Integrated camera module and display device

By employing a guide support and shielding components in the camera module design, the issues of integration and sealing when combining privacy protection and heat dissipation functions in the camera module are resolved, achieving excellent heat dissipation performance and convenient installation and disassembly.

CN223978685UActive Publication Date: 2026-03-06GUANGZHOU SHIYUAN ELECTRONICS CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing camera modules, when integrating privacy protection and heat dissipation functions, suffer from poor integration and sealing, making them prone to water and dust ingress, which reduces their lifespan and makes installation and disassembly inefficient.

Method used

The camera module adopts an integrated design. The circuit board assembly is slidably connected by a guide support in the first housing to form a drawer structure. Combined with the movable shielding component in the housing, the sealing and dustproof effect are improved, and the heat dissipation performance is enhanced by clever gaps and heat dissipation layout.

Benefits of technology

It improves the privacy and sealing of the camera module, enhances heat dissipation, and facilitates installation and disassembly, thereby increasing assembly efficiency.

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Abstract

The utility model relates to the technical field of electronic equipment, and discloses an integrated camera module and a display device. A first shell of the integrated camera module is provided with an accommodating cavity and a first opening; the circuit board assembly is arranged in the containing cavity, the camera assembly comprises a first support and a camera part, the first support is connected with the circuit board assembly, and the camera part is arranged on the first support and electrically connected with the circuit board assembly; the shielding assembly is movably arranged on the first support so as to avoid the camera component or shield the camera component, and a part of the shielding assembly extends out of the first shell; the second shell is connected with the first shell and covers the first opening, and the shielding assembly is located between the second shell and the camera component. According to the integrated camera module, on the basis that the integrated camera module has good heat dissipation performance, the privacy and the sealing performance of the camera module can be improved, the camera module is good in integrity and convenient to mount and dismount by adjusting the internal structure, and the efficiency is improved.
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Description

Technical Field

[0001] This application relates to the field of electronic device technology, and in particular to an integrated camera module and display device. Background Technology

[0002] A display device is an electronic device used to display text, images, and other content, including but not limited to monitors and interactive display panels. With the increasing intelligence of electronic devices, display devices can be used in conjunction with camera modules to further expand their application scenarios, such as conference rooms, classrooms, and studios. Current cameras need to integrate privacy and heat dissipation functions, but their integration and sealing are often poor, making them prone to water and dust ingress, which significantly reduces their lifespan. Utility Model Content

[0003] This application provides an integrated camera module and display device. In addition to having good heat dissipation performance, the integrated camera module can improve the privacy and sealing of the camera module. Furthermore, by adjusting the internal structure, the camera module has good integration, making it easy to install and disassemble, thus improving efficiency.

[0004] To address the aforementioned technical problems, one technical solution adopted in this application embodiment is: providing an integrated camera module, including a first housing, a circuit board assembly, a camera assembly, a blocking assembly, and a second housing. The first housing has a receiving cavity and a first opening, the first opening connecting the receiving cavity to the outside. The circuit board assembly is disposed within the receiving cavity. The camera assembly is disposed within the receiving cavity, and the camera assembly includes a first bracket and a camera component. The first bracket is connected to the circuit board assembly, the camera component is disposed on the first bracket, and the camera component is electrically connected to the circuit board assembly. The blocking assembly is movably disposed on the first bracket to avoid or block the camera component, and a portion of the blocking assembly extends out of the first housing. The second housing is connected to the first housing and covers the first opening, and the blocking assembly is located between the second housing and the camera component.

[0005] In some embodiments, the first housing is provided with a guide support portion, the circuit board assembly is slidably connected to the guide support portion, and the circuit board assembly slides into the receiving cavity from the first opening, or slides out of the receiving cavity.

[0006] In some embodiments, the circuit board assembly includes a power board and a second bracket, the second bracket being slidably connected to a guide support, the power board being fixed to the second bracket, the second bracket being connected to a first bracket, and the camera component being electrically connected to the power board.

[0007] In some embodiments, the first bracket is provided with a first groove, and a portion of the camera component is exposed within the first groove. The blocking assembly includes a first baffle slidably disposed within the first groove. The first baffle has a clearance position relative to the first bracket and a blocking position for blocking the camera component. The first baffle is configured to be driven by an external force to switch between the clearance position and the blocking position.

[0008] In some embodiments, the first bracket is provided with a second slide groove, the plane of the second slide groove intersects with the plane of the first slide groove, the shielding component includes a second baffle, the second baffle is slidably disposed in the second slide groove, the second baffle is connected to the first baffle, and the second baffle moves synchronously with the first baffle.

[0009] In some embodiments, the bottom wall of the first slide is provided with a first through groove, and the surface of the first baffle away from the second housing is provided with a first connecting part, which is located in the first through groove;

[0010] The bottom wall of the second slide is provided with a second through groove, which is connected to the first through groove. The surface of the second baffle away from the first outer shell is provided with a second connecting part, which is located in the second through groove and is connected to the first connecting part.

[0011] In some embodiments, the top of the first housing is provided with a third through groove, which connects the second slide groove and the outside; the shielding assembly includes a driving member, which is movably disposed in the third through groove, a portion of the driving member is connected to the second baffle, and a portion of the driving member is located outside the receiving cavity.

[0012] In some embodiments, the second through slot is connected to the receiving cavity and the third through slot respectively. When the first baffle is in the avoidance position, the second baffle covers a portion of the second through slot, and the remaining portion of the second through slot is connected to the outside. When the first baffle is in the blocking position, the second baffle and the driving member together cover the third through slot.

[0013] In some embodiments, the length of the first baffle is greater than the length of the first through groove in the direction of sliding of the first baffle, and the first baffle covers the first through groove when it is in the avoidance position.

[0014] In some embodiments, the first bracket extends a closed annular protrusion toward the surface of the second housing, the closed annular protrusion and the first bracket enclose to form a first groove, and the closed annular protrusion abuts against the second housing.

[0015] In some embodiments, the first bracket is provided with a first limiting part and a second limiting part, and the second baffle is provided with a third limiting part; the third limiting part is connected to the first limiting part, and the first baffle is located in an avoidance position; the third limiting part is connected to the second limiting part, and the first baffle is located in an obstruction position.

[0016] In some embodiments, the second housing is at least partially transparent, with the transparent portion disposed opposite to the camera component; or, the second housing has a second opening disposed opposite to the camera component, and the camera module includes a transparent plate connected to the side of the second housing away from the first housing, with the transparent plate covering the second opening.

[0017] In some embodiments, the bottom of the first housing has a third opening, and the camera module includes a metal base connected to the first housing and covering the third opening. A driver chip is provided on the surface of the power board facing the metal base, and the driver chip abuts against a second bracket, which in turn abuts against the metal base.

[0018] In some embodiments, the circuit board assembly includes a first thermal conductive element and a second thermal conductive element, the first thermal conductive element being disposed between the driver chip and the second bracket, and the second thermal conductive element being disposed between the second bracket and the metal base.

[0019] To solve the above-mentioned technical problems, another technical solution adopted in this application embodiment is: to provide a display device, including a frame assembly, a display assembly, and an integrated camera module, wherein the integrated camera module is provided with a metal base, and the metal base is abutted and connected to the frame assembly; the metal base is provided with a first positioning member, and the frame assembly is provided with a second positioning member, and the first positioning member and the second positioning member are connected in cooperation; and / or, the metal base is provided with a first fixing member, and the frame assembly is provided with a second fixing member, and the first fixing member and the second fixing member are connected in cooperation.

[0020] The beneficial effects of this application embodiment are as follows: The integrated camera module of this application embodiment includes a first housing, a circuit board assembly, a camera assembly, a shielding assembly, and a second housing. The first housing has a receiving cavity and a first opening, the first opening connecting the receiving cavity to the outside; the circuit board assembly is disposed within the receiving cavity; the camera assembly is disposed within the receiving cavity, the camera assembly including a first bracket and a camera component, the first bracket being connected to the circuit board assembly, the camera component being disposed on the first bracket, and the camera component being electrically connected to the circuit board assembly; the shielding assembly is movably disposed on the first bracket to avoid or shield the camera component, a portion of the shielding assembly extending out of the first housing; the second housing is connected to the first housing and covers the first opening, the shielding assembly being located between the second housing and the camera component. Through the above structure, the integrated camera module, while possessing good heat dissipation performance, can improve the privacy and sealing of the camera module, and by adjusting the internal structure, the camera module has good integration, facilitating installation and disassembly, and improving efficiency. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the specific embodiments of this application, the accompanying drawings used in the description of the specific embodiments will be briefly introduced below. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to scale.

[0022] Figure 1 This is an exploded view of the integrated camera module according to an embodiment of this application.

[0023] Figure 2 This is an exploded view of the first bracket and the blocking component of the integrated camera module according to an embodiment of this application.

[0024] Figure 3 This is a schematic diagram of the first baffle of the integrated camera module in an avoidance position according to an embodiment of this application.

[0025] Figure 4 This is a schematic diagram of the first baffle of the integrated camera module in the embodiment of this application in the blocking position.

[0026] Figure 5 yes Figure 4 Sectional view along the middle AA.

[0027] Figure 6 This is a schematic diagram of the circuit board assembly of the integrated camera module according to an embodiment of this application.

[0028] Figure 7 This is a schematic diagram of the first housing and metal base of the integrated camera module according to an embodiment of this application.

[0029] Figure 8 This is a schematic diagram of a display device according to another embodiment of this application.

[0030] Figure 9 yes Figure 8 A magnified schematic diagram of a local area from view B.

[0031] Figure 10 yes Figure 8 A magnified schematic diagram of part B from another perspective. Detailed Implementation

[0032] To facilitate understanding of this application, a more detailed description is provided below with reference to the accompanying drawings and specific embodiments. It should be noted that when an element is described as "fixed to" another element, it can be directly on the other element, or one or more intermediate elements may exist between them. When an element is described as "connected" to another element, it can be directly connected to the other element, or one or more intermediate elements may exist between them. The terms "upper," "lower," "inner," "outer," "vertical," "horizontal," etc., used in this specification 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 of this application. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0033] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the application. The term "and / or" as used in this specification includes any and all combinations of one or more of the associated listed items.

[0034] Furthermore, the technical features involved in the different embodiments of this application described below can be combined with each other as long as they do not conflict with each other.

[0035] With the development of intelligent and multifunctional display devices, they can be used in conjunction with camera modules to further expand their application scenarios and functional demonstrations, such as in conference rooms, classrooms, and studios. When the camera module is not in use, privacy protection is necessary to enhance privacy and security. Current methods involve adding a cover to the outside of the camera. The cover is removed when the camera is needed, allowing it to function normally; when not in use, the cover is replaced to prevent spying. However, the cover is separate from the camera and is prone to loss. Current cameras need to integrate privacy protection and heat dissipation functions, but their integration and sealing are often poor, making them susceptible to water and dust ingress, significantly reducing their lifespan. Furthermore, existing camera modules are internally fixed using screws, making installation and disassembly cumbersome and inefficient.

[0036] Based on the above problems, this application provides an embodiment of an integrated camera module 100. By providing a guide support 15 inside the first housing 10, the circuit board assembly 20 is slidably connected to the guide support 15 to form a drawer structure, which has good integration, facilitates installation and disassembly, and improves efficiency. By setting the shielding component 40 inside the first housing 10, it can prevent the shielding component 40 from being lost. On the other hand, it can improve the dustproof and waterproof effect of the integrated camera module 100 and improve the sealing performance to ensure the cleanliness of the camera component 32. Furthermore, through clever gaps and heat dissipation layout, it is beneficial to enhance the heat dissipation performance of the integrated camera module 100 during operation.

[0037] Please see Figure 1 and Figure 5 This application embodiment of the integrated camera module 100 includes a first housing 10, a circuit board assembly 20, a camera assembly 30, a blocking assembly 40, and a second housing 50. The first housing 10 has a receiving cavity 11 and a first opening 12, the first opening 12 connecting the receiving cavity 11 to the outside. The circuit board assembly 20 is disposed within the receiving cavity 11. The camera assembly 30 is disposed within the receiving cavity 11, and the camera assembly 30 includes a first bracket 31 and a camera component 32. The first bracket 31 is connected to the circuit board assembly 20, and the camera component 32 is disposed on the first bracket 31 and electrically connected to the circuit board assembly 20. The blocking assembly 40 is movably disposed on the first bracket 31 to avoid or block the camera component 32. A portion of the blocking assembly 40 extends out of the first housing 10 for user contact to drive the blocking assembly 40 to move. The second housing 50 is connected to the first housing 10 and covers the first opening 12, and the blocking assembly 40 is located between the second housing 50 and the camera component 32. In this embodiment, the blocking component 40 is movably disposed inside the first housing 10 and partially extends out of the first housing 10 for user operation, so as to push the blocking component 40 to move relative to the first housing 10 to avoid or block the camera component 32. This can prevent the blocking component 40 from being lost and improve the privacy protection of the camera component 32.

[0038] In some embodiments, the inner wall of the first housing 10 is provided with a guide support portion 15. The circuit board assembly 20 is slidably connected to the guide support portion 15, allowing the circuit board assembly 20 to slide into the receiving cavity 11 from the first opening 12, or slide out of the receiving cavity 11. The circuit board assembly 20 and the first housing 10 form a drawer-type structure, facilitating the installation and removal of the circuit board assembly 20. The guide support portion 15 provides guidance and positioning for the installation of the circuit board assembly 20, reducing positioning time and effectively improving assembly efficiency compared to screw fixing. In some embodiments, guide support portions 15 are provided on two opposite side walls of the first housing 10. The two guide support portions 15 simultaneously guide and support the circuit board assembly 20, enhancing the stability of the movement of the circuit board assembly 20.

[0039] In some embodiments, please refer to Figure 1 and Figure 2 The first bracket 31 has a first sliding groove 311, and the bottom of the first sliding groove 311 has a through hole 3112. A portion of the camera component 32 is positioned at the through hole 3112 to be exposed within the first sliding groove 311, allowing the camera component 32 to capture images normally. The blocking assembly 40 includes a first baffle 41, which is slidably disposed within the first sliding groove 311. Along the sliding direction of the first baffle 41, the length of the first baffle 41 is less than the length of the first sliding groove 311. Please refer to the following: Figure 3 and Figure 4 The first baffle 41 has a clearance position M1 for avoiding the camera component 32 and an obstruction position M2 for obstructing the camera component 32 relative to the first bracket 31. The first baffle 41 is configured to be driven by an external force to switch between the clearance position M1 and the obstruction position M2. A structure with a first groove 311 on the first bracket 31 makes the sliding of the first baffle 41 relative to the first bracket 31 more stable, and the first baffle 41 can completely obstruct the camera component 32 at the obstruction position M2, achieving the purpose of preventing the camera component 32 from being viewed. In some embodiments, a portion of the first baffle 41 extends out of the first housing 10 to facilitate sliding by a user.

[0040] In some embodiments, please refer to Figure 1 A first baffle 41 is disposed between the first bracket 31 and the second housing 50. The first baffle 41 abuts against the first bracket 31 and the second housing 50 respectively to hold the first baffle 41 within the first sliding groove 311. A guide protrusion 411 is provided on the side of the first baffle 41 facing the second housing 50, and a guide groove 51 is provided on the surface of the second housing 50 facing the first baffle 41. The guide protrusion 411 is inserted into the guide groove 51 to make the sliding of the first baffle 41 more precise and smooth.

[0041] In some embodiments, please refer to Figures 1 to 3The first bracket 31 is provided with a second sliding groove 312, the plane of which intersects with the plane of the first sliding groove 311. As an example, the first sliding groove 311 is disposed on the side of the first bracket 31 facing the first opening 12, and the second sliding groove 312 is disposed on the side of the first bracket 31 facing the top of the first housing 10, the plane of which the second sliding groove 312 is nearly perpendicular to the plane of which the first sliding groove 311 is. The blocking assembly 40 includes a second baffle 42, which is slidably disposed within the second sliding groove 312. Along the sliding direction of the second baffle 42, the length of the second baffle 42 is less than the length of the second sliding groove 312. The second baffle 42 is connected to the first baffle 41, so that the second baffle 42 moves synchronously with the first baffle 41. The second baffle 42 is configured to be driven by the user to switch the first baffle 41 between an avoidance position M1 and a blocking position M2. In some embodiments, a portion of the second baffle 42 extends beyond the top of the first housing 10 to allow the user to drive the second baffle 42 from the top of the first housing 10.

[0042] Compared to the structure where the first baffle 41 extends directly out of the first outer shell 10, external dust and debris can easily enter the first groove 311 through the gap between the first baffle 41 and the first outer shell 10, thus contaminating the camera component 32 inside the first groove 311. However, in this application, by setting a second baffle 42 to drive the first baffle 41 to move synchronously, most of the dust and debris is retained in the second groove 312. This increases the difficulty for dust to enter the first groove 311, further improving the cleanliness of the camera component 32.

[0043] In some embodiments, please refer to Figure 2 and Figure 3 The bottom wall of the first sliding groove 311 is provided with a first through groove 3111. The surface of the first baffle 41 facing away from the second outer shell 50 is provided with a first connecting part 412. The first connecting part 412 is located in the first through groove 3111 and can slide back and forth along the first through groove 3111. The bottom wall of the second sliding groove 312 is provided with a second through groove 3121, which communicates with the first through groove 3111. The surface of the second baffle 42 facing away from the first outer shell 10 is provided with a second connecting part 421. The second connecting part 421 is located in the second through groove 3121 and can slide back and forth along the second through groove 3121. Please refer to the following: Figure 5 The second connecting part 421 is fixedly connected to the first connecting part 412 to realize the synchronous movement of the first baffle 41 and the second baffle 42.

[0044] In this embodiment, the first slide groove 311 and the second slide groove 312 are not directly connected, but are connected through the first through groove 3111 and the second through groove 3121. This further increases the difficulty for dust and debris in the second slide groove 312 to enter the first slide groove 311. By setting the first through groove 3111 and the second through groove 3121 to be connected, the first connecting part 412 and the second connecting part 421 can be connected, realizing the connection of the first baffle 41 and the second baffle 42 for synchronous movement. It can be understood that in this embodiment, neither the first through groove 3111 nor the second through groove 3121 is connected to the receiving cavity 11, which helps to reduce dust entering the receiving cavity 11 and contaminating the circuit board assembly 20. However, in other embodiments, due to other structural assembly requirements or the need to improve heat dissipation performance, the first through groove 3111 and the second through groove 3121 may be connected to the receiving cavity 11.

[0045] In some embodiments, please refer to Figure 4 and Figure 5 The top of the first housing 10 is provided with a third through slot 13, which connects the second slide groove 312 to the outside. The shielding assembly 40 includes a drive member 43, which is movably disposed within the third through slot 13. A portion of the drive member 43 is connected to the second baffle 42 so that the two move synchronously, and a portion of the drive member 43 is located outside the receiving cavity 11. The drive member 43 is configured to be driven by the user to slide the second baffle 42 within the second slide groove 312, thereby causing the first baffle 41 to switch between the avoidance position M1 and the shielding position M2. By opening a narrow third through slot 13 on the top of the first housing 10, dust entering the second slide groove 312 is further reduced, and even less dust can enter the first slide groove 311.

[0046] In some embodiments, please refer to Figures 3 to 5The second through slot 3121 communicates with the receiving cavity 11 and the third through slot 13, respectively. When the first baffle 41 is in the clearance position M1, the second baffle 42 covers a portion of the second through slot 3121, and the remaining portion of the second through slot 3121 connects the receiving cavity 11 to the outside. When the first baffle 41 is in the blocking position M2, the second baffle 42 and the driving member 43 together cover the third through slot 13. Specifically, when the first baffle 41 is in the clearance position M1, the camera component 32 needs to be in normal working condition. At this time, the camera component 32 and the circuit board assembly 20 will generate heat. Since the second through slot 3121 and the third through slot 13 are located at the top of the receiving cavity 11, the hot airflow in the receiving cavity 11 moves upward and can be dissipated to the outside through the second through slot 3121 and the third through slot 13, which helps to accelerate the heat dissipation in the receiving cavity 11. When the first baffle 41 is in the blocking position M2, the camera component 32 does not need to be in working condition, so there is no need for heat dissipation or the need for heat dissipation is small. The second baffle 42 and the drive component 43 together block the third channel 13, which can prevent dust and debris from entering the second slide groove 312 through the third channel 13, thus achieving the effect of dust prevention.

[0047] In some embodiments, please refer to Figures 2 to 4 Along the sliding direction of the first baffle 41, the length of the first baffle 41 is greater than the length of the first through groove 3111. When the first baffle 41 is in the clearance position M1, it covers the first through groove 3111. Since the camera component 32 needs heat dissipation inside the receiving cavity 11 when in operation, i.e.... Figure 3 As shown, when the first baffle 41 is in the avoidance position M1, part of the second channel 312 and the third channel 13 are in an open state, and external dust can enter the second channel 3121 through the third channel 13. However, when the first baffle 41 is in the avoidance position M1, it completely covers the first channel 3111, which can prevent dust from entering the first slide groove 311 through the first channel 3111 from the second channel 3121, thereby further reducing the contamination of the camera component 32 by dust and ensuring the cleanliness of the camera component 32.

[0048] In some embodiments, please refer to Figure 2 and Figure 5 The first support 31 has a closed annular protrusion 313 extending from its surface toward the second housing 50. The closed annular protrusion 313 and the first support 31 form a first groove 311. The closed annular protrusion 313 abuts against the second housing 50 to seal the gap between the first support 31 and the second housing 50. This structure reduces the gap between the first support 31 and the second housing 50, further improving the sealing performance of the first groove 311 and helping to reduce dust entering the first groove 311.

[0049] In some embodiments, please refer to Figure 2The first bracket 31 is provided with a first limiting part 314 and a second limiting part 315. Please refer to both. Figure 5 The second baffle 42 is provided with a third limiting part 422. The third limiting part 422 is used to connect with the first limiting part 314 and the second limiting part 315, so that the second baffle 42 is fixed relative to the first bracket 31, thereby fixing the first baffle 41 relative to the first bracket 31. Specifically, as Figure 3 As shown, when the third limiting part 422 is connected to the first limiting part 314, the second baffle 42 drives the first baffle 41 to the avoidance position M1 and fixes it relative to the first bracket 31; Figure 4 As shown, when the third limiting part 422 and the second limiting part 315 are connected, the second baffle 42 drives the first baffle 41 to be located in the blocking position M2 and fixed relative to the first bracket 31.

[0050] As an example, such as Figure 2 As shown, both the first limiting part 314 and the second limiting part 315 are protrusions, and are spaced apart on the sidewall of the second through groove 3121. Figure 5 As shown, the third limiting part 422 is also a protrusion and is disposed on the side wall of the second connecting part 421. During the sliding of the second baffle 42, the third limiting part 422 can cross the first limiting part 314 and the second limiting part 315. Specifically, when the third limiting part 422 is located on the side of the first limiting part 314 away from the second limiting part 315, the first baffle 41 is in the avoidance position M1; when the third limiting part 422 is located on the side of the second limiting part 315 away from the first limiting part 314, the first baffle 41 is in the blocking position M2. Furthermore, during the process of the third limiting part 422 crossing the first limiting part 314 and the second limiting part 315, the second baffle 42 and the driving member 43 can provide feedback to the user with a tactile feedback, so that the user can confirm whether the movement of the first baffle 41 is fully in place.

[0051] In some embodiments, the second housing 50 is at least partially transparent, and the transparent portion is disposed opposite to the camera component 32 so that the camera component 32 can normally capture images. Alternatively, please refer to Figure 1 The second housing 50 is provided with a second opening 52, which is disposed opposite to the camera component 32. The integrated camera module 100 includes a transparent plate 60, which is connected to the side of the second housing 50 away from the first housing 10. The transparent plate 60 covers the second opening 52 to prevent external dust and debris from entering the first groove 311 from the second opening 52 and contaminating the camera component 32.

[0052] In some embodiments, please refer to Figures 5 to 7The circuit board assembly 20 includes a power board 21 and a second bracket 22. The second bracket 22 is connected to the first housing 10. Specifically, the first housing 10 is provided with a guide support 15. The second bracket 22 is slidably connected to the guide support 15. The second bracket 22 and the first housing 10 form a drawer structure, so that the second bracket 22 can slide into the receiving cavity 11 from the first opening 12 or slide out of the receiving cavity 11. This facilitates the rapid assembly of the circuit board assembly 20 and the first housing 10 and reduces the difficulty of installation.

[0053] The power board 21 is fixed to the second bracket 22, and the first bracket 31 is connected to the second bracket 22. The camera component 32 is electrically connected to the power board 21. The bottom of the first housing 10 has a third opening 14, and the integrated camera module 100 includes a metal base 70. The metal base 70 is connected to the first housing 10 and covers the third opening 14. The surface of the power board 21 facing the metal base 70 has a driver chip 211, which abuts against the second bracket 22, and the second bracket 22 abuts against the metal base 70. Through the above structure, the heat generated by the driver chip 211 during operation can be directly transferred to the metal base 70 through the second bracket 22. The metal base 70 has good thermal conductivity and can quickly dissipate heat to the outside, accelerating the heat dissipation of the driver chip 211.

[0054] In some embodiments, please refer to Figure 5 and Figure 6 The circuit board assembly 20 includes a first heat-conducting element 23 and a second heat-conducting element 24. The first heat-conducting element 23 is disposed between the driver chip 211 and the second bracket 22, and the second heat-conducting element 24 is disposed between the second bracket 22 and the metal base 70. By adding the first heat-conducting element 23 and the second heat-conducting element 24, the heat dissipation effect on the driver chip 211 can be further enhanced. As an example, the first heat-conducting element 23 is thermally conductive silicone, and the second heat-conducting element 24 is thermally conductive foam.

[0055] Please see Figure 8 This application also provides an embodiment of a display device 1000, which includes a bezel assembly 201, a display assembly 202, and an integrated camera module 100. The display assembly 202 is disposed on the bezel assembly 201, and the bezel assembly 201 surrounds the edge of the display assembly 202. A metal base 70 in the integrated camera module 100 is connected to the bezel assembly 201 to fix the integrated camera module 100 to the bezel assembly 201. The integrated camera module 100 is electrically connected to the display assembly 202 to enable the transmission of image data between the integrated camera module 100 and the display assembly 202. As an example, the integrated camera module 100 is disposed on the top of the bezel assembly 201; in other examples, the integrated camera module 100 may also be disposed on the side or bottom of the bezel assembly 201.

[0056] In some embodiments, please refer to Figure 8 and Figure 9 The metal base 70 is provided with a first positioning member 71, and the frame assembly 201 is provided with a second positioning member 2011. The first positioning member 71 and the second positioning member 2011 are connected to each other to achieve quick positioning of the metal base 70 on the frame assembly 201 for easy installation. As an example, the first positioning member 71 is a boss, and the second positioning member 2011 is a groove, with the boss and groove interlocking. Of course, in other examples, the first positioning member 71 can be a groove, and the second positioning member 2011 can be a boss.

[0057] The metal base 70 is provided with a first fixing member 72, and the frame assembly 201 is provided with a second fixing member 2012. The first fixing member 72 and the second fixing member 2012 cooperate to connect and fix the integrated camera module 100 to the frame assembly 201. As an example, one of the first fixing member 72 and the second fixing member 2012 is a magnet, and the other is a magnetic material, such as an iron sheet, so that the metal base 70 and the frame assembly 201 can be quickly connected by magnetic attraction. Of course, when the second fixing member 2012 is a magnet, the metal base 70 itself can act as a magnetic material and be magnetically attracted and fixed to the magnet. In other embodiments, both the first fixing member 72 and the second fixing member 2012 can be magnets.

[0058] The integrated camera module 100 of this application embodiment includes a first housing 10, a circuit board assembly 20, a camera assembly 30, a blocking assembly 40, and a second housing 50. The first outer shell 10 has a receiving cavity 11 and a first opening 12, the first opening 12 connecting the receiving cavity 11 to the outside. The first outer shell 10 has a guide support 15. The circuit board assembly 20 is slidably connected to the guide support 15, so that the circuit board assembly 20 slides into the receiving cavity 11 from the first opening 12, or slides out of the receiving cavity 11. The camera assembly 30 is disposed in the receiving cavity 11. The camera assembly 30 includes a first bracket 31 and a camera component 32. The first bracket 31 is connected to the circuit board assembly 20, the camera component 32 is disposed on the first bracket 31, and the camera component 32 is electrically connected to the circuit board assembly 20. The blocking assembly 40 is movably disposed on the first bracket 31 to avoid or block the camera component 32. A portion of the blocking assembly 40 extends out of the first outer shell 10. The second outer shell 50 is connected to the first outer shell 10 and covers the first opening 12. The blocking assembly 40 is located between the second outer shell 50 and the camera component 32. By providing a guide support 15 inside the first housing 10, the circuit board assembly 20 is slidably connected to the guide support 15 to form a drawer structure, which has good integrity, facilitates installation and disassembly, and improves efficiency. By placing the shielding component 40 inside the first housing 10, it can prevent the shielding component 40 from being lost. On the other hand, it can improve the dustproof and waterproof effect of the integrated camera module 100 and improve the sealing performance to ensure the cleanliness of the camera component 32. Furthermore, through clever gaps and heat dissipation layout, it is beneficial to enhance the heat dissipation performance of the integrated camera module 100 during operation.

[0059] The above description is merely an embodiment of this application and does not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.

Claims

1. An integrated camera module, comprising: The application relates to an integrated camera module. The application relates to an integrated camera module.

2. The integrated camera module according to claim 1, wherein the first shell is provided with a guide support part, the circuit board assembly is in sliding connection with the guide support part, and the circuit board assembly slides into or out of the accommodating cavity from or through the first opening.

3. The integrated camera module according to claim 2, wherein the circuit board assembly comprises a power board and a second support part, the second support part is in sliding connection with the guide support part, the power board is fixed to the second support part, the second support part is connected with the first support part, and the camera component is in electrical connection with the power board.

4. The integrated camera module according to claim 1, wherein the first support part is provided with a first sliding groove, and a part of the camera component is exposed in the first sliding groove.

5. The integrated camera module according to claim 4, wherein the first support part is provided with a second sliding groove, the plane of the second sliding groove intersects with the plane of the first sliding groove, the shielding assembly comprises a second baffle, the second baffle is in sliding connection with the first baffle, and the second baffle is in synchronous movement with the first baffle.

6. The integrated camera module according to claim 5, wherein the bottom wall of the first sliding groove is provided with a first through groove, the surface of the first baffle away from the second shell is provided with a first connecting part, and the first connecting part is located in the first through groove.

7. The integrated camera module according to claim 6, wherein the bottom wall of the second sliding groove is provided with a second through groove, the second through groove is in communication with the first through groove, the surface of the second baffle away from the first shell is provided with a second connecting part, the second connecting part is located in the second through groove, and the second connecting part is connected with the first connecting part. ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ ​ The top of the first shell is provided with a third through slot, which is communicated with the second sliding slot and the outside; The shielding assembly comprises a driving member movably arranged in the third through slot, a part of the driving member is connected with the second baffle, and another part of the driving member is located outside the accommodating cavity. 8.The integrated camera module according to claim 7, wherein, The second through slot is communicated with the accommodating cavity and the third through slot respectively, when the first baffle is located at the avoiding position, the second baffle covers a part of the second through slot, and the remaining part of the second through slot is communicated with the outside, when the first baffle is located at the shielding position, the second baffle and the driving member jointly cover the third through slot. 9.The integrated camera module according to claim 8, wherein, In the sliding direction of the first baffle, the length of the first baffle is greater than the length of the first through slot, and the first baffle covers the first through slot when the first baffle is located at the avoiding position. 10.The integrated camera module according to any one of claims 4-9, wherein, The first support extends a closed annular protrusion towards the surface of the second shell, the closed annular protrusion and the first support enclose the first sliding slot, and the closed annular protrusion abuts against the second shell. 11.The integrated camera module according to claim 5, wherein, The first support is provided with a first limiting part and a second limiting part, and the second baffle is provided with a third limiting part; The third limiting part is connected with the first limiting part, and the first baffle is located at the avoiding position; the third limiting part is connected with the second limiting part, and the first baffle is located at the shielding position. 12.The integrated camera module according to claim 1, wherein, The second shell is at least partially transparent, and the transparent part is arranged opposite to the camera component; Alternatively, the second shell is provided with a second opening, the second opening is arranged opposite to the camera component, the integrated camera module comprises a transparent plate, the transparent plate is connected to the side of the second shell away from the first shell, and the transparent plate covers the second opening. 13.The integrated camera module according to claim 3, wherein, The bottom of the first shell is provided with a third opening, the integrated camera module comprises a metal base, the metal base is connected with the first shell and covers the third opening; The power board is provided with a driving chip towards the surface of the metal base, the driving chip abuts against the second support, and the second support abuts against the metal base. 14.The integrated camera module according to claim 13, wherein, The circuit board assembly comprises a first heat-conducting member and a second heat-conducting member, the first heat-conducting member is arranged between the driving chip and the second support, and the second heat-conducting member is arranged between the second support and the metal base.

15. A display device comprising: The integrated camera module is arranged on the frame assembly, and the frame assembly is arranged on the display assembly. The metal base is provided with a first positioning member, and the frame assembly is provided with a second positioning member. The metal base is provided with a first fixing member, and the frame assembly is provided with a second fixing member.