Intelligent glasses assembly
By using a split-set electrical energy transmitter and receiver in smart glasses, the human body uses conductive energy to solve the problem of battery weight and cables of smart glasses, and realizes light and comfortable wearing and free movement.
Patent Information
- Application Number
- CN202421948169.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-12
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-08-12
AI Technical Summary
Existing smart glasses are inconvenient to wear and poor comfort due to the built-in large-weight battery, and the electrical connection cables are easily tangled and broken.
The electric energy transmitter and receiver are arranged separately, and the human body is used as the electrical energy conduction medium to realize the transmission of electricity through the conductive layer on the surface of the skin, and the built-in battery and cable connection are cancelled.
It improves the lightness and comfort of wearing smart glasses, solves the problems of winding and disconnection of electrical connection cables, and enhances freedom of movement.
Smart Images

Figure CN223065601U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of smart glasses, and particularly relates to a smart glasses assembly. Background Art
[0002] With the development of technology, as a kind of smart wearable device, smart glasses have been applied in various usage scenarios in people's lives. Smart glasses are devices that can be worn on the user's head, have an appearance similar to glasses, and incorporate augmented reality (AR) or virtual reality (VR), etc.
[0003] Currently, smart glasses usually have a built-in battery. To ensure that the smart glasses have a sufficient power endurance duration, a relatively heavy battery needs to be built into the smart glasses, which makes the weight of the smart glasses worn on the head relatively large and the wearing comfort relatively poor. Summary of the Utility Model
[0004] The utility model provides a smart glasses assembly to improve the portability of the smart glasses when worn on the head.
[0005] An embodiment of the utility model provides a smart glasses assembly, which includes: a power transmitter, the power transmitter is electrically connected to a power source, and the transmitting end of the power transmitter is connected to a first position of the user's skin; a smart glasses, the smart glasses includes a power receiver, the receiving end of the power receiver is connected to a second position of the user's skin, the second position is spaced from the first position, and the electric energy transmitted by the power transmitter is collected by the power receiver after being transmitted through the human body.
[0006] According to the foregoing embodiment of the utility model, the smart glasses further includes an energy conversion module, the energy conversion module is electrically connected to the power receiver, and the power-consuming module in the smart glasses is electrically connected to the energy conversion module.
[0007] According to any of the foregoing embodiments of the utility model, a first conductive liquid layer or a first conductive patch is provided between the transmitting end of the power transmitter and the skin.
[0008] According to any of the foregoing embodiments of the utility model, a second conductive liquid layer or a second conductive patch is provided between the receiving end of the power receiver and the skin.
[0009] According to any of the foregoing embodiments of the utility model, the smart glasses assembly further includes: a wearable member, the wearable member can be worn on the human body and includes an attaching portion attached to the skin, and the power transmitter is installed on the attaching portion.
[0010] According to any of the foregoing embodiments of the utility model, the wearable member is clothing.
[0011] According to any of the aforementioned embodiments of the utility model, the wearable device also includes an auxiliary transmission portion, which extends from the attachment portion in a direction close to the first position, the auxiliary transmission portion can be attached to the skin, and the auxiliary transmission portion includes a conductor structure.
[0012] According to any of the aforementioned embodiments of the present utility model, the smart glasses assembly also includes: an auxiliary transmission patch that can be adhered to the skin surface, the auxiliary transmission patch is adhered between the first position and the second position of the skin, and the auxiliary transmission patch includes a conductor structure.
[0013] According to any of the aforementioned embodiments of the present utility model, the smart glasses include a frame assembly and temples movably connected to the frame assembly, and the power receiver is installed on the temples.
[0014] According to any of the aforementioned implementations of the utility model, the temples are arranged in pairs, and the power receiver is provided in each temple.
[0015] According to the smart glasses assembly of the embodiment of the utility model, the smart glasses assembly includes a power transmitter electrically connected to the power supply, and the smart glasses include a power receiver. The power transmitter and the power supply for supplying power to the smart glasses can be separately arranged from the smart glasses. The power transmitted by the power transmitter is transmitted through the human body and then collected by the power receiver, thereby realizing the power transmission from the power supply to the smart glasses, that is, realizing the power supply to the smart glasses. In the above-mentioned smart glasses assembly, the human body is used as a power conduction medium to realize the power supply of the separate power supply to the smart glasses, wherein the smart glasses no longer need to have a heavy built-in battery, thereby improving the portability of the smart glasses when worn on the head and improving the wearing comfort of the smart glasses. In addition, the above-mentioned smart glasses assembly no longer needs to set an electrical connection cable between the separate power supply and the smart glasses, thereby improving the freedom of movement of the smart glasses after being worn and solving the problems of entanglement and disconnection of the electrical connection cable. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the utility model. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying creative work.
[0017] Figure 1 This is a front view schematic diagram of an embodiment of the smart glasses assembly of the utility model;
[0018] Figure 2Structural schematic diagram of an alternative embodiment of the intelligent glasses assembly of the present utility model;
[0019] Figure 3 Structural schematic diagram of another alternative embodiment of the intelligent glasses assembly of the present utility model.
[0020] Explanation of reference numerals:
[0021] 110 - Power supply;
[0022] 120 - Electric energy transmitter;
[0023] 130 - Intelligent glasses; 131 - Electric energy receiver; 132 - Energy conversion module;
[0024] 140 - Wearable component; 141 - Auxiliary transmission part;
[0025] 150 - Auxiliary transmission patch;
[0026] 200 - Human body.
[0027] The realization of the object, functional features and advantages of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Detailed implementation manners
[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described with reference to 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.
[0029] 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.
[0030] 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 the 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 it. 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.
[0031] Figure 1 This is a schematic structural diagram of an embodiment of the intelligent glasses assembly of the present utility model. The intelligent glasses assembly includes an electric energy transmitter 120 and intelligent glasses 130. The electric energy transmitter 120 is electrically connected to a power source 110, and the transmitting end of the electric energy transmitter 120 is connected to a first position on the user's skin. The intelligent glasses 130 can be worn on the head. The intelligent glasses 130 are, for example, Augmented Reality (AR) glasses. In some other embodiments, the intelligent glasses 130 can also be Virtual Reality (VR) glasses or other head-mounted display devices with a similar glasses appearance. The intelligent glasses 130 include an electric energy receiver 131. The receiving end of the electric energy receiver 131 is connected to a second position on the user's skin, and the second position is spaced from the first position. The electric energy transmitted by the electric energy transmitter 120 is collected by the electric energy receiver 131 after being transmitted through the human body 200.
[0032] In some embodiments, the transmitting end of the electric energy transmitter 120 directly contacts the first position of the skin. In some other embodiments, the transmitting end of the electric energy transmitter 120 is connected to the skin through an electrical connector. In some embodiments, the receiving end of the electric energy receiver 131 directly contacts the first position of the skin. In some other embodiments, the receiving end of the electric energy receiver 131 is connected to the skin through an electrical connector.
[0033] In some embodiments, the intelligent glasses assembly further includes a power source 110, which is electrically connected to the electric energy transmitter 120 and is used to supply electric energy. The power source 110 can be separately arranged from the intelligent glasses 130. The power source 110 is, for example, a battery or a power adapter.
[0034] In some other embodiments, the power source 110 can be integrated into the electric energy transmitter 120. The power source 110 integrated into the electric energy transmitter 120 is, for example, a battery or a power generation device. The power generation device is, for example, a photovoltaic power generation device, a mechanical energy power generation device, a thermal energy power generation device, etc.
[0035] The electric energy transmitter 120 is used to transmit electric energy to the human body through a conductive electrode. In one example, the electric energy transmitter 120 includes a transmitting electrode, a signal generating module, and a transmission control module. The transmitting electrode is a conductive electrode and is used to connect to the skin to transmit electric energy. The transmitting electrode can directly contact the skin or can be connected to the skin through an electrical connector. The signal generating module is used to generate an electric energy signal suitable for transmission according to the electric energy supplied by the power source 110. This electric energy signal can be a direct current signal or an alternating current signal. The transmission control module is used to adjust and control parameters such as the intensity and frequency of the transmitted electric energy signal, so as to ensure stable transmission of electric energy.
[0036] The electric energy receiver 131 is used to collect electric energy from the human body through conductive electrodes. In one example, the electric energy receiver 131 includes a receiving electrode, a signal receiving module, and a receiving control module. The receiving electrode is a conductive electrode for connecting with the skin to collect electric energy. The receiving electrode can be in direct contact with the skin or connected to the skin through an electrical connector. The signal receiving module is used to receive the electric energy signal collected by the receiving electrode and convert it into available electric energy. The receiving control module is used to adjust and control the processing of the received electric energy signal to ensure stable collection of electric energy.
[0037] The transmitting electrode included in the electric energy transmitter 120 and the receiving electrode included in the electric energy receiver 131 are both conductive electrodes. The conductive electrode can be made of a highly conductive material, such as a metal electrode like a copper electrode, a silver electrode, a gold-plated electrode, or an Ag / AgCl electrode, or a special electrode. The special electrode is obtained by further surface treatment of the conductive material. The surface treatment is, for example, surface polishing, surface coating, etc. Electrode polishing can reduce surface roughness and the friction with the skin. The surface coating is, for example, coating a conductive polymer coating or / and a biocompatible coating on the surface of the conductive material to enhance conductivity and / or biocompatibility. The conductive polymer coating is, for example, a PEDOT∶PSS (poly(3,4-ethylenedioxythiophene):polystyrenesulfonate) coating, which has good conductivity and flexibility. The biocompatible coating is, for example, a collagen coating, which can enhance the comfort of skin contact and reduce allergies and irritation.
[0038] The above-mentioned transmitting electrode and receiving electrode are designed to have a contact area and shape suitable for the skin to ensure good electric energy transmission and wearing comfort. The transmitting electrode and receiving electrode are, for example, circular, oval, or designed with an ergonomic curved surface to improve wearing comfort and stability.
[0039] The voltage and current of the electric energy signal transmitted by the electric energy transmitter 120 are within a safe range. Generally, the voltage of the electric energy signal does not exceed 12V, and the current of the electric energy signal is controlled within the milliampere level (mA).
[0040] According to the smart glasses assembly of the embodiment of the utility model, the smart glasses assembly includes a power transmitter 120 electrically connected to a power source 110, and the smart glasses 130 include a power receiver 131. The power transmitter 120 and the power source 110 for supplying power to the smart glasses 130 can be separately arranged from the smart glasses 130. The power transmitted by the power transmitter 120 is transmitted through the human body 200 and then collected by the power receiver 131, thereby realizing the power transmission from the power source 110 to the smart glasses 130, that is, realizing the power supply to the smart glasses 130. In the above-mentioned smart glasses assembly, the human body is used as a power conduction medium to realize the power supply from the separately arranged power source 110 to the smart glasses 130, wherein the smart glasses 130 no longer need to have a heavy battery built in, thereby improving the portability of the smart glasses 130 when worn on the head, and improving the wearing comfort of the smart glasses 130. In addition, the above-mentioned smart glasses assembly no longer needs to set an electrical connection cable between the separate power supply 110 and the smart glasses 130, thereby improving the freedom of movement of the smart glasses 130 after being worn and solving the problems of entanglement and disconnection of the electrical connection cables.
[0041] In some embodiments, the smart glasses 130 further include an energy conversion module 132 , which is electrically connected to the power receiver 131 , and the power consumption module in the smart glasses 130 is electrically connected to the energy conversion module 132 .
[0042] The energy conversion module 132 may include a rectifier circuit, a voltage regulator circuit, a power management circuit, and the like. The rectifier circuit is used to convert the AC power signal collected by the power receiver 131 into a DC power signal. The rectifier circuit includes, for example, a diode rectifier or a filter capacitor. The diode rectifier includes, for example, a bridge rectifier circuit, which has a high-efficiency energy conversion capability. The filter capacitor can smooth the voltage fluctuation after rectification and provide stable DC power. The voltage regulator circuit is used to stabilize the voltage to ensure that the output voltage is stable and suitable for the power module of the smart glasses 130. The voltage regulator circuit includes a linear regulator or a switching regulator. The linear regulator is, for example, an LM7805 linear regulator, which provides a fixed voltage output. The switching regulator, such as a Buck circuit or a Boost circuit, can efficiently and stably output voltage. The power management circuit is used to optimize the utilization of power and improve the endurance of the smart glasses 130. The power management circuit includes a battery management system (BMS) and a power distribution module. The power distribution module reasonably distributes power according to the needs of different power modules of the smart glasses 130 to ensure the normal operation of each power module.
[0043] The power-consuming modules in the smart glasses 130 are, for example, optical engines, speakers, processors, etc.
[0044] In some embodiments, a first conductive liquid layer or a first conductive patch is provided between the transmitting end of the electric energy transmitter 120 and the skin. By providing the first conductive liquid layer or the first conductive patch between the transmitting end of the electric energy transmitter 120 and the skin, the conductivity of the skin surface at the first position can be improved, thereby improving the stability of the electric energy transmitter 120 in transmitting electric energy to the skin.
[0045] The first conductive liquid can be an electrolyte solution, such as sodium chloride solution, potassium chloride solution, etc. The first conductive patch can be a conductive gel, a conductive fabric (such as silver-plated fabric), or a silicone conductive patch, etc.
[0046] In some embodiments, when connecting the transmitting end of the electric energy transmitter 120 to the first position of the skin, first apply the first conductive liquid at the first position of the skin, or attach the first conductive patch to the first position of the skin, then contact the transmitting end of the electric energy transmitter 120 with the first conductive liquid or the first conductive patch, and fix the electric energy transmitter 120 at the first position of the skin. In some embodiments, the first conductive liquid or the first conductive patch is integrated on the first connection surface of the transmitting end of the electric energy transmitter 120 for connecting to the skin.
[0047] In some embodiments, a second conductive liquid layer or a second conductive patch is provided between the receiving end of the electric energy receiver 131 and the skin. By providing the second conductive liquid layer or the second conductive patch between the receiving end of the electric energy receiver 131 and the skin, the conductivity of the skin surface at the second position can be improved, thereby improving the stability of the electric energy receiver 131 in receiving and collecting electric energy from the second position of the skin.
[0048] The second conductive liquid can be an electrolyte solution, such as sodium chloride solution, potassium chloride solution, etc. The second conductive patch can be a conductive gel, a conductive fabric, or a silicone conductive patch, etc.
[0049] In some embodiments, when connecting the receiving end of the electric energy receiver 131 to the second position of the skin, first apply the second conductive liquid at the second position of the skin, or attach the second conductive patch to the second position of the skin, then contact the receiving end of the electric energy receiver 131 with the second conductive liquid or the second conductive patch. In some embodiments, the second conductive liquid or the second conductive patch is integrated on the second connection surface of the receiving end of the electric energy receiver 131 for connecting to the skin.
[0050] In some embodiments, the smart glasses 130 include a frame assembly and temple arms movably connected to the frame assembly, and the electric energy receiver 131 is installed on the temple arms. In some embodiments, the electric energy receiver 131 is installed on the temple arms, and the receiving end of the electric energy receiver 131 is exposed on the surface of the temple arms. The temple arms of the smart glasses 130 have a side surface in contact with the human skin, and the receiving end of the electric energy receiver 131 is exposed on this side surface.
[0051] In some embodiments, the temple arms are provided in pairs, and each temple arm is provided with an electric energy receiver 131. In some embodiments, there are two energy conversion modules 132, and the energy conversion modules 132 are arranged in one-to-one correspondence with the electric energy receivers 131.
[0052] The usage process of the smart glasses assembly according to the embodiment of the present utility model is as follows: First, connect the transmitting end of the electric energy transmitter 120 to the user's skin, for example, connect it to the skin of the user other than the head. The electric energy transmitter 120 is installed on the wearable 140, for example. At this time, it is necessary to wear the wearable 140 on the human body and connect the transmitting end of the electric energy transmitter 120 to the skin. Then, turn on the electric energy transmitter 120, and the electric energy transmitter 120 starts to transmit electric energy to the human body 200. Then, wear the smart glasses 130 on the head. At this time, the receiving end of the electric energy receiver 131 of the smart glasses 130 is connected to the skin, that is, connected to the skin of the user's head, and the electric energy receiver 131 starts to collect electric energy from the human body 200. The energy conversion module 132 of the smart glasses 130 converts the electric energy received by the electric energy receiver 131 into a voltage matching the power-consuming module in the smart glasses 130.
[0053] Figure 2 It is a schematic structural diagram of an alternative embodiment of the smart glasses assembly of the present utility model. The smart glasses assembly includes an electric energy transmitter 120 and smart glasses 130. The electric energy transmitter 120 is electrically connected to a power supply 110, and the transmitting end of the electric energy transmitter 120 is connected to a first position of the user's skin. The smart glasses 130 can be worn on the head. The smart glasses 130 include an electric energy receiver 131. The receiving end of the electric energy receiver 131 is connected to a second position of the user's skin, and the second position is spaced from the first position. The electric energy transmitted by the electric energy transmitter 120 is collected by the electric energy receiver 131 after being transmitted through the human body 200. The smart glasses 130 may further include an energy conversion module 132.
[0054] In this alternative embodiment, the smart glasses assembly further includes an auxiliary transmission patch 150. The auxiliary transmission patch 150 can be adhered to the skin surface, the auxiliary transmission patch 150 is adhered between the first position and the second position of the skin, and the auxiliary transmission patch 150 includes a conductor structure. The auxiliary transmission patch 150 may include a conductive gel, a conductive fabric, or a silicone conductive patch, etc. The surface of the auxiliary transmission patch 150 is provided with a conductive adhesive layer, and this adhesive layer can achieve repeated adhesion between the auxiliary transmission patch 150 and the skin. The auxiliary transmission patch 150 is a conductive patch. After the auxiliary transmission patch 150 is attached to the skin, it improves the conductivity at the skin surface, thereby improving the electric energy transmission performance from the first position to the second position of the human skin, and further improving the stability and directional transmission accuracy of the electric energy transmission in the human body.
[0055] Figure 3This is a schematic structural diagram of another alternative embodiment of the intelligent glasses assembly of the present utility model. The intelligent glasses assembly includes an electric energy transmitter 120 and intelligent glasses 130. The intelligent glasses 130 include an electric energy receiver 131.
[0056] In this embodiment, the intelligent glasses assembly further includes a wearable member 140. The wearable member 140 can be worn on the human body and includes an attaching portion that adheres to the skin, and the electric energy transmitter 120 is installed on the attaching portion.
[0057] In some embodiments, the power supply 110 is also disposed on the wearable member 140. The wearable member 140 is worn on, for example, the upper body or the lower body of the human body. Compared with the head, the upper body or the lower body of the user has higher load-bearing capacity and load-bearing comfort. A power supply 110 with a larger capacity can be worn on the wearable member 140, and the intelligent glasses 130 can be continuously powered through the electric energy transmitter 120 and the human body 200, so as to facilitate improving the electric energy endurance of the intelligent glasses assembly.
[0058] In some embodiments, the wearable member 140 is clothing. For example, the wearable member 140 is an upper garment, and the electric energy transmitter 120 is disposed on the upper garment and is in close contact with the first position of the skin. In some other embodiments, the wearable member 140 can be other objects that can be attached and worn on the human body, such as a waist-binding member, an arm-binding member, a leg-binding member, etc.
[0059] In some embodiments, the wearable member 140 further includes an auxiliary transmission portion 141. The auxiliary transmission portion 141 extends from the attaching portion in a direction close to the first position. The auxiliary transmission portion 141 can adhere to the skin and includes a conductor structure. The auxiliary transmission portion 141 is disposed on the surface of the wearable member 140 facing the human skin. In some embodiments, the auxiliary transmission portion 141 includes a conductive patch assembly. After the conductive patch assembly adheres to the skin, the conductivity of the skin surface is improved, so as to improve the electric energy transmission performance from the first position to the second position of the human skin, and further improve the stability and directional transmission accuracy of the electric energy transmission in the human body.
[0060] The intelligent glasses assembly of the embodiment of the present utility model utilizes the human body electric energy conduction technology to realize short-distance wireless electric energy transmission, and improves the portability and freedom of movement after wearing the intelligent glasses 130.
[0061] The above are only the preferred embodiments of the present utility model, and do not limit the patent scope of the present utility model. Any equivalent structural transformation made under the concept of the present utility model by using the content of the specification and drawings of the present utility model, or directly / indirectly applied to other related technical fields, is included in the patent protection scope of the present utility model.
Claims
1. An intelligent glasses component, characterized in that, Comprising: An electric energy transmitter, which is electrically connected to a power source, and the transmitting end of the electric energy transmitter is connected to a first position on the user's skin; Smart glasses, which include an electric energy receiver, the receiving end of the electric energy receiver is connected to a second position on the user's skin, the second position is spaced from the first position, and the electric energy transmitted by the electric energy transmitter is collected by the electric energy receiver after being transmitted through the human body.
2. The smart glasses assembly according to claim 1, wherein The smart glasses further include an energy conversion module, the energy conversion module is electrically connected to the electric energy receiver, and the power-consuming module in the smart glasses is electrically connected to the energy conversion module.
3. The smart glasses assembly according to claim 1, wherein, A first conductive liquid layer or a first conductive patch is provided between the transmitting end of the electric energy transmitter and the skin.
4. The smart glasses assembly according to claim 1, wherein A second conductive liquid layer or a second conductive patch is provided between the receiving end of the electric energy receiver and the skin.
5. The smart glasses assembly according to claim 1, wherein, Further comprising: A wearable, which can be worn on the human body and includes an attaching portion attached to the skin, and the electric energy transmitter is installed on the attaching portion.
6. The smart glasses assembly according to claim 5, wherein, The wearable is clothing.
7. The smart glasses assembly according to claim 5, characterized in that The wearable further includes an auxiliary transmission portion, the auxiliary transmission portion extends from the attaching portion towards the direction close to the first position, the auxiliary transmission portion can be attached to the skin, and the auxiliary transmission portion includes a conductor structure.
8. The intelligent glasses assembly according to claim 1, wherein Further comprising: An auxiliary transmission patch, which can be adhered to the skin surface, the auxiliary transmission patch is adhered between the first position and the second position of the skin, and the auxiliary transmission patch includes a conductor structure.
9. The smart glasses assembly according to claim 1, characterized in that, The smart glasses include a frame assembly and temple arms movably connected to the frame assembly, and the electric energy receiver is installed on the temple arms.
10. The smart glasses assembly according to claim 9, characterized in that, The temple arms are provided in pairs, and each temple arm is provided with the electric energy receiver.