Wearable device
By adjusting the distance between the legs of the wearable device, the problem of the device shifting and sliding when the user shakes it is solved, the stability and comfort of the device are improved, and the user experience is improved.
Patent Information
- Application Number
- CN202411645698.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2044-11-18
AI Technical Summary
Existing wearable devices are prone to shifting and sliding when users shake their heads, causing viewing angle deviation and affecting user experience and product performance.
By introducing an adjustment structure into the wearable device, the distance between the two legs of the display component can be adjusted to adapt to the user's head and face shape, thereby increasing the fit between the face and the device and reducing shaking and displacement.
It improves the stability and comfort of the device in different usage scenarios, enhances the user's visual experience and product competitiveness.
Smart Images

Figure CN119270511B_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the technical field of electronic equipment, and specifically relates to a wearable device. Background Art
[0002] In the related art, a wearable device includes a display component, which includes a display body and two legs, and the display body is connected to the two legs. After the user wears the wearable device, the user's face is arranged opposite to the display body, and the user's face is located between the two legs. The distance between the two legs is not adjustable. In other words, it is impossible to adapt the fit between the display component and the user's face and forehead according to the user's face shape and usage scenario, resulting in an unreasonable gap between the user's head and the legs. In this way, in scenarios of intense gaming or long-term wear, the user's head shaking will drive the inertial movement of the wearable device, and the wearable device will easily shift and slide, resulting in a viewing angle offset, affecting the user's actual scene experience, and reducing the product's performance. Summary of the Invention
[0003] The purpose of the embodiments of the present application is to provide a wearable device that can effectively solve or improve the technical problem that when a user shakes his head, the wearable device may shift and slide, causing a viewing angle offset and affecting the user's actual scene experience.
[0004] An embodiment of the present application provides a wearable device, comprising: a display component, the display component including a display body and two legs, the display body connecting the two legs; a mask component, connected to the display body, and the mask component is located between the two legs; an adjustment structure, connected to the display component, the adjustment structure is used to adjust the distance between the two legs; and a wearing portion, the wearing portion connecting the two legs on a side facing away from the display body.
[0005] In an embodiment of the present application, the wearable device includes a display component, a mask component and an adjustment structure.
[0006] The display assembly includes a display body and two legs, the two legs are arranged at intervals, and the display body is connected to the two legs. Optionally, the display body and the two legs enclose a groove structure.
[0007] The mask assembly is located between the two legs and is connected to the display body. It is understood that after the user wears the wearable device, the mask assembly contacts the user's face and forehead, the legs are located on both sides of the user's face, and the user views the displayed image through the display body.
[0008] Further, the adjusting structure is connected with the display assembly, and the adjusting structure has the function of adjusting the distance between the two legs, so that the distance between the two legs can be adjusted by the adjusting structure according to the head shape and face shape of the user, so as to adjust the fitting size of the face and forehead of the user with the display assembly and the mask assembly, adaptively adjust the fitting degree of the forehead and face of the user with the wearable device, reduce the displacement amount of the wearable device due to the motion inertia, reduce the shaking amount of the wearable device in different use scenarios, and ensure that the wearable device is stably and reliably worn on the head of the user, which is beneficial to improve the functional visual experience and wearing comfort of the user when wearing the wearable device, and is beneficial to improve the use performance and market competitiveness of the product.
[0009] It can be understood that the adjusting structure adjusts the distance between the two legs, so that the mask assembly and the two legs are in a state of being pressed at the same time, and the effective fitting size of the face and forehead of the user with the display assembly and the mask assembly can be ensured.
[0010] In addition, the wearable device further includes a wearing part, the wearing part is connected with the two legs, and the wearing part is located on the side of the two legs away from the display main body. After the user wears the wearable device, the wearing part is in contact with the head of the user. BRIEF DESCRIPTION OF DRAWINGS
[0011] Figure 1 A structural schematic diagram of a first perspective of a wearable device provided by a first embodiment of the application is shown;
[0012] Figure 2 A first partial structural schematic diagram of a wearable device provided by the first embodiment of the application is shown;
[0013] Figure 3 A second partial structural schematic diagram of a wearable device provided by the first embodiment of the application is shown;
[0014] Figure 4 A third partial structural schematic diagram of a wearable device provided by the first embodiment of the application is shown;
[0015] Figure 5 A structural schematic diagram of a second perspective of a wearable device provided by the first embodiment of the application is shown;
[0016] Figure 6 A structural schematic diagram of a third perspective of a wearable device provided by the first embodiment of the application is shown;
[0017] Figure 7 A structural schematic diagram of a fourth perspective of a wearable device provided by the first embodiment of the application is shown;
[0018] Figure 8A schematic structural diagram of a wearable device according to a fifth perspective provided by the first embodiment of the present application is shown;
[0019] Figure 9 FIG4 shows a schematic structural diagram of the fourth part of the wearable device provided in the first embodiment of the present application;
[0020] Figure 10 A schematic structural diagram of a wearable device provided by a second embodiment of the present application from a first perspective is shown;
[0021] Figure 11 for Figure 10 A partial enlarged view of point A of the wearable device shown;
[0022] Figure 12 A schematic structural diagram of a wearable device from a second perspective according to a second embodiment of the present application is shown;
[0023] Figure 13 A schematic structural diagram of a wearable device provided by the second embodiment of the present application from a third perspective is shown;
[0024] Figure 14 A schematic structural diagram of a wearable device provided by the second embodiment of the present application from a fourth perspective is shown;
[0025] Figure 15 FIG2 shows a partial structural diagram of a wearable device provided in a third embodiment of the present application;
[0026] Figure 16 A schematic structural diagram of a wearable device provided by a third embodiment of the present application from a first perspective is shown;
[0027] Figure 17 FIG2 shows a schematic structural diagram of a wearable device provided by a third embodiment of the present application from a second perspective;
[0028] Figure 18 FIG4 shows a schematic structural diagram of a wearable device provided in a fourth embodiment of the present application;
[0029] Figure 19 for Figure 18 A partial enlarged view of point B of the wearable device shown;
[0030] Figure 20 A disassembled diagram of a wearable device provided by a fourth embodiment of the present application is shown.
[0031] in, Figures 1 to 20 The corresponding relationship between the reference numerals and component names is as follows:
[0032] 10 Wearable device, 100 Display component, 110 Display body, 120 Support leg, 122 First limiting groove, 1222 Notch of first limiting groove, 1224 Bottom of first limiting groove, 124 Via hole, 126 Second magnetic portion, 128 Second limiting groove, 129 Limiting rib, 200 Mask component, 210 Support layer, 220 Elastic layer, 230 Flexible contact layer, 240 Protrusion, 250 Bracket, 300 Adjustment structure, 3 10 first adjustment part, 310a switch, 310b control panel, 312 limiting part, 314 rotating part, 315 knurling, 316 connecting part, 318 first magnetic part, 320 pull rope, 330 damping retaining ring, 340 third magnetic part, 350 electromagnetic part, 360 second adjustment part, 360a elastic group, 360b rotating shaft, 362 first elastic part, 364 second elastic part, 400 wearing part, 410 third adjustment part. DETAILED DESCRIPTION
[0033] The following will be combined with the accompanying drawings in the embodiments of the present application to clearly describe the technical solutions in the embodiments of the present application. Obviously, the embodiments described are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of this application.
[0034] The terms "first," "second," and the like in the specification and claims of this application are used to distinguish similar objects, and are not used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, so that the embodiments of this application can be implemented in an order other than that illustrated or described herein, and that the objects distinguished by "first," "second," and the like are generally of the same type, and do not limit the number of objects; for example, the first object can be one or more. In addition, the term "and / or" in the specification and claims represents at least one of the connected objects, and the character " / " generally indicates that the objects associated with each other are in an "or" relationship.
[0035] The following is combined with Figures 1 to 20 The wearable device 10 provided in an embodiment of the present application is described.
[0036] like Figure 1 、 Figure 2 、 Figure 3 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 、 Figure 12 、 Figure 13 、 Figure 14 、 Figure 15 、 Figure 17 、 Figure 18 and Figure 20 As shown, in some embodiments of the present application, a wearable device 10 is provided, including: a display component 100, the display component 100 includes a display body 110 and two legs 120, the display body 110 is connected to the two legs 120; a mask component 200, connected to the display body 110, and the mask component 200 is located between the two legs 120; an adjustment structure 300, connected to the display component 100, and the adjustment structure 300 is used to adjust the distance between the two legs 120.
[0037] In the embodiment of the present application, the wearable device 10 includes a display component 100 , a mask component 200 and an adjustment structure 300 .
[0038] The display assembly 100 includes a display body 110 and two legs 120. The two legs 120 are arranged at intervals, and the display body 110 connects the two legs 120. Optionally, the display body 110 and the two legs 120 enclose a groove structure.
[0039] The mask assembly 200 is located between the two legs 120 and is connected to the display body 110. It is understood that after the user wears the wearable device 10, the mask assembly 200 contacts the user's face and forehead, the legs 120 are located on both sides of the user's face, and the user views the displayed image through the display body 110.
[0040] Furthermore, the adjustment structure 300 is connected to the display component 100, and the adjustment structure 300 has the function of adjusting the distance between the two legs 120. Therefore, the distance between the two legs 120 can be adjusted by adjusting the structure 300 according to the user's head shape and face shape to adjust the matching size of the user's face and forehead with the display component 100 and the mask component 200. It can adaptively adjust the fit between the user's forehead and face and the wearable device 10, reduce the displacement of the wearable device 10 caused by motion inertia, and reduce the shaking of the wearable device 10 in different usage scenarios. It can ensure that the wearable device 10 is stably and reliably worn on the user's head, which is conducive to improving the functional visual experience and wearing comfort of the user when wearing the wearable device 10, and is conducive to improving the product's performance and market competitiveness.
[0041] It can be understood that by adjusting the distance between the two legs 120, the matching size of the user's face and forehead with the mask assembly 200 and the legs 120 can be adjusted, thereby achieving the purpose of adaptively adjusting the fit between the user's forehead and face and the wearable device 10.
[0042] Optionally, the legs 120 are rotatably connected to the display body 110 .
[0043] Optionally, the legs 120 are integrally connected to the display body 110, and the two legs 120 can be deformed under the action of external force to adjust the distance between the two legs 120. For example, the legs 120 are plastic parts.
[0044] In some embodiments of the present application, Figure 1 、 Figure 5 、 Figure 6 、 Figure 8 、 Figure 10 、 Figure 12 、 Figure 13 、 Figure 16 、 Figure 17 、 Figure 18 and Figure 20 As shown, the wearable device 10 further includes a wearing portion 400 , which connects the two legs 120 to a side facing away from the display body 110 .
[0045] In the embodiment of the present application, the structure of the wearable device 10 is further limited.
[0046] The wearable device 10 further includes a wearing portion 400 , which is connected to the two legs 120 and is located on a side of the two legs 120 facing away from the display body 110 .
[0047] When the user wears the wearable device 10 , the wearing portion 400 comes into contact with the user's head.
[0048] In some embodiments of the present application, Figure 1 As shown, the adjustment structure 300 includes a first adjustment portion 310 , a portion of which is exposed on the outer surface of the display assembly 100 , and the adjustment structure 300 is used to adjust the distance between the two legs 120 when the first adjustment portion 310 is triggered.
[0049] In the embodiment of the present application, the composition structure of the adjustment structure 300 is further limited.
[0050] The adjustment structure 300 includes a first adjustment portion 310. A portion of the first adjustment portion 310 is exposed on the outer surface of the display assembly 100. For example, a portion of the first adjustment portion 310 is exposed on the outer surface of the display body 110, or a portion of the first adjustment portion 310 is exposed on the outer surface of the leg 120. In other words, a portion of the first adjustment portion 310 is visible from the outer surface of the display assembly 100.
[0051] Specifically, an opening is provided on the outer surface of the display assembly 100 , and a portion of the first adjustment portion 310 is exposed on the outer surface of the display assembly 100 through the opening.
[0052] The adjustment structure 300 is used to adjust the distance between the two legs 120 when the first adjustment portion 310 is triggered. In other words, the adjustment structure 300 can be activated by triggering the first adjustment portion 310 exposed on the outer surface of the display assembly 100 to adjust the distance between the two legs 120 of the display assembly 100.
[0053] In some embodiments of the present application, Figure 1 、 Figure 2 、 Figure 3 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 and Figure 9 As shown, the first adjustment portion 310 includes a switch 310a, a portion of which protrudes from the outer surface of the display assembly 100; the adjustment structure 300 also includes a pull rope 320, which connects the two legs 120 and the switch 310a. The switch 310a is used to adjust the length of the portion of the pull rope 320 located between the two legs 120 when triggered.
[0054] In the embodiment of the present application, the structure of the first adjusting portion 310 is further limited.
[0055] The first adjustment portion 310 includes a switch 310a, and the adjustment structure 300 further includes a pull cord 320. The pull cord 320 connects the two legs 120 and the switch 310a, that is, each leg 120 is connected to the pull cord 320, and the switch 310a is connected to the pull cord 320.
[0056] A portion of the switch 310a protrudes from the outer surface of the display assembly 100. By triggering the switch 310a, the length of the portion of the drawstring 320 located between the two legs 120 can be adjusted to adjust the distance between the two legs 120. For example, if the user has a small head, the switch 310a can be triggered to reduce the length of the portion of the drawstring 320 located between the two legs 120, thereby reducing the distance between the two legs 120. This allows the user's forehead and face to effectively fit the mask assembly 200 and display assembly 100, achieving optimal wearing comfort.
[0057] It can be understood that when the length of the portion of the pull cord 320 located between the two legs 120 is adjusted, the two legs 120 of the mask assembly 200 and the display assembly 100 are simultaneously in a compressed state.
[0058] As shown, when the user wears the wearable device 10, the user turns his head to the right, and the right side of the mask assembly 200 is pressed to start deforming, which causes a certain displacement amount of the wearable device 10 relative to the user's head. After the initial pre-tightening, the length of the part of the pull rope 320 between the two legs 120 is certain, at this moment, the right side of the mask assembly 200 is deformed under pressure to generate a △X displacement amount, and the left side of the mask assembly 200 is needed to pull the left leg 120 close to the head to release a △X displacement amount, thereby ensuring the stability of the whole machine wearing, so that the wearable device 10 is in a stable wearing state. It can adaptively adjust the fitting degree of the user's forehead and face to the wearable device 10, reduce the displacement amount of the wearable device 10 due to the inertia of motion, and reduce the shaking amount of the wearable device 10 in different use scenarios.
[0059] In some embodiments of the present application, as shown in Figure 2 and Figure 3 The pull rope 320 passes through the mask assembly 200 and is connected with the two legs 120 and the switch 310a.
[0060] In the embodiments of the present application, the cooperation structure of the pull rope 320, the mask assembly 200 and the two legs 120 is further limited.
[0061] The pull rope 320 passes through the mask assembly 200 and is connected with the two legs 120 and the switch 310a. As shown, a part of the pull rope 320 is located in the mask assembly 200, and the other part of the pull rope 320 passes through the two legs 120 and is connected with the switch 310a, which can meet the use requirement of adjusting the length of the part of the pull rope 320 between the two legs 120.
[0062] In some embodiments of the present application, as shown in Figure 5 The pull rope 320 passes through the wearing part 400 and is connected with the two legs 120 and the switch 310a.
[0063] In the embodiments of the present application, the cooperation structure of the pull rope 320, the wearing part 400 and the two legs 120 is further limited.
[0064] The pull rope 320 passes through the wearing part 400 and is connected with the two legs 120 and the switch 310a. As shown, a part of the pull rope 320 is located in the wearing part 400, and the other part of the pull rope 320 passes through the two legs 120 and is connected with the switch 310a, which can meet the use requirement of adjusting the length of the part of the pull rope 320 between the two legs 120.
[0065] In some embodiments of the present application, a part of the pull rope 320 passes through the mask assembly 200 and is connected with the two legs 120 and the switch 310a, and the other part of the pull rope 320 passes through the wearing part 400 and is connected with the two legs 120 and the switch 310a.
[0066] In some embodiments of the present application, there are two switches 310 a , each switch 310 a is rotatably connected to one leg 120 , and a portion of the pull rope 320 is wound around the switch 310 a .
[0067] In the embodiment of the present application, the number of switches 310 a is further limited, as is the matching structure of the switches 310 a , the legs 120 , and the pull rope 320 .
[0068] There are two switches 310 a , each switch 310 a is rotatably connected to one leg 120 , and a portion of the pull rope 320 is wound around the switch 310 a .
[0069] It is understandable that rotating the switch 310 a in the first direction can increase the length of the pull rope 320 wound around the switch 310 a , thereby reducing the length of the portion of the pull rope 320 located between the two legs 120 .
[0070] It is understandable that rotating the switch 310 a in the second direction can reduce the length of the pull rope 320 wound around the switch 310 a , thereby increasing the length of the portion of the pull rope 320 located between the two legs 120 .
[0071] It is understood that the length of the portion of the rope located between the two legs 120 can be adjusted by turning at least one switch 310a.
[0072] In some embodiments of the present application, Figure 2 As shown, the outer surface of each leg 120 is provided with a first limiting groove 122 and a through hole 124, the notches 1222 of the first limiting grooves of the two legs 120 are arranged opposite to each other, and the through hole 124 passes through the groove bottom 1224 of the first limiting groove; each switch 310a includes: a limiting portion 312, provided in the first limiting groove 122; a rotating portion 314, the rotating portion 314 protrudes from the side of the leg 120 away from the first limiting groove 122; a connecting portion 316, the connecting portion 316 is connected between the rotating portion 314 and the limiting portion 312, the connecting portion 316 is passed through the through hole 124, and the connecting portion 316 can rotate relative to the through hole 124, and a part of the pull rope 320 is wrapped around the connecting portion 316.
[0073] In the embodiment of the present application, the matching structure of the leg 120 and the switch 310a is further defined.
[0074] A first limiting groove 122 and a through hole 124 are formed on the outer surface of each supporting leg 120 . The through hole 124 passes through the groove bottom 1224 of the first limiting groove. The notches 1222 of the first limiting grooves of the two supporting legs 120 are arranged opposite to each other.
[0075] Each switch 310a includes a stopper 312, a rotating portion 314, and a connecting portion 316. The connecting portion 316 is connected between the stopper 312 and the rotating portion 314. The connecting portion 316 passes through the through hole 124 and is rotatable relative to the through hole 124. The connecting portion 316 serves as a winding support for the pull rope 320. That is, a portion of the pull rope 320 is wrapped around the connecting portion 316.
[0076] The rotating portion 314 protrudes from a side of the leg 120 away from the first limiting groove 122 , and the length of the pull rope 320 wound around the connecting portion 316 can be adjusted by rotating the rotating portion 314 .
[0077] The limiting portion 312 is provided in the first limiting groove 122 , which can ensure the matching size of the switch 310 a and the support leg 120 , thereby preventing the switch 310 a from being separated from the support leg 120 .
[0078] In some embodiments of the present application, Figure 2 As shown, the adjustment structure 300 also includes: two damping rings 330, each damping ring 330 is sleeved on a connecting portion 316, and the damping ring 330 is located between the bottom 1224 of the first limiting groove and the limiting portion 312; the switch 310a can switch between the pulled-out position and the retracted position along the axis of the through hole 124; when the switch 310a is in the pulled-out position, the limiting portion 312 abuts against the damping ring 330, and when the switch 310a is in the retracted position, the limiting portion 312 separates from the damping ring 330.
[0079] In the embodiment of the present application, the switch 310 a can be switched between the pull-out position and the retracted position along the axis of the through hole 124 . That is, the switch 310 a can move relative to the bracket 250 along the axis of the through hole 124 .
[0080] The adjustment structure 300 further includes two damping rings 330 . Each damping ring 330 is sleeved on a connecting portion 316 , and the damping ring 330 is located between the groove bottom 1224 of the first limiting groove and the limiting portion 312 .
[0081] To adjust the length of the portion of the drawstring 320 between the two legs 120, the switch 310a is pulled outward, causing the damping ring 330 to contact the bottom 1224 of the first limiting groove and the limiting portion 312. The rotating portion 314 is then rotated to adjust the length of the drawstring 320 wrapped around the connecting portion 316. The damping ring 330 provides a damping effect when adjusting the length. Once adjustment is complete, the switch 310a can be pushed inward to the retracted position, separating the limiting portion 312 from the damping ring 330.
[0082] In some embodiments of the present application, Figure 2As shown, the switch 310 a is provided with a first magnetic portion 318 , and the leg 120 is provided with a second magnetic portion 126 , and the first magnetic portion 318 and the second magnetic portion 126 are magnetically attracted to each other.
[0083] In the embodiment of the present application, the matching structure of the switch 310a and the leg 120 is further defined.
[0084] The switch 310a is provided with a first magnetic portion 318, and the leg 120 is provided with a second magnetic portion 126. The first magnetic portion 318 and the second magnetic portion 126 are magnetically attracted to each other. The first magnetic portion 318 and the second magnetic portion 126 cooperate to secure the switch 310a to the leg 120. This can limit the length of the portion of the pull cord 320 located between the two legs 120.
[0085] For example, after the adjustment is completed, the switch 310a can be pushed inward so that the switch 310a moves to the retracted position, and the first magnetic portion 318 and the second magnetic portion 126 are magnetically attracted to each other so that the switch 310a is fixed to the leg 120, thereby fixing the length of the portion of the pull rope 320 located between the two legs 120 to ensure the matching dimensions of the display assembly 100, the mask assembly 200, and the user's face and forehead.
[0086] In some embodiments of the present application, Figure 4 As shown, a second limiting groove 128 is defined in the leg 120 ; when the switch 310 a is in the retracted position, at least a portion of the first magnetic portion 318 is located in the second limiting groove 128 .
[0087] In the embodiment of the present application, the matching structure of the switch 310a and the leg 120 is further defined.
[0088] A second limiting groove 128 is defined in the support leg 120 , and the second limiting groove 128 is used to limit the first magnetic portion 318 .
[0089] Specifically, when the switch 310a moves to the retracted position, the first magnetic portion 318 and the second magnetic portion 126 are magnetically attracted to each other, and at least a portion of the first magnetic portion 318 is located within the second retaining groove 128. In other words, the first magnetic portion 318, the second magnetic portion 126, and the second retaining groove 128 cooperate to lock the switch 310a. In this situation, if a user accidentally touches the switch 310a, the distance between the two legs 120 will not be adjusted. The distance between the two legs 120 can only be adjusted when the user pulls the switch 310a out of the retracted position.
[0090] It is understandable that when the switch 310 a is in the pulled-out position, the first magnetic portion 318 is separated from the second limiting slot 128 , and the second limiting slot 128 does not hinder the switch 310 a from rotating.
[0091] In some embodiments of the present application, Figure 2 As shown, the outer circumferential wall of the rotating part 314 is provided with knurls 315.
[0092] In the embodiments of the present application, the structure of the switch 310a is further limited.
[0093] The outer circumferential wall of the rotating part 314 is provided with knurls 315. The structure of the knurls 315 can increase the friction between the user's hand and the rotating part 314, improve the hand feeling when adjusting the switch 310a, and reduce the difficulty of adjusting the switch 310a.
[0094] In some embodiments of the present application, as shown in Figure 15 、 Figure 16 and Figure 17 As shown, the leg 120 is rotationally connected with the display body 110, the first adjusting part 310 includes a control panel 310b; the adjusting structure 300 further includes a third magnetic part 340 and an electromagnetic member 350, the third magnetic part 340 is arranged on the mask assembly 200, the electromagnetic member 350 is arranged on the leg 120, the control panel 310b is electrically connected with the electromagnetic member 350; when the electromagnetic member 350 is in a power-on state, the electromagnetic member 350 and the third magnetic part 340 are magnetically repulsive.
[0095] In the embodiments of the present application, the leg 120 is rotationally connected with the display body 110. The composition of the adjusting structure 300 is further limited.
[0096] The first adjusting part 310 includes a control panel 310b, part of the control panel 310b is exposed on the outer surface of the display assembly 100.
[0097] The adjusting structure 300 further includes a third magnetic part 340 and an electromagnetic member 350.
[0098] The electromagnetic member 350 is electrically connected with the control panel 310b, and the working or stopping of the electromagnetic member 350 can be controlled by triggering the control panel 310b.
[0099] When the electromagnetic member 350 is in a power-on state, the electromagnetic member 350 and the third magnetic part 340 are magnetically repulsive. By adjusting the size of the current, the repulsive force between the electromagnetic member 350 and the third magnetic part 340 can be adjusted, so that the purpose of adjusting the distance between the two legs 120 can be achieved.
[0100] Specifically, increasing the repulsive force between the electromagnetic member 350 and the third magnetic part 340 causes the mask assembly 200 to be pressed inward, and the clamping force of the two legs 120 is strengthened.
[0101] Specifically, reducing the repulsive force between the electromagnetic member 350 and the third magnetic part 340 reduces the inward pressing force of the mask assembly 200, and the clamping force of the two legs 120 is weakened.
[0102] In some embodiments of the present application, there are two control panels 310b, two third magnetic parts 340 and two electromagnetic parts 350. Each leg 120 is provided with a control panel 310b and an electromagnetic part 350. Each third magnetic part 340 is arranged opposite to an electromagnetic part 350.
[0103] In the embodiment of the present application, the number and matching structure of the control panel 310 b , the third magnetic portion 340 , and the electromagnetic member 350 are further limited.
[0104] There are two control panels 310b, two third magnetic portions 340, and two electromagnetic members 350. That is, there are multiple control panels 310b, multiple third magnetic portions 340, and multiple electromagnetic members 350. Each leg 120 is equipped with one control panel 310b and one electromagnetic member 350, and each third magnetic portion 340 is positioned opposite an electromagnetic member 350.
[0105] When the user turns their head, uneven forces are applied to the left and right sides of the mask assembly 200. For example, when the left side of the mask assembly 200 is under greater pressure, the electromagnetic element 350 and the third magnetic portion 340 magnetically repel each other. As the pressure increases, the repulsive force increases, thus restraining and interacting with each other, creating a counter-thrusting force. This ensures that both sides of the mask assembly 200 are clamped securely, preventing the wearable device 10 from slipping, thereby increasing the stability of the wearable device 10.
[0106] In some embodiments of the present application, Figure 10 、 Figure 18 and Figure 19 As shown, the adjustment structure 300 includes a second adjustment portion 360 , which is connected between the support leg 120 and the mask assembly 200 .
[0107] In the embodiment of the present application, the composition structure of the adjustment structure 300 is further limited.
[0108] The adjustment structure 300 includes a second adjustment portion 360, which is connected between the support leg 120 and the mask assembly 200. In other words, the second adjustment portion 360 defines the positional relationship among the support leg 120 and the mask assembly 200. The second adjustment portion 360 has the function of adjusting the distance between the two support legs 120.
[0109] In some embodiments of the present application, Figure 10 、 Figure 11 and Figure 12As shown, the second adjusting part 360 comprises two elastic groups 360a, each of which is connected between one of the legs 120 and the mask assembly 200. Each elastic group 360a comprises a first elastic member 362 extending obliquely, and a second elastic member 364 connected between the first elastic member 362 and the display body 110. The distance between the first elastic member 362 and the display body 110 gradually increases from the mask assembly 200 to the leg 120, and the distance between the mask assembly 200 and the leg 120 gradually decreases from the display body 110 to the mask assembly 200.
[0110] In the embodiments of the present application, the structure of the second adjusting part 360 is further limited.
[0111] The second adjusting part 360 comprises two elastic groups 360a, each of which is connected between one of the legs 120 and the mask assembly 200.
[0112] Each elastic group 360a comprises a first elastic member 362 and a second elastic member 364. The first elastic member 362 is connected between the leg 120 and the mask assembly 200, and the second elastic member 364 is connected between the leg 120 and the mask assembly 200.
[0113] The second elastic member 364 is located between the first elastic member 362 and the display body 110.
[0114] The distance between the first elastic member 362 and the display body 110 gradually increases from the mask assembly 200 to the leg 120, and the distance between the mask assembly 200 and the leg 120 gradually decreases from the display body 110 to the mask assembly 200. That is, the oblique direction of the first elastic member 362 is limited, and the shape of the outer peripheral wall of the mask assembly 200 is limited.
[0115] The first elastic members 362 of the two elastic groups 360a are hooked with the two legs 120, and the first elastic members 362 have a pre-tightening force. After the mask assembly 200 is deformed under pressure, the connection between the mask assembly 200 and the first elastic member 362 will be deformed, the first elastic member 362 will be elongated due to the deformation of the mask assembly 200, and the pre-tightening force of the first elastic member 362 will be increased, thereby realizing the inward folding of the two legs 120.
[0116] When the user rotates the head, the left and right sides of the mask assembly 200 are subjected to uneven forces. For example, when the left side of the mask assembly 200 is subjected to a greater pressure, the first and second elastic members 362 and 364 between the left side of the mask assembly 200 and the support leg 120 provide a greater reaction force to the support leg 120 on that side. The first and second elastic members 362 and 364 between the right side of the mask assembly 200 and the support leg 120 cooperate to keep the wearable device 10 in a centered state, so that the two sides of the wearable device 10 do not slip, thereby increasing the stability of the wearable device 10.
[0117] In some embodiments of the present application, as shown in Figure 10 The mask assembly 200 includes a support layer 210, an elastic layer 220, and a flexible contact layer 230.
[0118] In the embodiments of the present application, the structure of the mask assembly 200 is further limited.
[0119] The mask assembly 200 includes a support layer 210, an elastic layer 220, and a flexible contact layer 230.
[0120] The elastic layer 220 is located between the support layer 210 and the flexible contact layer 230, and the support layer 210 is arranged opposite to the display body 110. After the user wears the wearable device 10, the flexible contact layer 230 contacts the user's face and forehead.
[0121] The strength and rigidity of the support layer 210 are greater than those of the elastic layer 220, and the support layer 210 can effectively support the elastic group 360a.
[0122] After the mask assembly 200 is subjected to pressure, the support layer 210, the elastic layer 220, and the flexible contact layer 230 all deform.
[0123] In some embodiments of the present application, the elastic layer 220 and the support layer 210 are detachably connected.
[0124] In the embodiments of the present application, the cooperation structure of the elastic layer 220 and the support layer 210 is further limited.
[0125] The elastic layer 220 and the support layer 210 are detachably connected. That is, the disassembly and assembly of the elastic layer 220 and the support layer 210 can be determined according to actual conditions, and the installation position of the elastic layer 220 and the support layer 210 can be determined, thereby meeting the use requirements of different models of wearable devices 10, improving the adaptability of the product, and improving the use performance of the product.
[0126] Specifically, the elastic layer 220 and the support layer 210 are detachably connected. The detachable connection between the elastic layer 220 and the support layer 210 may include any one of the following or a combination thereof: a snap connection, a threaded connection, a magnetic connection, and a fastening connection using fasteners. The fasteners include screws, bolts, rivets, and the like, which are not listed here.
[0127] In some embodiments of the present application, Figure 18 、 Figure 19 and Figure 20 As shown, the outer wall of the mask assembly 200 is provided with two protrusions 240, and each protrusion 240 is arranged opposite to a support leg 120; the second adjustment part 360 includes two rotating shafts 360b, and one protrusion 240 is rotatably connected to the support leg 120 through a rotating shaft 360b.
[0128] In the embodiment of the present application, the matching structure of the mask assembly 200, the second adjustment portion 360 and the support leg 120 is further defined.
[0129] The outer wall of the mask assembly 200 is provided with two protrusions 240, and one protrusion 240 is disposed opposite to one leg 120. The second adjustment portion 360 includes two rotating shafts 360b, and one protrusion 240 is rotatably connected to the leg 120 via one rotating shaft 360b.
[0130] For example, the left side of the mask assembly 200 is rotatably connected to one leg 120 via a rotating shaft 360b, and the right side of the mask assembly 200 is rotatably connected to the other leg 120 and the other rotating shaft 360b.
[0131] When a user wears wearable device 10 and turns their head to the right, the left side of mask assembly 200 deforms more than the right side. The legs 120 positioned opposite the left side of mask assembly 200 fold inward more than the legs 120 positioned opposite the right side of mask assembly 200. Therefore, as mask assembly 200 deforms, it also causes both legs 120 of display assembly 100 to fold inward in the same direction, ensuring a secure grip and positional limit on the user's face, maintaining the stability and reliability of wearable device 10.
[0132] In some embodiments of the present application, Figure 12 and Figure 18 As shown, the wearing portion 400 is provided with a third adjusting portion 410 , and the third adjusting portion 410 is used to adjust the length of the wearing portion 400 between the two legs 120 .
[0133] In the embodiment of the present application, the structure of the wearing portion 400 is further limited.
[0134] The wearing portion 400 is provided with a third adjusting portion 410 , and the third adjusting portion 410 is used to adjust the length of the wearing portion 400 between the two legs 120 .
[0135] By adjusting the length of the wearing portion 400 between the two legs 120 , the area of the area enclosed by the display component 100 , the mask component 200 and the wearing portion 400 can be adjusted to achieve the purpose of adjusting the tightness of the wearable device 10 .
[0136] The third adjustment portion 410 cooperates with the two elastic groups 360a to ensure that both sides of the mask assembly 200 are clamped while both sides of the wearable device 10 do not slip, thereby increasing the stability of wearing the wearable device 10.
[0137] The third adjustment portion 410 , the two protrusions 240 and the two rotating shafts 360 b cooperate to ensure that both sides of the mask assembly 200 are clamped while both sides of the wearable device 10 do not slip, thereby increasing the stability of wearing the wearable device 10 .
[0138] The present application reasonably arranges the structure of the wearable device 10, which can improve the wearing stability of the wearable device 10 and enhance the functional visual experience and wearing comfort of the wearable device 10.
[0139] Specifically, when the wearable device 10 is worn, the mask assembly 200 is compressed and deformed, pulling the legs 120, so that the mask assembly 200 and the legs 120 can be retracted, folded, and expanded together to ensure the stability and fit of the wearable device 10.
[0140] Specifically, the user can adjust the distance between the two legs 120 using the adjustment structure 300 according to the application scenario. For example, during intense gaming, the tightness of the wearable device 10 can be increased to ensure wearing stability. For example, during movie watching or relaxing entertainment, the tightness of the wearable device 10 can be decreased for comfort.
[0141] This application rationally arranges the display assembly 100, mask assembly 200, adjustment structure 300, and wearing portion 400 to meet the needs of users with different head circumferences while taking into account the differences in facial features. To a certain extent, it solves the problem of balancing the wearing comfort and stability of the wearable device 10, ensuring that the user can wear the wearable device 10 comfortably and adjust the wearable device 10 stably.
[0142] Optionally, the wearable device 10 has a built-in drawstring 320 .
[0143] like Figure 3As shown, the drawstring 320 is positioned forward. The drawstring 320 runs between the mask assembly 200 and the support leg 120. Switches 310a for manually adjusting the length of the drawstring 320 are located on the outside of each support leg 120. The switches 310a are symmetrically arranged on both legs 120. The drawstring 320 can be manually retracted or extended to accommodate different head sizes.
[0144] The adjustment structure 300 includes two switches 310a, such as the switch 310a including a knob. The user can pull the rotatable switch 310a. The surface of the switch 310a is provided with knurling 315 to increase the feel during adjustment. The switch 310a passes through the support leg 120, and a first magnetic part 318 is installed at the bottom of the switch 310a. The first magnetic part 318 is magnetically attracted to the second magnetic part 126 built into the support leg 120. The magnetic attraction between the first magnetic part 318 and the second magnetic part 126 is used to provide the locking force of the knob. A damping retaining ring 330 is provided at the tail end of the switch 310a, and the damping retaining ring 330 is used to provide tactile damping when the user adjusts. A portion of the pull cord 320 is located inside the mask assembly 200, and the end of the pull cord 320 is pre-embedded and glued to the knob to prevent it from being derailed.
[0145] A second limiting groove 128 is provided in the support leg 120. Figure 4 As shown, a plurality of limiting ribs 129 are provided in the support leg 120, and two adjacent limiting ribs 129 enclose a second limiting groove 128. The number of limiting ribs 129 includes 2, 3, 4, 5 and 6, etc., which are not listed here one by one.
[0146] When the user initially wears the wearable device 10, the user first needs to pull the switch 310a outward and disengage it from the second limiting slot 128 of the leg 120. At this moment, the force used to pull out the switch 310a needs to overcome the magnetic attraction between the first magnetic part 318 and the second magnetic part 126. After the knob is pulled out, the user can rotate the knob back and forth to adjust the length of the pull cord 320. At this moment, the end of the switch 310a will touch the damping retaining ring 330, which can provide damping for the user when the rotation stops. After the user rotates the adjustment switch 310a back and forth and releases the switch 310a, the knob automatically returns to its original position and is locked due to the magnetic attraction between the first magnetic part 318 and the second magnetic part 126. When the knob is in the retracted position, at least a portion of the first magnetic part 318 is located in the second limiting slot 128. The first magnetic portion 318 , the second magnetic portion 126 and the second limiting groove 128 cooperate to effectively limit the switch 310 a , ensuring that the switch 310 a can automatically reset after tightening or loosening the pull rope 320 .
[0147] Taking a user with a small head as an example, when initially wearing the wearable device 10, the user with a small head will pre-tighten the drawstring 320 according to their own head circumference and forehead and cheek features until it is adjusted to the optimal state for their own comfort. The legs 120 are provided with drawstring locking mechanisms on both sides. The locking mechanism includes a first magnetic part 318, a second magnetic part 126 and a second limit groove 128, which can realize infinite adjustment of the wear of the wearable device 10 and meet the use requirements of adjusting and stopping at will. In this way, the mask assembly in the related art is changed from being independently compressed and deformed to the mask assembly 200 being connected to the legs 120 of the display assembly 100 for modular compression. For example, when the right side of the mask assembly 200 is compressed and deformed to produce a displacement of △X, the left side of the mask assembly 200 is required to pull the left leg 120 close to the head to release the displacement of -△X, thereby ensuring the stability of the entire device, so that the wearable device 10 is in a stable wearing state. It can adaptively adjust the fit between the user's forehead and face and the wearable device 10, reduce the displacement of the wearable device 10 due to motion inertia, and reduce the shaking of the wearable device 10 in different usage scenarios.
[0148] like Figure 5 As shown, the pull cord 320 is rear-mounted. The principle of the pull cord 320 is the same as that of the pull cord in front, which will not be repeated here. The difference is the way the pull cord 320 is connected. The pull cord 320 passes through the wearing portion 400 and is connected to the two legs 120 and the switch 310a.
[0149] The pull cord 320 is combined with the rear-mounted pull cord 320. The principle of the front-mounted and rear-mounted pull cord 320 is the same as the front-mounted pull cord and will not be further explained here. The difference lies in the way the pull cord 320 is routed. A portion of the pull cord 320 passes through the mask assembly 200 and connects to the two legs 120 and the switch 310a. The other portion of the pull cord 320 passes through the wearing portion 400 and connects to the two legs 120 and the switch 310a.
[0150] like Figure 10 and Figure 12 As shown, the adjustment structure 300 includes two elastic groups 360a, each of which is connected between a leg 120 and the mask assembly 200. The mask assembly 200 includes a support layer 210, an elastic layer 220, and a flexible contact layer 230. The elastic layer 220 is located between the support layer 210 and the flexible contact layer 230. The support layer 210 is arranged opposite the display body 110. The elastic group 360a is connected to the support layer 210. When the mask assembly 200 is compressed and deformed, the legs 120 on both sides can be retracted, thereby limiting the two sides of the mask assembly 200.
[0151] Optionally, the elastic layer 220 comprises a thermoplastic polyurethane elastic layer. The elastic layer 220 can be deformed to suit different face sizes. The bottom of the elastic layer 220 is magnetically connected to the support layer 210 to facilitate subsequent replacement.
[0152] Optionally, the flexible contact layer 230 includes foam.
[0153] Optionally, both sides of the support layer 210 are connected to an elastic group 360a, and the elastic group 360a includes a first elastic member 362 and a second elastic member 364. The first elastic member 362 includes at least one of a spring, a tension spring, a torsion spring, a cross-shaped rocker, an elastic memory alloy, and a thermoplastic polyurethane elastic member. The second elastic member 364 includes at least one of a spring, a tension spring, a torsion spring, a cross-shaped rocker, an elastic memory alloy, and a thermoplastic polyurethane elastic member. The first elastic member 362 is hooked with both sides of the support leg 120, and the first elastic member 362 can provide a preload. After the mask assembly 200 is compressed and deformed, the deformation margin is shared by the elastic layer 220 and the support layer 210. The first elastic member 362 will be stretched due to the deformation of the support layer 210, increasing the preload to pull the support legs 120 on both sides to fold inward.
[0154] When the user turns their head, uneven forces are applied to the left and right sides of the mask assembly 200. For example, when the left side of the mask assembly 200 is subjected to greater pressure, the first elastic member 362 and the second elastic member 364 located between the left side of the mask assembly 200 and the leg 120 exert a greater reaction force on the leg 120 on that side. The first elastic member 362 and the second elastic member 364 located between the right side of the mask assembly 200 and the leg 120 cooperate to keep the wearable device 10 centered, preventing the two sides of the wearable device 10 from slipping, and increasing the stability of the wearable device 10.
[0155] This application sets two elastic groups 360a and utilizes the pre-tightening method of the two elastic groups 360a to effectively control the stability of the wearable device 10 when the wearable device 10 generates inertial motion displacement due to user movement, thereby solving the problem of reduced visual experience and comfortable wearing experience caused by the wearable device 10 being worn offset.
[0156] like Figure 15 、 Figure 16 and Figure 17 As shown, the adjustment structure 300 includes a control panel 310b, a third magnetic portion 340, and an electromagnetic member 350. There are two of each control panel 310b, third magnetic portion 340, and electromagnetic member 350. Each leg 120 is provided with one control panel 310b and one electromagnetic member 350, and each third magnetic portion 340 is positioned opposite an electromagnetic member 350. The third magnetic portion 340 is mounted on the mask assembly 200, and the electromagnetic member 350 is mounted on the leg 120. The control panel 310b is electrically connected to the electromagnetic member 350. When the electromagnetic member 350 is energized, the electromagnetic member 350 and the third magnetic portion 340 magnetically repel each other.
[0157] Optionally, the third elastic portion includes a stainless steel metal sheet.
[0158] The user can control the operation of the electromagnetic component 350 through the control panel 310b. When the electromagnetic component 350 on the inner side of the leg 120 is in the energized state, it magnetically repels the stainless steel metal sheet on the outer side of the mask assembly 200.
[0159] When the mutual repulsive force between the electromagnetic component 350 and the stainless steel metal sheet increases, the mask assembly 200 is squeezed inward, thereby strengthening the clamping force on both sides of the mask assembly 200.
[0160] When the user turns their head, uneven forces are applied to the left and right sides of the mask assembly 200. For example, when the left side of the mask assembly 200 is under greater pressure, the electromagnetic element 350 and the third magnetic portion 340 magnetically repel each other. As the pressure increases, the repulsive force increases, thus restraining and interacting with each other, creating a counter-thrusting force. This ensures that both sides of the mask assembly 200 are clamped securely, preventing the wearable device 10 from slipping, thereby increasing the stability of the wearable device 10.
[0161] This application utilizes magnetic attraction and mutual repulsion to effectively control the stability of the wearable device 10 when the wearable device 10 generates inertial motion displacement due to user movement, thereby solving the problem of reduced visual experience and comfortable wearing experience caused by the wearable device 10 being worn offset.
[0162] Specifically, the user adjusts control panel 310b to increase the magnetic attraction force. This energizes electromagnetic element 350 on the inner side of leg 120 to strengthen the electromagnetic force, which interacts with third magnetic portion 340 on mask assembly 200. This causes mask assembly 200 to be squeezed inward, increasing the clamping force on both sides of mask assembly 200.
[0163] Specifically, the user adjusts control panel 310b to reduce the magnetic attraction force. This energizes electromagnetic element 350 on the inner side of leg 120 to weaken the electromagnetic force, which interacts with third magnetic portion 340 on mask assembly 200. This reduces the squeezing force on mask assembly 200 and the clamping force on both sides of mask assembly 200.
[0164] The mask assembly 200 includes a bracket 250 and a flexible touch layer 230 , wherein the bracket 250 is located between the flexible touch layer 230 and the display main body 110 .
[0165] When the user slightly moves their head, or quickly turns their head, the electromagnetic element 350 on the inner side of the leg 120 and the third magnetic portion 340 on the outer side of the bracket 250 magnetically repel each other, restraining and interacting with each other to prevent directional thrust. This ensures that the two sides of the mask assembly 200 are clamped tightly while the wearable device 10 does not slip, improving the wearability of the wearable device 10.
[0166] like Figure 18 、 Figure 19 and Figure 20 As shown, the adjustment structure 300 includes two rotating shafts 360b, and the outer wall of the mask assembly 200 is provided with two protrusions 240, each protrusion 240 is arranged opposite to a support leg 120; the second adjustment part 360 includes two rotating shafts 360b, and each protrusion 240 is rotatably connected to the support leg 120 through a rotating shaft 360b.
[0167] In related technologies, the spacing between the two legs of the display assembly is not adjustable. The display assembly and the face mask assembly cannot be linked. Motion inertia can cause deviations in the matching dimensions of the display assembly and the face mask assembly, leading to wearer misalignment. This can easily cause the wearable device to shift and slide, resulting in a viewing angle shift, affecting the user's actual experience and reducing product performance.
[0168] The mask assembly 200 includes a bracket 250 and a flexible touch layer 230 , wherein the bracket 250 is located between the flexible touch layer 230 and the display main body 110 .
[0169] The mask assembly 200 and the leg 120 are rotatably connected via the shaft 360b. The leg 120 and the bracket 250 of the mask assembly 200 can be folded inward and outward via the shaft 360b. When the flexible contact layer 230 is compressed, the bracket 250 will also deform to accommodate the user's facial features. The flexible contact layer 230 includes foam. Figure 18 As shown, the solid line indicates the facial features of the user, and the arrows on both sides of the solid line indicate the pressure direction.
[0170] like Figure 18 As shown, the bracket 250 and the leg 120 are connected by the rotating shaft 360b. After the bracket 250 is deformed obliquely upward, the rotating shaft 360b pulls the bracket 250 to bend inward to ensure that both sides of the mask assembly 200 are clamped and the wearable device 10 is stabilized.
[0171] After the user wears the wearable device 10 and turns his head to the right, the mask assembly 200 is deformed. Figure 18 The dotted lines and arrows in the figure indicate the deformation trend of the mask assembly 200. This causes the left side of the bracket 250 to deform much more than the right side. Consequently, the left side pivot 360b causes the left leg 120 to fold inward more than the right leg 120. The deformation of the mask assembly 200 causes both legs 120 to fold inward in the same direction, ensuring a firm grip on the user's face and maintaining wearable stability and a snug fit.
[0172] In this application, when a user wears the wearable device 10 and turns their head to the right, the left side of the mask assembly 200 deforms more than the right side. The legs 120 positioned opposite the left side of the mask assembly 200 fold inward more than the legs 120 positioned opposite the right side of the mask assembly 200. Therefore, as the mask assembly 200 deforms, it also causes the two legs 120 of the display assembly 100 to fold inward in the same direction, ensuring a secure grip and positional limit on the user's face, maintaining the stability and reliability of the wearable device 10.
[0173] The present application utilizes the matching structure of the third adjustment part 410, the two rotating shafts 360b and the two protrusions 240 to effectively control the stability of the wearable device 10 when the wearable device 10 generates inertial motion displacement due to user movement, thereby solving the problem of reduced visual experience and comfortable wearing experience caused by the wearable device 10 being worn offset.
[0174] Optionally, the third adjustment portion 410 includes structures such as buckles and Velcro, which are not listed here one by one.
[0175] Optionally, the flexible contact layer 230 and the elastic layer 220 are detachably connected.
[0176] Optionally, the flexible contact layer 230 and the elastic layer 220 are integrally connected.
[0177] Optionally, the flexible contact layer 230 is an integrated structure.
[0178] Optionally, the flexible contact layer 230 includes a plurality of detachably connected components, including a forehead pad, eye-shading accessories, etc., which are not listed here one by one.
[0179] Specifically, Figure 2 The arrow in FIG. 3 indicates the direction in which the switch 310 a is pulled out. Figure 3 The arrow in indicates the rotation direction of the switch 310a. Figure 10 The arrow in indicates the direction in which the elastic group 360 a acts on the leg 120 . Figure 15 The arrows in indicate the directions of the mutual repulsive forces of the legs 120 and the mask assembly 200.
[0180] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0181] Although the embodiments of the present application have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and intent of the present application, and that the scope of the present application is defined by the claims and their equivalents.
Claims
1. A wearable device, characterized in that: include: A display assembly, the display assembly comprising a display body and two legs, the display body connecting the two legs; A mask assembly is connected to the display body, and the mask assembly is located between the two legs; an adjustment structure connected to the display assembly, the adjustment structure being used to adjust the distance between the two legs; a wearing portion, the wearing portion connecting the two legs at a side facing away from the display body; The adjustment structure includes: a first adjustment part, a part of which is exposed on the outer surface of the display component, and the adjustment structure is used to adjust the distance between the two legs when the first adjustment part is triggered; the first adjustment part includes a switch, a part of which protrudes from the outer surface of the display component; the adjustment structure also includes a pull rope, which connects the two legs and the switch, and the switch is used to adjust the length of the part of the pull rope located between the two legs when it is triggered; the pull rope passes through the mask assembly and is connected to the two legs and the switch; and / or the pull rope passes through the wearing part and is connected to the two legs and the switch; There are two switches, each of which is rotatably connected to one of the legs, and a portion of the pull rope is wrapped around the switch; a first limiting groove and a through hole are provided on the outer surface of each leg, the notches of the first limiting grooves of the two legs are arranged opposite to each other, and the through hole passes through the bottom of the first limiting groove; each switch comprises: a limiting portion, which is provided in the first limiting groove; a rotating portion, which protrudes from the side of the leg away from the first limiting groove; a connecting portion, which is connected between the rotating portion and the limiting portion, the connecting portion is connected to the through hole, and the connecting portion can rotate relative to the through hole, and a portion of the pull rope is wrapped around the connecting portion; or The adjustment structure includes: a second adjustment part, which is connected between the leg and the mask assembly; the second adjustment part includes: two elastic groups, each of which is connected between one leg and the mask assembly, and the elastic group includes: a first elastic member, which extends obliquely; a second elastic member, the first elastic member and the second elastic member are both connected to the leg and the mask assembly, and the second elastic member is located between the first elastic member and the display body; along the mask assembly to the leg, the distance from the first elastic member to the display body gradually increases; along the display body to the mask assembly, the distance between the mask assembly and the leg gradually decreases.
2. The wearable device according to claim 1, wherein: The regulating structure further comprises: Two damping retaining rings, each of which is sleeved on one of the connecting portions, and is located between the bottom of the first limiting groove and the limiting portion; The switch can be switched between a pull-out position and a retracted position along the axis of the through hole; When the switch is in the pull-out position, the limiting portion abuts against the damping retaining ring; when the switch is in the retracted position, the limiting portion is separated from the damping retaining ring.
3. The wearable device according to claim 2, wherein: The switch is provided with a first magnetic portion, and the leg is provided with a second magnetic portion, and the first magnetic portion and the second magnetic portion are magnetically attracted to each other.
4. The wearable device according to claim 3, wherein: A second limiting groove is provided in the supporting leg; When the switch is in the recovery position, at least a portion of the first magnetic portion is located in the second limiting groove.
5. The wearable device according to claim 1, wherein: The outer peripheral wall of the rotating part is provided with knurling.
6. The wearable device according to claim 1, wherein: The mask assembly comprises: Support layer; an elastic layer, wherein the supporting layer is located between the elastic layer and the display body, and the elastic group is connected to the outer peripheral wall of the supporting layer; The flexible contact layer is arranged on a side of the elastic layer away from the supporting layer.
7. The wearable device according to claim 6, wherein: The elastic layer and the supporting layer are detachably connected.
8. The wearable device according to claim 1, wherein: The wearing portion is provided with a third adjusting portion, and the third adjusting portion is used to adjust the length of the wearing portion between the two legs.
Citation Information
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