Camera

By using a control component in the camera device to simultaneously realize the angle adjustment and shielding functions of the camera, the problems of complex structure and high cost in the prior art are solved, and low-cost camera shielding and angle adjustment are realized.

CN116320681BActive Publication Date: 2025-09-19GOERTEK INC
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Patent Information

Application Number
CN202310257693.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-14
Publication Date
2025-09-19
Estimated Expiration
2043-03-14

AI Technical Summary

Technical Problem

Existing intelligent camera devices have complex structures and high costs when implementing camera shielding and angle adjustment functions.

Method used

A single control member is used to simultaneously control the mounting member and the shielding member to achieve camera angle adjustment and shielding functions. The camera angle is adjusted by rotating the mounting member, and the camera port is opened and closed by rotating the shielding member, thereby simplifying the structure.

Benefits of technology

The production cost of the camera device is reduced, the structure is simplified, and the service life and convenience of use are increased.

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Abstract

The present invention discloses a camera device, comprising: a housing, on which a camera port is provided; a mounting member, on which a camera is mounted, the mounting member being rotatably mounted on the housing to adjust the camera angle; a shielding member, which is rotatably mounted on the housing to open or close the camera port; and a control member, which is movably mounted on the housing, the control member having a first control position and a second control position, wherein when the control member is in the first control position, the control member is driven to connect with the mounting member, and when the control member is in the second control position, the control member is driven to connect with the shielding member. The technical solution of the present invention can reduce the cost of a camera device that can simultaneously realize the camera shielding and angle adjustment functions.
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Description

Technical Field

[0001] The present invention relates to the field of camera technology, and in particular to a camera device. Background Art

[0002] People use a variety of video cameras in their daily lives, such as the recently popular smart cameras. These cameras are installed in rooms. When people are not in the room, they can transmit images of the room to the user in real time via the internet. However, when people are in the room, the presence of the camera poses a risk of privacy leakage. Therefore, manufacturers have begun to install shields on smart cameras, allowing people to cover the camera when in the room to avoid risk of leakage. To increase the convenience of adjusting the camera's shooting angle, an angle adjustment mechanism is often also provided. However, camera devices that include both a shield and an angle adjustment mechanism are often complex and costly. Summary of the Invention

[0003] The main purpose of the present invention is to provide a camera device, aiming to reduce the cost of the camera device that can simultaneously realize the camera shielding and angle adjustment functions.

[0004] To achieve the above-mentioned object, the camera device proposed in the present invention includes:

[0005] a housing, wherein a camera port is provided on the housing;

[0006] a mounting member, on which a camera is mounted, the mounting member being rotatably disposed on the housing to adjust a shooting angle of the camera, the camera shooting through the camera port;

[0007] a shielding member rotatably disposed on the housing to open or close the camera port;

[0008] A control member is movably arranged on the shell, and the control member has a first control position and a second control position. When the control member is located at the first control position, the control member is driven to be connected to the mounting member, and when the control member is located at the second control position, the control member is driven to be connected to the shielding member.

[0009] Optionally, a first driven structure is provided on the mounting member, a second driven structure is provided on the shielding member, and a first driving structure and a second driving structure are provided on the control member; the first driving structure is used to cooperate with the first driven structure, and the second driving structure is used to cooperate with the second driven structure; the first driving structure and the second driving structure are spaced apart along the axial direction of the control member; the control member cooperates with the first driven structure and the second driven structure through either the first driving structure or the second driving structure.

[0010] Optionally, the first driven structure includes a driven disk, a first driven groove is provided on the driven disk, the first driven groove is provided on the edge of the driven disk and is recessed radially inward of the driven disk, the first driving structure includes a first driving rib, and the control member moves along the axial direction of the mounting member to make the first driving rib cooperate with the first driven groove.

[0011] Optionally, a plurality of the first driven grooves are provided, and the plurality of the driven grooves are spaced apart in the circumferential direction of the driven disk; a plurality of the first driving ribs are provided, and the plurality of the first driving ribs are provided in a one-to-one correspondence with the plurality of the first driven grooves.

[0012] Optionally, a first limiting structure is provided on the control member, and a second limiting structure is provided on the shell, and the first limiting structure cooperates with the second limiting structure to limit the shooting angle of the camera.

[0013] Optionally, the first limiting structure includes a limiting rib, and the second limiting structure includes a first limiting protrusion and a second limiting protrusion spaced apart from each other, and the first limiting protrusion and the second limiting protrusion are both arranged on the movement trajectory of the limiting rib; when the first driving structure cooperates with the first driven structure, when the limiting rib moves to the location of the first limiting protrusion, it abuts against the first limiting protrusion; when the limiting rib moves to the location of the second limiting protrusion, it abuts against the second limiting protrusion.

[0014] Optionally, the second driven structure includes a second driven groove arranged on the shielding member, and the second driven groove is recessed inward along the axial direction of the shielding member; the second driving structure includes a second driving rib, and the control member moves along the axial direction of the shielding member to make the second driving rib cooperate with the second driven groove.

[0015] Optionally, the first driven structure includes a driven disk, a circular through hole is provided on the shell, the control member is cylindrical, and the control member cooperates with the circular through hole; a cylindrical cavity is provided in the control member, the cylindrical cavity is coaxially arranged with the control member, and the driven disk cooperates with the cylindrical cavity; a rotating shaft is provided at one end of the mounting member away from the control member, and the rotating shaft cooperates with the shaft hole provided on the shell.

[0016] Optionally, the shielding member is configured as a tube, and the mounting member is fitted into the shielding member; a columnar mounting cavity is provided in the shell, and the shielding member is fitted into the mounting cavity; an exposing through hole is provided on the side wall of the shielding member, and the exposing through hole is used to expose the camera port.

[0017] Optionally, the control member is rotatable and an angle identification structure is provided on the control member.

[0018] The technical solution of the present invention uses a control member to simultaneously control the mounting member and the shielding member, thereby achieving the functions of adjusting the camera's shooting angle and providing shielding for the camera. It has a simple structure and low cost. The rotation of the mounting member drives the camera to rotate, thereby achieving the adjustment of the shooting angle; the shielding member can open and close the camera port by rotating. Since the camera shoots through the camera port, it can achieve the shielding function for the camera. In summary, it can be seen that the technical solution of the present invention uses a control member to simultaneously control the camera's shooting angle adjustment and shielding functions, simplifying the structure of the camera device and thus reducing the production cost of the camera device. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.

[0020] Figure 1 A schematic diagram of the exploded structure of an embodiment of a camera device of the present invention;

[0021] Figure 2 for Figure 1 A schematic structural diagram of a shielding member in an embodiment;

[0022] Figure 3 for Figure 1 A schematic structural diagram of the mounting member of the embodiment;

[0023] Figure 4 for Figure 1 A schematic structural diagram of a control member in an embodiment;

[0024] Figure 5 for Figure 1 A schematic diagram of a portion of the structure of the housing of the embodiment;

[0025] Figure 6 for Figure 1 A schematic structural diagram of an embodiment;

[0026] Figure 7 for Figure 6 A cross-sectional view taken along the AA direction with the control member in the first control position;

[0027] Figure 8 for Figure 6 A cross-sectional view taken along the AA direction with the control member in the second control position;

[0028] Figure 9 for Figure 1 A schematic diagram of the structure of the embodiment when the blocking member closes the camera port;

[0029] Figure 10 for Figure 1 A schematic diagram of the structure of the embodiment when the camera is at a first camera angle;

[0030] Figure 11 for Figure 1 A schematic diagram of the structure of the embodiment when the camera is at a second camera angle;

[0031] Figure 12 for Figure 1 A schematic diagram of the structure of the embodiment when the camera is at the third camera angle.

[0032] Description of Figure Numbers:

[0033] Label name Label name 10 case 22 First driven slot 11 Camera port 23 shaft 12 first limiting protrusion 30 Camera 13 Second limiting protrusion 40 Covering parts 14 Round hole 41 Second driven slot 15 shaft hole 42 Exposed vias 16 Mounting cavity 50 Controls 17 Limiting plate 51 First drive rib 18 Decorative panels 52 Limiting ribs 19 Shell body 53 Second drive rib 20 Mounting parts 54 Arrow-shaped groove 21 driven disc 55 Cylindrical cavity

[0034] The purpose, features and advantages of the present invention will be further described with reference to the accompanying drawings and in conjunction with the embodiments. DETAILED DESCRIPTION

[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0036] It should be noted that all directional indications in the embodiments of the present invention (such as up, down, left, right, front, back, etc.) are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.

[0037] In addition, the descriptions of "first", "second", etc. in the present invention are for descriptive purposes only and should not be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" or "second" may explicitly or implicitly include at least one of such features. In addition, the technical solutions between the various embodiments can be combined with each other, but this must be based on the fact that they can be implemented by ordinary technicians in this field. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0038] The present invention provides a camera device.

[0039] In the embodiment of the present invention, reference Figures 1 to 10 , the camera device comprises:

[0040] The housing 10 is provided with a camera port 11;

[0041] A mounting member 20 is provided with a camera 30 mounted thereon. The mounting member 20 is rotatably mounted on the housing 10 to adjust the camera angle of the camera 30. The camera 30 captures images through the camera port 11.

[0042] The shielding member 40 is rotatably mounted on the housing 10 to open or close the camera port 11;

[0043] The control member 50 is movably arranged on the shell 10. The control member 50 has a first control position and a second control position. When the control member 50 is located at the first control position, the control member 50 is driven to be connected with the mounting member 20. When the control member 50 is located at the second control position, the control member 50 is driven to be connected with the shielding member 40.

[0044] exist Figure 1 In the illustrated embodiment, only a single control member 50 is required to control the shielding member 40 and the mounting member 20, thereby enabling the opening and closing of the camera port 11 and controlling the camera angle of the camera 30. In the prior art, achieving these two functions requires expensive and complex components such as magnets, metal parts, and a rotating shaft 23, resulting in high costs. However, the present embodiment achieves both functions with a single plastic component, resulting in low costs.

[0045] like Figure 1 As shown, the housing 10 may include a limit plate 17, a decorative plate 18, and a housing body 19; the limit plate 17 may be connected to the housing body 19 by screws; and the decorative plate 18 may be connected to the housing body by buckles. In addition, the camera 30 and the mounting member 20 may also be connected by screws. The screw connection is convenient for disassembly and has high strength and is not easy to fall off. The control member 50 may cooperate with the hole in the limit plate 17, so that the control member 50 has the freedom to translate along the axis of the control member 50, thereby switching between the first control position and the second control position; at the same time, the control member 50 also has the ability to rotate around the axis of the control member 50, thereby driving the mounting member 20 or the shielding member 40. The decorative plate 18 covers the side of the limit plate 17 away from the mounting member 20, thereby protecting the limit plate 17 and at the same time shielding the screws used to connect the limit plate 17 and the housing body 19, making the camera device more beautiful.

[0046] The mounting frame and the shielding member 40 can be rotatably arranged on the housing 10, and pillars can be provided at both ends of the mounting member 20 and the shielding member 40. Holes corresponding to the pillars are provided on the housing 10, and the pillars cooperate with the holes so that the mounting member 20 and the shielding member 40 can rotate around the pillars; the control member 50 is movably arranged on the housing 10, and the control member 50 can be movable perpendicular to the axial direction of the mounting member 20, and a gear is connected to the end of the mounting member 20, and a gear corresponding to the gear on the control member 50 is provided on the pillars of the mounting member 20 and the shielding member 40. When the control member 50 is in the first control position, the gear on the control member 50 meshes with the gear on the mounting member 20, thereby driving the mounting member 20 by rotating the control member 50 to adjust the camera angle. By moving the control member 50 from the first control position to the second control position, the gear on the control member 50 disengages from the gear on the mounting member 20, while the gear on the control member 50 meshes with the gear on the shielding member 40, thereby driving the shielding member 40 by rotating the control member 50 to open and close the camera port 11. It should be noted that opening and closing the camera port 11 does not mean completely closing or fully expanding the camera port 11. The most fundamental purpose of opening and closing the camera port 11 is to enable or disable the camera 30 to shoot. Therefore, when the camera port 11 is open, it only needs to expose space that allows the camera 30 to shoot. When the camera port 11 is closed, it can prevent the camera 30 from shooting. When the camera port 11 is open, it is not necessarily completely exposed, and when the camera port 11 is closed, it is not necessarily completely covered.

[0047] refer to Figures 1 to 10 Optionally, a first driven structure is provided on the mounting member 20, a second driven structure is provided on the shielding member 40, and a first drive structure and a second drive structure are provided on the control member 50; the first drive structure is used to cooperate with the first driven structure, and the second drive structure is used to cooperate with the second driven structure; the first drive structure and the second drive structure are arranged at intervals along the axial direction of the control member 50; the control member 50 cooperates with the first driven structure and the second driven structure through the first drive structure and the second drive structure. The first driven structure and the second driven structure can both be gear structures as described in the above embodiment; the first drive structure and the second drive structure can also be the gear structures described in the above embodiment. The first drive structure and the second drive structure correspond to the first driven structure and the second driven structure respectively, so that when the first drive structure acts on the second driven structure, the second drive structure is in an inactive state; and when the second drive structure acts on the second driven structure, the first drive structure is in an inactive state, thereby improving the service life of the first drive mechanism and the second drive mechanism. In addition, since the first driving structure and the second driving structure are spaced apart along the axial direction of the control member 50 , the control member 50 also needs to move along its axial direction to move between the first control position and the second control position.

[0048] refer to Figures 1 to 10 Optionally, the first driven structure includes a driven disk 21, and the driven disk 21 is provided with a first driven groove 22, which is provided at the edge of the driven disk 21 and is recessed radially inward of the driven disk 21. The first driving structure includes a first driving rib 51, and the control member 50 moves along the axial direction of the mounting member 20 so that the first driving rib 51 is engaged with the first driven groove 22. Figure 3 and Figure 4 As shown, the first driving rib 51 and the first driven groove 22 can only be matched with each other when the first driving rib 51 and the first driven groove 22 are in one-to-one correspondence. Figures 6 to 8 As shown, the control member 50 now moves along the axis of the mounting member 20. When the control member 50 moves away from the mounting member 20 and the first driving rib 51 and the first driven groove 22 are in one-to-one correspondence, the control member 50 moves to the first control position. At this time, by rotating the control member 50, the angle of the mounting member 20 can be controlled, thereby controlling the shooting angle of the camera 30. It can be seen that when the first driving rib 51 and the first driven groove 22 do not match, the control member 50 cannot move to the first control position. Therefore, the provision of the first driving rib 51 and the first driven groove 22 can limit the relative position of the control member 50 and the mounting member 20, thereby providing a foolproof function, preventing the user from causing the control member 50 to control the mounting member 20 at an inappropriate time. For example, when the blocking member 40 does not open the camera port 11 and the camera 30 cannot shoot, adjusting the shooting angle is meaningless.

[0049] refer to Figures 1 to 10 Optionally, multiple first driven grooves 22 are provided, spaced apart along the circumference of the driven disk 21; multiple first driving ribs 51 are provided, and each of the multiple first driving ribs 51 corresponds to each of the multiple first driven grooves 22. The multiple first driven grooves 22 and the multiple first driving ribs 51 can simultaneously transmit the rotation of the control member 50 to the mounting member 20, thereby reducing the force exerted on a single first driven groove 22 and a single first driving rib 51, reducing the probability of damage to the first driven groove 22 and the first driving rib 51, and increasing the service life of the camera device.

[0050] refer to Figures 1 to 10Optionally, a first limiting structure is provided on the control member 50, and a second limiting structure is provided on the housing 10. The first limiting structure and the second limiting structure cooperate to limit the camera 30's shooting angle. The first limiting structure can be a groove on the control member 50, extending along the circumference of the control member 50's rotating shaft 23. The second limiting structure can be a protrusion provided on the housing 10, which fits into the groove and can move within the groove. When the control member 50 is rotated to a certain angle, the protrusion abuts one end wall of the groove. When the control member 50 is rotated in the opposite direction by a certain angle, the protrusion abuts the other end wall of the groove. In this way, the control member 50 can only rotate within the angle limited by the groove. Since the control member 50 controls the mounting member 20, and thus controls the camera 30's shooting angle, limiting the rotation angle of the control member 50 can also limit the camera 30's shooting angle. Limiting the camera 30's rotation angle can prevent excessive rotation of the camera 30, which could loosen the camera 30's wiring or damage components in the camera device due to exceeding the designed rotation angle. Furthermore, the height of the protrusion can be adjusted so that when the control member 50 is in the first control position, the protrusion enters the groove; when the control member 50 is in the second control position, the protrusion exits the groove. This way, when the control member 50 is in the second control position, the groove does not restrict the rotation of the shielding member 40. The rotation angle of the shielding member 40 may differ from the range of the camera angle. This allows the camera angle to be limited without affecting the rotation angle of the shielding member 40.

[0051] refer to Figures 1 to 10 Optionally, the first limiting structure includes a limiting rib 52, and the second limiting structure includes a first limiting protrusion 12 and a second limiting protrusion 13 spaced apart from each other, and the first limiting protrusion 12 and the second limiting protrusion 13 are both arranged on the movement trajectory of the first limiting structure; when the first driving structure cooperates with the first driven structure, when the limiting rib 52 moves to the location of the first limiting protrusion 12, it abuts against the first limiting protrusion 12; when the limiting rib 52 moves to the location of the second limiting protrusion 13, it abuts against the second limiting protrusion 13. Figure 11 and Figure 12 They are diagrams of the camera angle of the camera 30 at two extremes, Figure 11 In the middle, the limiting rib 52 abuts against the first limiting convex portion 12, and the camera angle is at the maximum upward viewing angle; Figure 12 In the embodiment, the limiting rib 52 abuts against the second limiting protrusion 13, and the camera angle is at the maximum top view. In addition, the thickness of the first limiting protrusion 12 and the second limiting protrusion 13 in the axial direction of the control member 50 can be less than or equal to the distance the control member 50 moves from the first control position to the second control position, because in this embodiment, the control member 50 switches between the first control position and the second control position by moving along its axial direction (such as Figure 7 and Figure 8(as shown), this arrangement prevents the limiting rib 52 from contacting the first limiting protrusion 12 or the second limiting protrusion 13 when the control member 50 is in the second control position, thereby preventing the control member 50 from affecting the control of the shielding member 40. When the adjustment angle of the shielding member 40 and the camera angle have the same range of variation, the first limiting protrusion 12 and the second limiting protrusion can cooperate with the limiting rib 52 to simultaneously control the camera angle and the adjustment angle of the shielding member 40.

[0052] refer to Figures 1 to 10 Optionally, the second driven structure includes a second driven groove 41 provided on the shielding member 40, and the second driven groove 41 is recessed inwardly along the axial direction of the shielding member 40; the second driving structure includes a second driving rib 53, and the control member 50 moves along the axial direction of the shielding member 40 so that the second driving rib 53 is engaged with the second driven groove 41. Figure 8 As shown, the second driving rib 53 enters the second driven groove 41 (the structure of the second driven groove 41 refers to Figure 2 , the second driving rib 53 refers to Figure 4 ) It can be seen that at this time, the control member 50 rotates around its axis to drive the shielding member 40 to rotate, thereby realizing the opening and closing of the camera port 11.

[0053] refer to Figures 1 to 10 Optionally, the first driven structure includes a driven disk 21, a circular through hole 14 is provided on the housing 10, and the control member 50 is cylindrical and cooperates with the circular through hole 14; a cylindrical cavity 55 is provided in the control member 50, and the cylindrical cavity 55 is coaxially arranged with the control member 50, and the driven disk 21 cooperates with the cylindrical cavity 55; a rotating shaft 23 is provided at one end of the mounting member 20 away from the control member 50, and the rotating shaft 23 cooperates with the axial hole 15 provided on the housing 10. When the control member 50 cooperates with the circular through hole 14, the control member 50 can rotate in the circular through hole 14. Since the control member 50 is cylindrical, the control member 50 can also move along its axial direction. The rotating shaft 23 and the axial hole 15 cooperate to provide rotational support for one end of the mounting member 20; the driven disk 21 and the cylindrical cavity 55 cooperate to provide rotational support for the other end of the mounting member 20. The driven disk 21 and the cylindrical cavity 55 can be a gap fit to prevent the driven disk 21 from accidentally rotating when the control part 50 rotates; the rotating shaft 23 and the shaft hole 15 can be an interference fit to provide damping for the rotation of the mounting part 20 and ensure the stability of the camera angle.

[0054] refer to Figures 1 to 10Optionally, the shielding member 40 is configured as a tube, and the mounting member 20 fits within the shielding member 40; a cylindrical mounting cavity 16 is provided within the housing 10, and the shielding member 40 fits within the mounting cavity 16; an exposing through-hole 42 is provided on the side wall of the shielding member 40, and the exposing through-hole 42 is used to expose the camera port 11. In this way, the mounting member 20 and the shielding member 40 can provide rotational support. The mounting member 20 and the shielding member 40 can be clearance-fitted to prevent the mounting member 20 from accidentally moving the shielding member 40; the shielding member 40 and the mounting cavity 16 can be interference-fitted to provide damping for the rotation of the shielding member 40 and ensure its stable position.

[0055] refer to Figures 1 to 10 Optionally, the control member 50 is rotatable and an angle identification structure is provided on the control member 50. The angle identification structure may be as follows: Figure 6 The arrow-shaped groove 54 or arrow-shaped protrusion shown may also be an angular scale extending along the rotation direction of the control member 50. The angle marking helps the user determine the state of the control member 50, especially when the driven groove and the first driving rib 51 can only mate within a specific angle. This helps the user find the angle at which the control member 50 can mate with the first driving rib 51 and the driven groove.

[0056] The above description is only a preferred embodiment of the present invention and does not limit the patent scope of the present invention. All equivalent structural transformations made by using the contents of the present invention description and drawings under the inventive concept of the present invention, or direct / indirect application in other related technical fields are included in the patent protection scope of the present invention.

Claims

1. A camera device, characterized in that: include: a housing, wherein a camera port is provided on the housing; a mounting member, on which a camera is mounted, the mounting member being rotatably disposed on the housing to adjust a shooting angle of the camera, the camera shooting through the camera port; a shielding member rotatably disposed on the housing to open or close the camera port; A control member is movably arranged on the shell, and the control member has a first control position and a second control position. When the control member is located at the first control position, the control member is driven to be connected to the mounting member, and when the control member is located at the second control position, the control member is driven to be connected to the shielding member.

2. The imaging device according to claim 1, wherein The mounting member is provided with a first driven structure, the shielding member is provided with a second driven structure, and the control member is provided with a first driving structure and a second driving structure; the first driving structure is used to cooperate with the first driven structure, and the second driving structure is used to cooperate with the second driven structure; The first driving structure and the second driving structure are spaced apart along the axial direction of the control member; the control member selectively cooperates with the first driven structure and the second driven structure through the first driving structure and the second driving structure.

3. The imaging device according to claim 2, wherein: The first driven structure includes a driven disk, which is provided with a first driven groove. The first driven groove is provided at the edge of the driven disk and is recessed radially inward of the driven disk. The first driving structure includes a first driving rib. The control member moves along the axial direction of the mounting member to enable the first driving rib to cooperate with the first driven groove.

4. The imaging device according to claim 3, wherein There are multiple first driven grooves, which are spaced apart in the circumferential direction of the driven disc; there are multiple first driving ribs, which are arranged in a one-to-one correspondence with the multiple first driven grooves.

5. The imaging device according to claim 2, wherein: The control member is provided with a first limiting structure, and the shell is provided with a second limiting structure. The first limiting structure cooperates with the second limiting structure to limit the shooting angle of the camera.

6. The imaging device according to claim 5, wherein The first limiting structure includes a limiting rib, and the second limiting structure includes a first limiting protrusion and a second limiting protrusion that are spaced apart from each other. The first limiting protrusion and the second limiting protrusion are both arranged on the movement trajectory of the limiting rib; when the first driving structure cooperates with the first driven structure, when the limiting rib moves to the location of the first limiting protrusion, it abuts against the first limiting protrusion; when the limiting rib moves to the location of the second limiting protrusion, it abuts against the second limiting protrusion.

7. The imaging device according to claim 2, wherein: The second driven structure includes a second driven groove arranged on the shielding member, and the second driven groove is recessed inward along the axial direction of the shielding member; the second driving structure includes a second driving rib, and the control member moves along the axial direction of the shielding member to make the second driving rib cooperate with the second driven groove.

8. The imaging device according to claim 2, wherein: The first driven structure includes a driven disk, a circular through hole is provided on the shell, the control member is cylindrical, and the control member cooperates with the circular through hole; a cylindrical cavity is provided in the control member, the cylindrical cavity is coaxially arranged with the control member, and the driven disk cooperates with the cylindrical cavity; a rotating shaft is provided at one end of the mounting member away from the control member, and the rotating shaft cooperates with the shaft hole provided on the shell.

9. The imaging device according to claim 8, wherein The shielding member is configured in a tubular shape, and the mounting member is fitted into the shielding member; a columnar mounting cavity is provided in the shell, and the shielding member is fitted into the mounting cavity; an exposing through hole is provided on the side wall of the shielding member, and the exposing through hole is used to expose the camera port.

10. The imaging device according to claim 1, wherein The control member is rotatable and is provided with an angle identification structure.

Citation Information

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