diode D1 is also grounded through the second capacitor C2, and the second capacitor C2 is connected in parallel with the eleventh resistor R11.
[0097] The boost sub-unit 312 in this embodiment is a BOOST circuit, and the specific implementation method will not be elaborated here; wherein the sixth switching transistor Q6 is an NMOS transistor, the sixth switching transistor Q6 is an NMOS transistor, the control terminal of the sixth switching transistor Q6 is the gate of the NMOS transistor, the input terminal of the sixth switching transistor Q6 is the drain of the NMOS transistor, and the output terminal of the sixth switching transistor Q6 is the source of the NMOS transistor.
[0098] The control signal output by the processing module 200 to the gate of the sixth switching transistor Q6 is a PWM signal. By controlling the duty cycle of the PWM signal, the voltage output to the signal output unit 320 can be controlled.
[0099] Furthermore, the intelligent ring further includes an event triggering module, and the event triggering module is connected to the processing module 200; wherein:
[0100] The event triggering module is configured to send a trigger signal to the processing module 200 when triggered;
[0101] The processing module 200 is configured to send the event information corresponding to the trigger signal to the terminal after receiving the trigger signal.
[0102] The event triggering module includes a first button; wherein:
[0103] The first end of the first button is connected to the input / output terminal of the processing module 200, and the second end of the first button is grounded.
[0104] Event triggering can be triggered by a button. When triggered, a trigger signal is sent to the processing module 200. After receiving the trigger signal, the processing module 200 sends the event information corresponding to the trigger signal to the terminal, so that the terminal sends the event signal to a specific object corresponding to the event signal through the cloud.
[0105] Specifically, the event triggering module may include a button. An IO port of the processing module 200 is grounded through the button. When the button is pressed, the IO port presents a low level. At this time, the button is triggered.
[0106] It should be noted that in this article, the term "including", "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or system including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or system. Without further limitation, the element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, article or system including the element. The serial numbers of the embodiments of the present invention above are only for description and do not represent the superiority or inferiority of the embodiments.
[0107] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present invention, or directly or indirectly applied to other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. A smart ring, characterized in that: include: A communication module, a processing module and an electrical stimulation module; the communication module is connected to the terminal for communication, the communication module is also connected to the processing module, and the output end of the processing module is connected to the control end of the electrical stimulation module; wherein: The communication module is used to receive the preset data sent by the terminal and send the preset data to the processing module; The processing module is used to determine a control signal according to the preset data, and send the control signal to the electrical stimulation module; The electrical stimulation module is used to output an electrical stimulation prompt signal according to the control signal output by the processing module.
2. The smart ring according to claim 1, characterized in that: The electrical stimulation module includes a voltage regulating unit and a signal output unit; the input end of the voltage regulating unit is connected to the power supply, the output end of the voltage regulating unit is connected to the input end of the signal output unit, the control end of the voltage regulating unit is connected to the output end of the processing module, and the control end of the signal output unit is connected to the output end of the processing module; wherein: The voltage regulating unit is used to output a voltage corresponding to the control signal to the signal output unit; The signal output unit is used to output an electrical stimulation prompt signal according to the control signal output by the processing module.
3. The smart ring as claimed in claim 2, characterized in that: The signal output unit includes a first circuit, a second circuit, a third circuit, a fourth circuit and an electrode, wherein the electrode includes a first electrode and a second electrode, wherein the input end of the first circuit and the input end of the third circuit are respectively connected to the output end of the voltage regulating unit, the output end of the first circuit is connected to the first electrode, the first electrode is also connected to the second circuit, the output end of the third circuit is connected to the second electrode, and the second electrode is also connected to the fourth circuit; the control ends of the first circuit, the second circuit, the third circuit and the fourth circuit are respectively connected to the output end of the processing module; wherein: When the first circuit and the fourth circuit are triggered, the first circuit, the first electrode, the human body, the second electrode, and the fourth circuit form a loop; When the second circuit and the third circuit are triggered, the third circuit, the second electrode, the human body, the first electrode, and the second circuit form a loop.
4. The smart ring as claimed in claim 3, characterized in that: The first circuit and the third circuit both include a first switch tube, a second switch tube, a first resistor, a second resistor, a third resistor and a fourth resistor; wherein: The input end of the first switch tube is connected to the output end of the voltage regulating unit, the output end of the first switch tube is connected to the electrode, the control end of the first switch tube is connected to the output end of the voltage regulating unit through the first resistor, the control end of the first switch tube is also connected to the input end of the second switch tube through the second resistor, the output end of the second switch tube is grounded, the control end of the second switch tube is connected to the first end of the third resistor, the second end of the third resistor is connected to the output end of the processing module, and the second end of the third resistor is also grounded through the fourth resistor.
5. The smart ring as claimed in claim 4, characterized in that: The second circuit and the fourth circuit both include a third switch tube, a fifth resistor and a sixth resistor; wherein: The output end of the third switch tube is grounded, the input end of the third switch tube is connected to the electrode, the control end of the third switch tube is connected to the first end of the fifth resistor, the second end of the fifth resistor is connected to the output end of the processing module, and the second end of the fifth resistor is also grounded through the sixth resistor.
6. The smart ring as claimed in claim 2, characterized in that: The voltage regulating unit includes a switch subunit and a boost subunit; the input end of the switch subunit is connected to the power supply, the control end of the switch subunit is connected to the output end of the processing module, the output end of the switch subunit is connected to the input end of the boost subunit, the control end of the boost subunit is connected to the output end of the processing module, and the output end of the boost subunit is connected to the input end of the signal output unit; wherein: The switch subunit is used to output the voltage of the power supply to the boost subunit based on the control signal output by the processing module; The boost subunit is used to boost the voltage of the power supply based on the control signal output by the processing module and then output the boosted voltage to the signal output unit.
7. The smart ring according to claim 6, characterized in that: The switch subunit includes a fourth switch tube, a fifth switch tube, a first capacitor, a seventh resistor and an eighth resistor; wherein: The input end of the fourth switch tube is connected to the power supply, the output end of the fourth switch tube is grounded through the first capacitor, the output end of the fourth switch tube is also connected to the boost sub-unit, the control end of the fourth switch tube is connected to the power supply through the seventh resistor, the control end of the fourth switch tube is also connected to the input end of the fifth switch tube, the output end of the fifth switch tube is grounded, the control end of the fifth switch tube is connected to the output end of the processing module, and the control end of the fifth switch tube is also grounded through the eighth resistor.
8. The smart ring as claimed in claim 6, characterized in that: The boost subunit includes a first inductor, a first diode, a sixth switch tube, a second capacitor, a ninth resistor, a tenth resistor and an eleventh resistor; wherein: The first end of the first inductor is connected to the output end of the switch subunit, the second end of the first inductor is connected to the input end of the sixth switch tube, the output end of the sixth switch tube is grounded, the control end of the sixth switch tube is connected to the first end of the ninth resistor, the second end of the ninth resistor is connected to the output end of the processing module, and the second end of the ninth resistor is also grounded through the tenth resistor; The second end of the first inductor is also connected to the anode of the first diode, the cathode of the first diode is connected to the input end of the signal output unit, the cathode of the first diode is also grounded through the second capacitor, and the second capacitor is connected in parallel with the eleventh resistor.
9. The smart ring according to claim 1, characterized in that: The smart ring also includes an event triggering module, which is connected to the processing module; wherein: The event triggering module is used to send a trigger signal to the processing module when triggered; The processing module is used to send the event information corresponding to the trigger signal to the terminal after receiving the trigger signal.
10. The smart ring according to claim 9, characterized in that: The event triggering module includes a first button; wherein: A first end of the first button is connected to an input / output end of the processing module, and a second end of the first button is grounded.