Frame, wearing support and head-mounted device
By designing beams and frames in smart glasses to form a bearing surface, the optical lenses and electrical connectors share the same installation area, solving the problem of the large width occupied by the electrical connectors and optical lenses, and achieving a larger visual range and a narrow-frame appearance.
Patent Information
- Application Number
- CN202111080391.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-09-15
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2041-09-15
AI Technical Summary
In the appearance design of existing smart glasses, the installation area of electrical connectors and optical lenses occupies a large width, affecting the visual range and appearance expression.
By arranging the crossbeam and the frame to form a bearing surface, the orthographic projections of the optical lens and the electrical connector overlap and share the same installation area, thereby reducing the installation width in the direction parallel to the bearing surface.
The visual range of the optical lens is increased, providing a narrow-frame visual effect and improving the appearance of the head-mounted device.
Smart Images

Figure CN115808788B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of electronic devices, and in particular to a frame, a wearing bracket and a head-mounted device. Background Art
[0002] With the continuous development and popularization of smart glasses, existing smart glasses are equipped with more and more electronic devices and realize more and more comprehensive functions. Therefore, people often wear smart glasses when going out to work or socialize. Therefore, how to improve the appearance of smart glasses has become a major concern for those in the industry. Summary of the Invention
[0003] On the one hand, an embodiment of the present application provides a frame for a head-mounted device, the frame comprising: a crossbeam and a frame body; the crossbeam is configured to be used for installing an electrical connector of the head-mounted device; the frame body is connected to the crossbeam and together with the crossbeam forms a bearing surface, and the bearing surface is configured to be used for installing an optical lens of the head-mounted device; wherein the orthographic projection of the optical lens on the bearing surface overlaps with the orthographic projection of the electrical connector on the bearing surface.
[0004] On the other hand, an embodiment of the present application further provides a wearing bracket for a head-mounted device, the wearing bracket comprising: a frame and legs; the frame is provided with a crossbeam and a frame body; the crossbeam is configured to be used for installing an electrical connector of the head-mounted device; the frame body is connected to the crossbeam, and together with the crossbeam, a bearing surface is formed, and the bearing surface is configured to be used for installing an optical lens of the head-mounted device; the legs are provided at opposite ends of the crossbeam; wherein the orthographic projection of the optical lens on the bearing surface overlaps with the orthographic projection of the electrical connector on the bearing surface.
[0005] An embodiment of the present application also provides a head-mounted device, which includes: a wearing bracket, an optical lens, a first electronic component, a second electronic component and an electrical connector; the wearing bracket is provided with a beam, a frame and a leg; the beam is configured for installing the electrical connector; the frame is connected to the beam, and together with the beam, a bearing surface is formed, and the bearing surface is configured for installing the optical lens; the legs are provided at opposite ends of the beam; the optical lens is arranged on the bearing surface; the first electronic component is arranged on the beam, and the second electronic component is arranged on the leg; the electrical connector is provided on the beam, and the electrical connector is electrically connected to the first electronic component and the second electronic component respectively; wherein the orthographic projection of the optical lens on the bearing surface overlaps with the orthographic projection of the electrical connector on the bearing surface.
[0006] The frame provided in the embodiment of the present application is provided with a crossbeam for mounting electrical connectors, and the crossbeam can also form a bearing surface for mounting optical lenses together with the frame, and the orthographic projection of the optical lens on the bearing surface can overlap with the orthographic projection of the electrical connector on the bearing surface, so that the optical lens and the electrical connector can share the same mounting area on the crossbeam in a direction perpendicular to the bearing surface, thereby reducing the width occupied by the area of the crossbeam for mounting the optical lens and the electrical connector in a direction parallel to the bearing surface. Such a setting can not only increase the visual range of the optical lens, but also provide the user with a narrow-frame visual effect, thereby enhancing the appearance of the head-mounted device. BRIEF DESCRIPTION OF THE DRAWINGS
[0007] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0008] Figure 1 1 is a schematic structural diagram of a head mounted device 10 provided in an embodiment of the present application;
[0009] Figure 2 yes Figure 1 A schematic diagram of the exploded structure of the head mounted device 10;
[0010] Figure 3 yes Figure 2 A schematic diagram of the exploded structure of the wearing bracket 100;
[0011] Figure 4 yes Figure 3 A schematic structural diagram of the middle frame 110;
[0012] Figure 5 yes Figure 4 Schematic diagram of the connection structure between the middle crossbeam 111 and the frame 112;
[0013] Figure 6 yes Figure 5 A schematic diagram of a partial cross-sectional structure of the middle cross beam 111 and the frame 112 along V-V;
[0014] Figure 7 yes Figure 5 A schematic diagram of the connection structure between the middle crossbeam 111 and the frame 112 from another perspective;
[0015] Figure 8 yes Figure 7 A schematic diagram of a partial cross-sectional structure of the middle cross beam 111 and the frame 112 along VI-VI;
[0016] Figure 9 yes Figure 4 A schematic diagram of a partial cross-sectional structure of the middle frame 110 along IV-IV;
[0017] Figure 10 yes Figure 9 A schematic structural diagram of the middle shielding member 113;
[0018] Figure 11 yes Figure 4 A schematic structural diagram of the middle nose pad assembly 114;
[0019] Figure 12 yes Figure 10 Another structural schematic diagram of the middle nose pad assembly 114;
[0020] Figure 13 yes Figure 12 Schematic diagram of the exploded structure of the middle support frame 1141;
[0021] Figure 14 yes Figure 12 A schematic structural diagram of the middle nose pad 1142;
[0022] Figure 15 yes Figure 10 Another structural schematic diagram of the middle nose pad assembly 114;
[0023] Figure 16 yes Figure 15 A schematic structural diagram of the middle support frame 1141;
[0024] Figure 17 yes Figure 15 A schematic structural diagram of the middle nose pad 1142;
[0025] Figure 18 yes Figure 15 A schematic structural diagram of the middle elastic member 1144;
[0026] Figure 19 yes Figure 2 A schematic structural diagram of the wearing bracket 100;
[0027] Figure 20 yes Figure 19 A schematic diagram of the exploded structure of the middle support leg 120;
[0028] Figure 21 yes Figure 19 A schematic diagram of a partial cross-sectional structure of the wearing bracket 100 along VII-VII;
[0029] Figure 22 yes Figure 19 A schematic structural diagram of the rotating shaft assembly 130;
[0030] Figure 23 yes Figure 2Schematic diagram of the connection structure of the middle frame 110, the optical lens 200 and the electrical connector 500;
[0031] Figure 24 yes Figure 23 A schematic diagram of a partial cross-sectional structure of the middle frame 110, the optical lens 200, and the electrical connector 500 along line XI-XI;
[0032] Figure 25 yes Figure 23 A schematic structural diagram of the optical lens 200;
[0033] Figure 26 yes Figure 1 A schematic diagram of a partial cross-sectional structure of the head-mounted device 10 along line IX-IX;
[0034] Figure 27 yes Figure 2 Schematic diagram of the assembly of the middle crossbeam 111, the frame 112, the first electronic component 300 and the electrical connector 500;
[0035] Figure 28 yes Figure 27 Schematic diagram of the connection structure of the charging adapter plate 320, the pressure sensing circuit board 330 and the support member 150;
[0036] Figure 29 yes Figure 2 Schematic diagram of the assembly of the first leg 123 and the second electronic component 400;
[0037] Figure 30 yes Figure 29 Another assembly diagram of the first leg 123 and the second electronic component 400;
[0038] Figure 31 yes Figure 2 Schematic diagram of the assembly of the second leg 124 and the second electronic component 400;
[0039] Figure 32 yes Figure 31 Another assembly diagram of the second leg 124 and the second electronic component 400. DETAILED DESCRIPTION
[0040] The present application will be further described in detail below in conjunction with the accompanying drawings and examples. It is particularly noted that the following examples are only intended to illustrate the present application and are not intended to limit the scope of the present application. Similarly, the following examples are only some examples of the present application and not all examples. All other examples obtained by those of ordinary skill in the art without creative work are intended to fall within the scope of protection of this application.
[0041] References to "embodiments" in this application mean that a particular feature, structure, or characteristic described in connection with the embodiment may be included in at least one embodiment of the application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0042] This application describes a head-mounted device. The head-mounted device may be an augmented reality or virtual reality device, such as augmented reality or virtual reality glasses. Of course, the head-mounted device may also be other devices that need to be worn on the head, such as glasses, or devices that have other functions such as lighting and can be worn on the head, which will not be described in detail. The following detailed description uses augmented reality or virtual reality glasses as an example.
[0043] In the example of augmented reality or virtual reality glasses, the head-mounted device can be configured to transfer data to and receive data from an external processing device via a signal connection, which can be a wired connection, a wireless connection, or a combination thereof. However, in other cases, the head-mounted device can be used as a standalone device, i.e., data processing is performed on the head-mounted device itself. The signal connection can be configured to carry any kind of data, such as image data (e.g., still images and / or full motion video, including 2D and 3D images), audio, multimedia, voice, and / or any other type of data. The external processing device can be, for example, a game console, a personal computer, a tablet computer, a smart phone, or other type of processing device. The signal connection can be, for example, a universal serial bus (USB) connection, a Wi-Fi connection, a Bluetooth or Bluetooth low energy (BLE) connection, an Ethernet connection, a cable connection, a DSL connection, a cellular connection (e.g., 3G, LTE / 4G, or 5G), etc., or a combination thereof. Additionally, the external processing device may communicate with one or more other external processing devices via a network, which may be or include, for example, a local area network (LAN), a wide area network (WAN), an intranet, a metropolitan area network (MAN), the global Internet, or a combination thereof.
[0044] The head-mounted device may include a display component, optical devices, sensors, and a processor. In the example of augmented reality or virtual reality glasses, the display component is designed to, for example, implement the functionality of virtual reality glasses by projecting light into the user's eyes. For example, the head-mounted device may also include an ambient light sensor and electronic circuitry to control at least some of the aforementioned components and perform associated data processing functions. The electronic circuitry may include, for example, one or more processors and one or more memories.
[0045] See also Figures 1 to 3 , Figure 1 is a structural diagram of a head mounted device 10 provided in an embodiment of the present application, Figure 2 yes Figure 1 Schematic diagram of the exploded structure of the head mounted device 10, Figure 3 yes Figure 2 Schematic diagram of the exploded structure of the wearing bracket 100.
[0046] like Figures 1 to 2 As shown, the head-mounted device 10 provided in an embodiment of the present application may include: a wearing bracket 100, an optical lens 200, a first electronic component 300, a second electronic component 400, and an electrical connector 500. Among them, the wearing bracket 100 can be worn on the user's head. The optical lens 200, the first electronic component 300, and the second electronic component 400 can all be set on the wearing bracket 100, and the optical lens 200 can be used to cooperate with the first electronic component 300 and the second electronic component 400 to realize augmented reality or virtual reality functions in front of the user's eyes. Of course, the first electronic component 300 and the second electronic component 400 can also be used to realize other functions of the head-mounted device 10. The electrical connector 500 can also be set on the wearing bracket 100, and the electrical connector 500 can be electrically connected to the first electronic component 300 and the second electronic component 400 respectively to realize electrical signal transmission between the first electronic component 300 and the second electronic component 400. The terms "first," "second," and "third" in this application are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the quantity of the technical features indicated. Therefore, a feature specified as "first," "second," or "third" may explicitly or implicitly include at least one of such features.
[0047] The wearing bracket 100 can be used to carry the optical lens 200, the first electronic component 300, the second electronic component 400 and the electrical connector 500. Figure 3As shown, the wearing bracket 100 may include: a frame 110, a leg 120 and a shaft assembly 130. The legs 120 may be provided at both opposite ends of the frame 110, and the frame 110 may be used to install the optical lens 200 and the first electronic component 300, and the legs 120 may be used to install the second electronic component 400. The shaft assembly 130 may be connected to the frame 110 and the leg 120, respectively, to achieve a rotational connection between the frame 110 and the leg 120. The electrical connector 500 may be provided on the frame 110, and the electrical connector 500 may also extend to the leg 120 through the frame 110, so that the electrical connector 500 is electrically connected to the first electronic component 300 and the second electronic component 400, respectively. In this embodiment, the orthographic projection of the optical lens 200 on the frame 110 can overlap with the orthographic projection of the electrical connector 500 on the frame 110, so that the optical lens 200 and the electrical connector 500 can share the same installation area on the frame 110, thereby reducing the width of the area of the frame 110 used to install the optical lens 200 and the electrical connector 500. This not only increases the visible range of the optical lens 200, but also provides the user with a narrow-frame visual effect, thereby enhancing the appearance of the head-mounted device 10.
[0048] See also Figures 4 to 6 , Figure 4 yes Figure 3 A schematic structural diagram of the middle frame 110, Figure 5 yes Figure 4 Schematic diagram of the connection structure between the middle crossbeam 111 and the frame 112, Figure 6 yes Figure 5 Schematic diagram of the partial cross-section structure of the middle cross beam 111 and the frame 112 along V-V.
[0049] The frame 110 can be worn in front of the user's eyes so that the optical lens 200 provided on the frame 110 cooperates with the first electronic component 300 and the second electronic component 400 to realize the function of augmented reality or virtual reality. Figure 4As shown, the frame 110 may include: a crossbeam 111, a frame 112, a shielding member 113 and a nose pad assembly 114. Particularly, legs 120 may be provided at opposite ends of the crossbeam 111, and the crossbeam 111 may be used to mount the first electronic component 300 and the electrical connector 500. The frame 112 is connected to the crossbeam 111, and the two can also be used to mount the optical lens 200. The shielding member 113 may be provided on the crossbeam 111, and it may be used to shield the electrical connector 500 on the crossbeam 111. The nose pad assembly 114 may be provided on the frame 112, and it may be used to contact the user's nose bridge to support the crossbeam 111, the frame 112 and the various components provided on the crossbeam 111 and the frame 112. In this embodiment, the orthographic projection of the optical lens 200 on the beam 111 can overlap with the orthographic projection of the electrical connector 500 on the beam 111, so that the optical lens 200 and the electrical connector 500 can share the same installation area on the beam 111, thereby reducing the width of the area of the beam 111 used to install the optical lens 200 and the electrical connector 500. This not only increases the visible range of the optical lens 200, but also provides the user with a narrow-frame visual effect, thereby enhancing the appearance of the head-mounted device 10.
[0050] Specifically, the crossbeam 111 and the frame 112 may form a bearing surface 1101 together, and the bearing surface 1101 may be used to install the optical lens 200, so as to achieve the installation of the frame 110 and the optical lens 200. Figures 4 and 5 As shown, the crossbeam 111 can be arranged in a strip shape in appearance, and the frame 112 can be arranged in a "C" shape in appearance, and one end of the frame 112 can be connected to the peripheral side of the crossbeam 111, and the other end can be connected to the end of the crossbeam 111, so that the two can together form an annular bearing surface 1101 for mounting the optical lens 200. For example, glue can be dispensed on the bearing surface 1101 so that the optical lens 200 can be bonded and fixed to the crossbeam 111 and the frame 112 by glue. At the same time, in order to improve the convenience of installation, an annular ridge 1102 can also be formed on the crossbeam 111 and the frame 112, and the annular ridge 1102 can also be arranged around the bearing surface 1101. In this way, when installing the optical lens 200, the annular ridge 1102 can be used to determine the installation position of the optical lens 200, and it can be positioned and assembled with the bearing surface 1101 to improve the convenience of installation of the optical lens 200. In this embodiment, the glue used to bond the crossbeam 111, the frame 112, and the optical lens 200 can be hot melt adhesive, and the crossbeam 111 and the frame 112 can be an integral structure, and the two can be integrally formed through an injection molding process. In some embodiments, the material of the glue is not limited to hot melt adhesive, and the crossbeam 111 and the frame 112 can also be formed using other integral molding processes. For example, when the crossbeam 111 and the frame 112 are made of metal, the two can be integrally formed through a stamping process.
[0051] The opposite ends of the beam 111 may be provided with legs 120, and the beam 111 may also be used to mount the first electronic component 300 and the electrical connector 500. Figures 4 and 5 As shown, the crossbeam 111 can be provided with a main body 1111 and a mounting portion 1112. The main body 1111 can be provided in a strip shape in appearance, and the main body 1111 can be used to install the electrical connector 500. The mounting portion 1112 can be provided in a column shape in appearance, and the mounting portion 1112 can be used to install the first electronic component 300. The mounting portions 1112 can be provided at both opposite ends of the main body 1111, and one end of the frame 112 can be connected to the peripheral side of the main body 1111, and the other end can be connected to the mounting portion 1112, so that the three can jointly form the above-mentioned bearing surface 1101 and the annular ridge 1102 for installing the optical lens 200. With such a configuration, in addition to using the mounting portion 1112 to install two first electronic components 300 at opposite ends of the main body 1111, the mounting portions 1112 at opposite ends of the main body 1111 can also be used to connect to the support leg 120, so that after the electrical connector 500 is electrically connected to the first electronic component 300 on the mounting portion 1112, it can also extend to the support leg 120 through the mounting portion 1112 and electrically connect to the second electronic component 400 on the support leg 120, thereby improving the convenience of arranging the electrical connector 500. In this embodiment, the orthographic projection of the optical lens 200 on the main body 1111 can overlap with the orthographic projection of the electrical connector 500 on the main body 1111, so that the optical lens 200 and the electrical connector 500 can share the same installation area on the main body 1111, thereby reducing the width of the area of the main body 1111 used to install the optical lens 200 and the electrical connector 500. This not only increases the visible range of the optical lens 200, but also provides the user with a narrow-frame visual effect, thereby enhancing the appearance of the head-mounted device 10.
[0052] In some embodiments, the mounting portion 1112 may also be connected to other locations of the main body 1111 besides the ends, so that the mounting portion 1112 can be used only to mount the first electronic component 300. For example, the mounting portion 1112 may be connected to a location midway between opposite ends of the main body 1111, while the opposite ends of the main body 1111 may be used to connect to the legs 120. Accordingly, the frame 112 may be connected to the periphery of the main body 1111 and the ends of the main body 1111, respectively, thereby forming the aforementioned bearing surface 1101 and annular flange 1102 together with the main body 1111 for mounting the optical lens 200. The electrical connector 500 may extend through the opposite ends of the main body 1111 to the legs 120, electrically connecting to the second electronic component 400 on the legs 120.
[0053] In some embodiments, the first electronic assembly 300 and the second electronic assembly 400 may also be respectively disposed on the legs 120 at opposite ends of the beam 111, that is, the first electronic assembly 300 may be disposed within one leg 120, and the second electronic assembly 400 may be disposed within the other leg 120. Therefore, the beam 111 may also be provided with only a main body 1111 for mounting the electrical connector 500, so that the electrical connector 500 connects the legs 120 at opposite ends of the main body 1111, thereby achieving an electrical connection between the first electronic assembly 300 and the second electronic assembly 400. Accordingly, one end of the frame 112 may still be connected to the peripheral side of the main body 1111, and the other end may still be connected to the end of the main body 1111, thereby forming the aforementioned bearing surface 1101 and annular ridge 1102 together with the main body 1111 for mounting the optical lens 200.
[0054] The main body 1111 can be used to install the electrical connector 500 to achieve electrical connection between the first electronic component 300 and the second electronic component 400. Figures 5 and 6 As shown, a wiring groove 11101 for mounting the electrical connector 500 may be provided on one side of the main body 1111 located on the supporting surface 1101. The wiring groove 11101 may also communicate with the mounting portions 1112 at opposite ends of the main body 1111, allowing the electrical connector 500 to be electrically connected to the first electronic components 300 on the two mounting portions 1112 through the wiring groove 11101. Furthermore, after the electrical connector 500 is electrically connected to the first electronic component 300 through the wiring groove 11101, it may also extend through the mounting portion 1112 to the leg 120 and electrically connect to the second electronic component 400. Correspondingly, since the wiring groove 11101 is arranged on the side of the main body 1111 located on the bearing surface 1101, the optical lens 200 can be covered on the wiring groove 11101 and arranged opposite to the electrical connector 500 in the wiring groove 11101, so that the orthographic projection of the optical lens 200 on the bearing surface 1101 can overlap with the orthographic projection of the electrical connector 500 on the bearing surface 1101.
[0055] Compared with the solution in which the optical lens 200 and the electrical connector 500 need to occupy an installation area on the main body 1111 respectively, this embodiment provides a wiring groove 11101 on the side of the main body 1111 located on the bearing surface 1101 for installing the electrical connector 500, and the optical lens 200 is covered in the wiring groove 11101 and arranged opposite to the electrical connector 500, so that the orthographic projection of the optical lens 200 on the bearing surface 1101 can overlap with the orthographic projection of the electrical connector 500 on the bearing surface 1101. In this way, when installing the optical lens 200, the electrical connector 500, and the frame 110, the optical lens 200 and the electrical connector 500 can be installed in the same mounting area on the main body 1111 in a direction perpendicular to the bearing surface 1101. This reduces the width of the main body 1111 occupied by the area used to mount the optical lens 200 and the electrical connector 500 in a direction parallel to the bearing surface 1101. This not only increases the visual range of the optical lens 200, but also provides the user with a narrow-frame visual effect, enhancing the appearance of the head-mounted device 10. In addition, by providing the wiring groove 11101 to install the electrical connector 500, the wiring groove 11101 can not only absorb the thickness of the electrical connector 500, but also protect the electrical connector 500, preventing interference between the optical lens 200 and the electrical connector 500 during assembly, which could cause damage to the electrical connector 500.
[0056] In some embodiments, the wiring groove 11101 can also be provided on the side of the main body 1111 facing away from the bearing surface 1101, so that the optical lens 200 and the electrical connector 500 can be respectively provided on opposite sides of the main body 1111. This allows the main body 1111 to support the optical lens 200, and only requires that the orthographic projection of the electrical connector 500 on the bearing surface 1101 overlap with the orthographic projection of the optical lens 200. In some embodiments, in addition to providing the wiring groove 11101, the main body 1111 can also be provided with channels running through opposite ends of the main body 1111 to accommodate the electrical connector 500. Of course, the electrical connector 500 can also be provided directly on the outer surface of the main body 1111, and only requires that the orthographic projection of the electrical connector 500 on the bearing surface 1101 overlap with the orthographic projection of the optical lens 200 on the bearing surface 1101. The terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or apparatus comprising a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units that are not listed, or may optionally include other steps or units that are inherent to the process, method, product or apparatus.
[0057] Please combine Figure 5 See Figures 7 and 8 , Figure 7 yes Figure 5 A schematic diagram of the connection structure between the middle crossbeam 111 and the frame 112 from another perspective, Figure 8 yes Figure 7 Schematic diagram of the partial cross-sectional structure of the middle cross beam 111 and the frame 112 along VI-VI.
[0058] The mounting portion 1112 can be provided at opposite ends of the main body 1111, which can be used not only to mount the first electronic component 300 but also to connect with the legs 120. Figure 5 and Figure 7 As shown, the mounting portion 1112 may be provided with a receiving groove 11102 on one side of the bearing surface 1101, and the receiving groove 11102 may be used to install the first electronic component 300. The wiring groove 11101 may be in communication with the receiving groove 11102, so that the electrical connector 500 is electrically connected to the first electronic component 300 in the receiving groove 11102. The optical lens 200 may be covered in the receiving groove 11102, so that the optical lens 200 cooperates with the first electronic component 300 to realize the functions of virtual reality or augmented reality. At the same time, a connecting groove 11103 may be provided on the side of the mounting portion 1112 away from the bearing surface 1101, and the connecting groove 11103 may be used to connect with the support leg 120. As shown Figures 7 and 8 As shown, the sidewall of the mounting portion 1112 located between the receiving groove 11102 and the connecting groove 11103 can be provided with a through groove to connect the receiving groove 11102 and the connecting groove 11103. This allows the electrical connector 500 to extend through the receiving groove 11102 into the connecting groove 11103 after being electrically connected to the first electronic component 300, thereby electrically connecting to the second electronic component 400 on the leg 120. In this embodiment, there can be two mounting portions 1112, and the two mounting portions 1112 can be a first mounting portion 11121 and a second mounting portion 11122. The first mounting portion 11121 can be located at one end of the main body 1111, and the second mounting portion 11122 can be located at the other opposite end of the main body 1111. The first mounting portion 11121 and the second mounting portion 11122 can also be symmetrically arranged. The wiring groove 11101 can be communicated with the receiving groove 11102 of the first installation portion 11121 and the receiving groove 11102 of the second installation portion 11122 respectively, so that the electrical connector 500 can be electrically connected to the two first electronic components 300 through the wiring groove 11101.
[0059] The frame 112 can be connected to the main body 1111 and the mounting portion 1112 respectively, and the three can together form the bearing surface 1101 and the annular convex edge 1102. Figure 5 and Figure 7As shown, the number of frames 110 can be two, and the two frame bodies 112 are respectively a first frame body 1121 and a second frame body 1122. The first frame body 1121 and the second frame body 1122 can be arranged on the same side of the main body 1111, and the first frame body 1121 and the second frame body 1122 can also be arranged opposite to each other. Among them, one end of the first frame body 1121 can be connected to the peripheral side of the main body 1111, and the other end can be connected to the first mounting portion 11121, and the three can together form a bearing surface 1101 and an annular ridge 1102. One end of the second frame body 1122 can also be connected to the peripheral side of the main body 1111, and the other end can be connected to the second mounting portion 11122, and the three can together form another bearing surface 1101 and another annular ridge 1102. In this way, the two frame bodies 112 can cooperate with the beam 111 to install two optical lenses 200. At the same time, a groove 11201 may be provided on one side of the first frame 1121 close to the second frame 1122, and a groove 11201 may also be provided on one side of the second frame 1122 close to the first frame 1121. The groove 11201 can be used to install the nose pad assembly 114 to achieve the connection between the frame 112 and the nose pad assembly 114. In this embodiment, the first frame 1121 and the second frame 1122 can also be symmetrically arranged to adapt to the user's eyes. In some embodiments, the number of frames 112 can also be one, so that the frame 110 can only install one optical lens 200. At the same time, the shape of the frame 112 is also not limited to a "C" shape. It is only necessary for the frame 112 to form a bearing surface 1101 together with the crossbeam 111 to install the optical lens 200. All directional indications in the embodiments of the present application (such as up, down, left, right, front, back, etc.) are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.
[0060] Please combine Figure 5 See Figures 9 to 11 , Figure 9 yes Figure 4 A schematic diagram of a partial cross-sectional structure of the middle frame 110 along IV-IV, Figure 10 yes Figure 9 A schematic structural diagram of the middle shielding member 113, Figure 11 yes Figure 4 Schematic diagram of the structure of the middle nose pad assembly 114.
[0061] Since the wiring groove 11101 is provided on the side of the main body 1111 located on the bearing surface 1101, and the receiving groove 11102 is also provided on the side of the mounting portion 1112 located on the bearing surface 1101, in order to facilitate the assembly of the optical lens 200 and prevent the user from seeing the wiring groove 11101 and the receiving groove 11102 through the optical lens 200, a shielding member 113 can also be provided on the crossbeam 111 to shield the wiring groove 11101 and the receiving groove 11102. Figure 5 and Figures 9 and 10 As shown, a shielding member 113 can be positioned on the side of the main body 1111 and mounting portion 1112 located on the bearing surface 1101 to shield the wiring trough 11101 and the receiving groove 11102. Furthermore, to reduce the stacking thickness of the crossbeam 111 and shielding member 113, shielding member 113 can also be positioned within wiring trough 11101 and the receiving groove 11102, allowing the wiring trough 11101 and the receiving groove 11102 to absorb the thickness of shielding member 113. Furthermore, since the area of the main body 1111 corresponding to the user's nose bridge does not require the installation of the optical lens 200, the area of the main body 1111 between the two frames 112 is relatively thin, and the wiring trough 11101 is also relatively shallow. To enhance assembly convenience and robustness, shielding member 113 can be positioned to cover the wiring trough 11101 in the area of the main body 1111 where the optical lens 200 is not installed, allowing assembly with the main body 1111.
[0062] The shielding member 113 may include: a first shielding portion 1131 and a second shielding portion 1132. The first shielding portion 1131 may also be provided in a strip shape, and the second shielding portion 1132 may be provided at opposite ends of the first shielding portion 1131. The first shielding portion 1131 may be used to shield the wiring groove 11101, and the second shielding portion 1132 may be used to shield the accommodating groove 11102. Furthermore, the first shielding portion 1131 may be provided in the wiring groove 11101, and the shape of the first shielding portion 1131 may be adapted to the wiring groove 11101 to fill the opening formed by the wiring groove 11101 on the main body 1111. That is, the first shielding portion 1131 may be provided flush with the bearing surface 1101, so that after the optical lens 200 is installed with the main body 1111, the first shielding portion 1131 may support the optical lens 200, thereby improving the structural strength of the optical lens 200. At the same time, since the main body 1111 defines a wiring groove 11101, the annular ridge 1102 is spaced apart from the wiring groove 11101. Therefore, a portion of the first shielding portion 1131 can protrude beyond the wiring groove 11101 to fill the gap between the annular ridge 1102 and the wiring groove 11101. In other words, a portion of the first shielding portion 1131 can protrude beyond the wiring groove 11101, thereby forming the annular ridge 1102 together with the crossbeam 111 and the frame 112, thereby enabling the positioning and installation of the optical lens 200. Furthermore, a step 11104 can be provided on the bottom wall of the wiring groove 11101. This step 11104 can be used to support the first shielding portion 1131, allowing the electrical connector 500 to be spaced apart from the first shielding portion 1131, thereby preventing the first shielding portion 1131 from interfering with the electrical connector 500 during assembly, which could result in damage to the electrical connector 500.
[0063] The second shielding portions 1132 can be disposed at opposite ends of the first shielding portion 1131, meaning there are two second shielding portions 1132 to match the number of mounting portions 1112. The second shielding portions 1132 can be disposed within the receiving groove 11102, and their shape can be adapted to that of the receiving groove 11102, thereby filling the opening formed by the receiving groove 11102 on the mounting portion 1112. Specifically, the second shielding portions 1132 can be flush with the supporting surface 1101, allowing them to support the optical lens 200 after it is mounted on the mounting portion 1112, thereby enhancing the structural strength of the optical lens 200. At the same time, to facilitate the cooperation between the first electronic assembly 300 and the optical lens 200 to achieve virtual reality or augmented reality functions, the second shielding portion 1132 is further provided with a notch 11105 to connect the optical lens 200 with the first electronic assembly 300 within the receiving groove 11102, allowing the first electronic assembly 300 to cooperate with the optical lens 200 through the notch 11105. In this embodiment, the first shielding portion 1131 and the second shielding portion 1132 can be an integral structure, and the material of the shielding member 113 can be the same as that of the crossbeam 111 and the frame 112 to improve the consistency of the frame 110. In some embodiments, in addition to virtual reality or augmented reality functions, the first electronic assembly 300 can also achieve other corresponding functions through the notch 11105. Of course, depending on the function of the first electronic assembly 300, the second shielding portion 1132 can also completely cover the receiving groove 11102 without providing the notch 11105 to improve the airtightness of the frame 110.
[0064] The nose support assembly 114 can be connected to the frame 112 and can be used to contact the user's nose bridge to cooperate with the support legs 120 to achieve the wearing of the head-mounted device 10. Figure 5 and Figure 11As shown, the nose pad assembly 114 may include a support frame 1141 and a nose pad 1142. The support frame 1141 may be connected to the frame 112, and the nose pad 1142 may be connected to the support frame 1141. The support frame 1141 may be used to support the nose pad 1142 and provide the nose pad 1142 with a certain degree of toughness and elasticity, allowing the nose pad 1142 to move relative to the frame 112 using the elasticity of the support frame 1141. With this arrangement, when a user wears the head-mounted device 10, the support frame 1141 can undergo elastic deformation according to the shape of the user's nose bridge, allowing the nose pad 1142 to move relative to the support frame 1141, thereby achieving adjustability of the nose pad 1142 and improving the fit of the nose pad 1142 to the user's nose bridge. In this embodiment, the support frame 1141 may be made of metal, so that the support frame 1141 has a certain degree of rigidity and elastic deformation ability, thereby achieving adjustability of the nose pad 1142. The material of the nose pad 1142 can be a flexible, skin-friendly material such as plastic, rubber, and silicone to improve the comfort of the user wearing the head-mounted device 10.
[0065] The support frame 1141 may be provided with a protrusion 11401, and the protrusion 11401 may be provided in the groove 11201 and interference fit with the frame 112 to achieve the connection between the support frame 1141 and the frame 112. The nose pad 1142 may be similar to an "I"-shaped structure in appearance. The support frame 1141 may be sleeved on the nose pad 1142, and the two may be integrally formed through an in-mold injection molding process to achieve the connection between the support frame 1141 and the nose pad 1142. In this embodiment, the number of the support frame 1141 and the nose pad 1142 is two to adapt to the two frames 112. For example, one support frame 1141 may be provided on the first frame 1121, and the other support frame 1141 may be provided on the second frame 1122, and the two support frames 1141 may also be symmetrically arranged. Accordingly, the two nose pads 1142 can be respectively arranged on the two support frames 1141, and the two nose pads 1142 can also be symmetrically arranged to adapt to the user's nose bridge. In some embodiments, the support frames 1141 can also be integrally formed with the frame 112 by in-mold injection to improve the connection firmness between the support frames 1141 and the frame 112.
[0066] See also Figures 12 to 14 , Figure 12 yes Figure 10 Another structural diagram of the middle nose pad assembly 114, Figure 13 yes Figure 12 Schematic diagram of the exploded structure of the middle support frame 1141, Figure 14 yes Figure 12 Schematic diagram of the structure of the middle nose pad 1142.
[0067] In order to further enhance the adjustability of the nose pad 1142 and improve the adaptability of the wearable device 10 when worn by the user, the support frame 1141 can also be configured accordingly to provide the nose pad 1142 with a larger range of motion and adjustment angle. Figures 12 to 13 As shown, the support frame 1141 may include a rigid portion 11411 and an elastic portion 11412 of an integrated structure. The rigid portion 11411 may be connected to the frame 112 to achieve assembly of the support frame 1141 and the frame 112. The elastic portion 11412 may be provided on the rigid portion 11411 and connected to the nose pad 1142, and the elastic portion 11412 may have a strong deformation ability to expand the range and angle of movement of the nose pad 1142 relative to the rigid portion 11411, thereby improving the adaptability of the wearable device 10 worn by the user. In this embodiment, the material of the rigid portion 11411 may be metal, the material of the elastic portion 11412 may be soft glue, and the rigid portion 11411 and the elastic portion 11412 may be an integrated structure, and the two may be integrally formed by in-mold injection molding.
[0068] The rigid portion 11411 can be connected to the frame 112 and provide a certain toughness and elasticity for the support frame 1141. Figures 12 to 13 As shown, the rigid portion 11411 can be arranged in a ring shape and surrounded by a receiving space 11402. The elastic portion 11412 can be arranged to wrap the rigid portion 11411, and the elastic portion 11412 can also fill the receiving space 11402 and form a sheet-like structure, so that the elastic portion 11412 can be deformed relative to the rigid portion 11411, thereby providing a larger activity space and angle for the nose pad 1142. In this embodiment, the rigid portion 11411 can also be provided with a protrusion 11401, and the protrusion 11401 can protrude from the elastic portion 11412, so that the rigid portion 11411 can cooperate with the groove 11201 on the frame 112 through the protrusion 11401 to achieve the assembly of the support frame 1141 and the frame 112. In some embodiments, the rigid portion 11411 can also be integrally formed with the frame 112 by in-mold injection to improve the assembly firmness of the support frame 1141 and the frame 112.
[0069] Furthermore, the elastic portion 11412 is provided in the area of the accommodating space 11402 and may also be provided with a first connecting portion 11403, and the first connecting portion 11403 may be used to be detachably connected to the nose pad 1142. Figures 12 to 13As shown, the first connecting portion 11403 may be part of the area where the elastic portion 11412 is disposed within the accommodating space 11402, and the first connecting portion 11403 may be provided with a through-slot 11404. The nose pad 1142 may be inserted into the through-slot 11404 and have an interference fit with the first connecting portion 11403 to achieve a connection between the nose pad 1142 and the elastic portion 11412. Since the first connecting portion 11403 is also made of soft rubber, it can also deform to provide space for the nose pad 1142 to exit the through-slot 11404, thereby achieving a detachable connection between the elastic portion 11412 and the nose pad 1142.
[0070] Accordingly, to match the number of frames 112, there are also two support frames 1141, and the elastic portion 11412 on one support frame 1141 can be connected to the elastic portion 11412 on another support frame 1141, so that the elastic portions 11412 on the two support frames 1141 can be formed into one piece. For example, the nose pad assembly 114 is further provided with a connector 1143, and one end of the connector 1143 can be connected to the elastic portion 11412 on one support frame 1141, and the other end can be connected to the elastic portion 11412 on the other support frame 1141. With this arrangement, the connector 1143 can be used to connect the two support frames 1141 together for assembly with the frame 112, thereby improving assembly convenience. In this embodiment, the connector 1143 and the elastic portion 11412 on the two support frames 1141 can be an integral structure, and the three can be integrally formed through an injection molding process, so that the connector 1143 can also have deformation ability to avoid the rigid connector 1143 pulling the support frame 1141 during the deformation process of the support frame 1141, thereby ensuring the normal deformation movement of the support frame 1141. At the same time, the connector 1143 can also be arched in the direction close to the main body 1111 to adapt to the shape of the user's nose bridge. Of course, in some embodiments, the nose pad assembly 114 may also not be provided with a connector 1143 to connect the two support frames 1141, so that the two support frames 1141 can be assembled independently with the frame 112.
[0071] The nose pad 1142 can contact the bridge of the user's nose, and the nose pad 1142 can move relative to the support frame 1141 through the elastic portion 11412 to achieve multi-angle adjustment of the nose pad 1142. Figure 12 and Figure 14As shown, the nose pad 1142 can be provided with a flexible portion 11421 and a first matching portion 11405 of an integrated structure. The flexible portion 11421 can be used to contact the user's nose bridge to reduce the pressure exerted by the head-mounted device 10 on the user's nose bridge and improve the user's wearing comfort. The first matching portion 11405 can be provided on one side of the flexible portion 11421 and can be detachably connected to the first connecting portion 11403. For example, the first matching portion 11405 can be similar to a "T"-shaped structure in appearance, and the first matching portion 11405 can be inserted into the through groove 11404 and have an interference fit with the first connecting portion 11403, thereby realizing the connection between the nose pad 1142 and the elastic portion 11412. At the same time, the first matching portion 11405 is passed through the end of the first connecting portion 11403 and can also be clamped with the side of the first connecting portion 11403 away from the flexible portion 11421 to further strengthen the connection firmness between the nose pad 1142 and the elastic portion 11412.
[0072] Accordingly, when it is necessary to disassemble the nose pad 1142 and the support frame 1141, an external force can be used to deform the first connecting portion 11403, thereby providing a clearance space for the "T"-shaped end of the first matching portion 11405, allowing the first matching portion 11405 to withdraw from the through slot 1103, thereby achieving the disassembly of the nose pad 1142 and the elastic portion 11412. This configuration not only allows the elastic portion 11412 to further expand the range and angle of motion of the nose pad 1142, thereby enhancing the adjustability of the nose pad 1142, but also allows the nose pad 1142 to be replaced by utilizing the detachable connection between the elastic portion 11412 and the nose pad 1142, allowing the user to select the appropriate nose pad 1142 to wear according to their needs, thereby improving the fit of the head mounted device 10 worn by the user. In this embodiment, the flexible portion 11421 and the first mating portion 11405 can be made of hard plastic, so that the nose pad 1142 can have a certain degree of flexibility while also maintaining a certain degree of rigidity when assembled with the elastic portion 11412. Furthermore, there can be two nose pads 1142, and the two nose pads 1142 can be respectively disposed on the two support frames 1141.
[0073] In some embodiments, the first connecting portion 11403 and the first matching portion 11405 can also be detachably connected by other means such as magnetism or snap-on. For example, the first connecting portion 11403 can be a magnet embedded in the elastic portion 11412, and the first matching portion 11405 can be a metal embedded in the flexible portion 11421, so that the two can be detachably connected by magnetism. Of course, the first connecting portion 11403 can also be metal, and the first matching portion 11405 can be a magnet. In addition, in some embodiments, since the first matching portion 11405 is hard glue and the elastic portion 11412 is soft glue, in order to improve the connection firmness, the two can also be formed into one by soft and hard glue injection molding, so that the first matching portion 11405 and the elastic portion 11412 can be an integrated structure, thereby ensuring the assembly firmness of the support frame 1141 and the nose pad 1142.
[0074] See also Figures 15 to 18 , Figure 15 yes Figure 10 Another structural diagram of the middle nose pad assembly 114, Figure 16 yes Figure 15 A schematic structural diagram of the middle support frame 1141, Figure 17 yes Figure 15 A schematic diagram of the structure of the middle nose pad 1142, Figure 18 yes Figure 15 Schematic diagram of the structure of the middle elastic member 1144.
[0075] In addition to enhancing the adjustability of the nose pad 1142 by providing an elastic portion 11412 made of soft rubber on the support frame 1141, other methods can also be used to expand the range and angle of movement of the nose pad 1142 relative to the support frame 1141. Figure 15 As shown, the nose pad assembly 114 in this embodiment may further be provided with an elastic member 1144. One end of the elastic member 1144 may be detachably connected to the support frame 1141, and the other end may also be detachably connected to the nose pad 1142. The elastic member 1144 may also be deformable, so that the nose pad 1142 can not only expand its range of motion and angle by utilizing the deformation of the elastic member 1144, but also be replaceable by utilizing the detachability of the elastic member 1144, so that the user can choose the corresponding nose pad 1142 to wear according to their needs.
[0076] Specifically, since the nose pad 1142 is connected to the support frame 1141 through an independent elastic member 1144, the support frame 1141 can be provided with only a rigid portion 11411 to provide a certain supporting force for the nose pad 1142. Figures 15 and 16As shown, the rigid part 11411 can also be arranged in an annular shape to improve the structural strength of the rigid part 11411, and the material of the rigid part 11411 can also be metal. At the same time, the rigid part 11411 can also be provided with a protrusion 11401, and the protrusion 11401 can also be arranged in the groove 11201 of the frame 112, and interference fit with the frame 112, so as to achieve the assembly of the support frame 1141 and the frame 112. Of course, since an independent elastic member 1144 is used to achieve the movement of the nose pad 1142 relative to the support frame 1141, the shape of the rigid part 11411 can also be not limited to an annular shape, and its specific shape can be set according to demand. In addition, in order to improve the connection firmness, the rigid part 11411 can also be integrally formed with the frame 112 by in-mold injection molding as in the above embodiment.
[0077] Since the support frame 1141 is also detachably connected to the elastic member 1144, the support frame 1141 can also be provided with a second matching portion 11406 that matches the elastic member 1144. The second matching portion 11406 can be connected to the rigid portion 11411, and the second matching portion 11406 can be provided in the space formed by the rigid portion 11411. Among them, the second matching portion 11406 can be a metal that can be attracted by magnetic force, and one end of the elastic member 1144 can have magnetic force, so that the second matching portion 11406 and the elastic member 1144 can be detachably connected by magnetic attraction. At the same time, in order to avoid the second matching portion 11406 and the elastic member 1144 from being misaligned due to external force after being magnetically attached, the second matching portion 11406 can also be provided with a positioning groove 11407, and the shape of the positioning groove 11407 can be adapted to the shape of the elastic member 1144. One end of the elastic member 1144 can be arranged in the positioning groove 11407 and magnetically connected to the second matching portion 11406, so that the inner side wall of the positioning groove 11407 can limit the position of the elastic member 1144, thereby preventing the elastic member 1144 and the second matching portion 11406 from being misaligned due to external forces. In this embodiment, the second matching portion 11406 and the rigid portion 11411 can be an integral structure, that is, the rigid portion 11411 can also be a metal that can be attracted by magnetic force. Of course, the material of the second matching portion 11406 is not limited to metal. It is only necessary that the second matching portion 11406 can be attracted by magnetic force to achieve a magnetic connection between the second matching portion 11406 and the elastic member 1144. In this embodiment, the number of support frames 1141 can still be two, and the two support frames 1141 can be respectively arranged on the first frame 1121 and the second frame 1122.
[0078] In some embodiments, the second mating portion 11406 may also be a magnet with magnetic force, and one end of the elastic member 1144 may be a metal that can be attracted by magnetic force, so that the two can still be detachably connected by magnetic attraction. Alternatively, the second mating portion 11406 may be a magnet with magnetic force, and one end of the elastic member 1144 may also be a magnet with magnetic force, and the magnetic properties of the two are different, so that the two can still be detachably connected by magnetic attraction. In addition, in some embodiments, the positioning groove 11407 may also be provided on the elastic member 1144, and the second mating portion 11406 may be provided with a protrusion that matches the positioning groove 11407. Once the two are magnetically connected, the positioning groove 11407 can limit the position of the two to prevent the two from being misaligned due to external forces.
[0079] The nose pad 1142 can still be provided with a flexible portion 11421 and a first matching portion 11405, and the flexible portion 11421 can be used to contact the user's nose bridge to reduce the pressure of the head mounted device 10 on the user's nose bridge and improve the user's wearing comfort, while the first matching portion 11405 can be used to be detachably connected to the elastic member 1144. Figure 15 and Figure 17 As shown, the flexible portion 11421 can be arranged to wrap around the first matching portion 11405, and the first matching portion 11405 can be a magnetic sheet with magnetic force, while the other end of the elastic member 1144 can be a metal that can be attracted by magnetic force, so that the first matching portion 11405 and the elastic member 1144 can be detachably connected by magnetic attraction. Accordingly, in order to prevent the first matching portion 11405 and the elastic member 1144 from being misaligned due to external forces after being magnetically attached, the flexible portion 11421 can also be provided with an opening 11408 connected to the first matching portion 11405, and the shape of the opening 11408 can be adapted to the shape of the elastic member 1144. The elastic member 1144 can be arranged in the opening 11408 and magnetically connected to the first matching portion 11405, so that the flexible portion 11421 can limit the position of the elastic member 1144 to prevent the elastic member 1144 from being displaced due to external forces. In this embodiment, the first mating portion 11405 and the flexible portion 11421 can be integrally formed by in-mold injection molding. Of course, the material of the other end of the elastic member 1144 is not limited to metal. It only needs to be able to be attracted by magnetic force to achieve a magnetic connection between the first mating portion 11405 and the elastic member 1144.
[0080] Accordingly, to match the number of support frames 1141, the present embodiment also includes two nose pads 1142, and the flexible portion 11421 on one nose pad 1142 can be connected to the other flexible portion 11421 on the other nose pad 1142, so that the two nose pads 1142 can be integrated. For example, the nose pad assembly 114 in the present embodiment can also be provided with a connector 1143, one end of which can be connected to the flexible portion 11421 of one nose pad 1142, and the other end can be connected to the flexible portion 11421 of the other nose pad 1142. With this arrangement, the connector 1143 can be used to connect the two nose pads 1142 together for assembly with the frame 112, thereby improving assembly convenience. In this embodiment, the connector 1143 and the flexible portions 11421 on the two nose pads 1142 can be an integral structure, so that the connector 1143 can also have a certain degree of deformation ability to prevent the rigid connector 1143 from pulling the flexible portion 11421 during the movement of the flexible portion 11421 relative to the support frame 1141, thereby ensuring the normal deformation and movement of the flexible portion 11421. At the same time, the connector 1143 can also be arched in the direction close to the main body 1111 to adapt to the shape of the user's nose bridge. Of course, in some embodiments, the nose pad assembly 114 can also be provided with no connector 1143 to connect the two nose pads 1142, so that the two nose pads 1142 can be independently assembled with the elastic member 1144 on the support frame 1141.
[0081] In some embodiments, the first mating portion 11405 may also be a metal that can be attracted by magnetic force, and the other end of the elastic member 1144 may be a magnet with magnetic force, so that the two can still be detachably connected by magnetic attraction. Alternatively, the first mating portion 11405 may be a magnet with magnetic force, and the other end of the elastic member 1144 may also be a magnet with magnetic force, and the magnetic properties of the two are different, so that the two can still be detachably connected by magnetic attraction. In addition, in some embodiments, the first mating portion 11405 may also be provided with a protruding flexible portion 11421, and the other end of the elastic member 1144 may be provided with a corresponding groove, so that the first mating portion 11405 can be provided in the groove and magnetically connected to the elastic member 1144 to avoid the two being misaligned due to external forces.
[0082] The elastic member 1144 can be detachably connected to the support frame 1141 and the nose pad 1142, and the elastic member 1144 can also be used to realize the movement of the nose pad 1142 relative to the support frame 1141. Figures 15 to 18As shown, in addition to being provided with a first connecting portion 11403 like the elastic portion 11412 in the above embodiment, the elastic member 1144 may also be provided with a second connecting portion 11409 and a deformable portion 11441. The first connecting portion 11403 may be provided at one end of the deformable portion 11441 and may be used to detachably connect with the first mating portion 11405. The second connecting portion 11409 may be provided at the other opposite end of the deformable portion 11441 and may be used to detachably connect with the second mating portion 11406. The first connecting portion 11403 may be a metal that can be attracted by magnetic force and may be provided within the opening 11408 and magnetically connected to the first mating portion 11405 to achieve a detachable connection between the elastic member 1144 and the nose pad 1142. The second connecting portion 11409 can be a magnet with magnetic force and can be disposed within the positioning groove 11407 and magnetically connected to the second mating portion 11406 to achieve a detachable connection between the elastic member 1144 and the support frame 1141. In some embodiments, the first connecting portion 11403 can also be a magnet with magnetic force, while the first mating portion 11405 is a metal that can be attracted by magnetic force. The second connecting portion 11409 can also be a metal that can be attracted by magnetic force, while the second mating portion 11406 is a magnet with magnetic force.
[0083] The deformable portion 11441 may be a special-shaped spring, i.e., an irregular spring, to provide the elastic member 1144 with deformable properties, allowing the nose pad 1142 to move relative to the support frame 1141 by utilizing the deformation of the elastic member 1144, thereby expanding the range and angle of motion of the nose pad, and improving the fit of the head-mounted device 10 when worn by the user. In this embodiment, the cross-sectional shape of the deformable portion 11441 may be square, and the winding radius at the opposite ends of the deformable portion 11441 may be smaller than the winding radius in the middle region. This allows the deformable portion 11441 to not only undergo compressive deformation along its length but also undergo bending deformation by utilizing the difference in winding radius between the opposite ends and the middle region, thereby expanding the range and angle of motion of the nose pad 1142 relative to the support frame 1141, enhancing the adjustability of the nose pad 1142, and improving the fit of the head-mounted device 10 when worn by the user.
[0084] Accordingly, to accommodate the number of support frames 1141 and nose pads 1142, the number of elastic members 1144 in this embodiment is also two, and the two elastic members 1144 are respectively provided on the two support frames 1141 to respectively connect the two nose pads 1142. In this way, by providing the elastic members 1144 respectively connecting the support frames 1141 and the nose pads 1142, the nose pads 1142 can move relative to the support frames 1141 by utilizing the deformation of the elastic members 1144. This not only makes the nose pads 1142 adjustable, but also expands the range and angle of movement of the nose pads 1142. At the same time, by setting a first connecting part 11403 at one end of the elastic member 1144, setting a second connecting part 11409 at the other opposite end, and setting a first matching part 11405 on the nose pad 1142 that is magnetically connected to the first connecting part 11403, and setting a second matching part 11406 on the support frame 1141 that is magnetically connected to the second connecting part 11409, the elastic member 1144 can also be detachably connected to the support frame 1141 and the nose pad 1142, so that the user can replace the nose pad 1142.
[0085] In some embodiments, multiple elastic members 1144 may be disposed between the support frame 1141 and the nose pad 1142, and the spring shape of the deformable portion 11441 may be square to improve the uniformity of the elastic force of the elastic members 1144. For example, three elastic members 1144 may be disposed between the support frame 1141 and the nose pad 1142, while the support frame 1141 may be provided with three second mating portions 11406, and the nose pad 1142 may be provided with three first mating portions 11405, to achieve assembly of the three elastic members 1144 with the support frame 1141 and the nose pad 1142. In some embodiments, the number of elastic members 1144 between the support frame 1141 and the nose pad 1142 is not limited to three, and may be two, four, or more. Furthermore, the cross-sectional shape of the deformable portion 11441 is not limited to a square, and its specific structure and shape may be configured according to the desired force direction and force application method.
[0086] In order to further improve the appearance of the head mounted device 10, the frame 110 may also be provided with a first decorative piece 115 and a second decorative piece 116. Figure 4 and Figure 9As shown, the first decorative piece 115 can be disposed on the annular ridge 1102 formed by the main body 1111 and the frame 112, and the first decorative piece 115 can be disposed around the optical lens 200 to decorate the optical lens 200 and enhance the appearance of the head-mounted device 10. The second decorative piece 116 can be disposed on the side of the first decorative piece 115 facing away from the optical lens 200, and the second decorative piece 116 can be disposed on the mounting portion 1112 and cover the receiving groove 11102 to cover the portion of the optical lens 200 located within the receiving groove 11102, thereby decorating the optical lens 200. In this way, the first decorative piece 115 and the second decorative piece 116 can enhance the sophistication of the appearance of the head-mounted device 10. In some embodiments, the setting method and shape of the first decorative piece 115 and the second decorative piece 116 can also be adjusted and set according to needs. It is only necessary that the first decorative piece 115 and the second decorative piece 116 can decorate the frame 110 to improve the appearance of the head-mounted device 10.
[0087] See also Figures 19 to 22 , Figure 19 yes Figure 2 A schematic structural diagram of the wearing bracket 100 is shown in FIG. Figure 20 yes Figure 19 Schematic diagram of the exploded structure of the middle leg 120, Figure 21 yes Figure 19 A schematic diagram of a partial cross-sectional structure of the wearing bracket 100 along VII-VII, Figure 22 yes Figure 19 Schematic diagram of the structure of the rotating shaft assembly 130.
[0088] The legs 120 can be provided at opposite ends of the beam 111, and can be used to cooperate with the nose support assembly 114 to achieve wearing of the head mounted device 10. Figures 19 to 20 As shown, the leg 120 may include a leg body 121 and a leg side cover 122. The leg body 121 may be connected to the pivot assembly 130 and may rotate relative to the pivot assembly 130 to achieve a rotational connection between the leg 120 and the frame 110. The leg side cover 122 and the leg body 121 may together enclose a receiving space 1201 and a wiring channel 1202. The receiving space 1201 may be used to install the second electronic component 400. The wiring channel 1202 may connect the receiving space 1201 and the connection slot 11103, allowing the electrical connector 500 to extend through the wiring channel 1202 into the receiving space 1201 and electrically connect with the second electronic component 400.
[0089] Specifically, the leg body 121 may include: a bottom wall 1211 and a side wall 1212, and the side wall 1212 may be arranged around the edge of the bottom wall 1211 and, together with the bottom wall 1211, form an open structure. The leg side cover 122 may be arranged to cover the above-mentioned open structure and, together with the leg body 121, form a receiving space 1201 for mounting the second electronic component 400. In this embodiment, a sensing area 12111 may be provided on the side of the bottom wall 1211 facing away from the receiving space 1201, and the sensing area 12111 may be used to cooperate with the second electronic component 400 to implement the touch function of the head-mounted device 10, allowing the user to control the operating state of the head-mounted device 10 by performing operations such as clicking, long pressing, or sliding on the sensing area 12111. The side of the side wall 1212 facing away from the receiving space 1201 may be provided with external interfaces such as an audio interface, a charging interface, and a USB interface, allowing the user to electrically connect to the head mounted device 10 through the external interfaces and perform corresponding functions. Of course, in addition to the side wall 1212 being provided with external interfaces, the bottom wall 1211 may also be provided with external interfaces, which is not limited in this embodiment.
[0090] Furthermore, the leg body 121 can be arranged in a long strip shape, and a rotating portion 1213 can be further provided at one end of the leg body 121. Figures 20 to 21 As shown, the rotating portion 1213 can be disposed on a side of the sidewall 1212 facing away from the receiving space 1201. It can be configured to be sleeved onto the rotating shaft assembly 130, allowing the leg body 121 to rotate relative to the rotating shaft assembly 130. Furthermore, the rotating portion 1213 can also form a wiring channel 1202 together with the leg side cover 122. For example, the leg side cover 122 can be provided with an extension 1221, which can be disposed on one side of the rotating portion 1213 and, together with the rotating portion 1213, form the wiring channel 1202. Accordingly, to facilitate communication between the wiring channel 1202 and the receiving space 1201, the sidewall 1212 provided with the rotating portion 1213 can be formed with a notch, allowing the wiring channel 1202 to communicate with the receiving space 1201 through the notch. In this embodiment, there can be two legs 120, namely a first leg 123 and a second leg 124. The first leg 123 may be rotatably connected to the first mounting portion 11121 via a rotating shaft assembly 130 , and the second leg 124 may be rotatably connected to the second mounting portion 11122 via another rotating shaft assembly 130 .
[0091] In addition, in order to improve the refinement of the supporting leg 120, the wearing bracket 100 may also be provided with a third decorative piece 140 for decorating the supporting leg 120. Figures 19 to 20As shown, the end of the leg body 121 away from the rotating shaft assembly 130, that is, the end of the leg body 121 away from the rotating portion 1213, can be provided with a curved portion 1214. One end of the third decorative member 140 can be connected to one end of the curved portion 1214, and the other opposite end can be connected to the other end of the curved portion 1214. Both ends can together form a decorative groove 1203. For example, the side wall 1212 can be provided with a notch at one end of the curved portion 1214, and a notch can also be provided at the other end of the curved portion 1214. This allows the opposite ends of the third decorative member 140 to be inserted into the leg body 121 through the two notches. The leg side cover 122 can cover the two notches, allowing the third decorative member 140 to be sandwiched between the leg body 121 and the leg side cover 122, thereby assembling the third decorative member 140 with the leg 120. With such a configuration, not only can the third decorative piece 140 be used to improve the appearance of the head mounted device 10 , but the third decorative piece 140 can also be used to enhance the structural strength of the leg body 121 at the arc portion 1214 .
[0092] The shaft assembly 130 can be connected to the frame 110 and the legs 120 respectively, and can be used to realize the rotation connection between the legs 120 and the frame 110. Figures 21 to 22 As shown, the hinge assembly 130 may include a fixing frame 131 and a rotating shaft 132. The fixing frame 131 may be disposed within the connecting groove 11103 and fixedly connected to the mounting portion 1112. The rotating shaft 132 may be disposed on the fixing frame 131. The rotating portion 1213 may be disposed within the connecting groove 11103 and sleeved around the rotating shaft 132, allowing the leg 120 to rotate relative to the mounting portion 1112 via the rotating shaft 132. Furthermore, since the rotating portion 1213 is disposed within the connecting groove 11103, the wiring channel 1202 formed by the rotating portion 1213 and the extending portion 1221 may also communicate with the connecting groove 11103. This allows the electrical connector 500 to extend through the receiving groove 11102, the connecting groove 11103, and the wiring channel 1202 into the receiving space 1201, thereby electrically connecting to the second electronic component 400. In some embodiments, the pivot assembly 130 may also be provided with only a pivot 132. By setting the rotating part 1213 in the connecting groove 11103, the pivot 132 is passed through the mounting part 1112 and the rotating part 1213, and the rotational connection between the frame 110 and the leg 120 can also be achieved.
[0093] The fixing frame 131 may include a top surface 1311, a bottom surface 1312, and side surfaces 1313. The top surface 1311 and the bottom surface 1312 may be disposed opposite each other, and the side surfaces 1313 may be connected to the top surface 1311 and the bottom surface 1312, respectively, and disposed perpendicularly thereto. The top surface 1311, the bottom surface 1312, and the side surfaces 1313 may be used for adhesive dispensing, so that the fixing frame 131 can be bonded and fixed to the inner wall of the connection groove 11103. With such an arrangement, during the assembly process, the rotating part 1213 can be first assembled to the fixing frame 131, and then the rotating shaft 132 can be passed through the fixing frame 131 and the rotating part 1213, so that the support leg 120 can rotate relative to the fixing frame 131, and finally the fixing frame 131 with the rotating shaft 132 and the rotating part 1213 is set in the connecting groove 11103 and fixedly connected to the mounting part 1112, thereby realizing the assembly of the frame 110, the support leg 120 and the rotating shaft assembly 130.
[0094] Furthermore, to provide a damping feel during the rotation of the leg 120, the shaft 132 can be a polygonal prism, with the outer surface of the shaft 132 having multiple sharp corners. As the rotating portion 1213 rotates relative to the shaft 132, the multiple sharp corners of the shaft 132 scrape against the rotating portion 1213, thereby providing a damping feel to the rotation of the leg 120. Furthermore, a rubber sleeve can be provided on the outer surface of the shaft 132 to further increase the friction between the shaft 132 and the rotating portion 1213 during rotation, thereby enhancing the rotational damping feel of the leg 120. In this embodiment, there can be two shaft assemblies 130, one of which can be disposed in the connecting groove 11103 of the first mounting portion 11121, and the other in the connecting groove 11103 of the second mounting portion 11122, thereby achieving a rotational connection between the two legs 120 and the two mounting portions 1112. In the description of this application, “multiple” means at least two, such as two, three, etc., unless otherwise clearly defined.
[0095] See also Figures 23 to 25 , Figure 23 yes Figure 2 Schematic diagram of the connection structure of the middle frame 110, the optical lens 200 and the electrical connector 500, Figure 24 yes Figure 23 Schematic diagram of a partial cross-section of the middle frame 110, the optical lens 200 and the electrical connector 500 along line XI-XI, Figure 25 yes Figure 23 Schematic diagram of the structure of the optical lens 200.
[0096] The optical lens 200 can be disposed on the frame 110, and the optical lens 200 can also cooperate with the first electronic component 300 to realize the function of virtual reality or augmented reality. Figures 23 to 24 As shown, the optical lens 200 can be mounted on the supporting surface 1101 formed by the crossbeam 111 and the frame 112. The optical lens 200 can also be mounted on the wiring groove 11101, allowing the electrical connector 500 within the wiring groove 11101 to be positioned opposite the optical lens 200. In this way, the orthographic projection of the optical lens 200 on the supporting surface 1101 can overlap with the orthographic projection of the electrical connector 500 on the optical lens 200, allowing the optical lens 200 and the electrical connector 500 to share the same mounting area on the main body 1111. This reduces the width of the area on the main body 1111 dedicated to mounting the optical lens 200 and the electrical connector 500. This not only improves the visual range of the optical lens 200, but also creates a narrow-frame visual effect for the user, enhancing the appearance of the head-mounted device 10. Furthermore, the optical lens 200 can also be mounted on the receiving groove 11102, allowing the first electronic component 300 within the receiving groove 11102 to be positioned opposite the optical lens 200. In this way, the first electronic component 300 can cooperate with the optical lens 200 through the gap 11105 opened on the second shielding portion 1132, thereby realizing the virtual reality or augmented reality function of the head-mounted device 10.
[0097] The optical lens 200 may be an optical waveguide, specifically a planar grating waveguide such as a diffraction grating waveguide, so that the head-mounted device 10 can present a virtual reality / augmented reality environment through the optical lens 200. Figure 23 and Figure 25 As shown, the optical lens 200 can be provided with an optical coupling inlet portion 201 and an optical coupling outlet portion 202. The optical coupling inlet portion 201 can be covered in the receiving groove 11102, and the first electronic component 300 can be arranged opposite to the optical coupling inlet portion 201 through the notch 11105. The optical coupling outlet portion 202 can be connected to the optical coupling inlet portion 201 and arranged corresponding to the user's eyes. At the same time, the optical coupling inlet portion 201 and the optical coupling outlet portion 202 are connected together to form an optical path, and light can be coupled into the optical lens 200 from the optical coupling inlet portion 201 and transmitted within the optical path. Finally, the light will be coupled out of the optical lens 200 at the optical coupling outlet portion 202, enter the wearer's eyes and form an image on the retina, thereby realizing the virtual reality or augmented reality function of the head-mounted device 10.
[0098] In some embodiments, as the function of the first electronic component 300 changes, the head-mounted device 10 can also realize other functions besides virtual reality or augmented reality. When the head-mounted device 10 needs to realize functions other than virtual reality or augmented reality, the optical lens 200 can be a vision correction lens made of one or more lenses such as convex lenses and concave lenses. Other types of lenses or functional lenses (such as flat lenses, anti-glare lenses, tinted lenses, etc.) or functional films (such as anti-reflection films, polarizing films, filter films, etc.) can also be set in the vision correction lens. Of course, the optical lens 200 can also be other functional lenses such as flat lenses, anti-glare lenses, tinted lenses, and myopia glasses.
[0099] In other embodiments, the optical lens 200 may also be a photochromic device. For example, the photochromic device may be made of a photochromic material so that the photochromic device changes color after being excited by light of a certain wavelength. The photochromic material can be produced using existing technical solutions in the prior art within the scope of understanding of those skilled in the art, and no further details are given. Alternatively, the optical lens 200 may also be an electrochromic device. For example, the electrochromic device can be made of an electrochromic material. The electrochromic material can be an inorganic electrochromic material or an organic electrochromic material. The inorganic electrochromic material can be tungsten trioxide. The organic electrochromic material can be one of polythiophenes and their derivatives, viologens, tetrathiafulvalene, metal phthalocyanine compounds, and the like. Of course, the electrochromic material can be produced using existing technical solutions in the prior art within the scope of understanding of those skilled in the art, and no further details are given.
[0100] Furthermore, the number of optical lenses 200 can be two, and the two optical lenses 200 are respectively a first optical lens 210 and a second optical lens 220. The first optical lens 210 can be disposed on a bearing surface 1101 formed by the main body 1111, the first mounting portion 11121, and the first frame 1121, while the second optical lens 220 can be disposed on another bearing surface 1101 formed by the main body 1111, the second mounting portion 11122, and the second frame 1122. The first optical lens 210 and the second optical lens 220 can also be symmetrically arranged. In this embodiment, the first optical lens 210 can be the aforementioned optical waveguide, and the first optical lens 210 can cooperate with the first electronic component 300 disposed on the first mounting portion 11121 to realize the virtual reality or augmented reality function of the head-mounted device 10. The second optical lens 220 can be the aforementioned ordinary functional lens, such as flat glasses, anti-glare glasses, tinted glasses, myopia glasses, etc.
[0101] In some embodiments, the first optical lens 210 and the second optical lens 220 may both be optical waveguides, and the first electronic component 300 disposed opposite the first optical lens 210 and the second optical lens 220 only needs to be able to realize the virtual reality or augmented reality function of the head-mounted device 10. In addition, in other embodiments, the number of optical lenses 200 may be one, and the single optical lens 200 may be an optical waveguide or an ordinary functional lens. The specific type of optical lens 200 used may be determined by the required function of the head-mounted device 10, and this embodiment does not limit this.
[0102] See also Figures 26 to 28 , Figure 26 yes Figure 1 A schematic diagram of a partial cross-sectional structure of the head-mounted device 10 along line IX-IX, Figure 27 yes Figure 2 Schematic diagram of the assembly of the middle frame 110, the first electronic component 300 and the electrical connector 500, Figure 28 yes Figure 27 Schematic diagram of the connection structure of the charging adapter plate 320, the pressure sensing circuit board 330 and the support member 150.
[0103] The first electronic component 300 can be disposed on the frame 110, and the first electronic component 300 can be used to cooperate with the optical lens 200 to realize the virtual reality or augmented reality function of the head mounted device 10. Figures 26 to 27 As shown, the first electronic component 300 may include: an optical engine 310, a charging adapter plate 320, and a pressure-sensitive circuit board 330. The optical engine 310 may be arranged in the receiving groove 11102 of the first mounting portion 11121 and arranged opposite to the first optical lens 210, so that the first optical lens 210 can cooperate with the optical engine 310 to realize the virtual reality or augmented reality function of the head-mounted device 10. The charging adapter plate 320 and the pressure-sensitive circuit board 330 may be arranged in the receiving groove 11102 of the second mounting portion 11122, and both can be used to realize the power transfer and pressure sensing functions of the head-mounted device 10. In some embodiments, when the head-mounted device 10 does not need to realize the virtual reality or augmented reality function, the first electronic component 300 may also be provided with electronic devices such as a camera, a lighting lamp, and a sensor. It can be understood that the first electronic component 300 referred to in this embodiment may include all electronic components that the head-mounted device 10 needs to be set on the frame 110, and is not limited to the above-mentioned optical engine 310, charging adapter plate 320 and pressure-sensitive circuit board 330.
[0104] The optical engine 310 can be arranged in the receiving groove 11102 of the first mounting portion 11121, and the optical engine 310 can also be electrically connected to the electrical connector 500. For example, the electrical connector 500 can extend into the receiving groove 11102 of the first mounting portion 11121 through the wiring groove 11101, and the electrical connector 500 can also be adhered to the outer surface of the optical engine 310 through double-sided tape to be fixedly connected to the optical engine 310. At the same time, adhesive tape can also be wrapped around the optical engine 310 to wrap the optical engine 310 and the electrical connector 500 together to further enhance the connection strength between the two. Accordingly, the flexible circuit board of the optical engine 310 can be buckled with the electrical connector 500 through the BTB, thereby realizing the electrical connection between the optical engine 310 and the electrical connector 500. The specific structure and working principle of the optical engine 310 can be referred to the existing technology, and this embodiment will not be repeated here.
[0105] The charging adapter plate 320 can be arranged in the receiving groove 11102 of the second mounting portion 11122, and the charging adapter plate 320 can also be electrically connected to the electrical connector 500. For example, the electrical connector 500 can extend to the receiving groove 11102 of the second mounting portion 11122 through the wiring groove 11101, and the BTB on the electrical connector 500 can be snapped onto the charging adapter plate 320 to achieve electrical connection between the charging adapter plate 320 and the electrical connector 500. In this embodiment, the charging adapter plate 320 can be a flexible circuit board. In order to facilitate the fixation of the charging adapter plate 320, the wearing bracket 100 can also be provided with a support 150 for supporting the charging adapter plate 320. Figure 28 As shown, the charging adapter plate 320 can be attached to the support member 150, and the support member 150 with the charging adapter plate 320 can be placed in the receiving groove 11102 to fix the charging adapter plate 320 in the receiving groove 11102. In addition, to improve the reliability of the electrical connection between the charging adapter plate 320 and the electrical connector 500, the outer surface of the support member 150 can be wrapped with tape to wrap the charging adapter plate 320 and the electrical connector 500 together, thereby improving the reliability of the electrical connection between the two.
[0106] The pressure-sensitive circuit board 330 can be arranged in the same receiving groove 11102 as the charging adapter board 320, and the pressure-sensitive circuit board 330 can be arranged on the side wall of the receiving groove 11102. Among them, the pressure-sensitive circuit board 330 can also be a flexible circuit board, and the pressure-sensitive circuit board 330 can be attached to the side wall of the receiving groove 11102 by double-sided tape. At the same time, the pressure-sensitive circuit board 330 can also be electrically connected to the electrical connector 500. In addition, in order to ensure the flatness of the pressure-sensitive circuit board 330 and the side wall of the receiving groove 11102, during the assembly process, the pressure-sensitive circuit board 330 can also be flattened using tooling so that the pressure-sensitive circuit board 330 can fit tightly with the side wall of the receiving groove 11102.
[0107] In some embodiments, both the first mounting portion 11121 and the second mounting portion 11122 can be mounted with an optical engine 310, and the first optical lens 210 and the second optical lens 220 can be optical waveguides. Thus, the two optical engines 310 and the two optical lenses 200 can be used in conjunction to achieve virtual reality or augmented reality functionality. In other embodiments, when the head-mounted device 10 does not need to achieve virtual reality or augmented reality functionality, the first mounting portion 11121 and the second mounting portion 11122 can be used to mount other electronic devices such as cameras or lighting, and the optical lens 220 can be a standard functional lens.
[0108] Please combine Figure 26 See Figures 29 to 32 , Figure 29 yes Figure 2 Schematic diagram of the assembly of the first leg 123 and the second electronic component 400, Figure 30 yes Figure 29 Another assembly diagram of the first leg 123 and the second electronic component 400, Figure 31 yes Figure 2 Schematic diagram of the assembly of the second leg 124 and the second electronic component 400, Figure 32 yes Figure 31 Another assembly diagram of the second leg 124 and the second electronic component 400.
[0109] The second electronic component 400 can be disposed on the leg 120 and can be used to implement the functions required by the head mounted device 10. Figure 26 and Figures 29 to 30As shown, the second electronic assembly 400 may include: a main control board 410, a battery 420, a speaker 430, a wear-sensing circuit board 440, a touch circuit board 450, and an antenna 460. The main control board 410, the touch circuit board 450, and the antenna 460 may be disposed within the receiving space 1201 of the first leg 123, and the touch circuit board 450 and the antenna 460 may be electrically connected to the main control board 410. The battery 420 may be disposed within the receiving space 1201 of the second leg 124. The speaker 430 and the wear-sensing circuit board 440 may be disposed within the receiving spaces 1201 of both the first leg 123 and the second leg 124, and the speaker 430 may be electrically connected to the wear-sensing circuit board 440. In this embodiment, one end of the electrical connector 500 can extend through the connection slot 11103 of the first mounting portion 11121 and the wiring channel 1202 of the first leg 123 into the receiving space 1201 of the first leg 123, thereby electrically connecting to the main control board 410. The other end of the electrical connector 500 can extend through the connection slot 11103 of the second mounting portion 11122 and the wiring channel 1202 of the second leg 124 into the receiving space 1201 of the second leg 124, thereby electrically connecting to the battery 420 and the wear sensing circuit board 440. It will be understood that the second electronic component 400 referred to in this embodiment may include all electronic components that need to be installed on the leg 120 of the head mounted device 10, and is not limited to the main control board 410, battery 420, speaker 430, wear sensing circuit board 440, touch circuit board 450, and antenna 460 described above.
[0110] The main control board 410 can be used to control the operating state of the head-mounted device 10. The main control board 410 can be disposed at the end of the first leg 123 near the first mounting portion 11121. This facilitates electrical connection between the main control board 410 and the optical engine 310 within the first mounting portion 11121 via the electrical connector 500 extending into the receiving space 1201. This reduces the transmission path of electrical signals between the main control board 410 and the optical engine 310 and improves the response speed of the optical engine 310. In this embodiment, the main control board 410 can be disposed on the bottom wall 1211 and can be provided with a buckle. The side wall 1212 can be provided with a buckle that can be engaged with the buckle of the main control board 410 to achieve assembly between the main control board 410 and the leg body 121. At the same time, in order to improve the assembly firmness, adhesive may be provided between the main control board 410 and the supporting leg body 121 to bond the main control board 410 and the supporting leg body 121 .
[0111] The touch circuit board 450 can be disposed between the main control board 410 and the bottom wall 1211 and electrically connected to the main control board 410. Furthermore, the touch circuit board 450 can be adhered to the bottom wall 1211 using adhesive and positioned opposite the sensing area 12111 on the bottom wall 1211. Thus, when a user performs operations such as clicking, long pressing, and sliding on the sensing area 12111 of the bottom wall 1211, the touch circuit board 450 can trigger a corresponding electrical signal and transmit the electrical signal to the main control board 410 to control the operating state of the head-mounted device 10. The antenna 460 can be disposed between the main control board 410 and the side wall 1212 and electrically connected to the main control board 410. Furthermore, a retaining groove for mounting the antenna 460 can be provided on the side wall 1212 to secure the antenna 460 in place within the receiving space 1201 and ensure its operational reliability.
[0112] The speaker 430 and the wearing sensing circuit board 440 provided in the first leg 123 are both electrically connected to the main control board 410. The wearing sensing circuit board 440 can be adhered to the bottom wall 1211 by adhesive, and the wearing sensing circuit board 440 can be provided at the tail end of the first leg 123 away from the first mounting portion 11121. At the same time, the wearing sensing circuit board 440 can also be electrically connected to the main control board 410. For example, the wearing sensing circuit board 440 can be provided with a sensing portion 441 and a transmission portion 442, and the sensing portion 441 can be provided at the tail end of the leg body 121. When the user wears the head-mounted device 10, the sensing portion 441 can trigger a corresponding electrical signal. One end of the transmission portion 442 can be connected to the sensing portion 441, and the other end can be connected to the main control board 410, so that the electrical signal triggered by the sensing portion 441 can be transmitted to the main control board 410 to control the working state of the head-mounted device 10. Speaker 430 can be attached to bottom wall 1211 using adhesive and can be located between main control board 410 and sensor 441. Transmission unit 442 can be attached to a side of speaker 430 facing away from bottom wall 1211 and electrically connected to speaker 430, such that speaker 430 is also electrically connected to main control board 410 via transmission unit 442. In some embodiments, speaker 430 can also be provided with a separate circuit board electrically connected to main control board 410.
[0113] like Figure 26 and Figures 31 to 32 As shown, the battery 420 can be used to power the head mounted device 10 to realize the functions of the head mounted device 10. The battery 420 can also be fixed to the bottom wall 1211 by adhesive, and the battery 420 can be arranged at the end of the second leg 124 near the second mounting portion 11122, so that the battery 420 can be electrically connected to the charging adapter plate 320 in the second mounting portion 11122 through the electrical connector 500 extending into the receiving space 1201.
[0114] The speaker 430 and the wearing sensing circuit board 440 provided in the second leg 124 are both electrically connected to the electrical connector 500 extending into the second leg 124. The wearing sensing circuit board 440 can be adhered to the bottom wall 1211 by adhesive, and the wearing sensing circuit board 440 can be provided at the tail end of the second leg 124 away from the second mounting portion 11122. At the same time, the wearing sensing circuit board 440 can also be electrically connected to the electrical connector 500. Similar to the wearing sensing circuit board 440 in the first leg 123, the wearing sensing circuit board 440 in the second leg 124 can also be provided with a sensing portion 441 and a transmission portion 442, and the sensing portion 441 can also be provided at the tail end of the leg body 121. When the user wears the head mounted device 10, the sensing portion 441 can trigger a corresponding electrical signal. One end of the transmission portion 442 can be connected to the sensing portion 441, and the other end can be connected to the electrical connector 500, so that the electrical signal triggered by the sensing portion 441 can be transmitted to the main control board 410 to control the operating state of the head-mounted device 10. At the same time, the transmission portion 442 can also be attached to the side of the battery 420 facing away from the bottom wall 1211 and electrically connected to the battery 420, so that the battery 420 is electrically connected to the electrical connector 500 through the transmission portion 442. Correspondingly, the speaker 430 can be attached to the bottom wall 1211 using adhesive, and the speaker 430 can be located between the battery 420 and the sensing portion 441. The transmission portion 442 can be attached to the side of the speaker 430 facing away from the bottom wall 1211 and electrically connected to the speaker 430, so that the speaker 430 is also electrically connected to the electrical connector 500 through the transmission portion 442. In some embodiments, the battery 420 can also be provided with a separate circuit board that is electrically connected to the electrical connector 500.
[0115] like Figure 26As shown, the electrical connector 500 can be disposed in the wiring groove 11101, and one end of the electrical connector 500 can extend through the receiving groove 11102 and the connecting groove 11103 of the first mounting portion 11121, as well as the wiring channel 1202 of the first leg 123, into the receiving space 1201 of the first leg 123, thereby electrically connecting the electrical connector 500 to the optical engine 310 and the main control board 410, respectively. At the same time, the other end of the electrical connector 500 can extend through the receiving groove 11102 and the connecting groove 11103 of the second mounting portion 11122, as well as the wiring channel 1202 of the second leg 124, into the receiving space 1201 of the second leg 124, thereby electrically connecting the electrical connector 500 to the charging adapter plate 320 and the wearing sensing circuit board 440, respectively. In this way, the electrical connector 500 can connect the first electronic assembly 300 on the frame 110 and the second electronic assembly 400 on the leg 120, thereby enabling electrical signal transmission between the first electronic assembly 300 and the second electronic assembly 400. In this embodiment, the electrical connector 500 can be a flexible circuit board, so that the electrical connector 500 can be bent and arranged within the wiring groove 11101, the receiving groove 11102, the connecting groove 11103, and the wiring channel 1202. In some embodiments, the electrical connector 500 can also be other devices capable of achieving electrical connection, such as coaxial cables.
[0116] Through the above method, the main control board 410, battery 420, speaker 430, wearing sensing circuit board 440, touch circuit board 450 and antenna 460 can be reasonably distributed on the two legs 120 to maintain the weight balance of the head-mounted device 10 and avoid the problem of uneven weight on the two legs 120, which leads to reduced wearing comfort for the user. At the same time, by arranging the main control board 410 and the optical engine 310 adjacent to each other, the electrical signal transmission path between the main control board 410 and the optical engine 310 can also be reduced, thereby improving the response speed of the optical engine 310. Of course, in some embodiments, the main control board 410, battery 420, speaker 430, wearing sensing circuit board 440, touch circuit board 450 and antenna 460 are not limited to the layout of the above embodiment. It is only necessary that the various components can be electrically connected to realize the corresponding functions of the head-mounted device 10.
[0117] The frame 110 provided in the embodiment of the present application is provided with a crossbeam 111 for mounting the electrical connector 500. The crossbeam 111 can also form a bearing surface 1101 for mounting the optical lens 200 together with the frame body 112. The orthographic projection of the optical lens 200 on the bearing surface 1101 can overlap with the orthographic projection of the electrical connector 500 on the bearing surface 1101. This allows the optical lens 200 and the electrical connector 500 to share the same mounting area on the crossbeam 111 in a direction perpendicular to the bearing surface 1101, thereby reducing the width of the crossbeam 111 occupied by the area for mounting the optical lens 200 and the electrical connector 500 in a direction parallel to the bearing surface 1101. This configuration not only increases the visual range of the optical lens 200, but also provides the user with a narrow-frame visual effect, thereby enhancing the appearance of the head-mounted device 10.
[0118] The above descriptions are only some embodiments of the present application and do not limit the scope of protection of the present application. Any equivalent device or equivalent process transformation made using the contents of the description and drawings of this application, or directly or indirectly applied in other related technical fields, are also included in the scope of patent protection of this application.
Claims
1. A frame for a head-mounted device, characterized in that: The frame includes: a crossbeam, a frame body and a shielding member; The crossbeam is configured to be used for mounting an electrical connector of the head-mounted device; the frame is connected to the crossbeam and together with the crossbeam form a bearing surface, and the bearing surface is configured to be used for mounting an optical lens of the head-mounted device; wherein the orthographic projection of the optical lens on the bearing surface overlaps with the orthographic projection of the electrical connector on the bearing surface; The shielding member is arranged on the crossbeam and is used to shield the electrical connector on the crossbeam and to support the optical lens.
2. The frame according to claim 1, characterized in that The crossbeam is provided with a main body portion, and the main body portion is configured to be used for mounting the electrical connector; the frame body is connected to the main body portion, and the two together form the bearing surface.
3. The frame according to claim 2, characterized in that The main body is provided with a wiring groove, and the wiring groove is configured to be used for installing the electrical connector.
4. The frame according to claim 3, characterized in that The wiring groove is arranged on a side of the main body located on the bearing surface, and the optical lens cover is arranged on the wiring groove.
5. The frame according to claim 4, characterized in that The crossbeam is also configured to be used for mounting a first electronic component of the head-mounted device, and the wiring groove is connected to the first electronic component.
6. The frame according to claim 5, characterized in that The crossbeam is also provided with a mounting portion; The mounting portion is connected to the main body, and the mounting portion is configured to install the first electronic component; the frame is connected to the main body and the mounting portion respectively, and the three together form the bearing surface; the wiring groove is connected to the mounting portion.
7. The frame according to claim 6, characterized in that The mounting portion is provided with a receiving groove, and the receiving groove is configured to be used for mounting the first electronic component; wherein the receiving groove is communicated with the wiring groove.
8. The frame according to claim 7, characterized in that The receiving groove is arranged on a side of the mounting portion located on the bearing surface, and the optical lens cover is arranged in the receiving groove.
9. The frame according to claim 7, characterized in that The mounting parts are provided at opposite ends of the main body, and the wiring grooves are respectively connected to the receiving grooves of the two mounting parts; wherein, the mounting parts are further configured to be used for mounting the legs of the head-mounted device.
10. The frame according to claim 9, characterized in that A connecting groove is provided on a side of the mounting portion facing away from the bearing surface, and the connecting groove is configured to be used for mounting the legs of the head-mounted device; the accommodating groove is communicated with the connecting groove.
11. The frame according to claim 8, wherein The shielding member is disposed in the wiring trough and is configured to shield the wiring trough.
12. The frame according to claim 11, characterized in that The shielding member is further disposed in the receiving groove and is configured to shield the receiving groove.
13. The frame according to claim 12, characterized in that A notch is provided in the area of the shielding member located in the receiving groove, so that the first electronic component can achieve its corresponding function through the notch.
14. A wearing bracket for a head-mounted device, characterized in that: The wearing bracket comprises: a frame and supporting legs; The frame is provided with a crossbeam, a frame body and a shielding member; the crossbeam is configured to be used for installing the electrical connector of the head-mounted device; the frame body is connected to the crossbeam and forms a bearing surface together with the crossbeam, and the bearing surface is configured to be used for installing the optical lens of the head-mounted device; the legs are provided at opposite ends of the crossbeam; wherein the orthographic projection of the optical lens on the bearing surface overlaps with the orthographic projection of the electrical connector on the bearing surface; the shielding member is provided on the crossbeam and is used to shield the electrical connector on the crossbeam and to support the optical lens.
15. The wearing bracket according to claim 14, characterized in that: The legs are rotatably connected to the beam, and the legs are also configured to be used for mounting a second electronic component of the head-mounted device.
16. The wearing bracket according to claim 15, characterized in that: The wearing bracket further comprises: a rotating shaft assembly; The rotating shaft assembly is arranged at two opposite ends of the beam, and one end of the support leg is sleeved on the rotating shaft assembly and is configured to be rotatable relative to the rotating shaft assembly.
17. The wearing bracket according to claim 16, characterized in that: Mounting parts are provided at opposite ends of the beam, and the mounting parts are provided with connecting grooves; the rotating shaft assembly is arranged in the connecting groove; one end of the supporting leg is also arranged in the connecting groove and sleeved on the rotating shaft assembly.
18. The wearing bracket according to claim 17, characterized in that: The rotating shaft assembly includes: a rotating shaft and a fixing frame; The fixing frame is arranged in the connecting groove, the rotating shaft is arranged on the fixing frame, and one end of the supporting leg is arranged in the connecting groove and sleeved on the rotating shaft.
19. The wearing bracket according to claim 18, characterized in that The support leg is provided with a support leg body and a support leg side cover; The leg body is connected to the leg side cover, and together with the leg side cover, they form a receiving space, and the receiving space is configured for installing the second electronic component; one end of the leg body is sleeved on the rotating shaft; wherein, the leg body and the leg side cover also together form a wiring channel, and the wiring channel is respectively connected to the receiving space and the connecting groove.
20. The wearing bracket according to claim 19, characterized in that One end of the support leg body is provided with a rotating portion, and one end of the support leg side cover is provided with an extending portion; The rotating part is arranged in the connecting groove and sleeved on the rotating shaft; the extending part is arranged on one side of the rotating part and is jointly surrounded by the rotating part to form the wiring channel.
21. A head-mounted device, characterized in that: The head-mounted device includes: a wearing bracket, an optical lens, a first electronic component, a second electronic component and an electrical connector; The wearing bracket is provided with a crossbeam, a frame, a shielding member and legs; the crossbeam is configured to be used for mounting the electrical connector; the frame is connected to the crossbeam and forms a bearing surface together with the crossbeam, and the bearing surface is configured to be used for mounting the optical lens; the legs are provided at opposite ends of the crossbeam; the shielding member is provided on the crossbeam and is used to shield the electrical connector on the crossbeam and to support the optical lens; The optical lens is arranged on the supporting surface; the first electronic component is arranged on the crossbeam, and the second electronic component is arranged on the support leg; the electrical connector is arranged on the crossbeam, and the electrical connector is electrically connected to the first electronic component and the second electronic component respectively; wherein the orthographic projection of the optical lens on the supporting surface overlaps with the orthographic projection of the electrical connector on the supporting surface.
22. The head-mounted device according to claim 21, wherein: The crossbeam is provided with a wiring groove, and opposite ends of the crossbeam are further provided with a receiving groove connected to the wiring groove, and a connecting groove connected to the receiving groove; the two legs are respectively arranged in the two connecting grooves, and the two legs are both provided with a wiring channel connected to the connecting groove, and a receiving space connected to the wiring channel; The optical lens cover is arranged in the wiring groove and the receiving groove, the first electronic component is arranged in the receiving groove and is arranged opposite to the optical lens; the second electronic component is arranged in the receiving space; the electrical connector is arranged in the wiring groove and extends into the receiving space through the receiving groove, the connecting groove and the wiring channel to electrically connect the first electronic component and the second electronic component.
23. The head mounted device according to claim 22, wherein: The first electronic component includes: an optical engine and a charging adapter board; The optical engine is arranged in one of the receiving slots, and the charging adapter plate is arranged in another of the receiving slots; the electrical connector is electrically connected to the optical engine and the charging adapter plate respectively; wherein the optical lens arranged opposite to the optical engine is configured to present a virtual reality / augmented reality environment under the control of the optical engine.
24. The head mounted device according to claim 23, wherein: The first electronic component further includes: a pressure-sensitive circuit board; The pressure-sensitive circuit board and the charging adapter board are arranged in the same accommodating groove, and the pressure-sensitive circuit board is also arranged on the side wall of the accommodating groove; the electrical connector is also electrically connected to the pressure-sensitive circuit board.
25. The head-mounted device according to claim 22, wherein: The second electronic component includes: a main control board and a battery; The main control board is arranged in the receiving space of one of the legs, and the battery is arranged in the receiving space of the other leg; the electrical connector is electrically connected to the main control board and the battery respectively.
26. The head mounted device according to claim 25, wherein: The second electronic component further includes: a speaker and a wearing sensing circuit board; The speaker and the wearing sensing circuit board are provided in the receiving space of the two legs; the speaker and the wearing sensing circuit board are electrically connected, and the wearing sensing circuit board is located at the tail end of the leg; wherein, the wearing sensing circuit board arranged in the same receiving space as the main control board is electrically connected to the main control board; the wearing sensing circuit board arranged in the same receiving space as the battery is electrically connected to the electrical connector.
27. The head-mounted device according to claim 25, wherein: The second electronic component further includes: a touch circuit board and an antenna; The touch circuit board and the main control board are arranged in the same receiving space and are electrically connected to the main control board; the antenna and the main control board are arranged in the same receiving space and are electrically connected to the main control board.
Citation Information
Patent Citations
Glasses
CN111367093A
Wearable electronic equipment and optical machine module thereof
CN112764220A