Intelligent VR glasses capable of being worn automatically and rapidly

By using a combination of articulation shaft, drive assembly, inflatable assembly and pressure detection part on the belt of smart VR glasses, automatic and rapid wear and clamping is achieved, solving the problems of inconvenient adjustment and insufficient viscosity of the belt in the prior art, and improving the firmness and comfort of the wear.

CN120028958AActive Publication Date: 2025-05-23DEZHOU VOCATIONAL & TECHN COLLEGE
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Patent Information

Application Number
CN202510496576.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2025-05-23
Estimated Expiration
2045-04-21

AI Technical Summary

Technical Problem

When wearing existing smart VR glasses, the belt cannot be automatically adjusted, which may cause imperfect wear or disengagement, and the insufficient stickiness of the Velcro will cause it to fall off during use.

Method used

A smart VR glasses that are automatically and quickly worn are designed, using a belt that connects the articulated shaft to the driving assembly, combined with the inflation assembly and the pressure detector, and the belt is automatically deflected and clamped through the cooperation of the airbag inflation and elastic trigger.

Benefits of technology

It realizes automatic and rapid adjustment of VR glasses during wearing, ensuring that they are firm and comfortable to wear, and suitable for users of different head sizes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the related technical field of VR glasses, in particular to intelligent VR glasses capable of being automatically and quickly worn, which comprise a glasses main body and bridles symmetrically arranged at two ends of the glasses main body, one end of the bridle is rotationally connected with the glasses main body through a hinge shaft, and the rotation of the hinge shaft is controlled by a driving assembly arranged in a protective cover on the glasses main body; the inflation assembly is arranged on the bridle; when the strap is controlled to deflect towards the head, the air bag is inflated, the air pressure in the air bag is further increased due to extrusion of the head, and when the pressure detection piece detects that the air pressure in the air bag reaches a threshold value, the elastic triggering piece is driven to quickly act on the sensing panel; the sensing panel sends signals to the driving assembly and the air inflation assembly, so that the binding belt stops deflecting towards the head, the binding belt keeps the binding action on the head, and the user can quickly wear the device on the head of the user with different head types and sizes.
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Description

Technical Field

[0001] The present invention relates to the technical field related to VR glasses, and in particular to a pair of smart VR glasses that can be automatically and quickly worn. Background Art

[0002] Smart VR glasses are head-mounted display devices that combine virtual reality (VR) technology with smart device functions, aiming to provide users with an immersive virtual experience. It combines the virtual environment with the user's real perception through computer graphics, sensor technology, human-computer interaction technology, etc., creating an immersive feeling.

[0003] Existing smart VR glasses have various choices of straps when worn, and fabric straps are more common, especially straps with Velcro buckle design. For example, a Chinese patent discloses a VR glasses (application number 201711440669.2); it specifically discloses "fixing the position of the VR glasses body and the human eye through the wearing part", and "the wearing part 3 of the VR glasses includes: a head support and a fixing strap, the head support is connected to the two ends of the VR glasses body respectively through two connecting ropes, the upper end of the head support is connected to one end of the fixing strap, and the other end of the fixing strap is connected to the upper end of the VR glasses body; wherein the length of the connecting rope and the strap is adjustable".

[0004] Whether it is a connecting rope or a strap, the advantage of this material is that it is soft and comfortable, does not produce a sense of pressure on the user's head, and can adjust the tightness according to the user's head shape. However, it cannot be automatically worn and clamped according to the user's head when worn. The stickiness of Velcro depends on the quality of the buckle. If the buckle lacks wear resistance, tensile strength and toughness, it may fall off or lose its stickiness during use, causing the VR glasses to come off when worn. Summary of the invention

[0005] The purpose of the present invention is to provide a smart VR glasses that can be automatically and quickly worn to solve the problems raised in the above-mentioned background technology.

[0006] To achieve the above object, the present invention provides the following technical solutions: An automatic and quick-wear smart VR glasses, comprising a glasses body and straps symmetrically arranged at two ends of the glasses body; One end of the strap is rotatably connected to the eyeglass body via a hinge shaft, and the rotation of the hinge shaft is controlled by a driving component disposed in a protective cover on the eyeglass body; Also included is an inflatable component disposed on the belt, the inflatable component being in communication with an air bag disposed inside the belt; A pressure detection component is installed on the strap. When the strap is deflected for wear, the airbag is inflated and squeezed by the head. When the pressure detection component detects that the air pressure in the airbag reaches a threshold value, the elastic trigger component installed on the strap is driven to work. When the sensing panel set on the strap is touched, it sends a signal to the inflation component and the driving component.

[0007] The automatic and quick-wear smart VR glasses as described above: the driving component includes a connecting shaft rotatably mounted on the protective cover, the connecting shaft is driven to rotate by a reduction motor arranged in the protective cover, and the two ends of the connecting shaft are respectively connected to the hinge shaft and the transmission shaft rotatably arranged in the protective cover through a bevel gear set, and the transmission shaft is connected to the other hinge shaft through a gear set.

[0008] The automatic and quick-wear smart VR glasses as described above: the inflation component includes a first box body fixedly arranged on the strap, a cavity connected to the airbag is formed in the first box body, a first piston plate is sealingly and slidingly arranged in the cavity, and a threaded sleeve is fixedly mounted on the first piston plate, and the movement of the threaded sleeve is controlled by a threaded driving member arranged in the first box body.

[0009] The automatic and quick-wear smart VR glasses as described above: the threaded drive component includes a threaded rod, the threaded rod is rotatably arranged in the first box body through a mounting plate, the threaded rod is threadedly connected to the threaded sleeve, and the threaded rod is driven to rotate by a micromotor fixedly installed in the first box body.

[0010] The automatic and quick-wear smart VR glasses as described above: a second box body is provided at the outer end of the strap, a placement cavity is formed in the second box body, and the pressure detection component and the elastic trigger component are arranged in the placement cavity.

[0011] The automatic and quick-wear smart VR glasses as described above: the pressure detection component includes a pressure box fixedly installed in the placement cavity and connected to the airbag, a second piston plate is provided in the pressure box in a sealing and sliding manner along the length direction, a movable shaft is fixedly installed at one end of the second piston plate, and one end of the movable shaft passes through the pressure box and extends out of the pressure box; The first spring is sleeved on the movable shaft, one end of the first spring abuts against the second piston plate, and the other end abuts against the inner end of the second box body.

[0012] As described above, the automatic and quick-wear smart VR glasses: a first push rod and a second push rod are respectively provided on one end of the movable shaft extending out of the second box body, and the first push rod and the second push rod can respectively abut against the elastic trigger member.

[0013] The automatically and quickly wearable intelligent VR glasses as described above: The elastic trigger includes a support block fixedly installed in the second box body, a deflection rod is rotatably arranged on the support block, and both ends of the deflection rod can respectively abut against the first push rod and the second push rod; It further includes a second spring, one end of the second spring abuts against the deflection rod, and the other end abuts against the support block.

[0014] The automatically and quickly wearable intelligent VR glasses as described above: First abutting blocks and second abutting blocks for limiting the deflection rod are symmetrically arranged at both ends of the support block.

[0015] The automatically and quickly wearable intelligent VR glasses as described above: The induction panel respectively establishes communication with the deceleration motor and the micro motor.

[0016] Compared with the prior art, the beneficial effects of the present invention are: When the VR glasses are being worn and the glasses main body is close to the human eyes, by starting the driving component, two straps can be driven to deflect towards the wearer's head, and during the deflection process, the inflation component is started to inflate the airbag, so that when the strap abuts against the head, the tightening force of the strap on the head can be relieved under the action of the airbag. After the strap abuts against the head, the airbag is squeezed and the internal air pressure further increases, driving the pressure detection component to move relatively and act on the elastic trigger. When the air pressure in the airbag increases to the threshold value, the elastic potential energy stored in the elastic trigger bursts out instantly and acts on the induction panel, so that the induction panel can quickly send signals to the driving component and the inflation component when being touched, thereby making the strap stop deflecting towards the wearer's head, and the strap always maintains the tightening action on the head, and can automatically and quickly wear users with different head sizes. While wearing firmly, the wearing comfort of the user is further improved. Description of the Drawings

[0017] Figure 1 It is a schematic structural diagram of the automatically and quickly wearable intelligent VR glasses.

[0018] Figure 2 It is a schematic structural diagram of the automatically and quickly wearable intelligent VR glasses from another angle.

[0019] Figure 3 It is a schematic structural diagram of the strap and the glasses main body of the automatically and quickly wearable intelligent VR glasses.

[0020] Figure 4 It is a schematic structural diagram of the hinge shaft and the driving component of the automatically and quickly wearable intelligent VR glasses.

[0021] Figure 5This is a schematic diagram of the structure of the strap, inflation component and airbag in the smart VR glasses that can be automatically and quickly put on.

[0022] Figure 6 This is a schematic diagram of the structure of the straps and pressure detection components in the smart VR glasses that can be automatically and quickly put on.

[0023] Figure 7 This is a schematic diagram of the structure of the pressure detection component and the elastic trigger component in the automatic and quick-wear smart VR glasses.

[0024] Figure 8 This is a schematic diagram of the structure inside the second box body of the automatic and quick-wear smart VR glasses.

[0025] Fig. 9 This is a schematic diagram of the structure of the movable axis and elastic trigger part in the smart VR glasses that can be automatically and quickly put on.

[0026] Fig.10 Schematic diagram of the structure of the deflection rod and support block in the smart VR glasses that can be automatically and quickly worn.

[0027] In the figure: 1. eyeglass body; 2. protective cover; 3. strap; 4. hinge shaft; 5. gear set; 6. transmission shaft; 7. bevel gear set; 8. connecting shaft; 9. first box body; 10. second box body; 11. airbag; 12. first piston plate; 13. threaded sleeve; 14. threaded rod; 15. micromotor; 16. mounting plate; 17. pressure box; 1701. limit block; 18. induction panel; 19. second piston plate; 20. support block; 2001. first abutment block; 2002. second abutment block; 21. deflection rod; 22. movable shaft; 2201. first push rod; 2202. second push rod; 23. first spring; 24. second spring. DETAILED DESCRIPTION

[0028] Various exemplary embodiments, features and aspects of the present application will be described in detail below with reference to the accompanying drawings. The same reference numerals in the accompanying drawings represent elements with the same or similar functions. Although various aspects of the embodiments are shown in the accompanying drawings, the drawings are not necessarily drawn to scale unless otherwise specified.

[0029] The word “exemplary” is used exclusively herein to mean “serving as an example, example, or illustration.” Any embodiment described herein as “exemplary” is not necessarily to be construed as preferred or advantageous over other embodiments.

[0030] In addition, in order to better illustrate the present application, numerous specific details are provided in the specific embodiments below. It should be understood by those skilled in the art that the present application can also be implemented without certain specific details. In some examples, methods, means, and elements well known to those skilled in the art are not described in detail in order to highlight the subject matter of the present application.

[0031] See also Figure 1 to Figure 10 In an embodiment of the present invention, an automatic and quick-wear smart VR glasses comprises a glasses body 1 and straps 3 symmetrically arranged at both ends of the glasses body 1, wherein the straps 3 are made of polyester fiber with high strength, wear resistance and elasticity; One end of the strap 3 is rotatably connected to the eyeglass body 1 via a hinge shaft 4, and the rotation of the hinge shaft 4 is controlled by a driving component disposed in a protective cover 2 on the eyeglass body 1; It also includes an inflatable component disposed on the belt 3, and the inflatable component is communicated with an airbag 11 disposed inside the belt 3; The pressure detection component is installed on the strap 3. When the strap 3 is deflected for wearing, the airbag 11 is inflated and squeezed by the head. When the pressure detection component detects that the air pressure in the airbag 11 reaches a threshold value, the elastic trigger component installed on the strap 3 is driven to work. When the sensing panel 18 arranged on the strap 3 is touched, a signal is sent to the inflation component and the driving component.

[0032] In the embodiment of the present invention, when the VR glasses are worn, after the glasses body 1 is brought close to the human eyes, the driving component is started to drive the two straps 3 to deflect synchronously toward the head direction, and at the same time, the inflation component inflates the airbag 11 to expand the airbag 11. After the strap 3 deflects to abut against the head, the airbag 11 is squeezed by the head, so that the pressure inside the airbag 11 is further increased. At this time, the strap 3 is gradually clamped on the head. Once the pressure inside the airbag 11 is greater than the preset pressure of the pressure detection component, the pressure detection component is driven to work to squeeze the elastic trigger component. When the pressure inside the airbag 11 reaches the threshold, this The strap 3 can be worn firmly on the head, and according to different head sizes, the time for the pressure in the airbag 11 to reach the threshold value is also different, thereby driving the elastic potential energy stored in the elastic trigger to burst out instantly and quickly to act on the sensing panel 18. The sensing panel 18 sends a signal to the inflation component and the driving component, so that when the strap 3 stops deflecting, the inflation component also stops inflating the airbag 11, avoiding the strap 3 from over-tightening the head and causing a decrease in the wearer's comfort. At the same time, it can be quickly worn by wearers with different head sizes and ensure the wearing effect of the VR glasses when in use.

[0033] As a further solution of the present invention, please refer to Figure 4 The driving assembly includes a connecting shaft 8 rotatably mounted on the protective cover 2, and the connecting shaft 8 is driven to rotate by a reduction motor arranged in the protective cover 2. The two ends of the connecting shaft 8 are respectively connected to the articulated shaft 4 and the transmission shaft 6 rotatably arranged in the protective cover 2 through a bevel gear set 7, and the transmission shaft 6 is connected to the other articulated shaft 4 through a gear set 5.

[0034] It should be noted that the rotation angle of the hinge shaft 4 is very small, so a reduction motor is required to drive it, so as to control the strap 3 to be deflected and tightened toward the head and accurately adjust it to the wearer's satisfaction. The specific reduction motor is not shown in the figure and belongs to the prior art, and no unnecessary explanation is given in the present invention.

[0035] Specifically, starting the reduction motor can drive the connecting shaft 8 to rotate. The connecting shaft 8 drives one of the articulated shafts 4 and the transmission shaft 6 to rotate through the bevel gear sets 7 at both ends. The transmission shaft 6 drives the other articulated shaft 4 to rotate synchronously under the transmission of the gear set 5. Therefore, the two articulated shafts 4 rotate synchronously while rotating in opposite directions, so that the two straps 3 can be synchronously deflected toward the head to tighten the head.

[0036] As a further solution of the present invention, please refer to Figure 5 The inflation assembly includes a first box body 9 fixedly arranged on the belt 3, a cavity connected to the airbag 11 is formed in the first box body 9, a first piston plate 12 is sealingly and slidably arranged in the cavity, and a threaded sleeve 13 is fixedly mounted on the first piston plate 12, and the movement of the threaded sleeve 13 is controlled by a threaded driving member arranged in the first box body 9.

[0037] The threaded drive member includes a threaded rod 14 , which is rotatably arranged in the first box body 9 via a mounting plate 16 , is threadedly connected to the threaded sleeve 13 , and is driven to rotate by a micromotor 15 fixedly installed in the first box body 9 .

[0038] Preferably, the first box body 9 does not belong to a closed chamber, and only the closed chamber formed by the first piston plate 12 and the inside of the first box body 9 is connected to the airbag 11, so that when the first piston plate 12 moves relatively in the first box body 9, the air pressure in the sealed chamber changes, thereby controlling the inflation of the airbag 11.

[0039] When the reduction motor starts working, the micromotor 15 is controlled to work synchronously. The output shaft of the micromotor 15 is fixed to the threaded rod 14, so that the output shaft drives the threaded rod 14 to rotate synchronously when working. When the threaded rod 14 rotates, it drives the threaded sleeve 13 to make a linear motion along the axial direction of the threaded rod 14, thereby squeezing the first piston plate 12 to move in the first box body 9, wherein the first piston plate 12 forms a closed chamber in the first box body 9 and the inner wall of the first box body 9, and the movement of the first piston plate 12 can change the pressure of the closed chamber. When the first piston plate 12 moves toward the direction of the closed chamber, the air pressure in the closed chamber can be squeezed into the airbag 11 to realize the inflation of the airbag 11, so that the airbag 11 expands.

[0040] It should be noted that when the strap 3 is deflected to squeeze the wearer's head, causing the air pressure in the airbag 11 to further increase, due to the self-locking effect of the threaded rod 14 and the threaded sleeve 13, the air pressure in the airbag 11 cannot be squeezed into the closed chamber and acts on the pressure detection component.

[0041] As a further solution of the present invention, please refer to Figure 6 and Figure 7 A second box body 10 is disposed at the outer end of the strap 3, a placement cavity is formed in the second box body 10, and the pressure detection component and the elastic trigger component are disposed in the placement cavity.

[0042] The pressure detection component includes a pressure box 17 fixedly installed in the placement cavity and connected to the airbag 11, a second piston plate 19 is provided in the pressure box 17 in a sealing and sliding manner along the length direction, a movable shaft 22 is fixedly installed at one end of the second piston plate 19, and one end of the movable shaft 22 passes through the pressure box 17 and extends out of the pressure box 17; The first spring 23 is sleeved on the movable shaft 22 . One end of the first spring 23 abuts against the second piston plate 19 , and the other end abuts against the inner end of the second box body 10 .

[0043] Preferably, a first push rod 2201 and a second push rod 2202 are respectively provided on one end of the movable shaft 22 extending out of the second box body 10 , and the first push rod 2201 and the second push rod 2202 can respectively abut against the elastic triggering member.

[0044] Preferably, at least one set of limit blocks 1701 is provided in the pressure box 17. The limit blocks 1701 are mainly provided to limit the second piston plate 19 to prevent the elastic force generated by the first spring 23 on the second piston plate 19 from driving the second piston plate 19 to squeeze the air pressure in the pressure box 17 into the airbag 11.

[0045] In the initial state, the first spring 23 is in a compressed state. In order to prevent the pressure in the airbag 11 from increasing and the strap 3 has not yet come into contact with the patient's head, the air pressure in the airbag 11 squeezes the second piston plate 19 to move, thereby affecting the detection accuracy of the pressure detection component.

[0046] In detail, when the strap 3 is deflected to abut against the wearer's head, the pressure in the airbag 11 is further increased. At this time, when the pressure in the airbag 11 is greater than the elastic potential energy of the first spring 23, the second piston plate 19 is squeezed, driving the movable shaft 22 to move toward the elastic trigger member, and the first spring 23 is further compressed until the pressure in the airbag 11 reaches a threshold value. The force exerted on the elastic trigger member on the movable shaft 22 enables the elastic trigger member to quickly act on the sensing panel 18. At this time, the strap 3 is completely tightened around the wearer's head. After the sensing panel 18 sends a signal to the reduction motor, the strap 3 stops deflecting and keeps the strap 3 tightened around the head.

[0047] As a further solution of the present invention, please refer to Fig. 9 and Fig.10 The elastic trigger member includes a support block 20 fixedly mounted in the second box body 10, a deflection rod 21 is rotatably provided on the support block 20, and two ends of the deflection rod 21 can respectively abut against the first push rod 2201 and the second push rod 2202; The second spring 24 is also included. One end of the second spring 24 abuts against the deflection rod 21 , and the other end of the second spring abuts against the support block 20 .

[0048] Preferably, a first abutment block 2001 and a second abutment block 2002 for limiting the deflection rod 21 are symmetrically disposed at both ends of the support block 20 .

[0049] In the initial state, the second spring 24 is in a stretched state, at which time the stretching amount of the second spring 24 is at a minimum value. The second spring 24 exerts a force on the deflection rod 21 to rotate toward the first abutment block 2001. Under the action of the first abutment block 2001, the deflection rod 21 cannot rotate toward the first abutment block 2001.

[0050] In detail, when the movable shaft 22 moves, when the extrusion force generated by the movable shaft 22 is greater than the elastic force of the second spring 24, the deflection rod 21 can be driven to rotate toward the second abutment block 2002. When the deflection rod 21 rotates to be on the same horizontal line as the support block 20, the stretching amount of the second spring 24 is at its maximum value, but the force between the deflection rod 21 and the support block 20 is balanced. At this time, the air pressure in the airbag 11 has not reached the threshold value. When the strap 3 continues to deflect until it is completely tightened on the wearer's head, the air pressure in the airbag 11 continues to increase until it reaches the threshold value, and the movable shaft 22 continues to move to a balanced state between the deflection rod 21 and the support block 20. The state is released, and then, under the elastic force of the second spring 24, the second spring 24 generates a force on the deflection rod 21 toward the second abutment block 2002, so that the deflection rod 21 quickly deflects toward the direction of the second abutment block 2002, and acts on the sensing panel 18 during the deflection process, so that the sensing panel 18 is touched and sends signals to the reduction motor and the micromotor 15 respectively, so that the strap 3 stops further deflecting the head and keeps the wearer's head in a tightened state. It can realize fast tightening of the heads of wearers of different head sizes, and can automatically maintain the tightening action after tightening, so as to ensure the wearing comfort of the wearer.

[0051] It should be noted that: in the initial state, when the air pressure in the airbag 11 increases to a level greater than the elastic potential energy of the second spring 24, the second piston plate 19 drives the movable shaft 22 to move toward the direction of the deflection rod 21. At this time, the first push rod 2201 and the deflection rod 21 are in abutment. The first push rod 2201 squeezes the deflection rod 21, causing the deflection rod 21 to deflect. Subsequently, under the action of the second spring 24, the deflection rod 21 deflects to abut against the second abutment block 2002. At this time, the other end of the deflection rod 21 abuts against the second push rod 2202, so that after the air pressure in the airbag 11 is reduced, the second push rod 2202 drives the deflection rod 21 to reset.

[0052] Preferably, the sensing panel 18 establishes communication with the reduction motor and the micromotor 15 respectively.

[0053] It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above and that the invention can be implemented in other specific forms without departing from the spirit or essential features of the invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description, and it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be included in the invention. Any reference numeral in a claim should not be considered as limiting the claim to which it relates.

[0054] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. An automatic and quick-wear smart VR glasses, comprising a glasses body (1) and straps (3) symmetrically arranged at two ends of the glasses body (1), characterized in that: One end of the strap (3) is rotatably connected to the eyeglass body (1) via a hinge shaft (4), and the rotation of the hinge shaft (4) is controlled by a driving component arranged in a protective cover (2) on the eyeglass body (1); It also includes an inflation component arranged on the belt (3), the inflation component being in communication with an air bag (11) arranged on the inner side of the belt (3); A pressure detection component is mounted on the strap (3). When the strap (3) is deflected for wearing, the airbag (11) is inflated and squeezed by the head. When the pressure detection component detects that the air pressure in the airbag (11) reaches a threshold value, the elastic trigger component mounted on the strap (3) is driven to operate. When the sensing panel (18) arranged on the strap (3) is touched, a signal is sent to the inflation component and the driving component.

2. The automatic and quick-wear smart VR glasses according to claim 1, characterized in that: The driving assembly comprises a connecting shaft (8) rotatably mounted on the protective cover (2), the connecting shaft (8) being driven to rotate by a reduction motor arranged in the protective cover (2), the two ends of the connecting shaft (8) being respectively connected to the articulated shaft (4) and a transmission shaft (6) rotatably arranged in the protective cover (2) through a bevel gear set (7), and the transmission shaft (6) is connected to another articulated shaft (4) through a gear set (5).

3. The automatic and quick-wear smart VR glasses according to claim 2, characterized in that: The inflation assembly comprises a first box body (9) fixedly arranged on the strap (3), a cavity communicating with the airbag (11) being formed in the first box body (9), a first piston plate (12) being sealingly and slidably arranged in the cavity, and a threaded sleeve (13) being fixedly mounted on the first piston plate (12), the movement of the threaded sleeve (13) being controlled by a threaded drive member arranged in the first box body (9).

4. The automatic and quick-wear smart VR glasses according to claim 3, characterized in that: The threaded drive member comprises a threaded rod (14), the threaded rod (14) being rotatably arranged in the first box body (9) via a mounting plate (16), the threaded rod (14) being threadedly connected to the threaded sleeve (13), and the threaded rod (14) being driven to rotate by a micromotor (15) fixedly mounted in the first box body (9).

5. The automatic and quick-wear smart VR glasses according to claim 1, characterized in that: A second box body (10) is provided at the outer end of the strap (3), a placement cavity is formed in the second box body (10), and the pressure detection component and the elastic trigger component are arranged in the placement cavity.

6. The automatic and quick-wear smart VR glasses according to claim 5, characterized in that: The pressure detection component comprises a pressure box (17) fixedly mounted in the placement cavity and connected to the airbag (11); a second piston plate (19) is provided in the pressure box (17) in a sealing and sliding manner along the length direction; a movable shaft (22) is fixedly mounted at one end of the second piston plate (19); and one end of the movable shaft (22) passes through the pressure box (17) and extends out of the pressure box (17); It also includes a first spring (23), which is sleeved on the movable shaft (22), one end of the first spring (23) abuts against the second piston plate (19), and the other end abuts against the inner end of the second box body (10).

7. The automatic and quick-wear smart VR glasses according to claim 6, characterized in that: A first push rod (2201) and a second push rod (2202) are respectively provided on one end of the movable shaft (22) extending out of the second box body (10); the first push rod (2201) and the second push rod (2202) are respectively capable of abutting against the elastic trigger member.

8. The automatic and quick-wear smart VR glasses according to claim 7, characterized in that: The elastic trigger member comprises a support block (20) fixedly mounted in the second box body (10), a deflection rod (21) being rotatably arranged on the support block (20), and two ends of the deflection rod (21) being capable of respectively abutting against the first push rod (2201) and the second push rod (2202); It also includes a second spring (24), one end of the second spring (24) abutting against the deflection rod (21), and the other end of the second spring (24) abutting against the support block (20).

9. The automatic and quick-wear smart VR glasses according to claim 8, characterized in that: A first abutment block (2001) and a second abutment block (2002) for limiting the position of the deflection rod (21) are symmetrically arranged at both ends of the support block (20).

10. The automatic and quick-wear smart VR glasses according to claim 4, characterized in that: The sensing panel (18) establishes communication with the reduction motor and the micromotor (15) respectively.

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