Viewing angle adjusting structure and camera assembly

By using a connection structure between support components and rotating components, the viewing angle of the camera module can be adjusted, solving the problem of traditional cameras having difficulty adjusting angles and achieving flexible viewing angle adjustment.

CN224265063UActive Publication Date: 2026-05-19SHARETRONIC DATA TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHARETRONIC DATA TECH CO LTD
Filing Date
2025-05-19
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Traditional cameras are difficult to adjust the monitoring angle flexibly after installation, which cannot meet actual needs.

Method used

By setting up a connection structure between the support and the rotating component, the camera module is fixedly connected to the rotating component, and the rotating component is rotatably connected to the support, thereby enabling the camera module's viewing angle to be adjusted.

Benefits of technology

Without changing the installation position of the camera components, the camera's viewing angle can be flexibly adjusted to meet different monitoring needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a visual angle adjusting structure and a camera assembly. The visual angle adjusting structure comprises a supporting piece, a camera module and a rotating piece. The supporting piece comprises a first connecting part and a second connecting part which are arranged at an interval. The rotating piece comprises a rotating piece main body, a third connecting part and a fourth connecting part, the third connecting part and the fourth connecting part are arranged on the rotating piece main body in a spaced mode, the third connecting part is rotationally connected with the first connecting part, and the fourth connecting part is rotationally connected with the second connecting part; the rotating center line of the first connecting part and the rotating center line of the third connecting part coincide with the rotating center line of the second connecting part and the rotating center line of the fourth connecting part, the camera module is fixedly connected with the rotating piece body, and the rotating piece body rotates relative to the supporting piece to drive the camera module to rotate relative to the supporting piece so as to change the visual angle of the camera module. According to the visual angle adjusting structure provided by the invention, the visual angle of the camera can be adjusted on the premise of not changing the mounting position of the camera assembly, so that different monitoring requirements can be met.
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Description

Technical Field

[0001] This application relates to the field of camera technology, and in particular to a viewing angle adjustment structure and camera assembly. Background Technology

[0002] Traditional cameras are mostly fixed in place. Once installed, their monitoring angle is fixed and cannot be flexibly adjusted according to actual needs. Utility Model Content

[0003] To address the aforementioned technical problems, this application provides a viewing angle adjustment structure and camera assembly, which can adjust the camera viewing angle without changing the installation position of the camera assembly to adapt to different monitoring needs.

[0004] This application provides a viewing angle adjustment structure, which includes a support member, a camera module, and a rotating member. The support member includes a first connecting portion and a second connecting portion spaced apart. The rotating member includes a rotating member body, a third connecting portion, and a fourth connecting portion, which are spaced apart from the rotating member body. The third connecting portion is rotatably connected to the first connecting portion, and the fourth connecting portion is rotatably connected to the second connecting portion. The rotation center lines of the first and third connecting portions coincide with the rotation center lines of the second and fourth connecting portions. The camera module is fixedly connected to the rotating member body, and the rotation of the rotating member body relative to the support member causes the camera module to rotate relative to the support member, thereby changing the viewing angle of the camera module.

[0005] A second aspect of this application provides a camera assembly, the camera assembly including the viewing angle adjustment structure provided in the first aspect.

[0006] The viewing angle adjustment structure and camera assembly provided in this application, by setting the rotating component to be fixedly connected to the camera module and the rotating component to be rotatably connected to the support component, allows the viewing angle of the camera module to be adjusted by rotating the rotating component to drive the camera module to rotate. Thus, the camera assembly can flexibly adjust the camera viewing angle according to monitoring needs. Attached Figure Description

[0007] To more clearly illustrate the technical solution of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0008] Figure 1This is a schematic diagram of the view adjustment structure in some embodiments of this application from a first viewpoint.

[0009] Figure 2 for Figure 1 The diagram shows the exploded structure of the view adjustment structure from one viewpoint.

[0010] Figure 3 for Figure 1 A schematic diagram of the exploded structure of the viewpoint adjustment structure shown from another viewpoint.

[0011] Figure 4 for Figure 2 and Figure 3 The diagram shows the structure of the rotating component.

[0012] Figure 5 for Figure 2 and Figure 3 A side view of a portion of the rotating component shown.

[0013] Figure 6 for Figure 2 and Figure 3 A bottom view of a portion of the rotating component shown.

[0014] Figure 7 for Figure 1 The diagram shown is a schematic representation of the support member from one perspective.

[0015] Figure 8 For along Figure 1 A schematic diagram of a portion of the cross-sectional structure obtained by cutting the viewing angle adjustment structure along the I-I' direction.

[0016] Figure 9 for Figure 1 The diagram shows the support member from another perspective.

[0017] Figure 10 for Figure 2 and Figure 3 The diagram shows the structure of the second mating part.

[0018] Figure 11 For along Figure 1 A schematic diagram of another part of the cross-sectional structure obtained by cutting the viewing angle adjustment structure in the I-I' direction.

[0019] Figure 12 for Figure 1 The top view of the support shown.

[0020] Figure 13 This is a schematic diagram showing the projections of the first stop, the second stop, the rotation center line, the plate, the side wall, and the third connecting part onto the rotation plane in some embodiments of this application.

[0021] Figure 14 for Figure 1 The diagram shows the view adjustment structure from a second viewpoint.

[0022] Figure 15 for Figure 1 The diagram shows the view adjustment structure from a third-person perspective.

[0023] Figure 16 This is a structural block diagram of the camera component in some embodiments of this application.

[0024] Explanation of reference numerals in the attached figures:

[0025] 100 - Angle adjustment structure; 10 - Support component; 20 - Camera module; 30 - Rotating component; 11 - First connecting part; 12 - Second connecting part; 31 - Rotating component body; 32 - Third connecting part; 33 - Fourth connecting part; CL - Rotation center line; 311 - Plate; A - First side; B - Second side; 313 - First mounting post; 13 - Support component body; 11a - First shaft; 32a - First shaft hole; 121 - Third shaft; 331 - First mating part; 332 - Second mating part; 331a - First arc groove; 332a - Second arc groove; 33a - Annular cavity; 3321 - Main body; 3322 - Mounting part; 314 - Second mounting post; 12 11-Shaft body; 1212-Positioning part; 312-Side wall; 3121-First side wall; 3122-Second side wall; 3123-First notch; 3124-Second notch; 14-Stop part; 141-First stop part; 142-Second stop part; 141'-First projection; 142'-Second projection; CL'-Third projection; 311'-Fourth projection; 312'-Fifth projection; 32'-Sixth projection; A1-Seventh projection; A2-Eighth projection; 311a-Through hole; 131-First cover plate; 132-Second cover plate; 133-Frame; 134-Accommodating cavity; 1311-Opening; 21-Imaging acquisition end; 200-Camera assembly. Detailed Implementation

[0026] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0027] In the description of this application, the terms "first," "second," "third," "fourth," "fifth," "sixth," "seventh," and "eighth," etc., are used to distinguish different objects, not to describe a specific order. The terms "upper," "lower," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. In addition, "multiple" means two or more, and "a variety" means two or more.

[0028] In the description of this application, unless otherwise expressly specified and limited, the term "connection" should be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a direct connection or an indirect connection through an intermediate medium; it can also refer to the internal connection of two components; it can be a communication connection; or it can be an electrical connection. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0029] It should be noted that the illustrations provided in the embodiments of this application are only schematic representations of the basic concept of this application. The illustrations only show the components related to this application and are not drawn according to the number, shape and size of the components in actual implementation. In actual implementation, the form, quantity and proportion of each component can be arbitrarily changed, and the layout of the components may also be more complex.

[0030] Please see Figures 1 to 4 , Figure 1 This is a schematic diagram of the view adjustment structure 100 in some embodiments of this application under a first view. Figure 2 for Figure 1 The diagram shows the exploded structure of the view adjustment structure 100 from one viewpoint. Figure 3 for Figure 1 A schematic diagram of the exploded structure of the view adjustment structure 100 shown from another viewpoint. Figure 4 for Figure 2 and Figure 3 A schematic diagram of the rotating component 30 is shown. Figures 1 to 4As shown, the viewing angle adjustment structure 100 includes a support member 10, a camera module 20, and a rotating member 30. The support member 10 includes a first connecting portion 11 and a second connecting portion 12 spaced apart. The rotating member 30 includes a rotating member body 31, a third connecting portion 32, and a fourth connecting portion 33. The third connecting portion 32 and the fourth connecting portion 33 are spaced apart from the rotating member body 31. The third connecting portion 32 is rotatably connected to the first connecting portion 11, and the fourth connecting portion 33 is rotatably connected to the second connecting portion 12. The rotation center line CL of the first connecting portion 11 and the third connecting portion 32 coincides with the rotation center line CL of the second connecting portion 12 and the fourth connecting portion 33. The camera module 20 is fixedly connected to the rotating member body 31. The rotation of the rotating member body 31 relative to the support member 10 causes the camera module 20 to rotate relative to the support member 10, thereby changing the viewing angle of the camera module 20.

[0031] The first connecting part 11, the second connecting part 12, the third connecting part 32 and the fourth connecting part 33 can all rotate around the rotation center line CL.

[0032] The viewing angle adjustment structure 100 provided in this application embodiment is configured such that the rotating member 30 is fixedly connected to the camera module 20, and the rotating member 30 is rotatably connected to the support member 10, so that the viewing angle of the camera module 20 can be adjusted by rotating the rotating member 30 to drive the camera module 20 to rotate.

[0033] Please see Figures 1 to 6 , Figure 5 for Figure 2 and Figure 3 The side view of a portion of the structure of the rotating member 30 shown. Figure 6 for Figure 2 and Figure 3 A bottom view of a portion of the structure of the rotating member 30 shown. In some embodiments, such as... Figures 1 to 6 As shown, the rotating body 31 includes a plate 311, and the third connecting part 32 and the fourth connecting part 33 are disposed on a first side A of the plate 311 along the thickness direction of the plate 311. The camera module 20 is located on the first side A of the plate 311 and is fixedly connected to the plate 311. The surface of the second side B of the plate 311 is used for pressing to rotate the plate 311 relative to the support member 10, thereby causing the camera module 20 to rotate relative to the support member 10. The second side B is opposite to the first side A.

[0034] The third connecting part 32, the fourth connecting part 33, and the camera module 20 are all located on the first side A of the plate 311, which helps to reduce the space occupied by the viewing angle adjustment structure 100. In addition, the rotating member 30 can be rotated by pressing the second side B of the plate 311, thereby rotating the camera module 20, making the adjustment of the shooting angle very convenient.

[0035] In some embodiments, such as Figure 6 As shown, the first side A of the plate 311 is provided with at least one first mounting post 313, each first mounting post 313 extending in a direction perpendicular to the plate 311, and each first mounting post 313 is provided with a screw hole. The camera module 20 may include a lens and a circuit board connected to each other, and the circuit board is provided with at least one screw hole. By screwing the studs into the first mounting post 313 and the screw hole on the circuit board, the first mounting post 313 and the camera module 20 can be locked and fixed, thereby fixing the camera module 20 to the plate 311.

[0036] In some other embodiments, the camera module 20 can also be fixedly connected to the plate 311 by means of riveting, snap-fitting, or bonding.

[0037] Please see Figure 7 , Figure 7 for Figure 1 The diagram shows the support member 10 from one viewpoint. In some embodiments, such as... Figure 7 As shown, the support member 10 also includes a support member body 13, and the first connecting portion 11 includes a first shaft portion 11a disposed on the support member body 13. Figures 2 to 6 As shown, the third connecting portion 32 is provided with a first shaft hole 32a, and the first shaft portion 11a is embedded in the first shaft hole 32a and can rotate within the first shaft hole 32a. Alternatively, the surface of the third connecting portion 32 near the support body 13 is provided with a first groove, and the first shaft portion 11a is embedded in the first groove and can rotate within the first groove. The first shaft portion 11a and the first shaft hole 32a or the first groove can be clearance-fitted to facilitate the rotation of the first shaft portion 11a within the first shaft hole 32a or the first groove.

[0038] Please see Figure 8 , for along Figure 1 A schematic diagram of a portion of the cross-sectional structure obtained by cutting the viewing angle adjustment structure 100 along the I-I' direction. Among them, Figure 8 The diagram illustrates the connection relationship between the first connecting portion 11 and the third connecting portion 32 in some embodiments. In some embodiments, such as... Figure 8As shown, the first connecting part 11 is the first shaft part 11a, and the third connecting part 32 is provided with a first shaft hole 32a, in which the first shaft part 11a is embedded.

[0039] Wherein, the rotation center line CL of the first shaft portion 11a and the third connecting portion 32 is the central axis of the first shaft portion 11a, and the central axis of the first shaft portion 11a passes through the center of the first shaft hole 32a or the center of the first groove.

[0040] The axial direction of the first shaft portion 11a can be approximately parallel to the large surface of the plate 311; that is, it can be completely parallel or not completely parallel, and a certain degree of inclination is allowed. Specifically, the angle between the axial direction of the first shaft portion 11a and the large surface of the plate 311 is greater than or equal to 0° and less than or equal to a preset angle, for example, the preset angle is 10°-15°. The large surface of the plate 311 can be the surface with the largest area of ​​the plate 311.

[0041] The first shaft portion 11a and the main body 13 of the support member can be integrally formed, or they can be fixedly connected by means of screwing, riveting, snapping, bonding, welding, etc.

[0042] In other embodiments, the first connecting portion 11 is a second shaft hole provided in the support body 13 or a second groove provided on the surface of the support body 13 near the third connecting portion 32. The third connecting portion 32 includes a second shaft portion, which is embedded in the second shaft hole or the second groove and is rotatable within the second shaft hole or the second groove. The second shaft portion and the second shaft hole or the second groove can be clearance-fitted to facilitate the rotation of the second shaft portion within the second shaft hole or the second groove.

[0043] The second shaft portion can be approximately parallel to the large surface of the plate 311, that is, it can be completely parallel or not completely parallel, and a certain degree of inclination is allowed. In other words, the angle between the axial direction of the second shaft portion and the large surface of the plate 311 is greater than or equal to 0° and less than or equal to a preset angle, for example, the preset angle is 10°-15°.

[0044] The second shaft portion and the plate 311 can be integrally formed, or they can be fixedly connected by means of screwing, riveting, snapping, bonding, welding, etc.

[0045] Please see Figure 9 , Figure 9 for Figure 1 A schematic diagram of the support member 10 shown from another perspective. In some embodiments, such as... Figure 9As shown, the second connecting portion 12 includes a third shaft portion 121 disposed on the support body 13. (See also...) Figure 4 and Figure 10 , Figure 10 for Figure 2 and Figure 3 The diagram shows the structure of the second mating part 332. Figure 4 and Figure 10 As shown, the fourth connecting portion 33 includes a first mating portion 331 and a second mating portion 332, which are fixedly connected to the first side A of the plate 311. The surface of the first mating portion 331 facing away from the plate 311 is recessed to form a first arc-shaped groove 331a. The surface of the second mating portion 332 facing away from the plate 311 is recessed along a direction away from the plate 311 to form a second arc-shaped groove 332a. The second arc-shaped groove 332a is located on the side of the first arc-shaped groove 331a away from the plate 311, and the groove walls of the first arc-shaped groove 331a and the second arc-shaped groove 332a together form an annular cavity 33a. The third shaft portion 121 passes through the annular cavity 33a and can rotate relative to the first mating portion 331 and the second mating portion 332 about the axis of the third shaft portion 121. The annular cavity 33a can be a closed annulus or an open annulus. The third shaft portion 121 is in contact with the cavity wall of the annular cavity 33a.

[0046] By pressing together the first mating part 331 and the second mating part 332, the damping force of the first mating part 331 and the second mating part 332 relative to the third shaft part 121 can be strengthened, so that the rotation has a certain resistance. After the external force is stopped, the combined effect of the constraint and damping effect of the annular cavity 33a can enable the first mating part 331 and the second mating part 332 to achieve self-locking after rotation, so that the angle between the plate 311 and the support member 10 can be stably maintained.

[0047] Wherein, the rotation center line CL of the third shaft portion 121 and the fourth connecting portion 33 is the central axis of the third shaft portion 121, and the central axis of the third shaft portion 121 passes through the center of the annular cavity 33a.

[0048] The axial direction of the third shaft portion 121 can be approximately parallel to the large surface of the plate 311, that is, it can be completely parallel or not completely parallel, and a certain degree of inclination is allowed. In other words, the angle between the axial direction of the first shaft portion 11a and the large surface of the plate 311 is greater than or equal to 0° and less than or equal to a preset angle, for example, the preset angle is 10°-15°.

[0049] In some embodiments, such as Figure 4 and Figure 10 As shown, the second mating part 332 includes a connected main body part 3321 and at least one mounting part 3322, which is fixedly connected to the plate body 311, thereby fixing the main body part 3321 to the plate body 311. The main body part 3321 is located on the side of the first mating part 331 away from the plate body 311, and the surface of the main body part 3321 facing the plate body 311 is recessed in a direction away from the plate body 311 to form the second arc-shaped groove 332a. In some embodiments, the mounting part 3322 includes two parts, which are distributed on opposite sides of the second arc-shaped groove 332a, thereby making the fastening force between the main body part 3321 and the plate body 311 more stable and balanced.

[0050] In some embodiments, such as Figure 4 and Figure 10 As shown, the first side A of the plate 311 is provided with at least one second mounting post 314. Each second mounting post 314 extends in a direction perpendicular to the plate 311 and is provided with a screw hole. Each mounting part 3322 is also provided with a screw hole. By screwing the screw into the screw holes of the mounting part 3322 and the second mounting post 314, the second mounting post 314 and the mounting part 3322 can be locked and fixed, so that the second mating part 332 is fixedly connected to the plate 311.

[0051] In some other embodiments, the second mating part 332 can also be fixedly connected to the plate 311 by means of riveting, snapping, bonding, etc.

[0052] In some embodiments, the first mating part 331 is integrally formed with the plate body 311. In other embodiments, the first mating part 331 can be fixedly connected to the plate body 311 by means of screwing, riveting, snapping, bonding, etc.

[0053] In some embodiments, the first mating portion 331 and the second mating portion 332 may be made of a wear-resistant polymer material to reduce the contact stress between the first mating portion 331 and the second mating portion 332 and the third shaft portion 121, thereby reducing wear and increasing service life. The wear-resistant polymer material may include, for example, POM (Polyoxymethylene).

[0054] In other embodiments, the first mating portion 331 and the second mating portion 332 may also be made of other materials.

[0055] Please see Figure 11 , for along Figure 1A schematic diagram of another section of the cross-sectional structure obtained by cutting the viewing angle adjustment structure 100 along the I-I' direction. Among them, Figure 11 The diagram illustrates the connection relationship between the second connecting portion 12 and the fourth connecting portion 33 in some embodiments. In some embodiments, such as... Figure 11 As shown, the second connecting part 12 is the third shaft part 121, and the fourth connecting part 33 includes the first mating part 331 and the second mating part 332. The first mating part 331 and the second mating part 332 cooperate to form the annular cavity 33a. The third shaft part 121 passes through the annular cavity 33a and can rotate relative to the annular cavity 33a.

[0056] Please see Figure 9 and Figure 12 , Figure 12 for Figure 1 The top view of the support member 10 is shown. In some embodiments, such as... Figure 9 and Figure 12 As shown, the third shaft portion 121 of the second connecting portion 12 includes a shaft body 1211 and at least two positioning portions 1212, the at least two positioning portions 1212 being distributed circumferentially along the shaft body 1211, and each positioning portion 1212 extending axially along the shaft body 1211.

[0057] In some embodiments, the shaft body 1211 and at least two positioning portions 1212 are integrally formed. Compared to the third shaft portion 121 being cylindrical, i.e., having a regular circular outer circumference, by providing the at least two positioning portions 1212 around the shaft body 1211, the outer circumference of the third shaft portion 121 is not a regular circle but rather an annular shape with concave and convex features. This allows the molten material to form a multi-channel mold filling path during injection molding, which can shorten the material thickness and avoid problems such as shrinkage and deformation caused by excessively thick material during injection molding. This ensures that the third shaft portion 121 passing through the annular cavity 33a is pressed tightly against the cavity wall of the annular cavity 33a, thereby ensuring damping force during rotation and better realizing the self-locking function. Furthermore, compared to the cylindrical shape of the third shaft portion 121, where the entire circumference of the third shaft portion 121 is basically in contact with the cavity wall of the annular cavity 33a, by providing an outwardly protruding positioning portion 1212 in the circumference of the shaft portion body 1211, that is, the outer surface of the positioning portion 1212 contacts the cavity wall of the annular cavity 33a, the surface of the shaft portion body 1211 located between two adjacent positioning portions 1212 will not contact the cavity wall of the annular cavity 33a. This reduces the contact area between the third shaft portion 121 and the annular cavity 33a, increases the pressure, and enables a better pressing effect between the cavity wall of the annular cavity 33a and the third shaft portion 121.

[0058] In some embodiments, such as Figures 2 to 6 As shown, the rotating body 31 also includes a side wall 312, which is connected to the periphery of the plate 311. The side wall 312 is located on the first side A of the plate 311 and forms an accommodating space with the plate 311. At least a portion of the third connecting part 32 and the fourth connecting part 33 are located within the accommodating space. Figures 4 to 6 As shown, the sidewall 312 includes a first sidewall 3121 and a second sidewall 3122. The first sidewall 3121 is close to the second connecting portion 12, and the second sidewall 3122 is close to the first connecting portion 11.

[0059] When the second connecting portion 12 includes the third shaft portion 121 and the first connecting portion 11 includes the first shaft portion 11a, the first sidewall 3121 is close to the third shaft portion 121 and the second sidewall 3122 is close to the first shaft portion 11a.

[0060] In some embodiments, such as Figure 3 and Figure 6 As shown, the portion of the surface of the first sidewall 3121 facing away from the plate 311 is recessed towards the plate 311 to form a first notch 3123. The second connecting portion 12 includes the third shaft portion 121, which passes through the first notch 3123 and the annular cavity 33a, and is rotatable relative to the first mating portion 331, the second mating portion 332 and the first sidewall 3121.

[0061] The first notch 3123 forms a clearance channel, allowing the third shaft portion 121 to be inserted into the annular cavity 33a axially.

[0062] In some embodiments, the first notch 3123 surrounds the area of ​​the shaft body 1211 where the positioning part 1212 is not provided.

[0063] By setting the first notch 3123 to cooperate with the shaft body 1211, it is equivalent to adding a rotation fulcrum, which can make the load distribution more balanced, thereby improving the stability of the rotation of the rotating part 30 relative to the support part 10.

[0064] In some embodiments, such as Figures 4 to 6 As shown, the portion of the second sidewall 3122 facing away from the plate 311 is recessed towards the plate 311 to form a second notch 3124. Figure 8 As shown, the first shaft portion 11a passes through the second notch 3124 and is embedded in the first shaft hole 32a or the first groove, and can rotate relative to the third connecting portion 32 and the second sidewall 3122.

[0065] The second notch 3124 forms a clearance channel, allowing the first shaft portion 11a to be inserted axially into the first shaft hole or the first groove.

[0066] By setting the second notch 3124 to cooperate with the first shaft portion 11a, it is equivalent to adding a rotation fulcrum, which can make the load distribution more balanced, thereby further improving the stability of the rotation of the rotating member 30 relative to the support member 10.

[0067] In some embodiments, the second connecting portion 12 is the third shaft portion 121, and the fourth connecting portion 33 is provided with a third shaft hole or a third groove is provided on the surface of the fourth connecting portion 33 near the support body 13. The third shaft portion 121 is embedded in the third shaft hole or the third groove and can rotate within the third shaft hole or the third groove. The third shaft portion 121 and the third shaft hole or the third groove can be clearance-fitted.

[0068] In some other embodiments, the second connecting portion 12 is a fourth shaft hole provided in the support body 13 or a fourth groove provided on the surface of the support body 13 near the fourth connecting portion 33. The fourth connecting portion 33 includes a fourth shaft portion, which is embedded in the fourth shaft hole or the fourth groove and is rotatable within the fourth shaft hole or the fourth groove. The fourth shaft portion and the fourth shaft hole or the fourth groove can be clearance-fitted.

[0069] In some embodiments, the first connecting portion 11 is the first shaft portion 11a, and the third connecting portion 32 includes a third mating portion and a fourth mating portion, which are fixedly connected to a first side A of the plate 311. The surface of the third mating portion facing away from the plate 311 is recessed to form a third arc-shaped groove, and the surface of the fourth mating portion facing away from the plate 311 is recessed along a direction away from the plate 311 to form a fourth arc-shaped groove. The fourth arc-shaped groove is located on the side of the third arc-shaped groove away from the plate 311, and the groove walls of the third and fourth arc-shaped grooves together form an annular cavity. The first shaft portion 11a passes through the annular cavity and is rotatable relative to the third and fourth mating portions about the axis of the first shaft portion 11a. The annular cavity can be a closed annulus or an open annulus. The third shaft portion 121 is in contact with the cavity wall of the annular cavity.

[0070] In some embodiments, such as Figure 7As shown, the support body 13 of the support member 10 includes a first cover plate 131, a second cover plate 132, and a frame 133. The first cover plate 131 and the second cover plate 132 are disposed opposite to each other, and the frame 133 connects the first cover plate 131 and the second cover plate 132. The frame 133, the first cover plate 131, and the second cover plate 132 enclose a receiving cavity 134. The first cover plate 131 has an opening 1311, and the first connecting portion 11 and the second connecting portion 12 are located inside the receiving cavity 134 and are disposed close to the opening 1311. At least a portion of the camera module 20 is located inside the receiving cavity 134, and the portion of the third connecting portion 32, the fourth connecting portion 33, and the portion of the side wall 312 of the rotating body 31 away from the plate 311 extends into the receiving cavity 134 through the opening 1311. The formed receiving cavity 134 can protect the camera module 20.

[0071] In some embodiments, such as Figure 7 and Figure 12 As shown, the support member 10 also includes a stop portion 14, which is disposed on the support member body 13 and located on the rotation path of the rotating member body 31. When the rotating member body 31 rotates relative to the support member 10 to a preset position around the rotation center line CL, the stop portion 14 abuts against the rotating member body 31 to restrict further rotation of the rotating member body 31, thereby restricting further rotation of the camera module 20. Thus, the stop portion 14 can limit the end of the stroke of the rotating member body 31 during its rotation around the rotation center line CL, thereby limiting the angle of rotation of the rotating member body 31 relative to the support member 10, and thus limiting the angle of rotation of the camera module 20 relative to the support member 10.

[0072] By setting the stop part 14, the rotation angle of the rotating member 30 can be prevented from being too large, thus preventing the camera module 20 or other components located on the first side A of the plate 311 from being exposed and affecting the aesthetics. In addition, it can also avoid the problem of poor shooting angle caused by the excessive rotation angle of the camera module 20.

[0073] In some embodiments, the projection of the stop portion 14 on the plane of the plate 311 and the projection of the side wall 312 on the plane of the plate 311 partially coincide. When the side wall 312 rotates around the rotation center line CL, the side wall 312 will abut against the stop portion 14 and cannot continue to rotate in the same direction.

[0074] In some embodiments, such as Figure 7 and Figure 12As shown, the stop portion 14 includes a first stop portion 141 and a second stop portion 142, which are respectively located on both sides of the rotation center line CL. The preset position includes a first preset position and a second preset position. Wherein, when the rotating body 31 rotates along the first rotation direction (e.g., ... Figure 7 When the rotating part 141 (in the R1 direction shown) rotates relative to the support member 10 to the first preset position, the first stop part 141 abuts against the rotating body 31 to restrict the rotating body 31 from continuing to rotate along the first rotation direction; when the rotating body 31 rotates along the second rotation direction (e.g., in the R1 direction shown), the first stop part 141 abuts against the rotating body 31 to restrict the rotating body 31 from continuing to rotate along the first rotation direction; Figure 7 When the R2 direction shown is rotated relative to the support member 10 to the second preset position, the second stop part 14 abuts against the rotating member body 31 to restrict the rotating member body 31 from continuing to rotate along the second rotation direction, which is opposite to the first rotation direction.

[0075] By placing the first stop 141 and the second stop 142 on both sides of the rotation center line CL, when the rotating body 31 rotates in two opposite rotation directions, the camera module 20 or other components located on the first side A of the plate 311 can be prevented from being exposed, and the problem of poor shooting angle caused by excessive rotation angle of the camera module 20 can also be avoided.

[0076] In some embodiments, the projection of the first stop portion 141 on the plane where the plate body 311 is located and the projection of the side wall 312 on the plane where the plate body 311 is located partially coincide. When the side wall 312 rotates around the rotation center line CL along the first rotation direction, the side wall 312 will abut against the first stop portion 141 and cannot continue to rotate along the first rotation direction.

[0077] In some embodiments, the projection of the second stop portion 142 on the plane of the plate 311 and the projection of the side wall 312 on the plane of the plate 311 partially coincide. When the side wall 312 rotates around the rotation center line CL in the second rotation direction, the side wall 312 will abut against the second stop portion 142 and cannot continue to rotate in the second rotation direction.

[0078] In some embodiments, when the rotating body 31 rotates to a third preset position, the large surface of the plate 311 of the rotating body 31 is parallel to the large surface of the second cover plate 132, and the large surface of the second cover plate 132 is the surface with the largest area of ​​the second cover plate 132.

[0079] Please see Figure 13This is a schematic diagram showing the projections of the first stop 141, the second stop 142, the rotation center line CL, the plate 311, the side wall 312, and the third connecting part 32 onto the rotation plane P in some embodiments of this application. Figure 13 The diagram illustrates the projections of the plate 311, the sidewall 312, and the third connecting portion 32 onto the rotation plane P when the rotating body 31 rotates to the third preset position. The rotation plane P is perpendicular to the rotation center line CL.

[0080] In some embodiments, such as Figure 13 As shown, the projection of the first stop portion 141 on the rotation plane P is the first projection 141', the projection of the second stop portion 142 on the rotation plane P is the second projection 142', the projection of the rotation center line CL on the rotation plane P is the third projection CL', the projection of the plate body 311 on the rotation plane P when it rotates to the third preset position is the fourth projection 311', the projection of the side wall 312 on the rotation plane P when it rotates to the third preset position is the fifth projection 312', and the projection of the third connecting portion 32 on the rotation plane P when it rotates to the third preset position is the sixth projection 32'.

[0081] When the rotating body 31 rotates to the first preset position, the side wall 312 abuts against the first region of the first stop portion 141, and the projection of the first region on the rotation plane P is the seventh projection A1 (e.g., Figure 13 (As shown). The angle between the line connecting the end of the fifth projection 312' closest to the first projection 141' and the third projection CL' and the line connecting the seventh projection A1 and the third projection CL' is the first angle α. Therefore, when the rotating body 31 rotates from the third preset position along the first rotation direction, the maximum rotation angle of the rotating body 31 is the first angle α, that is, the maximum rotation angle of the camera module 20 is the first angle α, at which time the rotating body 31 rotates to the first preset position.

[0082] When the rotating body 31 rotates to the second preset position, the side wall 312 abuts against the second region of the second stop portion 142, and the projection of the second region on the rotation plane P is the eighth projection A2 (e.g., Figure 13(As shown). The angle between the line connecting the end of the fifth projection 312' near the second projection 142' and the third projection CL' and the line connecting the eighth projection A2 and the third projection CL' is the second included angle β. Therefore, when the rotating body 31 rotates from the third preset position along the second rotation direction, the maximum rotation angle of the rotating body 31 is the second included angle β, that is, the maximum rotation angle of the camera module 20 is the second included angle β. At this time, the rotating body 31 rotates to the second preset position.

[0083] Therefore, by adjusting the first included angle α and the second included angle β, the maximum rotation angle of the rotating member 30 when rotating along the first rotation direction and the maximum rotation angle of the rotating member 30 when rotating along the second rotation direction can be adjusted.

[0084] The first included angle α and the second included angle β may be equal or unequal.

[0085] In some embodiments, the first included angle α and the second included angle β are greater than or equal to 10° and less than or equal to 15°. In other embodiments, the first included angle α and the second included angle β may be other angle values.

[0086] In some embodiments, the first stop portion 141 and the second stop portion 142 are both adjacent to the first connecting portion 11 and located on opposite sides of the first connecting portion 11 (e.g., Figure 7 and Figure 12 As shown in the diagram, the distance between the first stop portion 141 and the second stop portion 142 and the first connecting portion 11 is less than the distance between them and the second connecting portion 12; or, both the first stop portion 141 and the second stop portion 142 are adjacent to the second connecting portion 12 and located on opposite sides of the second connecting portion 12, meaning the distance between the first stop portion 141 and the second stop portion 142 and the second connecting portion 12 is less than the distance between them and the first connecting portion 11. In other embodiments, one of the first stop portion 141 and the second stop portion 142 is adjacent to the first connecting portion 11, and the other is adjacent to the second connecting portion 12, and the first stop portion 141 and the second stop portion 142 are located on opposite sides of the rotation center line of the first connecting portion 11 and the second connecting portion 12.

[0087] In some embodiments, the stop portion 14 includes a third stop portion and / or a fourth stop portion (not shown), wherein the first stop portion 141 and the second stop portion 142 are both adjacent to one of the first connecting portion 11 and the second connecting portion 12, and the third stop portion and / or the fourth stop portion is adjacent to the other of the first connecting portion 11 and the second connecting portion 12. When the stop portion 14 includes the third stop portion and the fourth stop portion, the third stop portion and the fourth stop portion are located on both sides of the rotation center line CL.

[0088] Please see Figure 14 and Figure 15 , Figure 14 for Figure 1 The diagram shows the structure of the viewing angle adjustment structure 100 from a second viewing angle. Figure 15 for Figure 1 The diagram shows the view adjustment structure 100 in the third-person view. Figure 14 The diagram illustrates the state of the viewing angle adjustment structure 100 when the rotating component 30 is in the third preset position. Figure 15 The diagram illustrates the state of the viewing angle adjustment structure 100 when the rotating member 30 rotates to the first preset position along the first rotation direction.

[0089] In some embodiments, such as Figures 1 to 3 , Figure 6 As shown, the plate 311 is provided with a through hole 311a, and the imaging acquisition end 21 of the camera module 20 faces the through hole 311a so that the camera module 20 can take pictures through the through hole 311a.

[0090] The imaging acquisition end 21 refers to the end of the camera module 20 where the optical lens is located. The imaging acquisition end 21 is used to focus light onto the image sensor of the camera module 20, so that the image sensor generates an image signal based on the light signal and transmits the image signal to the image processor, which processes the image signal to generate the final image.

[0091] In some embodiments, the viewing angle adjustment structure 100 further includes a driving component (not shown), which is connected to the third connecting portion 32 and / or the fourth connecting portion 33. The driving component drives the third connecting portion 32 and the fourth connecting portion 33 to rotate relative to the support member 10 about the rotation center line CL, thereby causing the rotating body 31 and the camera module 20 to rotate relative to the support member 10 about the rotation center line CL. Thus, the viewing angle adjustment structure 100 can intelligently and automatically adjust the viewing angle of the camera module 20.

[0092] In some embodiments, the drive assembly includes a motor, the output shaft of which is fixedly connected to the third connecting part 32 or the fourth connecting part 33. When the motor is operating, the output shaft drives the third connecting part 32 or the fourth connecting part 33 to rotate relative to the support member 10, thereby driving the rotating body 31 and the camera module 20 to rotate relative to the support member 10. The motor housing can be fixed to the support member 10, and the support member 10 provides support for the motor.

[0093] In some embodiments, the motor includes two motors, one of which has its output shaft fixedly connected to the third connecting part 32, and the other motor has its output shaft fixedly connected to the fourth connecting part 33. When the two motors are working, their output shafts operate at the same speed, and the output shafts of the two motors synchronously drive the connected parts to rotate relative to the support member 10, thereby driving the rotating body 31 and the camera module 20 to rotate relative to the support member 10.

[0094] The output shaft of the motor can be directly connected to the third connecting part 32 or the fourth connecting part 33, or it can be connected to the third connecting part 32 or the fourth connecting part 33 through a reduction gear. The reduction gear may include a gear reducer, a worm gear reducer, etc.

[0095] In some embodiments, the drive assembly includes a cylinder assembly and a transmission assembly. The transmission assembly is connected to the cylinder assembly and the first connecting portion 11 or the third connecting portion 32. The transmission assembly converts the linear motion of the cylinder assembly into rotational motion, thereby causing the first connecting portion 11 or the third connecting portion 32 to rotate relative to the support member 10, and further causing the rotating body 31 and the camera module 20 to rotate relative to the support member 10. The transmission assembly may include a crank-slider mechanism, a gear and rack mechanism, a sprocket and chain mechanism, an anti-rotation yoke mechanism, etc.

[0096] In other embodiments, the driving component may be other types of driving devices capable of driving the third connecting part 32 and / or the fourth connecting part 33 to rotate relative to the support member 10.

[0097] In some embodiments, the viewing angle adjustment structure 100 further includes an interaction module and a processor (not shown). The interaction module is used for users to perform viewing angle adjustment operations, and the processor is used to control the driving component to drive the third connecting part 32 and the fourth connecting part 33 to rotate relative to the support member 10 about the rotation center line CL in response to the user's viewing angle adjustment operation on the interaction module.

[0098] The interaction module may include a touchscreen, mechanical buttons, etc. For example, when the interaction module is a touchscreen, the touchscreen has a rotation angle setting interface. The processor is used to obtain the target rotation angle input by the user on the rotation angle setting interface, and control the driving component to drive the third connecting part 32 and the fourth connecting part 33 to rotate relative to the support member 10 around the rotation center line CL with respect to the target rotation angle. When the interaction module includes multiple mechanical buttons, each mechanical button corresponds to a different rotation angle. The processor is used to determine the target rotation angle in response to the user's pressing operation of the mechanical buttons, and control the driving component to drive the third connecting part 32 and the fourth connecting part 33 to rotate relative to the support member 10 around the rotation center line CL with respect to the target rotation angle.

[0099] The fixed connection involved in the embodiments of this application can be a detachable fixed connection or a non-detachable fixed connection.

[0100] Please see Figure 16 This is a structural block diagram of the camera component 200 in some embodiments of this application. For example... Figure 16 As shown, the camera assembly 200 includes the viewing angle adjustment structure 100 described in any of the foregoing embodiments.

[0101] The camera module 20 may include one or more.

[0102] The camera assembly 200 may further include the image processor. Alternatively, the image processor may also be integrated into the camera module 20.

[0103] In some embodiments, the camera assembly 200 may also include a battery, a charging interface, a card slot, a microphone, a speaker, etc.

[0104] The camera component 200 can be applied to various application scenarios, including photography, videography, medical imaging, machine vision, security, automotive electronics, drones, and medical devices.

[0105] In some embodiments, the camera assembly 200 is mounted and fixed on a carrier that may or may not be transparent to light.

[0106] In some embodiments, the camera assembly 200 is mounted and fixed to a first side of the carrier, and the camera assembly 200 is used to image objects on the first side and / or the second side of the carrier. The first side of the carrier is opposite to the second side of the carrier.

[0107] In some embodiments, the camera assembly 200 further includes a connector that connects the support 10 to a first side of the carrier, for example, between the second cover plate 132 and the first side of the carrier.

[0108] In some embodiments, the connector includes at least one of hook and loop fasteners, adhesive, negative pressure structure, and magnetic fastener.

[0109] In some embodiments, the connector includes a first connector and a second connector stacked in a direction perpendicular to the second cover plate 132, wherein the side of the first connector opposite to the second connector is connected to the second cover plate 132, and the side of the second connector opposite to the first connector is connected to the first side of the carrier.

[0110] In some embodiments, the first connector includes one of hook-and-loop fasteners and loop fasteners, and the second connector includes the other of hook-and-loop fasteners and loop fasteners. The side of the first connector facing the second cover plate 132 is tightly adhered to the second cover plate 132 using adhesive. Pressing firmly allows the adhesive to fully exert its adhesiveness, ensuring the first connector is securely fixed to the second cover plate 132. Then, the side of the second connector facing the carrier is adhered to a first side of the carrier using adhesive. Appropriate pressure is applied to firmly attach the second connector to the carrier. Finally, the assembled camera assembly 200 is brought close to the carrier.

[0111] The side of the first connector facing the second connector is either a hook side or a velvet side, and the side of the second connector facing the first connector is either a hook side or a velvet side. Thus, by applying appropriate pressure, the hook side and the velvet side are ensured to fully engage, completing the installation of the camera assembly 200 onto the carrier.

[0112] When disassembly is required, the mating surfaces of the first connector and the second connector are separated, so that the hook surface and the velvet surface are completely detached, and the camera assembly 200 can be removed from the carrier.

[0113] In other embodiments, when both the first connector and the second connector are Velcro, the first connector and the second connector can be fixed to the second cover plate 132 and the first side of the carrier by other means, such as by screwing, riveting, etc.

[0114] In some embodiments, the first connector includes a first magnetic chuck, and the second connector includes a second magnetic chuck. The first and second magnetic chucks are opposite magnets and can attract each other. The first magnetic chuck is fixed to the second cover plate 132, and the second magnetic chuck is fixed to the carrier. During installation, under the action of magnetic force, the two opposite magnets automatically attract each other, precisely align, and tightly adhere, completing the installation. During disassembly, the first and second magnetic chucks are separated along a direction perpendicular to the magnetic force.

[0115] Furthermore, when installing the camera assembly 200 using the aforementioned Velcro, magnetic, or other installation methods, if it is found that the camera assembly 200 is installed crookedly on the carrier, there is no need to forcefully peel off the adhesive and damage the adhesive surface. Simply separate the connecting surfaces of the first connector and the second connector, readjust the position of the camera assembly 200, and after the camera module 20 is at a suitable angle, reattach the two.

[0116] In some embodiments, the connector includes an adhesive, such as double-sided tape or glue. The adhesive can be applied to corresponding positions on the second cover plate 132 and the carrier, aligning and bonding them together, and applying appropriate pressure to complete the installation of the camera assembly 200. During disassembly, a special solvent is used to dissolve or reduce the adhesive's stickiness, allowing the second cover plate 132 to be separated from the carrier.

[0117] In some embodiments, the connector includes a negative pressure structure. The negative pressure structure may include a silicone suction cup. During installation, the silicone suction cup is aligned with the carrier, and pressure is applied to ensure the suction cup fits tightly against the first side of the carrier, ensuring no gaps between them. As air is gradually expelled, a negative pressure is created between them. Under the action of external atmospheric pressure, the silicone suction cup adheres tightly to the carrier, thereby stably mounting the camera assembly 200 on the carrier. During disassembly, outside air can be introduced to balance the air pressure between the silicone suction cup and the carrier. Once the negative pressure disappears, the silicone suction cup can be separated from the carrier, and the camera assembly 200 can be removed.

[0118] When installing via negative pressure adsorption, if the camera assembly 200 is found to be misaligned on the carrier, there is no need to forcefully peel off the adhesive and damage the bonding surface. Simply separate the silicone suction cup from the bonding surface of the carrier, readjust the position of the camera assembly 200, and after the camera module 20 is at a suitable angle, reattach the two.

[0119] The camera component 200 can be installed on the carrier in ways including but not limited to the above-mentioned Velcro, magnetic attraction, adhesive, negative pressure adsorption, etc. The installation method of the camera component 200 can be set according to the actual situation and is not specifically limited here.

[0120] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0121] The above are the implementation methods of the embodiments of this application. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of the embodiments of this application, and these improvements and modifications are also considered to be within the protection scope of this application.

Claims

1. A view angle adjustment structure, characterized by, The view adjustment structure includes: The support member includes a first connecting portion and a second connecting portion that are spaced apart. Camera module; A rotating component includes a rotating component body, a third connecting portion, and a fourth connecting portion. The third connecting portion and the fourth connecting portion are spaced apart from the rotating component body. The third connecting portion is rotatably connected to the first connecting portion, and the fourth connecting portion is rotatably connected to the second connecting portion. The rotation center lines of the first connecting portion and the third connecting portion coincide with the rotation center lines of the second connecting portion and the fourth connecting portion. The camera module is fixedly connected to the rotating component body. The rotation of the rotating component body relative to the support member causes the camera module to rotate relative to the support member, thereby changing the viewing angle of the camera module.

2. The viewing angle adjusting structure according to claim 1, wherein The rotating component body includes a plate. The third connecting part and the fourth connecting part are disposed on a first side of the plate along the thickness direction of the plate. The camera module is located on the first side of the plate and is fixedly connected to the plate. The surface of the second side of the plate is used for pressing to make the plate rotate relative to the support member, thereby driving the camera module to rotate relative to the support member. The second side is opposite to the first side.

3. The viewing angle adjusting structure according to claim 2, wherein The support member further includes a support member body. The first connecting portion includes a first shaft portion disposed on the support member body. The third connecting portion is provided with a first shaft hole or a first groove is provided on the surface of the third connecting portion near the support member body. The first shaft portion is embedded in the first shaft hole or the first groove. Alternatively, the first connecting portion is a second shaft hole disposed on the support member body or a second groove disposed on the surface of the support member body near the third connecting portion. The third connecting portion includes a second shaft portion, which is embedded in the second shaft hole or the second groove.

4. The viewing angle adjusting structure according to claim 2 or 3, characterized by The support member further includes a support member body. The second connecting portion includes a third shaft portion disposed on the support member body. The fourth connecting portion includes a first mating portion and a second mating portion connected to a first side of the plate. The surface of the first mating portion away from the plate is recessed towards the plate to form a first arc-shaped groove. The surface of the second mating portion towards the plate is recessed in a direction away from the plate to form a second arc-shaped groove. The second arc-shaped groove is located on the side of the first arc-shaped groove away from the plate. The groove walls of the first arc-shaped groove and the second arc-shaped groove together form an annular cavity. The third shaft portion passes through the annular cavity and can rotate relative to the first mating portion and the second mating portion about the axis of the third shaft portion.

5. The viewing angle adjusting structure according to claim 4, wherein The third shaft portion of the second connecting portion includes a shaft body and at least two positioning portions, the at least two positioning portions being distributed circumferentially along the shaft body, and each positioning portion extending axially along the shaft body.

6. The viewing angle adjusting structure according to claim 4, wherein The rotating component body also includes a sidewall, which is connected to the periphery of the plate and is located on the first side of the plate to form an accommodating space. At least a portion of the first connecting portion and the third connecting portion are located within the accommodating space. The sidewall includes a first sidewall near the third shaft portion. A portion of the first sidewall facing away from the plate is recessed toward the plate to form a first notch. The third shaft portion passes through the first notch and the annular cavity and is rotatable relative to the first mating portion, the second mating portion and the first sidewall.

7. The viewing angle adjusting structure according to claim 3, wherein The rotating component body also includes a sidewall, which is connected to the periphery of the plate and is located on the first side of the plate to form an accommodating space. At least a portion of the first connecting portion and the third connecting portion are located within the accommodating space. The sidewall includes a second sidewall near the first shaft portion. A portion of the second sidewall facing away from the plate is recessed toward the plate to form a second notch. The first shaft portion passes through the second notch and is embedded in the first shaft hole or the first groove, and can rotate relative to the third connecting portion and the second sidewall.

8. The viewing angle adjusting structure according to claim 1, wherein The support member further includes a support member body and a stop portion. The stop portion, the first connecting portion, and the second connecting portion are disposed on the support member body. The stop portion is located on the rotation path of the rotating member body. When the rotating member body rotates relative to the support member to a preset position around the rotation center line, the stop portion abuts against the rotating member body to restrict the rotating member body from continuing to rotate, thereby restricting the camera module from continuing to rotate.

9. The viewing angle adjusting structure according to claim 8, wherein The stop portion includes a first stop portion and a second stop portion, which are respectively located on both sides of the rotation center line. The preset position includes a first preset position and a second preset position. When the rotating component body rotates relative to the support member in a first rotation direction to the first preset position, the first stop portion abuts against the rotating component body to restrict the rotating component body from continuing to rotate in the first rotation direction. When the rotating component body rotates relative to the support member in a second rotation direction to the second preset position, the second stop portion abuts against the rotating component body to restrict the rotating component body from continuing to rotate in the second rotation direction, which is opposite to the first rotation direction.

10. The viewing angle adjusting structure according to claim 2, wherein The plate has a through hole, and the imaging acquisition end of the camera module faces the through hole so that the camera module can take pictures through the through hole.

11. The viewing angle adjusting structure according to claim 2, wherein The support further comprises a support body, the support body comprising a frame, a first cover plate and a second cover plate, the first cover plate and the second cover plate being oppositely arranged, the frame being connected between the first cover plate and the second cover plate, the frame, the first cover plate and the second cover plate forming an accommodating cavity, the first cover plate being provided with an opening, the first connecting portion and the second connecting portion being located in the accommodating cavity and arranged close to the opening, at least part of the camera module being located in the accommodating cavity, the third connecting portion and the fourth connecting portion extending into the accommodating cavity through the opening.

12. The viewing angle adjusting structure according to claim 1, wherein The angle-of-view adjusting structure further comprises a driving assembly, the driving assembly being connected with the third connecting portion and / or the fourth connecting portion, the driving assembly being used to drive the third connecting portion and the fourth connecting portion to rotate about the rotation center line relative to the support, so as to drive the rotating member body and the camera module to rotate about the rotation center line relative to the support.

13. A camera assembly comprising: The camera assembly comprises the angle-of-view adjusting structure according to any one of claims 1-12.