Smart devices

CN224708304UActive Publication Date: 2026-09-01SHENZHEN YIWEN TECH LTD
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Patent Information

Application Number
CN202521566655.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-24
Publication Date
2026-09-01
Estimated Expiration
2035-07-24

AI Technical Summary

Technical Problem

[0003]其中,对于针对两侧人眼分别设置投影模块的智能设备而言,需在智能设备的两侧对应设置投影模块进行图像光输出,但相关技术中两侧的控制模块的控制不够同步,使得两侧的投影组件输出图像光的时间出现差异,严重影响着佩戴者观看图像的体验

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Smart Images

  • Figure CN224708304U_ABST
    Figure CN224708304U_ABST
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Abstract

This application relates to the field of head-mounted smart glasses technology and discloses a smart device, including: a wearable frame including a frame assembly with a receiving cavity, a first temple, and a second temple; a control assembly including a first control module disposed on a first side and a second control module disposed on a second side; a power supply assembly including a first power module disposed on the first side and a second power module disposed on the second side, wherein the first power module supplies power to the first control module and the second power module is configured to supply power to the second control module; and an electrical connection assembly including a first connector at least partially passing through the receiving cavity to electrically connect the first control module and the second control module. This application utilizes the electrical connection assembly to connect the control modules on both sides, making the communication signal transmission between the two control modules more stable and rapid. Furthermore, the receiving cavity formed on the frame assembly accommodates at least a portion of the first connector, providing both protection and reducing the size of the frame assembly.
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Description

Technical Field

[0001] This application relates to the field of head-mounted smart device technology, and more particularly to a smart device. Background Technology

[0002] The application of head-mounted smart devices is becoming increasingly widespread. For example, AR (Augmented Reality) glasses can provide wearers with many convenient functions. In practical use, the projection module in the smart device can provide image light to the display module so that the display module can display the image to the user's eyes.

[0003] For smart devices that have projection modules set for each eye, corresponding projection modules need to be set on both sides of the smart device to output image light. However, the control modules on both sides are not synchronized enough in related technologies, which causes the timing of the image light output by the projection components on both sides to differ, seriously affecting the wearer's viewing experience. Utility Model Content

[0004] This application provides an intelligent device that aims to improve the stability and speed of communication signal transmission between control modules on both sides of the intelligent device, and to improve the control synchronization of the control modules on both sides.

[0005] This application provides a smart device for wearing on a wearer's head, the smart device comprising: Wearable support, including a frame assembly and a temple assembly, the temple assembly including a first temple and a second temple, the frame assembly having opposing first and second sides, the first temple connected to the first side of the frame assembly, the second temple connected to the second side of the frame assembly, and the frame assembly having a receiving chamber extending from the first side to the second side; A control component, configured to control a smart device, includes a first control module and a second control module, the first control module being disposed on a first side of the wearable bracket, and the second control module being disposed on a second side of the wearable bracket; and, An electrical connection assembly, comprising a first connector at least partially passing through a receiving chamber to electrically connect a first control module and a second control module. Attached Figure Description

[0006] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0007] Figure 1A schematic diagram of the structure of a smart device provided in one or more embodiments of this application; Figure 2 A schematic diagram of the structure of an electrical connection component in a smart device provided in one or more embodiments of this application; Figure 3 This application provides a schematic diagram of the structure of a temple assembly in a smart device, representing one or more embodiments of the present application. Figure 4 A schematic diagram showing the relative positions of an electrical connection component and a wearable bracket, provided for one or more embodiments of this application; Figure 5 This is a schematic diagram of the structure of another smart device provided in one or more embodiments of this application, wherein the temple assembly is unfolded relative to the frame assembly; Figure 6 This is a schematic diagram of the structure of another smart device provided in one or more embodiments of this application, wherein the temple assembly is retracted relative to the frame assembly; Figure 7 A schematic diagram of the structure of a frame assembly in a smart device provided in one or more embodiments of this application; Figure 8 A schematic diagram of the structure of a frame assembly and a lens assembly in a smart device provided for one or more embodiments of this application; Figure 9 A partially enlarged schematic diagram of region A of a frame assembly and lens assembly in a smart device provided for one or more embodiments of this application; Figure 10 This is an exploded view of the frame assembly and lens assembly in a smart device provided for one or more embodiments of this application.

[0008] Figure label: 1000. Smart devices; 100. Wearing bracket; 110. Frame assembly; 111. First frame; 1111. First frame section; 1112. Second frame section; 112. Second frame; 1121. Third frame section; 1122. Fourth frame section; 113. Center beam; 114. Front frame; 115. Rear frame; 1151. First step section; 1152. Second step section; 116. Hollowed-out groove; 117. First connecting part; 118. Second connecting part; 120. Temple assembly; 130. First temple; 131. First front end; 132. First rear end; 133. First receiving compartment; 134. First cavity; 140. Second temple; 141. Second front end; 142. Second rear end; 143. Second receiving compartment; 144. Second cavity; 150. Receiving chamber; 151. First chamber; 152. Second chamber; 1521. First cable routing channel; 1522. Second cable routing channel; 1523. Third cable routing channel; 153. Adaptive opening; 160. Field of view slot; 170. Adhesive component; 200. Control component; 210. First control module; 220. Second control module; 300. Power supply assembly; 310. First power supply module; 320. Second power supply module; 400. Electrical connection assembly; 410. First connector; 420. Second connector; 430. Third connector; 500, Display assembly; 510, First display module; 520, Second display module; 530, Lens assembly; 531, First lens; 532, Second lens; 600. Projection assembly; 610. First projection module; 620. Second projection module; 800. Wireless transmission components; D1, First Direction; D2, Second Direction; D3, Third Direction. Detailed Implementation

[0009] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. Unless otherwise specified, the embodiments of this application can be combined with each other. Other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application. The flowcharts shown in the accompanying drawings are merely illustrative and do not necessarily include all content and operations / steps, nor do they necessarily have to be performed in the described order. For example, some operations / steps can be decomposed, combined, or partially merged; therefore, the actual execution order may change according to the actual situation. The above descriptions are merely specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this application, and these modifications or substitutions should all be covered within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

[0010] The application of head-mounted smart devices is becoming increasingly widespread. For example, AR (Augmented Reality) glasses can provide wearers with many convenient functions. In practical use, the projection module in the smart device can provide image light to the display module so that the display module can display the image to the user's eyes.

[0011] For smart devices that have projection modules set for each eye, control modules need to be set on both sides of the smart device to control the image light output of the two projection modules respectively. However, the control modules on both sides are not synchronized enough in the relevant technologies, which causes the time of image light output by the projection components on both sides to differ, seriously affecting the wearer's viewing experience.

[0012] Based on this, this application provides a smart device that aims to improve the stability and speed of communication signal transmission between the control modules on both sides of the smart device, so as to make the control behavior of the control modules on both sides more synchronized.

[0013] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0014] Please see Figures 1 to 4This application provides a smart device 1000. For example, the smart device 1000 is a smart glasses that can be worn on the head of the wearer. The smart glasses are, for example, VR (Virtual Reality) glasses, AR (Augmented Reality) glasses, XR (Extender Reality) glasses, MR (Mixed Reality) glasses, or other glasses that can be worn on the head.

[0015] Specifically, the smart device 1000 includes at least a wearable bracket 100, a control component 200, a power supply component 300, and an electrical connection component 400. The following provides a detailed description of each component: Specifically, the wearable bracket 100 is used to provide wear support, and the wearer can wear the smart device 1000 on the head through the wearable bracket 100. The wearable bracket 100 includes a frame assembly 110 and a temple assembly 120, wherein the temple assembly 120 includes a first temple 130 and a second temple 140. The wearable bracket 100 has a first side and a second side opposite to each other. The first temple 130 is connected to the first side of the frame assembly 110, and the second temple 140 is connected to the second side of the frame assembly 110. The frame assembly 110 has a receiving chamber 150 extending from the first side to the second side.

[0016] As one embodiment, when the wearer wears the smart device 1000 on their head through the wear bracket 100, the first side and the second side are the two sides corresponding to the wearer's eyes respectively. For example, when the wearer wears the smart device 1000, the first side corresponds to the wearer's left side and the second side corresponds to the wearer's right side.

[0017] Specifically, the control component 200 is configured to control the smart device 1000, and the control component 200 includes a first control module 210 and a second control module 220. The first control module 210 is disposed on the first side of the wearable bracket 100, and the second control module 220 is disposed on the second side of the wearable bracket 100.

[0018] By way of example and not limitation, the first control module 210 is disposed on the first temple 130, and the second control module 220 is disposed on the second temple 140. In other embodiments, the first control module 210 may also be disposed on the first side of the frame assembly 110, and the second control module 220 may also be disposed on the second side of the frame assembly 110.

[0019] It should be noted that the control component 200 is used to control the operation of the smart device 1000 so that the smart device 1000 performs corresponding functions. As one embodiment, the smart device 1000 also includes functional components, such as at least one of: a combination of a projection component 600 and a display component 500, an eye-tracking component, a voice output component, and a voice acquisition component 700. Specifically, the projection component 600 is configured to provide image light to the display module so that the display module displays an image to the user's eyes; the eye-tracking component is configured to detect the wearer's eye movements; the voice output component is configured to output voice information; and the voice acquisition component 700 is configured to acquire voice information.

[0020] As an example and not a limitation, the smart device 1000 may have the above-mentioned functional components on both sides. The first control module 210 and the second control module 220 are configured to control the functional components on the same side. Specifically, the first control module 210 controls the functional components on the first side, and the second control module 220 controls the functional components on the second side.

[0021] For example, a first projection module 610 and a first display module 510 are provided on the first side of the smart device 1000, and a second projection module 620 and a second display module 520 are provided on the second side of the smart device 1000. A first control module 210 is configured to control the first projection module 610 to provide image light to the first display module 510 so that the first display module 510 displays an image to the user's eyes. A second control module 220 is configured to control the second projection module 620 to provide image light to the second display module 520 so that the second display module 520 displays an image to the user's eyes.

[0022] It should also be noted that the eye-tracking component, voice output component, and voice acquisition component 700 can be located on the first and second sides of the smart device 1000, or only on one of the first and second sides.

[0023] Specifically, the power supply assembly 300 includes a first power module 310 and a second power module 320. The first power module 310 is disposed on the first side of the wearable bracket 100, and the second power module 320 is disposed on the second side of the wearable bracket 100. The first power module 310 is electrically connected to the first control module 210, and the second power module 320 is electrically connected to the second control module 220.

[0024] The first power module 310 is configured to supply power to the first control module 210 so that the first control module 210 can work normally. Furthermore, the first power module 310 is also configured to supply power to at least some of the functional components disposed on the first side.

[0025] The second power module 320 is configured to supply power to the second control module 220 so that the second control module 220 can operate normally. Furthermore, the second power module 320 is also configured to supply power to at least some of the functional components disposed on the second side.

[0026] Specifically, the electrical connection assembly 400 includes a first connector 410 that at least partially passes through the accommodating chamber 150, and can directly or indirectly connect the first control module 210 disposed on the first side and the second control module 220 disposed on the second side, so that the first control module 210 and the second control module 220 can transmit signals through the electrical connection assembly 400. As one embodiment, the electrical connection assembly 400 is disposed on the wearable bracket 100, and the electrical connection assembly 400 can be arranged along the relative directions of the first and second sides of the wearable bracket 100.

[0027] The first connector 410 can be used to transmit signals or power. For example, the signal output by the first control module 210 can be transmitted to the second control module 220 through the first connector 410, and the signal output by the second control module 220 can also be transmitted to the first control module 210 through the first connector 410. On the other hand, the power output by the first power module 310 and / or the second power module 320 can also be transmitted through the first connector 410.

[0028] As one embodiment, if the first connector 410 in the electrical connection assembly 400 is used only for transmitting signals and not for transmitting power, the size of the first connector 410 and the wearable bracket 100 can be reduced.

[0029] It should be understood that by creating a receiving chamber 150 on the frame assembly 110 to accommodate the first connector 410, at least a portion of the first connector 410 can be directly placed inside the frame assembly 110, so that the frame assembly 110 protects the first connector 410 without the need for additional structures on the frame assembly 110 to cover the first connector 410, thereby reducing the size of the frame assembly 110.

[0030] It should be noted that in the smart device 1000 provided in this application embodiment, the first control module 210 located on the first side and the second control module 220 located on the second side are connected by an electrical connection component 400 to conduct signal communication and interaction based on the wired connection. This makes the communication signal transmission between the two control modules more stable and faster. Compared with the wireless connection scheme in related technologies, the smart device 1000 makes the control behavior of the two control modules more synchronized through the wired connection.

[0031] It should also be noted that in some smart devices provided by related technologies, the smart device has a control component on one side and a power supply component on the other side to supply power to the control component. In this case, the smart device needs to have a wire for transmitting power in the frame. This wiring method of the frame is unreasonable and will result in a significant increase in the thickness of the frame, thereby affecting the wearing experience.

[0032] Based on this, the smart device 1000 provided in this application embodiment provides a first control module 210 and a second control module 220 on the first and second sides of the wearable bracket 100, respectively. A first power module 310 is provided on the first side to supply power to the first control module 210, and a second power module 310 is provided on the second side to supply power to the second control module 220. Therefore, there is no need to provide a power supply wire in the frame assembly 110. Only a first connector 410 for signal transmission is needed. It should be noted that the thickness and volume of the first connector 410 are significantly smaller than those of the wire, thereby reducing the volume of the frame assembly 110 and significantly improving the wearing experience.

[0033] To further clarify, at least one of the controller, the first control module 210, and the second control module 220 in the embodiments of this application may include a programmable logic controller (PLC), a central processing unit (CPU), a microcontroller unit (MCU), other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The above are merely examples; any module capable of implementing control functions falls within the protection scope of the embodiments of this application.

[0034] In some implementations, the current on the electrical connection assembly 400 is within the range of 50mA.

[0035] Preferably, the current range on the electrical connection component 400 is 20μA-2mA. It should be noted that this preferred current range is used to support electrical signal communication between the first control module 210 and the second control module 220 via the electrical connection component 400.

[0036] Furthermore, the first power module 310 located on the first side can also supply low current, slow charge, or auxiliary charge to the second control module 220, the second power module 320, or other modules located on the second side via the first connector 400. The second power module 320 located on the second side can also supply low current, slow charge, or auxiliary charge to the second control module 220 or other modules located on the second side via the first connector 400. Correspondingly, the current range of the first connector 400 will be slightly larger in this case, but it can still be controlled within 50mA.

[0037] It should be understood that, since the electrical transmission capability requirements of the electrical connection component 400 are relatively low, the size of the electrical connection component 400 can be compressed to a certain extent, thereby reducing the volume of the frame component 110 and significantly improving the wearing experience.

[0038] like Figure 5 As shown, in some embodiments, the display component 500 also includes a lens component 530. Specifically, when the wearer configures the smart device 1000, they can see images outside the smart device 1000 through the lens component 530, and also view images formed on the display component 500 by the light signals provided by the projection component 600.

[0039] like Figure 2 As shown, in some embodiments, the electrical connection assembly 400 further includes a second connector 420 and a third connector 430. At least a portion of the second connector 420 is disposed on the first temple 130 and connected to the first control module 210. At least a portion of the third connector 430 is disposed on the second temple 140 and connected to the second control module 220. The first connector 410 passes through the receiving chamber 150, and the first end of the first connector 410 is connected to the second connector 420, and the second end of the first connector 410 is connected to the third connector 430.

[0040] Specifically, an embodiment in which the first control module 210 is disposed on the first temple 130 and the second control module 220 is disposed on the second temple 140 will be described: Both the first control module 210 and the first power module 310 are located on the first temple 130, so the first power module 310 can supply power to the first control module 210. Both the second control module 220 and the second power module 320 are located on the second temple 140, so the second power module 320 can supply power to the second control module 220. The first control module 210 is electrically connected to the projection assembly 600, etc., through the third connector 430. On the other hand, the first connector 410, the second connector 420, and the third connector 430 form a signal transmission channel, so the first control module 210 and the second control module 220 can exchange communication signals through this signal transmission channel.

[0041] As an example and not a limitation, the first control module 210 and the first power module 310 are both located at the end of the first temple 130, and the second control module 220 and the second power module 320 are both located at the end of the second temple 140. Then, one end of the second connector 420 is connected to the first control module 210 located at the end of the first temple 130, and the other end extends to the front end of the first temple 130 and is connected to the first connector 410 located on the frame assembly 110. One end of the third connector 430 is connected to the second control module 220 located at the end of the second temple 140, and the other end extends to the front end of the second temple 140 and is connected to the first connector 410 located on the frame assembly 110.

[0042] Furthermore, at least some functional modules, including the projection component 600, are disposed at the front end of the first temple 130 and / or the second temple 140. As one embodiment, the first control module 210 is also electrically connected to the projection component 600 disposed at the front end of the first temple 130 via a second connector 420 to control the corresponding component; and / or, the second control module 210 is also electrically connected to the projection component 600 disposed at the front end of the first temple 130 via a third connector 430 to control the corresponding component.

[0043] In other embodiments, when the first control module 210 and the second control module 220 are disposed on the frame assembly 110, the first control module 210 and the second control module 220 can be electrically connected and form a corresponding signal transmission channel simply by using the first connector 410.

[0044] As one embodiment, if the first connector 410 in the electrical connection assembly 400 is used only for transmitting signals and not for transmitting power, the size of the first connector 410 and the wearable bracket 100 can be reduced.

[0045] In some embodiments, the second connector 420 and the third connector 430 are flexible circuit boards.

[0046] In some implementations, the first connector 410 is at least one of a flexible circuit board, a coaxial cable, an optical fiber, and a wire.

[0047] Specifically, the aforementioned flexible circuit board is abbreviated as FPC (Flexible Printed Circuit). As an implementation, and not a limitation, in some embodiments, when the first connector 410 is a flexible circuit board, the first connector 410, the second connector 420, and the third connector 430 can be the same flexible circuit board. That is, the first control module 210, the second control module 220, the first power module 310, and the second power module 320 are all connected to the same flexible circuit board, and power supply and signal transmission are performed through this flexible circuit board. In some embodiments, the first connector 410, the second connector 420, and the third connector 430 can also be independent but interconnected flexible circuit boards.

[0048] Specifically, based on the signal transmission channel formed on the electrical connection component 400, the first control module 210 and the second control module 220 can transmit signals through a bilateral communication protocol.

[0049] In some implementations, the first control module 210 and the second control module 220 transmit signals via an asynchronous serial or synchronous serial bilateral communication protocol. Examples of asynchronous serial bilateral communication protocols include UART, while examples of synchronous serial bilateral communication protocols include SPI and I2C.

[0050] like Figure 1 and Figure 2 As shown, in some embodiments, the smart device 1000 further includes: Display component 500 is set in frame component 110; The projection assembly 600 includes a first projection module 610 and a second projection module 620. The first projection module 610 is disposed on the first side of the wearable bracket 100 and is electrically connected to the first control module 210. The second projection module 620 is disposed on the second side of the wearable bracket 100 and is electrically connected to the second control module 220. The first control module 210 is configured to control the first projection module 610 to provide the first image light to the display component 500, and the second control module 220 is configured to control the second projection module 620 to provide the second image light to the display component 500. The electrical connection component 400 is used to transmit a synchronization signal, which is used to enable the first projection module 610 and the second projection module 620 to synchronously output the first image light and the second image light.

[0051] Specifically, the first control module 210 and the second control module 220 transmit a synchronization signal through the first connector 410, and control the projection modules on the same side to output image light at corresponding time nodes according to the synchronization signal, so as to realize the synchronous output of the first image light and the second image light by the first projection module 610 and the second projection module 620. Depending on different display requirements, the first image light provided by the first projection module 610 and the second image light provided by the second projection module 620 can be different image lights or matching image lights at the same time. Specifically, the display content and brightness of the first image light and the second image light can be the same or different.

[0052] It should be understood that since the first image light and the second image light are output synchronously, the user's image viewing experience is improved, and the dizziness caused by the mismatch between the images displayed on both sides when using the smart device 1000 is reduced.

[0053] It should be noted that the electrical connection component 400 actually requires time to transmit the signal. Therefore, the "synchronization" in this embodiment is not absolute synchronization, and "at the same time" is not absolutely the same time. Instead, a delay of milliseconds is acceptable. However, it should be pointed out that in this embodiment, the first control module 210 and the second control module 220 are connected by wire to synchronize signal transmission and image output time. Compared with the wireless connection in related technologies, this greatly improves the signal transmission speed and image output time synchronization, further reducing the delay of image output time of the two projection modules.

[0054] It should also be noted that the synchronization signal transmitted by the electrical connection component 400 may refer to: the first display command output by the first control module 210 to the second control module 220 and / or the second display command output by the second control module 220 to the first control module 210. The first display command and the second display command will be further explained later.

[0055] For example, the first projection module 610 and the second projection module 620 include an optical engine, which can be any one of LCOS, LCD, DLP, Micro LED or MicroOLED.

[0056] The display component 500 is described below. The display component 500 includes, for example, a display screen or a display lens. For example, when the smart device 1000 is VR glasses, XR glasses or MR glasses, the display component 500 includes a display screen. When the smart device 1000 is AR glasses, the display component 500 includes a display lens, such as a waveguide lens, a freeform surface lens, a holographic lens or the like.

[0057] In some embodiments, the display assembly 500 includes a lens assembly 530. As one embodiment, the lens module includes the display lens described above.

[0058] In some embodiments, the display assembly 500 includes a first display module 510 corresponding to the first projection module 610 and a second display module 520 corresponding to the second projection module 620. The first display module 510 may include a display screen or a display lens, and the second display module 520 may include, for example, a display screen or a display lens.

[0059] In some embodiments, the first display instruction output by the first control module 210 is used to instruct the second control module 220 to provide the second image light, and the second display instruction output by the second control module 220 is used to instruct the first control module 210 to provide the first image light. At the same time, the first image light provided by the first projection module 610 and the second image light provided by the second projection module 620 are matching image lights.

[0060] The following example illustrates a specific implementation method where, when the first control module 210 is set as the master control module and the second control module 220 is the slave control module, the first control module 210 and the second control module 220 control the first projection module 610 and the second projection module 620 to synchronously output matching image light: In some embodiments, the first control module 210 is configured to output a first display command to the second control module 220 via the electrical connection component 400; the second control module 220 is configured to control the second projection module 620 to provide image light corresponding to the first display command to the display component 500 in response to the first display command, and to output a second display command to the first control module 210 via the electrical connection component 400; the first control module 210 is also configured to control the first projection module 610 to provide image light corresponding to the second display command to the display component 500 in response to the second display command, and the first display command and the second display command are used to indicate the provision of matching image light.

[0061] In other embodiments, the first control module 210 is configured to output a first display command to the second control module 220 via the electrical connection component 400, and control the display image within a set time after the first display command is issued. The second control module 220 is configured to control the display image simultaneously upon receiving the first display command. The set time is matched with the time required for the first display command to be output from the first control module 210 to the second control module 220 via the electrical connection component 400.

[0062] Both of the above-described implementation methods can improve the synchronization of the image output time on both sides, thereby further reducing the delay in the image output time of the projection modules on both sides.

[0063] It should be understood that, based on the electrical connection formed between the first control module 210 and the second control module 220 through the electrical connection component 400, the first control module 210 and the second control module 220 use the electrical connection component 400 to output display commands, thereby further reducing the delay in image output time of the projection modules on both sides.

[0064] like Figure 5 As shown, in some embodiments, the first temple 130 has a first front end 131 and a first end 132, the first temple 130 is connected to the frame assembly 110 through the first front end 131, and the first control module 210 is disposed at the first end 132. And / or, The second temple 140 has a second front end 141 and a second end 142, the second temple 140 is connected to the frame assembly 110 through the second front end 141, and the second control module 220 is disposed at the second end 142.

[0065] like Figure 6 As shown, in some embodiments, the frame assembly 110 has a first connecting portion 117 on the side near the first temple 130 and a second connecting portion 118 on the side near the second temple 140. It should be noted that the first connecting portion 117 and the second connecting portion 118 are also referred to as posts. The first temple 130 is connected to the frame assembly 110 through the first connecting portion 117, and the second temple 140 is connected to the frame assembly 110 through the second connecting portion 118.

[0066] like Figure 5 As shown, in some embodiments, the first end 132 is provided with a first receiving compartment 133, the first receiving compartment 133 forms a first cavity 134, and the first control module 210 is housed in the first cavity 134; and / or, The second end 142 is provided with a second accommodating compartment 143, which forms a second cavity 144, and the second control module 220 is housed in the second cavity 144.

[0067] Specifically, since the first control module 210 is housed in the first cavity 134, the first accommodating compartment 133 can protect the first control module 210 and provide waterproof, dustproof and drop-proof protection. Similarly, the second accommodating compartment 143 can also protect the second control module 220 and provide waterproof, dustproof and drop-proof protection.

[0068] It should also be noted that by placing the storage compartments for the first control module 210 and / or the second control module 2200 at the end of the temple assembly 120 away from the frame assembly 110, the center of gravity of the smart device 1000 can be adjusted so that the center of gravity of the smart device 1000 is shifted backward, reducing the pressure of the nose pads (i.e., the bridge 113) of the frame assembly 110 on the wearer's face. Moreover, when the wearer wears the smart device 1000, the first storage compartment 143 and the second storage compartment are located behind the wearer's ears, which is more visually concise and aesthetically pleasing.

[0069] In some embodiments, the smart device 1000 further includes a wireless transmission component 800, which enables a wireless communication connection between the first control module 210 and the second control module 220.

[0070] Specifically, the wireless transmission component 800 includes a first wireless transmission module disposed on the first side of the smart device 1000 and a second wireless transmission module disposed on the second side of the smart device 1000. The first wireless transmission module and the second wireless transmission module can form a wireless communication connection. The first wireless transmission module is electrically connected to the first control module 210 or integrated into the first wireless transmission module. The second wireless transmission module is electrically connected to the second control module 220 or integrated into the second wireless transmission module. The first control module 210 and the second control module 220 are used to form a wireless communication connection with the first wireless transmission module and transmit signals based on the wireless communication connection.

[0071] For example, the wireless transmission method between the first wireless transmission modules may include at least one of Bluetooth Low Energy (BLE), Wi-Fi, or millimeter wave.

[0072] It should be noted that when the first control module 210 and the second control module 220 transmit information at low frequency or when the synchronization requirement is not high, the wireless transmission component 800 can be used for information transmission. Furthermore, the wireless transmission between the first control module 210 and the second control module 220 can be used in conjunction with the wired transmission realized through the electrical connection component 400, so as to select different transmission methods according to different types of information transmission tasks.

[0073] like Figures 7 to 9 As shown, in some embodiments, the accommodating chamber 150 includes a first chamber 151 and a second chamber 152, and the first chamber 151 has an adaptation opening 153; wherein, the smart device 1000 also includes a lens assembly 530, which passes through the adaptation opening 153 into the first chamber 151 and is adapted to be connected to the frame assembly 110, and the first connector 410 passes through at least partially in the second chamber 152.

[0074] Specifically, the edge portion of the lens assembly 530 passes through the adaptation opening 153 into the first chamber 151, thereby forming an adaptation connection with the frame assembly 110.

[0075] In this embodiment, the receiving chamber 150 formed in the frame assembly 110 is used to receive at least part of the electrical connection assembly 400 and to adapt the lens assembly 530, which improves the utilization of the volume of the receiving chamber 150 and makes the structure of the frame assembly 110, the lens assembly 530 and the first connector 410 compact, reducing the volume occupied by the frame assembly 110 and thus reducing the size of the frame assembly 110.

[0076] As one embodiment, the lens assembly 530 includes at least an optical waveguide lens, which has an optical input region and an optical output region. The projection component 600 of the smart device 1000 is configured to provide an optical signal to the optical input region of the optical waveguide lens, so that the optical signal is coupled into the optical waveguide lens from the optical input region for propagation and is coupled out from the optical output region. Specifically, the optical waveguide lens in the lens assembly 530 passes through the adaptation opening 153 into the first chamber 151 and is adapted to connect with the frame assembly 110.

[0077] In some embodiments, the first chamber 151 is in communication with the second chamber 152. It should be understood that the communication between the first chamber 151 and the second chamber 152 allows the lens assembly 530 and the first connector 410 to be disposed close together, further making the structure of the frame assembly 110, the lens assembly 530 and the first connector 410 more compact, reducing the volume occupied by the frame assembly 110, and reducing the size of the frame assembly 110 from the side.

[0078] like Figures 7 to 9 As shown, in some embodiments, the second chamber 152 is located on the side of the first chamber 151 near the temple assembly 120, and the first connector 410 and the lens assembly 530 are stacked along the thickness direction of the lens assembly 530.

[0079] Specifically, the portion of the first connector 410 housed in the second chamber 152 is located on the side of the lens assembly 530 near the temple assembly 120. Therefore, the first connector 410 can be housed in the third direction D3 using the size occupied by the lens assembly 530, thereby reducing the space required for the accommodating chamber 150 in the third direction D3 and reducing the size of the frame assembly 110 in the third direction D3.

[0080] It should be noted that, for the smart device 1000 provided in this application embodiment, the direction from the first side to the second side is the first direction D1, the thickness direction of the lens assembly 530 is the second direction D2, and the third direction D3 is perpendicular to the first direction D1 and the second direction D2.

[0081] In other embodiments, the second chamber 152 is located on the side of the first chamber 151 away from the temple assembly 120, and the first connector 410 and the lens assembly 530 are stacked along the thickness direction of the lens assembly 530.

[0082] Specifically, the portion of the first connector 410 housed in the second chamber 152 is located on the side of the lens assembly 530 near the temple assembly 120. Similarly, the first connector 410 can be housed in the height direction of the frame assembly 110 using the space occupied by the lens assembly 530, thereby reducing the space required by the accommodating chamber 150 in the third direction D3 of the frame assembly 110, and thus reducing the size of the frame assembly 110 in the third direction D3.

[0083] In some embodiments, the second chamber 152 is located on the side of the first chamber 151 opposite to the adapting opening 153.

[0084] Specifically, the portion of the first connector 410 housed in the second chamber 152 is located on the side of the lens assembly 530 away from the adaptation opening 153. Therefore, the first connector 410 can be housed in the second direction D2 using the size occupied by the lens assembly 530, thereby reducing the space required for the accommodating chamber 150 in the frame assembly 110 in the second direction D2, and thus reducing the size of the frame assembly 110 in the second direction D2.

[0085] like Figure 5 As shown, in some embodiments, the frame assembly 110 includes a first frame 111, a second frame 112, and a center beam 113; The first frame 111 is disposed on the first side of the central beam 113, the second frame 112 is disposed on the second side of the central beam 113, the central beam 113 connects the first frame 111 and the second frame 112, and the lens assembly 530 includes a first lens 531 adapted to and connected to the first frame 111 and a second lens 532 adapted to and connected to the second frame 112. Furthermore, the first frame 111 has a first wiring groove 1521, the second frame 112 has a second wiring groove 1522, and the central beam 113 has a third wiring groove 1523. The first wiring groove 1521, the second wiring groove 1522, and the third wiring groove 1523 constitute the second chamber 152.

[0086] It should be noted that when the wearer wears the smart device 1000, the first lens 531 and the second lens 532 are respectively opposite to the wearer's eyes, while the bridge 113 is opposite to the wearer's nose. For example, the first lens 531 and / or the second lens 532 can be waveguide lenses.

[0087] like Figure 5 As shown, in some embodiments, the first frame 111 includes a first frame portion 1111 near the center beam 113 and a second frame portion 1112 away from the center beam 113, and a first wiring groove 1521 is formed in at least one of the first frame portion 1111 and the second frame portion 1112; and / or, The second frame 112 includes a third frame portion 1121 near the center beam 113 and a fourth frame portion 1122 away from the center beam 113, and a second wiring groove 1522 is formed in at least one of the third frame portion 1121 and the fourth frame portion 1122.

[0088] Specifically, the first frame portion 1111 and the second frame portion 1112 are located on opposite sides of the center beam 113 in the third direction D3, and the third frame portion 1121 and the fourth frame portion 1122 are located on opposite sides of the second frame 112 in the third direction D3. Furthermore, when the first lens 531 is adapted and connected to the frame assembly 110, the first lens 531 is located between the first frame portion 1111 and the second frame portion 1112; when the second lens 532 is adapted and connected to the frame assembly 110, the second lens 532 is located between the third frame portion 1121 and the fourth frame portion 1122.

[0089] As one embodiment, when the wearer is wearing the smart device 1000, the first frame portion 1111 is located on the top side of the first frame 111, the second frame portion 1112 is located on the bottom side of the second frame 112, the third frame portion 1121 is located on the top side of the second frame 112, and the fourth frame portion 1122 is located on the bottom side of the second frame 112.

[0090] Based on dividing the first frame 111 into a first frame portion 1111 and a second frame portion 1112, and dividing the second frame 112 into a third frame portion 1121 and a fourth frame portion 1122, the first wiring groove 1521 may be formed in at least one of the first frame portion 1111 and the second frame portion 1112, and the second wiring groove 1522 may be formed in at least one of the third frame portion 1121 and the fourth frame portion 1122, for example in... Figure 4 and Figure 5 In the middle, the first wiring groove 1521 is formed in the first frame portion 1111, and the second wiring groove 1522 is formed in the third frame portion 1121.

[0091] like Figure 9As shown, in some embodiments, the frame assembly 110 includes a front frame 114 and a rear frame 115, the temple assembly 120 is connected to the rear frame 115, and the front frame 114 is glued or snapped to the side of the rear frame 115 opposite to the temple assembly 120. The front frame 114 and the rear frame 115 together define the first chamber 151, and at least one of the front frame 114 and the rear frame 115 forms a second chamber 152 on the side closer to the other.

[0092] Specifically, the front frame 114 and the rear frame 115 are located on opposite sides of the frame assembly 110 in the second direction D2, and the first chamber 151 is located between the front frame 114 and the rear frame 115. It should be noted that the front frame 114 and the rear frame 115 can be detachably connected, for example, by snap-fit ​​or bolt fixing; alternatively, they can be fixedly connected, for example, by adhesive.

[0093] As one embodiment, the front frame 114 is connected to the near-eye side of the rear frame 115, with the connector located on the near-eye side of the front frame 114. It should be noted that when the wearer wears the smart device 1000, the near-eye side is the side closer to the wearer's eye, while the far-eye side is the side farther away from the wearer's eye.

[0094] It should also be noted that at least one of the front frame 114 and the rear frame 115 forms a second chamber 152 on the side closer to the other. If the second chamber 152 is located on the side of the first chamber 151 closer to the temple assembly 120 and / or away from the temple assembly 120, the space originally occupied by the lens assembly 530 can be used to accommodate the first connector 410 in the second direction D2, thereby reducing the space required for the accommodating chamber 150 in the frame assembly 110 in the second direction D2, and thus reducing the size of the frame assembly 110 in the second direction D2.

[0095] In some embodiments, at least one of the front frame 114 and the rear frame 115 is further recessed with a cutout groove 116. By recessing the cutout groove 116 on the frame assembly 110, the weight of the frame assembly 110 can be effectively reduced.

[0096] Specifically, at least one of the front frame 114 and the rear frame 115 has a recessed groove 116 on the side closer to the other, which can reduce the weight of the frame assembly 110 without affecting its appearance. As one embodiment, one of the recessed groove 116 and the second chamber 152 is located in the front frame 114, and the other is located in the rear frame 115.

[0097] like Figures 7 to 9 As shown, in some embodiments, the rear frame 115 includes a first step portion 1151 and a second step portion 1152; The first step portion 1151 is spaced apart from the front frame 114 to form a first chamber 151 between the first step portion 1151 and the front frame 114. One end of the second step portion 1152 is connected to the first step portion 1151 and the other end is connected to the front frame 114. The lens assembly 530 is inserted into the receiving chamber 150 and adapted to be connected to the frame assembly 110. There is a fitting gap between the lens assembly 530 and the second step portion 1152 to accommodate the colloid.

[0098] Specifically, the front frame 114 and the first step portion 1151 are located on opposite sides of the frame assembly 110 in the second direction D2, and the first chamber 151 is located between the front frame 114 and the first step portion 1151. It should be noted that the front frame 114 and the second step portion 1152 can be detachably connected, for example, by snap-fit ​​or bolt fixing, or the front frame 114 and the second step portion 1152 can be relatively fixedly connected, for example, by adhesive.

[0099] It should also be noted that since there is a fitting gap between the lens assembly 530 and the second step portion 1152, an adhesive can be provided at the edge of the lens assembly 530 to improve the positional tolerance of the lens assembly 530 in the first chamber 151.

[0100] In some embodiments, the wearable support 100 also includes an adhesive 170 for bonding the lens assembly 530 to the frame assembly 110 and covering a portion of the opening of the second chamber 152.

[0101] Specifically, the second chamber 152 has a communication opening for communication, and the adhesive 170 covers at least part of the communication opening, which can both fix at least part of the first connector 410 inside the second chamber 152 and adhesive the lens assembly 530 to the frame assembly 110, thereby improving the compactness of the structure.

[0102] As one embodiment, the adhesive 170 is disposed between the lens assembly 530 and the second step portion 1152 to adhesively bond the lens assembly 530 to the second step portion 1152, and a communication opening is formed in the second step portion 1152. The adhesive 170 is also used to cover at least a portion of the communication opening.

[0103] In some embodiments, the first connector 410 is a flexible circuit board; Wherein, the direction from the first side to the second side is the first direction D1, the thickness direction of the lens assembly 530 is the second direction D2, the third direction D3 is perpendicular to the first direction D1 and the second direction D2, the size of the second chamber 152 in the third direction D3 is greater than the size in the second direction D2, wherein the second direction D2 can also be understood as the direction of the first temple 121 and the second temple 122 relative to the frame assembly 110.

[0104] Specifically, at least a portion of the flexible circuit board is housed in the second chamber 152, and the thickness of this portion of the flexible circuit board corresponds to the second direction D2, while the width of this portion of the flexible circuit board corresponds to the third direction D3. It should be understood that the width of the flexible circuit board is greater than its thickness. Therefore, this arrangement reduces the total volume occupied by the flexible circuit board and the lens assembly 530 in the housing chamber 150 when stacked, making the flexible circuit board and the lens assembly 530 more compact, reducing the volume occupied by the frame assembly 110, and thus reducing the size of the frame assembly 110.

[0105] In a preferred embodiment, the second chamber 152 is located on the side of the first chamber 151 near the temple assembly 120 and / or on the side of the first chamber 151 away from the temple assembly 120. The first connector 410 and the lens assembly 530 are stacked along the second direction D2 (i.e., the thickness direction of the lens assembly 530). The size of the second chamber 152 in the third direction D3 is larger than the size in the second direction D2.

[0106] In some embodiments, the dimension of the first connector 410 along the second direction D3 is no greater than 0.3 mm. Preferably, the dimension of the first connector 410 along the second direction D2 is 0.15 mm to 0.3 mm. Exemplarily, the dimension of the first connector 410 along the second direction D2 can be 0.15 mm, 0.20 mm, 0.25 mm, 0.3 mm, or other values ​​within the range.

[0107] In some embodiments, the difference between the size of the second chamber 152 and the size of the first connector 410 along the third direction D3 is 0.2mm-0.4mm. For example, the difference between the size of the second chamber 152 and the size of the first connector 410 along the third direction D3 can be 0.2mm, 0.3mm, 0.4mm, or other values ​​within the range.

[0108] In some embodiments, the size of the first connector 410 along the third direction D3 is no greater than 1.4 mm. Preferably, the size of the first connector 410 along the third direction D3 is 0.5 mm to 1.4 mm. For example, the size of the first connector 410 along the third direction D3 can be 0.5 mm, 0.6 mm, 0.8 mm, 1.1 mm, 1.4 mm, or other values ​​within the range.

[0109] Specifically, in the above embodiments, the dimensions of the first connector 410 and the second chamber 152 are designed to ensure that at least a portion of the first connector 410 can be fitted and accommodated within the second chamber 152, thus meeting the installation requirements of the first connector 410.

[0110] like Figure 10As shown, in some embodiments, the frame assembly 110 forms a field of vision groove 160, and the lens assembly 530 passes through the field of vision groove 160 through the adapter port to the receiving chamber 150 and is adapted to connect with the frame assembly 110. The distance between the second chamber 152 and the field of vision groove 160 is greater than or equal to 0.3 mm.

[0111] For example, the distance between the second chamber 152 and the viewing slot 160 can be 0.3 mm, 0.5 mm, 0.7 mm, 0.9 mm or other values ​​within the range.

[0112] Specifically, the field of vision slot 160 is connected to the receiving chamber 150 through the adapter port. More specifically, the field of vision slot 160 is connected to the first chamber 151 through the adapter port. The edge of the lens assembly 530 can pass through the adapter port to the first chamber 151 and be adapted to the frame assembly 110. When the lens assembly 530 is adapted to the frame assembly 110, the lens assembly 530 covers at least part of the field of vision slot 160.

[0113] It should be noted that when the wearer wears the smart device 1000, the viewing slot 160 is opposite to the wearer's eyes, so the wearer can view the images outside the smart device 1000 through the viewing slot 160 and the lens assembly 530 covering the viewing slot 160.

[0114] It should be understood that the spacing design between the second chamber 152 and the field of vision slot 160 in the above embodiment is intended to ensure that the outer side of the second chamber 152 has a sufficiently strong frame to ensure the overall strength of the frame assembly 110, while also providing good protection for the lens assembly 530 and the first connector 410.

[0115] In some embodiments, the first connector 410 is a flexible circuit board, and the first connector 410 includes a first transmission layer, a second transmission layer and a ground layer stacked together, and the transmission directions of the signal in the first transmission layer and the second transmission layer are opposite.

[0116] It should be noted that the stacked arrangement of the first transmission layer, the second transmission layer and the ground layer further reduces the volume required by the first connector 410, so as to make full use of the space in the second chamber 152 and thereby reduce the size of the frame assembly 110.

[0117] For example, the first transmission layer is configured to transmit the signal output by the first control module 210 to the second control module 220, and the second transmission layer is configured to transmit the signal output by the second control module 220 to the first control module 210.

[0118] In other embodiments, the first connector 410 is a coaxial cable or wire, and the first connector 410 includes a first transmission line, a second transmission line and a grounding wire arranged in a spiral, and the transmission directions of the signal in the first transmission line and the second transmission line are opposite.

[0119] It should be noted that the spiral arrangement of the first transmission line, the second transmission line and the grounding line further reduces the volume required by the first connector 410, so as to make full use of the space in the second chamber 152, thereby reducing the size of the frame assembly 110.

[0120] For example, the first transmission line is configured to transmit the signal output by the first control module 210 to the second control module 220, and the second transmission line is configured to transmit the signal output by the second control module 220 to the first control module 210.

[0121] In summary, this application provides a smart device 1000 for wearing on a wearer's head. The smart device 1000 includes a wearable support 100, comprising a frame assembly 110 and a temple assembly 120. The temple assembly 120 includes a first temple 130 and a second temple 140. The frame assembly 110 has opposing first and second sides. The first temple 130 is connected to the first side of the frame assembly 110, and the second temple 140 is connected to the second side of the frame assembly 110. The frame assembly 110 has a first side extending from the first side to the second side. The two sides of the receiving chamber 150; the control component 200, configured to control the smart device 1000, and the control component 200 includes a first control module 210 and a second control module 220, the first control module 210 being disposed on the first side of the wearable bracket 100 and the second control module 220 being disposed on the second side of the wearable bracket 100; and the electrical connection component 400, the electrical connection component 400 including a first connector 410 at least partially passing through the receiving chamber 150 to electrically connect the first control module 210 and the second control module 220.

[0122] In the smart device 1000 provided in this application embodiment, the first connector 410 in the electrical connection component 400 is at least partially inserted through the frame component to wirely connect the first control module 210 and the second control module 220 located on both sides of the smart device 1000. This allows the first control module 210 and the second control module 220 to communicate and interact based on the wired connection, making the communication signal transmission between the two control modules more stable and faster. Moreover, compared with the wireless connection scheme in related technologies, the smart device 1000 makes the control behavior of the two control modules more synchronized through the wired connection.

[0123] Furthermore, by providing a receiving chamber 150 for accommodating the first connector 410 on the frame assembly 110, at least a portion of the first connector 410 can be directly placed inside the frame assembly 110, so that the frame assembly 110 protects the first connector 410 without the need to provide other structures on the frame assembly 110 to cover the first connector 410, thereby reducing the size of the frame assembly 110.

[0124] It should be noted that in the smart device 1000 provided in this application embodiment, the first control module 210 located on the first side and the second control module 220 located on the second side are connected by an electrical connection component 400 to conduct signal communication and interaction based on the wired connection. This makes the communication signal transmission between the two control modules more stable and faster. Compared with the wireless connection scheme in related technologies, the smart device 1000 makes the control behavior of the two control modules more synchronized through the wired connection.

[0125] It should also be noted that in some smart devices provided by related technologies, the smart device has a control component on one side and a power supply component on the other side to supply power to the control component. In this case, the smart device needs to have a wire for transmitting power in the frame. This wiring method of the frame is unreasonable and will result in a significant increase in the thickness of the frame, thereby affecting the wearing experience.

[0126] Based on this, the smart device 1000 provided in this application embodiment provides a first control module 210 and a second control module 220 on the first and second sides of the wearable bracket 100, respectively. A first power module 310 is provided on the first side to supply power to the first control module 210, and a second power module 310 is provided on the second side to supply power to the second control module 220. Therefore, there is no need to provide a power supply wire in the frame assembly 110. Only a first connector 410 for signal transmission is needed. It should be noted that the thickness and volume of the first connector 410 are significantly smaller than those of the wire, thereby reducing the volume of the frame assembly 110 and significantly improving the wearing experience.

[0127] Those skilled in the art will understand that all or some of the steps, systems, and apparatuses disclosed above, and their functional modules / units, can be implemented as software, firmware, hardware, or suitable combinations thereof. In hardware embodiments, the division between functional modules / units mentioned in the above description does not necessarily correspond to the division of physical components; for example, a physical component may have multiple functions, or a function or step may be performed collaboratively by several physical components. Some or all physical components may be implemented as software executed by a processor, such as a central processing unit, digital signal processor, or microprocessor, or as hardware, or as setup circuitry, such as dedicated setup circuitry. Such software can be distributed on a computer-readable medium, which may include computer storage media (or non-transitory media) and communication media (or transient media).

[0128] It should be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the application. Unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly, for example, referring to a fixed connection, a detachable connection, or an integral connection; a mechanical connection or an electrical connection; a direct connection or an indirect connection via an intermediate medium; or a connection within two elements. Those skilled in the art will understand the specific meaning of the above terms in this application based on the specific circumstances. As used in this specification and the appended claims, unless the context clearly indicates otherwise, the singular forms "a," "an," and "the" are intended to include the plural forms.

[0129] It should also be understood that the term "and / or" as used in this specification and the appended claims refers to any combination and all possible combinations of one or more of the associated listed items, and includes such combinations. The character " / " generally indicates that the preceding and following related objects are in an "and / or" relationship. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or multiple items. For example, "at least one of A, B and C" includes A, B, C, AB, AC, BC, or ABC. And, unless otherwise specified, the ordinal numbers such as "first," "second," etc., mentioned in the embodiments of this application are used to distinguish multiple objects and are not used to limit the order, sequence, priority, or importance of multiple objects. It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or system that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or system.

Claims

1. A smart device, characterized in that, The smart device is worn on the head of a wearer, and the smart device includes: A wearable support includes a frame assembly and a temple assembly, the temple assembly including a first temple and a second temple, the frame assembly having opposing first and second sides, the first temple being connected to the first side of the frame assembly, the second temple being connected to the second side of the frame assembly, and the frame assembly having an accommodating chamber extending from the first side to the second side; A control component is configured to control the smart device, and the control component includes a first control module and a second control module, wherein the first control module is disposed on a first side of the wearable bracket, and the second control module is disposed on a second side of the wearable bracket; and, An electrical connection assembly, the electrical connection assembly including a first connector that is at least partially inserted through the accommodating chamber to electrically connect the first control module and the second control module.

2. The intelligent device as described in claim 1, characterized in that, The accommodating chamber includes a first chamber and a second chamber, and the first chamber has an adapting opening; The smart device further includes a lens assembly, which passes through the adapter opening into the first chamber and is adapted to be connected to the frame assembly. The first connector passes through at least part of the second chamber.

3. The intelligent device as described in claim 2, characterized in that, The first chamber is connected to the second chamber; The second chamber is located in the first chamber on the side near the temple assembly, and the first connector and the lens assembly are stacked together along the thickness direction of the lens assembly. Alternatively, the second chamber is located on the side of the first chamber away from the temple assembly, and the first connector and the lens assembly are stacked together along the thickness direction of the lens assembly; Alternatively, the second chamber may be located on the side of the first chamber opposite to the fitting opening.

4. The intelligent device as described in claim 3, characterized in that, The frame assembly includes a first frame, a second frame, and a central beam; The first frame is disposed on the first side of the central beam, the second frame is disposed on the second side of the central beam, the central beam connects the first frame and the second frame, and the lens assembly includes a first lens adapted to and connected to the first frame and a second lens adapted to and connected to the second frame. Furthermore, the first frame has a first wiring groove, the second frame has a second wiring groove, and the central beam has a third wiring groove. The first wiring groove, the second wiring groove, and the third wiring groove constitute the second chamber.

5. The intelligent device as described in claim 4, characterized in that, The first frame includes a first frame portion near the center beam and a second frame portion away from the center beam, and the first wiring groove is formed in at least one of the first frame portion and the second frame portion; and / or, The second frame includes a third frame portion near the center beam and a fourth frame portion away from the center beam, and the second wiring groove is formed in at least one of the third frame portion and the fourth frame portion.

6. The intelligent device as described in claim 1, characterized in that, The frame assembly includes a front frame and a rear frame, the temple assembly is connected to the rear frame, and the front frame is glued or snapped onto the side of the rear frame opposite to the temple assembly. The front frame and the rear frame together define the first chamber, and at least one of the front frame and the rear frame forms the second chamber on the side closer to the other.

7. The intelligent device as described in claim 6, characterized in that, At least one of the front frame and the rear frame is further recessed with a hollowed-out groove.

8. The intelligent device as described in claim 7, characterized in that, The rear frame includes a first stepped portion and a second stepped portion; The first step portion is spaced apart from the front frame to form the first chamber between the first step portion and the front frame. One end of the second step portion is connected to the first step portion and the other end is connected to the front frame. The lens assembly passes through the receiving chamber and is adapted to the frame assembly. There is a fitting gap between the lens assembly and the second step portion to accommodate the colloid.

9. The intelligent device as described in claim 3, characterized in that, The wearable support also includes an adhesive for bonding the lens assembly to the frame assembly and covering a portion of the opening of the second chamber.

10. The intelligent device as described in claim 4, characterized in that, The first connector is a flexible circuit board; Wherein, the direction from the first side to the second side is the first direction, the thickness direction of the lens assembly is the second direction, the third direction is perpendicular to the first direction and the second direction, and the size of the second chamber in the third direction is greater than the size in the second direction.

11. The intelligent device as described in claim 1, characterized in that, The current range on the electrical connection assembly is within 50mA.

12. The intelligent device as described in claim 1, characterized in that, The direction from the first side to the second side is the first direction, the thickness direction of the lens assembly is the second direction, and the third direction is perpendicular to both the first and second directions. Wherein, along the second direction, the size of the first connector is no greater than 0.3 mm; and / or, along the third direction, the size of the first connector is no greater than 1.4 mm.

13. The intelligent device as described in claim 2, characterized in that, The frame assembly forms a field of vision slot, and the lens assembly passes through the field of vision slot into the receiving chamber via the adapter port and is adapted to and connected to the frame assembly. The distance between the second chamber and the field of vision slot is greater than or equal to 0.3 mm.

14. The intelligent device as described in claim 2, characterized in that, The first connector is at least one of a flexible circuit board, a coaxial cable, an optical fiber, or a wire.

15. The intelligent device as described in claim 14, characterized in that, The first connector is a flexible circuit board, which includes a first transmission layer, a second transmission layer and a ground layer stacked together, and the signal transmission directions in the first transmission layer and the second transmission layer are opposite. Alternatively, the first connector may be the coaxial cable or the wire, and the first connector may include a first transmission line, a second transmission line and a grounding wire arranged in a spiral, with the signal transmission directions in the first transmission line and the second transmission line being opposite.

16. The intelligent device as described in claim 1, characterized in that, The electrical connection assembly further includes a second connector and a third connector. At least a portion of the second connector is disposed on the first temple and connected to the first control module. At least a portion of the third connector is disposed on the second temple and connected to the second control module. A first end of the first connector is connected to the second connector, and a second end of the first connector is connected to the third connector.

17. The intelligent device as described in claim 16, characterized in that, The second connector and the third connector are flexible circuit boards; And / or, The first connector is at least one of a flexible circuit board, a coaxial cable, an optical fiber, and a wire.

18. The intelligent device according to any one of claims 1-17, characterized in that, The smart device also includes a projection module, which includes a first projection component and a second projection component. The first projection component is disposed on a first side of the wearable bracket and is electrically connected to the first control module. The second projection component is disposed on a second side of the wearable bracket and is electrically connected to the second control module. The first control module is configured to control the first projection component to provide a first image light to the lens component, and the second control module is configured to control the second projection component to provide a second image light to the lens component.

19. The intelligent device according to any one of claims 1-17, characterized in that, The first control module and the second control module form a wireless communication connection and are configured to transmit signals wirelessly.