An intelligent eyewear

By incorporating a handshake recognition mechanism between the power supply module, processing module, and recognition module within the VR glasses, power is supplied only after the connection is stable, thus resolving the circuit damage issue caused by direct power supply between the temples and the headset and extending its service life.

CN120779600BActive Publication Date: 2026-02-27GOERTEK INC
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Patent Information

Application Number
CN202511195193.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2026-02-27
Estimated Expiration
2045-08-26

AI Technical Summary

Technical Problem

In existing VR glasses, the direct connection between the temples and the headset can lead to unstable power supply, damage to the circuitry, and reduced lifespan.

Method used

A power supply module, processing module, recognition module, and target load are set between the head-mounted display body and the temple. Power is supplied only after the connection is stable through a handshake recognition signal. This includes a handshake recognition chip, a switch module, and an overcurrent detection module to ensure safe power supply.

Benefits of technology

By ensuring a stable connection through handshake recognition before powering on, the lifespan of VR glasses is extended, and circuit damage caused by unstable connections is avoided.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of intelligent wearable devices, in particular to a kind of intelligent glasses, the intelligent glasses include head-mounted display main body and temple;Head-mounted display main body includes: power supply module and processing module;Temple includes: identification module and target load;Processing module is connected with power supply module and identification module respectively, and power supply module is also connected with target load;Processing module is used to transmit the handshake signal generated to identification module under the condition of being connected with identification module, and whether the response signal fed back by identification module is judged, and the response signal is generated after the handshake identification of handshake signal is successfully carried out by identification module;Processing module is also used to output power supply signal to power supply module under the condition of receiving response signal, so that power supply module powers target load.This application can be connected first to carry out handshake identification, and then power on after the handshake identification is successful, so as to ensure that power supply is carried out only after connection is stable, and the service life is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of intelligent wearable devices, and particularly to an intelligent glasses. BACKGROUND

[0002] With the rapid development of intelligent wearable devices, virtual reality (VR) devices gradually become important tools in people's daily life and work. In order to improve the characteristics of VR glasses in portability, maintenance convenience and personalized customization, there are currently glasses leg separation type VR glasses that can set part of the load (such as a loudspeaker, etc.) on the glasses leg, and when the user needs to use it, the glasses leg is connected with the head-mounted display to form a VR glasses, and the head-mounted display is powered on to work for the load on the glasses leg.

[0003] However, the existing head-mounted display and glasses leg are directly powered after connection, and when the connection is unstable, direct power-on may cause damage to the circuit on the glasses leg, thereby affecting the service life. SUMMARY

[0004] The main purpose of the present application is to provide an intelligent glasses, which aims to solve the technical problem that the existing technology directly powers when the glasses leg and the head-mounted display are connected, which may cause damage to the circuit on the glasses leg due to unstable connection, affecting the service life.

[0005] To achieve the above purpose, the present application provides an intelligent glasses, which comprises a head-mounted display main body and a glasses leg, and the head-mounted display main body and the glasses leg are detachably connected;

[0006] The head-mounted display main body comprises a power supply module and a processing module, and the glasses leg comprises an identification module and a target load;

[0007] The processing module is connected with the power supply module and the identification module respectively, and the power supply module is also connected with the target load;

[0008] The processing module is used for transmitting the generated handshake signal to the identification module when connected with the identification module, and judging whether the response signal fed back by the identification module is received, the response signal being generated by the identification module after successfully identifying the handshake signal;

[0009] The processing module is also used for outputting a power supply signal to the power supply module to make the power supply module power the target load when the response signal is received.

[0010] In an embodiment, the identification module is used for comparing the handshake signal with a preset signal when the handshake signal is received;

[0011] The identification module is further configured to determine that the handshake identification is successful when the handshake signal matches the preset signal, and transmit the generated response signal to the processing module.

[0012] In an embodiment, the identification module comprises a handshake identification chip, a first capacitor, and a first diode.

[0013] A power supply end of the handshake identification chip is connected with a first end of the first capacitor and a cathode of the first diode, an anode of the first diode is connected with the power supply module, a second end of the first capacitor is grounded, a first communication end of the handshake identification chip and a second communication end of the handshake identification chip are both connected with the processing module, and a ground end of the handshake identification chip is grounded.

[0014] In an embodiment, the temple further comprises a switch module.

[0015] The switch module is connected with the power supply module, the identification module, and the target load respectively.

[0016] The identification module is further configured to output a conduction signal to the switch module when the handshake identification of the handshake signal is successful.

[0017] The switch module is configured to turn on a loop between the power supply module and the target load when the conduction signal is received, so that the power supply module supplies power to the target load.

[0018] In an embodiment, the switch module comprises a switch chip, a first resistor, and a second capacitor.

[0019] An input end of the switch chip is connected with a first end of the second capacitor and the power supply module respectively, a second end of the second capacitor is grounded, an output end of the switch chip is connected with the target load, an enable end of the switch chip is connected with a first end of the first resistor and the identification module, a second end of the first resistor is grounded, and a ground end of the switch chip is grounded.

[0020] In an embodiment, the temple further comprises an overcurrent detection module.

[0021] The overcurrent detection module is connected with the power supply module and the target load respectively.

[0022] The overcurrent detection module is configured to determine whether an overcurrent occurs in a power supply current output by the power supply module.

[0023] The overcurrent detection module is further configured to transmit the power supply current to the target load for power supply when the overcurrent does not occur in the power supply current.

[0024] In an embodiment, the overcurrent detection module comprises an overcurrent protection chip and a third capacitor.

[0025] An input end of the overcurrent protection chip is connected with a first end of the third capacitor and the power supply module, a second end of the third capacitor is grounded, an enable end of the overcurrent protection chip is connected with the input end of the overcurrent protection chip, an output end of the overcurrent protection chip is connected with the target load, and a ground end of the overcurrent protection chip is grounded.

[0026] In an embodiment, the target load comprises an audio playing module.

[0027] The audio playing module is further connected with the processing module.

[0028] The processing module is further configured to transmit the generated audio signal to the audio playing module.

[0029] The audio playing module is configured to play audio according to the received audio signal in the case that the power supply module is powering.

[0030] In an embodiment, the audio playing module comprises an audio processing chip, a loudspeaker and a fourth capacitor.

[0031] A power supply end of the audio processing chip is connected with a first end of the fourth capacitor and the power supply module, a first input end of the audio processing chip and a second input end of the audio processing chip are connected with the processing module, a first output end of the audio processing chip and a second output end of the audio processing chip are connected with the loudspeaker, and a ground end of the audio processing chip is grounded.

[0032] In an embodiment, the power supply module comprises a battery module and a power management unit.

[0033] The power management unit is connected with the battery module, the processing module and the target load respectively.

[0034] The processing module is further configured to determine power supply information required by the target load according to the response signal, and generate a corresponding power supply signal according to the power supply information and transmit the power supply signal to the power management unit.

[0035] The power management unit is configured to adjust the power supply current provided by the battery module according to the received power supply signal, and transmit the adjusted power supply current to the target load for power supply.

[0036] The application provides an intelligent glasses, which comprises a head-mounted display main body and a glasses leg, and the head-mounted display main body and the glasses leg are detachably connected; the head-mounted display main body comprises a power supply module and a processing module; the glasses leg comprises an identification module and a target load; the processing module is connected with the power supply module and the identification module respectively, and the power supply module is also connected with the target load; the processing module is used for transmitting a generated handshake signal to the identification module when being connected with the identification module, and judging whether an answer signal fed back by the identification module is received, the answer signal is generated by the identification module after successfully performing handshake identification on the handshake signal; and the processing module is also used for outputting a power supply signal to the power supply module to make the power supply module supply power to the target load when the answer signal is received.

[0037] In the application, the power supply module and the processing module are arranged in the head-mounted display main body, the identification module and the target load are arranged in the glasses leg, when the head-mounted display main body is connected with the glasses leg in actual use, the processing module can be connected with the identification module, the processing module can transmit a generated handshake signal to the identification module, the identification module can perform handshake identification according to the handshake signal, and feeds back an answer signal to the processing module when the handshake identification is successful, and the processing module can output a power supply signal to the power supply module when the answer signal is received, and the power supply module supplies power to the target load after receiving the power supply signal. In the application, only when the processing module and the identification module successfully perform handshake identification, the power supply module of the head-mounted display main body is allowed to supply power to the target load in the glasses leg. Compared with the prior art that directly supplies power after the head-mounted display main body is connected with the glasses leg, the application can perform handshake identification after being connected, and then supply power after the handshake identification is successful, so that the power supply is ensured after the connection is stable, and the service life is improved. BRIEF DESCRIPTION OF DRAWINGS

[0038] In order to more clearly illustrate the technical solutions in the embodiments of the application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. Obviously, the drawings in the following description only constitute some embodiments of the application, and for those skilled in the art, other drawings can also be obtained from the structures shown in these drawings without creative labor.

[0039] Figure 1 The structural block diagram of the first embodiment of the intelligent glasses provided by the application;

[0040] Figure 2 The circuit principle diagram of the second embodiment of the intelligent glasses provided by the application.

[0041] Explanation of reference numerals:

[0042]

[0043] The objectives, functional features and advantages of the present application will be further described with reference to the embodiments in combination with the accompanying drawings. DETAILED DESCRIPTION

[0044] It should be understood that the specific embodiments described herein merely exemplify the application and do not limit the application.

[0045] The technical solutions in the embodiments of the present application will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, but not all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0046] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present application are only used to explain the relative positional relationship, movement condition, etc. between components in a certain posture (as shown in the drawings), and if the certain posture changes, the directional indications also change accordingly.

[0047] In addition, the description of "first", "second" and the like in the present application is only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include at least one of the features. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the realization of those skilled in the art, and when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the scope of protection claimed by the present application.

[0048] It should be noted that with the rapid development of smart wearable devices, virtual reality (VR) devices have gradually become important tools in people's daily life and work. In order to improve the characteristics of VR glasses in portability, maintenance convenience and personalized customization, there are currently glasses leg separated VR glasses, which can set part of the load (such as speakers, etc.) on the glasses leg 2, and when the user needs to use it, the glasses leg 2 is connected with the head-mounted device to form the VR glasses, and the load on the glasses leg 2 is powered by the head-mounted device.

[0049] However, the existing head-mounted device and glasses leg 2 are directly powered after being connected, and when the connection is unstable, direct power-on may cause damage to the circuit on the glasses leg 2, thereby affecting the service life.

[0050] In order to solve the above technical problems, the embodiment provides a smart glasses, in the embodiment, a power supply module 11 and a processing module 12 can be arranged in the head-mounted body 1, an identification module 21 and a target load 22 can be arranged in the leg 2, when the head-mounted body 1 is connected with the leg 2 in actual use, the processing module 12 can be connected with the identification module 21, the processing module 12 can transmit the generated handshake signal to the identification module 21, the identification module 21 can perform handshake identification according to the handshake signal, and feed back the response signal to the processing module 12 when the handshake identification is successful, and the processing module 12 can output the power supply signal to the power supply module 11 when the response signal is received, and the power supply module 11 supplies power to the target load 22 after receiving the power supply signal. Because in the embodiment, only when the processing module 12 and the identification module 21 handshake identification is successful, the power supply module 11 of the head-mounted body 1 is allowed to supply power to the target load 22 in the leg 2. Compared with the existing power-on after the head-mounted body 1 is connected with the leg 2, the embodiment can perform handshake identification after connection, and then power-on after successful handshake identification, so as to ensure that the power is supplied after the connection is stable, and the service life is improved.

[0051] For the sake of understanding, the following will be combined with Figures 1 to 2 The smart glasses provided by the embodiment of the application will be specifically introduced.

[0052] Referring to Figure 1 , Figure 1 The structure block diagram of the first embodiment of the smart glasses provided by the embodiment of the application.

[0053] As Figure 1 shown, in the embodiment, the smart glasses include a head-mounted body 1 and a leg 2, and the head-mounted body 1 is detachably connected with the leg 2.

[0054] It should be noted that the smart glasses in the embodiment can be VR glasses and the like, and the smart glasses in the embodiment can be a leg-separated VR glasses. Specifically, the smart glasses in the embodiment can include a head-mounted body 1 and a leg 2; wherein the head-mounted body 1 can be a component in the smart glasses for completing the display function and supplying power to the load in the leg 2, which can be provided with a display screen, a battery and the like, which can be set according to actual conditions, and the embodiment does not limit this; the leg can be a leg of any structure, and the leg 2 in the embodiment can be provided with a target load 22 for realizing part of the function of the VR glasses, such as a loudspeaker, which can be set according to actual conditions, and the embodiment does not limit this.

[0055] It should be noted that the glasses leg 2 in the embodiment can include a left glasses leg and a right glasses leg. It should be noted that the specific structure and internal components of the left glasses leg in the embodiment can be consistent with those of the right glasses leg. Therefore, in the embodiment and subsequent embodiments, only one side of the glasses leg (for example, the left glasses leg) is described, and the right glasses leg can be referred to the left glasses leg. The embodiment does not make any further description.

[0056] It can be understood that the glasses leg 2 in the embodiment can be detachably connected to the head-mounted body 1. For example, a male head can be provided on the glasses leg 2, and a female seat can be provided on the head-mounted body 1. When the user needs to use it, the male head on the glasses leg 2 can be inserted into the female seat on the head-mounted body 1. When it is not needed, it can be pulled out, thereby realizing detachable connection.

[0057] It can also be understood that the glasses leg 2 and the head-mounted body 1 in the embodiment can also be detachably connected by other means, which are not limited by the embodiment.

[0058] In the embodiment, in order to ensure that the connection is stable before power supply, as shown in the figure, the head-mounted body 1 includes a power supply module 11 and a processing module 12. The glasses leg 2 includes an identification module 21 and a target load 22. The processing module 12 is connected with the power supply module 11 and the identification module 21 respectively, and the power supply module 11 is also connected with the target load 22. Figure 1

[0059] The processing module 12 is configured to, in a connected state with the identification module 21, transmit a generated handshake signal to the identification module 21, and determine whether an answer signal fed back by the identification module 21 is received. The answer signal is generated by the identification module 21 after successfully performing handshake identification on the handshake signal.

[0060] The processing module 12 is also configured to, in a connected state with the identification module 21, transmit a generated handshake signal to the identification module 21, and determine whether an answer signal fed back by the identification module 21 is received. The answer signal is generated by the identification module 21 after successfully performing handshake identification on the handshake signal.

[0061] It should be understood that the power supply module 11 can be any module that provides power supply for the target load 22. Since a battery is generally provided in a VR glasses, the power supply module 11 can be a battery module 111, and the like. The embodiment does not make any further limitation. The target load 22 can be any power load on the VR glasses, such as a loudspeaker, a temperature sensor, and the like. The embodiment uses a loudspeaker for description, but does not make any further limitation.

[0062] ​It should also be understood that the above processing module 12 and the identification module 21 can be any device with program running function, such as a microcontroller unit (MCU), and the specific setting can be made by itself according to the actual situation, which is not limited in the embodiment.

[0063] It should be noted that the above handshake signal can be a signal for handshake interaction, such as a group of square waves, and of course can also be other waves, which is not limited in the embodiment. In the embodiment, the processing module 12 can generate the handshake signal at a predetermined time interval. In actual use, when the user does not connect the temple 2 and the head-mounted body 1, the processing module 12 has no handshake signal transmission to the identification module 21. When the user inserts the temple 2 into the head-mounted body 1, the loop between the processing module 12 and the identification module 21 is conducted, and then the processing module 12 can transmit the generated handshake signal to the identification module 21.

[0064] After receiving the handshake signal, the identification module 21 can perform handshake identification according to the handshake signal, which can be identification of whether the model information of the head-mounted device matches, and of course can also be identification of other contents, which is not limited in the embodiment. After the temple 2 and the head-mounted body 1 are successfully matched, the identification module 21 can determine that the handshake identification is successful, and generate the above response signal feedback to the processing module 12. The response signal can be any signal for indicating that the handshake identification is successful, and can also be a group of square waves.

[0065] After receiving the response signal, the processing module 12 can start outputting the power supply signal to the power supply module 11, which can be any signal allowing the power supply module 11 to supply power. After receiving the power supply signal, the power supply module 11 can indicate that the connection between the head-mounted body 1 and the temple 2 is stable, and then output the power supply current to the target load 22 on the temple 2 to supply power to the target load 22.

[0066] Therefore, in the embodiment, only when the processing module 12 and the identification module 21 successfully perform handshake identification, the power supply module 11 of the head-mounted body 1 is allowed to supply power to the target load 22 in the temple 2. Compared with the existing direct power-on after the connection of the head-mounted body 1 and the temple 2, the embodiment can first perform handshake identification after the connection, and then perform power-on after the successful handshake identification, so as to ensure that the power supply is performed after the stable connection, thereby improving the service life.

[0067] It should be emphasized that considering that there is generally no power supply device on the temple 2, in the embodiment, when the temple 2 is inserted into the head-mounted body 1, the identification module 21 can also be electrically connected with the power supply module 11 to supply power to the identification module 21.

[0068] Further, when the temple 2 is inserted into the head-mounted body 1, the power supply module 11 can first provide working current to the identification module 21, so that the identification module 21 is powered on to start receiving the handshake signal.

[0069] Further, in order to perform handshake identification on the handshake signal, in the embodiment, the identification module 21 is configured to compare the handshake signal with a preset signal when the handshake signal is received.

[0070] The identification module 21 is further configured to determine that the handshake identification is successful when the handshake signal matches the preset signal, and transmit a generated response signal to the processing module 12.

[0071] It should be noted that the above-mentioned preset signal can be a signal for indicating that the temple 2 matches the head-mounted body 1. Since the above-mentioned handshake signal in the embodiment can be a square wave, different head-mounted bodies 1 can generate square waves with different parameters, such as different amplitudes or different time intervals, which are not limited in the embodiment.

[0072] In actual use, the processing module 12 can generate a handshake signal corresponding to the amplitude and time interval and transmit it to the identification module 21 of the temple 2. The identification module 21 can determine whether the amplitude and time interval of the handshake signal are consistent with the pre-stored preset signal. If not, it means that the handshake identification fails, and the identification module 21 does not generate a response signal, and the head-mounted body 1 does not perform power supply; if yes, it means that the handshake identification is successful, and the identification module 21 generates a response signal to the processing module 12.

[0073] Further, in order to improve safety, as shown in Figure 1 In the embodiment, the temple 2 further comprises a switch module 23.

[0074] The switch module 23 is connected with the power supply module 11, the identification module 21 and the target load 22 respectively.

[0075] The identification module 21 is further configured to output a conduction signal to the switch module 23 when the handshake identification on the handshake signal is successful.

[0076] The switch module 23 is configured to turn on a loop between the power supply module 11 and the target load 22 when the conduction signal is received, so that the power supply module 11 supplies power to the target load 22.

[0077] It can be understood that the above-mentioned switch module 23 can be any module with on-off switching function, such as a switch tube, which is not limited in the embodiment.

[0078] As shown in Figure 1As shown, in the embodiment, the switch module 23 can be arranged on the loop between the target load 22 and the power supply module 11, and the control end of the switch module 23 can be connected with the identification module 21.

[0079] Further, in actual use, when the switch module 23 does not receive the conduction signal, the loop between the target load 22 and the power supply module 11 is disconnected. When the identification module 21 successfully identifies the handshake signal, it can generate a conduction signal allowing power supply and transmit it to the switch module 23. After receiving the conduction signal, the switch module 23 turns on the power supply loop between the power supply module 11 and the target load 22, so that the power supply module 11 transmits the generated power supply current to the target load 22 through the switch module 23.

[0080] Further, considering that the power supply current can be large at the moment when the loop between the power supply module 11 and the target load 22 is turned on, which can cause the components to be damaged, in the embodiment, the switch module 23 is further arranged to Figure 1 As shown, the glasses leg 2 further comprises an overcurrent detection module 24.

[0081] The overcurrent detection module 24 is connected with the power supply module 11 and the target load 22 respectively.

[0082] The overcurrent detection module 24 is configured to judge whether the power supply current appears overcurrent when the power supply module 11 outputs the power supply current.

[0083] The overcurrent detection module 24 is further configured to transmit the power supply current to the target load 22 for power supply when the power supply current does not appear overcurrent.

[0084] It should be noted that the overcurrent detection module 24 can be any module with overcurrent detection function. The power supply current can be the current provided to the target load 22 for power supply.

[0085] In actual use, the overcurrent detection module 24 can be arranged on the power supply circuit between the target load 22 and the power supply module 11, specifically, if the switching module 23 is arranged, it can be arranged between the switching module 23 and the power supply module 11. Further, when the switching module 23 turns on the power supply circuit between the target load 22 and the power supply module 11, the power supply module 11 can output the power supply current to the overcurrent detection module 24, the overcurrent detection module 24 can collect and determine the current current value of the power supply current in real time, and compare it with the preset current threshold. When it is not higher than the preset current threshold, it can be determined that overcurrent does not occur, and then the overcurrent detection module 24 transmits the power supply current to the switching module 23, and the switching module 23 transmits it to the target load 22; when it is higher than the preset current threshold, it can be determined that overcurrent occurs, and then the overcurrent detection module 24 prohibits transmitting the power supply current to the working module, and the target load 22 does not work. Thus, overcurrent protection is realized.

[0086] Further, considering that the glasses leg 2 can be provided with a loudspeaker, in order to enable the loudspeaker to play the audio of the head-mounted body 1, as shown in the embodiment, the target load 22 includes an audio playing module (not shown in the figure). Figure 1

[0087] The audio playing module is further connected with the processing module 12.

[0088] The processing module 12 is further used for transmitting the generated audio signal to the audio playing module.

[0089] The audio playing module is used for playing audio according to the received audio signal in the case that the power supply module 11 is powering.

[0090] It should be noted that the above-mentioned audio playing module can be any module for playing audio, such as a loudspeaker, and the present embodiment does not limit this. Figure 1 In the embodiment, the target load 22 can be directly replaced by the above-mentioned audio playing module, and the specific connection relationship is not described here.

[0091] It should be emphasized that the audio playing module can also be connected with the processing module 12 in the present embodiment. Further, in actual use, when the audio playing module is powered on and working, if the processing module 12 needs to play audio, the processing module 12 can directly transmit the generated audio signal to the audio playing module, and the audio playing module can play audio according to the audio signal.

[0092] ​In the embodiment, the power supply module 11 and the processing module 12 can be arranged in the head-mounted body 1, the identification module 21 and the target load 22 can be arranged in the temple 2. In actual use, when the head-mounted body 1 is connected with the temple 2, the processing module 12 can be connected with the identification module 21, the processing module 12 can transmit the generated handshake signal to the identification module 21, the identification module 21 can perform handshake identification according to the handshake signal, and feed back the response signal to the processing module 12 when the handshake identification is successful, and the processing module 12 can output the power supply signal to the power supply module 11 when the response signal is received, and the power supply module 11 can supply power to the target load 22 after receiving the power supply signal. In the embodiment, only when the processing module 12 and the identification module 21 perform handshake identification successfully, the power supply module 11 of the head-mounted body 1 is allowed to supply power to the target load 22 in the temple 2. Compared with the existing power-on after the head-mounted body 1 is connected with the temple 2, the embodiment can perform handshake identification after connection, and then perform power-on after handshake identification is successful, so as to ensure that power is supplied only after the connection is stable, thereby improving the service life.

[0093] Referring to Figure 1 , Figure 2 The circuit principle diagram of the second embodiment of the intelligent glasses according to the embodiment is shown in FIG. 2.

[0094] Based on the first embodiment, the second embodiment of the intelligent glasses according to the application is proposed, as shown in FIG. 2. Figure 2 In the embodiment, in order to realize handshake identification, the processing module 12 includes a processor 121.

[0095] The power supply end (i.e., VDD_MAIN of the processor 121) of the processor 121 can be connected with the power supply module 11, the first communication end (i.e., TX of the processor 121) of the processor 121 and the second communication end (i.e., RX of the processor 121) of the processor 121 are connected with the identification module 21, the first audio playing end (i.e., DP of the processor 121) of the processor 121 and the second audio playing end (i.e., DN of the processor 121) of the processor 121 are connected with the audio playing module 25, the grounding end (i.e., GND of the processor 121) of the processor 121 is connected with the reference ground of the head-mounted body 1 and the reference ground of the temple 2, and the control end (i.e., IO of the processor 121) of the processor 121 can also be connected with the power supply module 11. Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2

[0096] ​​​​​​​It should be noted that the processor 121 can be any device that implements the above functions, and the specific model can be set according to the actual situation, and the embodiment does not limit this.

[0097] In actual use, under the power supply of the power supply module 11, the processor 121 can generate a handshake signal at a certain time interval. After receiving the response signal, the control end of the processor 121 outputs a power supply signal to the power supply module 11.

[0098] Further, in order to realize the handshake recognition, as shown in Figure 2 , in the embodiment, the recognition module 21 includes a handshake recognition chip U1, a first capacitor C1, and a first diode D1.

[0099] The power supply end of the handshake recognition chip U1 is connected with the first end of the first capacitor C1 and the cathode of the first diode D1, the anode of the first diode D1 is connected with the power supply module 11, the second end of the first capacitor C1 is grounded, the first communication end of the handshake recognition chip U1 and the second communication end of the handshake recognition chip U1 are connected with the processing module 12, and the ground end of the handshake recognition chip U1 is grounded.

[0100] It should be noted that the handshake recognition chip U1 can be any chip with handshake recognition function, such as a microcontroller, and the embodiment does not limit this.

[0101] It can be understood that the power supply end of the handshake recognition chip U1 (i.e. Figure 2 VDD of the handshake recognition chip U1 in the embodiment) can be connected with the power supply module 11 (i.e. Figure 2 VCC2 in the embodiment) through the first diode D1 to receive the working current provided by the power supply module 11 for power-on work, and the first diode D1 can play a protection role, and the first capacitor C1 can play a filtering role.

[0102] It can also be understood that the first communication end of the handshake recognition chip U1 (i.e. Figure 2 RX of the handshake recognition chip U1 in the embodiment) can be connected with the first communication end of the processor 121 for receiving the handshake signal. The second communication end of the handshake recognition chip U1 (i.e. Figure 2 TX of the handshake recognition chip U1 in the embodiment) can be connected with the second communication end of the processor 121 for feeding back the response signal.

[0103] In actual use, after the first communication end of the handshake recognition chip U1 receives the handshake signal, it can be recognized, and after the handshake recognition is successful, the response signal is output through the second communication end of the handshake chip.

[0104] Further, in order to realize the switching function, in the embodiment, the switching module 23 comprises: a switching chip U2, a first resistor R1 and a second capacitor C2.

[0105] The input end of the switching chip U2 is connected with the first end of the second capacitor C2 and the power supply module 11 respectively, the second end of the second capacitor C2 is grounded, the output end of the switching chip U2 is connected with the target load 22, the enable end of the switching chip U2 is connected with the first end of the first resistor R1 and the identification module 21, the second end of the first resistor R1 is grounded, and the ground end of the switching chip U2 is grounded.

[0106] It should be understood that the above-mentioned switching chip U2 can be any chip with switching function. The input end of the above-mentioned switching chip U2 (i.e. VDD in the switching chip U2) can be connected with the power supply module 11 (i.e. VCC1 in the power supply module 11) to receive the power supply current. Figure 2 The output end of the switching chip U2 (i.e. OUT in the switching chip U2) can be connected with the target load 22 to output the power supply current. The enable end of the switching chip U2 (i.e. EN in the switching chip U2) is the control end of the switching module 23, which can be connected with the control end of the handshake identification chip U1 (i.e. GPIO in the handshake identification chip U1) to receive the conductive signal. Figure 2 Figure 2 The output end of the switching chip U2 (i.e. OUT in the switching chip U2) can be connected with the target load 22 to output the power supply current. The enable end of the switching chip U2 (i.e. EN in the switching chip U2) is the control end of the switching module 23, which can be connected with the control end of the handshake identification chip U1 (i.e. GPIO in the handshake identification chip U1) to receive the conductive signal. Figure 2 Figure 2 The output end of the switching chip U2 (i.e. OUT in the switching chip U2) can be connected with the target load 22 to output the power supply current. The enable end of the switching chip U2 (i.e. EN in the switching chip U2) is the control end of the switching module 23, which can be connected with the control end of the handshake identification chip U1 (i.e. GPIO in the handshake identification chip U1) to receive the conductive signal. Figure 2 Figure 2 Figure 2 Figure 2 Figure 2

[0107] In actual use, after the handshake identification chip U1 successfully identifies the handshake, the conductive signal can be output from the control end of the handshake identification chip U1 to the control end of the switching chip U2, at this time, the input end of the switching chip U2 and the output end of the switching chip U2 are conductive, and then the power supply current is output.

[0108] Further, in order to realize the overcurrent detection function, as shown in Figure 2 Further, in order to realize the overcurrent detection function, as shown in

[0109] The input end of the overcurrent protection chip U3 is connected with the first end of the third capacitor C3 and the power supply module 11, the second end of the third capacitor C3 is grounded, the enable end of the overcurrent protection chip U3 is connected with the input end of the overcurrent protection chip U3, the output end of the overcurrent protection chip U3 is connected with the target load 22, and the ground end of the overcurrent protection chip U3 is grounded.

[0110] It should be noted that the above-mentioned overcurrent protection chip U3 can be any chip with overcurrent protection function, and the embodiment does not limit it. The input end of the above-mentioned overcurrent protection chip U3 (i.e. VDD in the overcurrent protection chip U3) can be connected with the power supply module 11 (i.e. VCC1 in the power supply module 11) to receive the power supply current. Figure 2The overcurrent protection chip U3's VDD can be connected to the power supply module 11 (i.e., Figure 2 The VCC1 is connected to receive the supply current, and the output terminal of the overcurrent protection chip U3 (i.e., VCC1) is connected to receive the supply current. Figure 2 The OUT terminal of the overcurrent protection chip U3 can be connected to the input terminal of the switching chip U2 to output the supply current. The enable terminal of the overcurrent protection chip U3 (i.e.,...) Figure 2 The EN pin of the overcurrent protection chip U3 can be connected to the input pin of the overcurrent protection chip U3 to determine whether the overcurrent protection chip U3 is working.

[0111] In actual use, when the power supply module 11 outputs the power supply current, the enable terminal of the overcurrent protection chip U3 becomes high, and the overcurrent protection chip U3 starts to work, collecting and detecting in real time whether the current value of the power supply current is higher than the preset current threshold. If it is not higher, the power supply current is transmitted to the switching chip U2 through the output terminal of the overcurrent protection chip U3; if it is higher, the output to the switching chip U2 is stopped.

[0112] Furthermore, in order to achieve audio playback, in this embodiment, the audio playback module 25 includes: an audio processing chip U4, a speaker K, and a fourth capacitor C4;

[0113] The power supply terminal of the audio processing chip U4 is connected to the first terminal of the fourth capacitor C4 and the power supply module 11. The first input terminal and the second input terminal of the audio processing chip U4 are connected to the processing module 12. The first output terminal and the second output terminal of the audio processing chip U4 are connected to the speaker K. The ground terminal of the audio processing chip U4 is grounded.

[0114] It is understood that the aforementioned audio processing chip U4 can be any chip that processes audio signals. The power supply terminal of the aforementioned audio processing chip U4 (i.e....) Figure 2 The VDD of the audio processing chip U4 can be connected to the output of the switching chip U2 to receive the power supply current for power-on operation. The first input terminal of the aforementioned audio processing chip U4 (i.e....) Figure 2 The audio processing chip U4's DP can be connected to the first audio playback terminal of the processor 121 to receive audio signals. The second input terminal of the aforementioned audio processing chip U4 (i.e., Figure 2 The audio processing chip U4 (DN) can be connected to the second audio input terminal of the processor 121 to receive audio signals. The first output terminal of the audio processing chip U4 (i.e., Figure 2 The AMP_P of the audio processing chip U4 and the second output terminal of the audio processing chip U4 (i.e. Figure 2 The AMP_N of the mid-audio processing chip U4 is connected to the speaker K for audio playback through the speaker K.

[0115] In actual use, the audio processing chip U4 can play audio through the speaker K after receiving the audio signal output by the processor 121.

[0116] It should be emphasized that, Figure 2 The structure and working principle of the left and right temple arms are consistent, so they can be referred to the specific description of the temple arm 2 above, which will not be repeated here.

[0117] Continue as Figure 2 shown, and based on the above embodiment, a third embodiment of the smart glasses of the application is proposed. As Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure 2 Figure shown, in this embodiment, considering that different temple arms 2 can be provided with different target loads 22, and the required power supply current of different target loads 22 can be inconsistent, in order to realize the adaptation of the power supply current in this embodiment, the power supply module 11 includes: a battery module 111 and a power management unit 112;

[0118] The power management unit 112 is connected with the battery module 111, the processing module 12 and the target load 22 respectively;

[0119] The processing module 12 is further configured to determine the power supply information required by the target load 22 according to the response signal, and generate a corresponding power supply signal to the power management unit 112 according to the power supply information;

[0120] The power management unit 112 is configured to adjust the power supply current provided by the battery module 111 according to the received power supply signal, and transmit the adjusted power supply current to the target load 22 for power supply.

[0121] It should be noted that the above-mentioned battery module 111 can be any module with power supply function, such as battery pack, etc., which is not limited in this embodiment. In this embodiment, the battery module 111 can further include a battery protection board, which can be used for overcharge, overdischarge, overcurrent and short circuit protection of the battery pack, etc., to ensure the safe and stable work of the battery and prolong the service life of the battery.

[0122] It should be further noted that the above-mentioned power management unit 112 can be any unit with power supply management function, such as battery management system (Battery Management System, BMS), etc., which is not limited in this embodiment. The power management unit 112 can be connected with the input end of the overcurrent detection chip to output the power supply current, and also can be connected with the power supply end of the handshake recognition chip U1 to provide working current.

[0123] It can be understood that the power supply information can be parameter information of the power supply current required by the target load 22 to work, for example, can include the size of the power supply current, the size of the voltage, etc., and the present embodiment is not limited thereto.

[0124] In actual use, after the identification module 21 successfully identifies the handshake, the generated response signal can be transmitted to the processing module 12, and the response signal can contain the power supply information of the power supply current parameter required by the target load 22. The processing module 12 can extract the power supply information in the response signal after receiving the response signal, and generate a corresponding power supply signal according to the power supply information and transmit it to the power management unit 112. The power management unit 112 can adjust the power supply current output by the battery module 111 according to the corresponding power supply signal, which can be voltage adjustment, current adjustment, etc., so as to meet the power supply current required by the target load 22 to work. Then the power management unit 112 can transmit the adjusted power supply current to the target load 22 through the overcurrent detection chip and the switch chip U2 for power supply.

[0125] The above is only the preferred embodiment of the present application, and does not limit the patent scope of the present application, and any equivalent structure or equivalent flow transformation using the content of the present application specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection scope of the present application.

Claims

1. A smart glass, characterized by, The intelligent glasses include a head-mounted body and a temple, and the head-mounted body and the temple are detachably connected; The head-mounted body includes a power supply module and a processing module, and the temple includes an identification module and a target load; The processing module is connected with the power supply module and the identification module respectively, and the power supply module is further connected with the target load; The processing module is configured to, in a connected state with the identification module, transmit a generated handshake signal to the identification module, and determine whether a response signal fed back by the identification module is received, the response signal being generated by the identification module after successful handshake identification of the handshake signal; The processing module is further configured to, in a state of receiving the response signal, output a power supply signal to the power supply module, so that the power supply module supplies power to the target load; The temple further includes an overcurrent detection module; The overcurrent detection module is connected with the power supply module and the target load respectively; The overcurrent detection module is configured to, in a state of the power supply module outputting a power supply current, determine whether the power supply current appears overcurrent; The overcurrent detection module is further configured to, in a state of the power supply current not appearing overcurrent, transmit the power supply current to the target load for power supply, the state of the power supply current not appearing overcurrent being that a current value of the power supply current is not higher than a preset current threshold; The power supply module includes a battery module and a power management unit; The power management unit is connected with the battery module, the processing module and the target load respectively; The processing module is further configured to determine power supply information required by the target load according to the response signal, and generate a corresponding power supply signal according to the power supply information and transmit the power supply signal to the power management unit, the power supply information being parameter information of a power supply current required by the target load for work; The power management unit is configured to adjust a power supply current provided by the battery module according to the received power supply signal, and transmit the adjusted power supply current to the target load for power supply.

2. The smart glasses of claim 1, wherein, The identification module is configured to, when receiving the handshake signal, compare the handshake signal with a preset signal; The identification module is further configured to, when the handshake signal matches the preset signal, determine that the handshake identification is successful, and transmit a generated response signal to the processing module.

3. The smart glasses of claim 2, wherein, The identification module includes a handshake identification chip, a first capacitor and a first diode; A power supply end of the handshake identification chip is connected with a first end of the first capacitor and a cathode of the first diode, an anode of the first diode is connected with the power supply module, a second end of the first capacitor is grounded, a first communication end of the handshake identification chip and a second communication end of the handshake identification chip are connected with the processing module, and a ground end of the handshake identification chip is grounded.

4. The smart glasses of claim 1, wherein, The temple further includes a switch module; The switch module is connected with the power supply module, the identification module and the target load respectively; The identification module is further configured to, in a state of successful handshake identification of the handshake signal, output a guide signal to the switch module; The switch module is configured to, when the conduction signal is received, turn on a loop between the power supply module and the target load, so that the power supply module supplies power to the target load.

5. The smart glasses of claim 4, wherein, The switch module comprises a switch chip, a first resistor and a second capacitor. An input end of the switch chip is connected with a first end of the second capacitor and the power supply module, a second end of the second capacitor is grounded, an output end of the switch chip is connected with the target load, an enable end of the switch chip is connected with a first end of the first resistor and the identification module, a second end of the first resistor is grounded, and a ground end of the switch chip is grounded.

6. The smart glasses of claim 1, wherein, The overcurrent detection module comprises an overcurrent protection chip and a third capacitor. An input end of the overcurrent protection chip is connected with a first end of the third capacitor and the power supply module, a second end of the third capacitor is grounded, an enable end of the overcurrent protection chip is connected with the input end of the overcurrent protection chip, an output end of the overcurrent protection chip is connected with the target load, and a ground end of the overcurrent protection chip is grounded.

7. The smart glasses of claim 1, wherein, The target load comprises an audio playing module. The audio playing module is further connected with the processing module. The processing module is further configured to transmit the generated audio signal to the audio playing module. The audio playing module is configured to, when the power supply module supplies power, play audio according to the received audio signal.

8. The smart glasses of claim 7, wherein, The audio playing module comprises an audio processing chip, a loudspeaker and a fourth capacitor. A power supply end of the audio processing chip is connected with a first end of the fourth capacitor and the power supply module, a first input end of the audio processing chip and a second input end of the audio processing chip are connected with the processing module, a first output end of the audio processing chip and a second output end of the audio processing chip are connected with the loudspeaker, and a ground end of the audio processing chip is grounded.

Citation Information

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