Binocular monitoring head shaking machine shell
By designing an innovative connection structure for the bottom shell, rotating shell, and spherical shell, the problem of the lack of quick installation in existing binocular monitoring oscillating camera shells has been solved, enabling rapid installation and disassembly, improving user efficiency and equipment stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 东莞市雅尔电子科技有限公司
- Filing Date
- 2025-04-11
- Publication Date
- 2026-04-28
AI Technical Summary
The existing binocular monitoring pan-tilt camera housings do not have a quick installation function, making disassembly and assembly cumbersome for users and affecting their use.
A binocular monitoring oscillating camera housing was designed, including a bottom shell and a rotating shell. The bottom shell has an embedded mounting base that is connected by a protrusion and a groove, combined with an anti-slip pad and mounting holes to achieve quick installation. The rotating shell has a sliding groove and a slider connection, combined with a motor mounting base and a motor output end connection base to ensure stable motor operation. The spherical shell is fixedly connected by a hemispherical shell, providing protection and stability for internal components.
It enables rapid installation and disassembly of the binocular monitoring oscillating camera, improving the user's installation and disassembly efficiency, ensuring stable operation of the equipment and protection of internal components, and has high practical value.
Smart Images

Figure CN224178240U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of monitoring equipment technology, specifically to a housing for a binocular monitoring oscillating camera. Background Technology
[0002] With increasing awareness of security and safety, surveillance equipment is being used more and more widely in daily life and work. Binocular omnidirectional cameras, as a common type of surveillance equipment, can rotate horizontally and vertically to expand the monitoring range. Simultaneously, they acquire stereoscopic visual information through binocular cameras, improving the accuracy and reliability of monitoring. However, existing binocular omnidirectional cameras still have some shortcomings in practical use.
[0003] Based on the above, the inventors have discovered the following problem: the current binocular monitoring oscillating camera housing does not have a quick installation function, making disassembly and assembly cumbersome for users and affecting their use.
[0004] Therefore, in view of this, we have studied and improved the existing structure and its shortcomings, and provided a binocular monitoring oscillating machine shell in order to achieve a more practical purpose. Utility Model Content
[0005] The purpose of this utility model is to provide a housing for a binocular monitoring oscillating camera, in order to solve the problem mentioned in the background art that the current binocular monitoring oscillating camera housing does not have a quick installation function, which makes the disassembly and assembly more cumbersome for users and affects their use.
[0006] In view of the above problems, the technical solution proposed by this utility model is as follows:
[0007] A binocular monitoring oscillating camera housing, comprising:
[0008] The bottom shell has a groove at its bottom end, a mounting base is embedded in the inner side of the groove, a pair of mounting holes are opened at the bottom end of the mounting base, a pair of first retaining plates are installed on both sides of the mounting base, a retaining groove is opened at the bottom end of the first retaining plates, a pair of second retaining plates are installed at the bottom end of the inner side of the groove, a protrusion is installed at the top of the second retaining plates, the protrusion and the groove are engaged and connected, and three anti-slip pads are installed at the bottom end of the bottom shell.
[0009] A rotating shell has a groove at its bottom end, a slider is installed at the top inner side of the bottom shell, the outer side of the slider is slidably connected to the inner side of the groove, and a spherical shell is provided at the top inner side of the rotating shell.
[0010] Furthermore, a first camera protective cover is installed on the first side of the bottom shell, speaker mesh covers are installed on the second and fourth sides of the bottom shell, a power socket is opened on the third side of the bottom shell, and a first motor mounting bracket is installed at the bottom inside the bottom shell.
[0011] The beneficial effects of adopting the above-mentioned further solution are that the first camera protective cover installed on the first side of the bottom shell can protect the camera from damage caused by external dust, moisture, collisions, etc. The speaker mesh covers installed on the second and fourth sides of the shell can prevent foreign objects from entering and damaging the speaker. The power socket is opened on the third side of the bottom shell to facilitate power connection to the oscillating machine and ensure continuous power supply to the equipment. The first motor mounting bracket is installed at the bottom inside the bottom shell to fix the motor and keep the motor stable during operation.
[0012] Furthermore, a control button slot is provided on one side of the rotating shell, and a motor output terminal connector is installed at the bottom of the rotating shell.
[0013] The advantage of adopting the above-mentioned further solution is that a control button slot is provided on one side of the rotating shell for placing control buttons, making it convenient for users to operate the oscillating machine.
[0014] Furthermore, the spherical shell includes a first hemispherical shell and a second hemispherical shell, with one side of the first hemispherical shell and one side of the second hemispherical shell fixedly connected.
[0015] The beneficial effect of adopting the above-mentioned further solution is that, by installing a motor output terminal connector at the bottom of the rotating shell, it can be connected to the motor output terminal to transmit the power of the motor to the rotating shell and realize the rotation function. By fixing it to one side of the first hemispherical shell and one side of the second hemispherical shell, it is convenient for the installation and maintenance of internal components, and at the same time, it can provide protection for the internal motor, circuit board, etc.
[0016] Furthermore, a second motor mounting bracket is installed on the inner side of the first hemispherical shell.
[0017] The beneficial effect of adopting the above-mentioned further solution is that a second motor mounting base is installed on the inner side of the first hemispherical shell to fix the motor, ensuring stable operation of the motor and providing power for the rotation of the hemispherical shell.
[0018] Furthermore, a circuit board mounting bracket is installed on the inner side of the second hemispherical shell, and a second camera protective cover is installed on one side of the second hemispherical shell.
[0019] The beneficial effects of adopting the above-mentioned further solution are that a circuit board mounting bracket is installed on the inner side of the second hemispherical shell to fix the circuit board and keep it stable during operation. A second camera protective cover is installed on one side of the second hemispherical shell to protect the camera and prevent it from being affected by the external environment.
[0020] Furthermore, a rotating shaft is installed at the top of both sides of the interior of the rotating shell, and a circular opening is provided on the adjacent sides of the first hemispherical shell and the second hemispherical shell. The outer side of the rotating shaft and the inner side of the circular opening are rotatably connected.
[0021] The beneficial effect of adopting the above-mentioned further solution is that the rotational stability of the spherical shell is improved by rotating the outer side of the shaft and the inner side of the circular opening.
[0022] Compared with the prior art, the beneficial effects of this utility model are as follows: The housing of this binocular monitoring oscillating camera has a mounting base embedded in the inner side of the groove, which facilitates the installation and fixation of the bottom shell. The mounting base is connected by a protrusion and a groove, allowing for installation and disassembly by rotating the bottom shell. Three anti-slip pads are installed at the bottom of the bottom shell to improve its anti-slip performance. A pair of mounting holes are provided at the bottom of the mounting base, allowing for screw fixation of the mounting base to the mounting surface. A protective cover for the first camera is installed on the first side of the bottom shell to protect the camera from external dust, moisture, collisions, and other damage. Speaker mesh covers are installed on the second and fourth sides of the shell to prevent foreign objects from entering and damaging the speaker. A power socket is provided on the third side of the bottom shell for easy power connection to the oscillating camera, ensuring continuous power supply. A first motor mounting base is installed at the inner bottom of the bottom shell to fix the motor and ensure its stability during operation. A control button slot is provided on one side of the rotating shell for placing control buttons. This invention facilitates user operation of the oscillating machine. A motor output connector is installed at the bottom of the rotating shell, allowing connection to the motor output to transmit power to the rotating shell and achieve rotation. A fixed connection is made between one side of the first hemisphere and one side of the second hemisphere, facilitating the installation and maintenance of internal components and providing protection for the internal motor and circuit board. A second motor mounting bracket is installed inside the first hemisphere to secure the motor and ensure stable operation, providing power for the shell's rotation. A circuit board mounting bracket is installed inside the second hemisphere to secure the circuit board, ensuring its stability during operation. A second camera protective cover is installed on one side of the second hemisphere to protect the camera from external environmental influences. The rotating shaft's outer side and the round opening's inner side are rotatably connected, improving the shell's rotational stability. This invention effectively achieves rapid installation, improving user assembly and disassembly efficiency and possessing high practical value. Attached Figure Description
[0023] Figure 1 This is one of the three-dimensional structural schematic diagrams disclosed in the embodiments of this utility model;
[0024] Figure 2 This is one of the disassembled three-dimensional structural diagrams disclosed in the embodiments of this utility model;
[0025] Figure 3This is the second disassembled three-dimensional structural schematic diagram disclosed in the embodiment of this utility model;
[0026] Figure 4 This is the third disassembled three-dimensional structural diagram disclosed in the embodiment of this utility model;
[0027] Figure 5 This is the fourth disassembled three-dimensional structural diagram disclosed in the embodiment of this utility model.
[0028] In the diagram: 100, bottom shell; 10001, groove; 10002, second retaining plate; 10003, protrusion; 10004, speaker grille; 10005, first camera protective cover; 10006, slider; 10007, power connector; 10008, first motor mounting base; 101, rotating shell; 10101, slide groove; 10102, motor output end connector; 10103, control button slot; 102, spherical shell; 10201, first hemispherical shell; 10202, second hemispherical shell; 10203, second camera protective cover; 10204, second motor mounting base; 10205, circuit board mounting base; 103, mounting base; 10301, mounting hole; 10302, first retaining plate; 10303, slot; 104, anti-slip pad. Detailed Implementation
[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0030] Please see Figures 1-5This utility model provides a technical solution: a binocular monitoring oscillating camera housing, comprising: a bottom shell 100, a groove 10001 formed at the bottom end of the bottom shell 100, a mounting base 103 embedded in the inner side of the groove 10001, a pair of mounting holes 10301 formed at the bottom end of the mounting base 103, a pair of first locking plates 10302 mounted on both sides of the mounting base 103, a locking groove 10303 formed at the bottom end of the first locking plates 10302, a pair of second locking plates 10002 mounted at the inner bottom end of the groove 10001, a protrusion 10003 mounted at the top end of the second locking plates 10002, the protrusion 10003 and the groove 10001 engaging and connecting; three anti-slip pads 104 mounted at the bottom end of the bottom shell 100; and a rotating shell 101. The bottom end of the rotating shell 101 is provided with a sliding groove 10101. A slider 10006 is installed on the inner top of the bottom shell 100. The outer side of the slider 10006 and the inner side of the sliding groove 10101 are slidably connected. The inner top of the rotating shell 101 is provided with a spherical shell 102. An installation seat 103 is embedded in the inner side of the groove 10001 to facilitate the installation and fixation of the bottom shell 100. The bottom shell 100 can be installed and disassembled by engaging the protrusion 10003 and the groove 10001. Three anti-slip pads 104 are installed on the bottom end of the bottom shell 100 to improve the anti-slip performance of the bottom shell 100. A pair of mounting holes 10301 are provided on the bottom end of the installation seat 103 to facilitate the installation seat 103 to be fixed to the mounting surface with screws.
[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0032] Please see Figures 1-5A first camera protective cover 10005 is installed on the first side of the bottom shell 100. Speaker mesh covers 10004 are installed on the second and fourth sides of the bottom shell 100. A power socket 10007 is provided on the third side of the bottom shell 100. A first motor mounting bracket 10008 is installed at the bottom interior of the bottom shell 100. A control button slot 10103 is provided on one side of the rotating shell 101. A motor output connector 10102 is installed at the bottom of the rotating shell 101. The first camera protective cover 10005 installed on the first side of the bottom shell 100 protects the camera from external dust, moisture, impacts, and other damage. The first camera protective cover 10005 installed on the second and fourth sides of the bottom shell 100 protects the camera from external dust, moisture, impacts, and other damage. The device includes a speaker grille 10004 to prevent foreign objects from entering and damaging the speaker. A power socket 10007 is provided on the third side of the bottom shell 100 for easy connection to the oscillating machine, ensuring continuous power supply. A first motor mounting bracket 10008 is installed at the bottom of the bottom shell 100 to fix the motor and keep it stable during operation. A control button slot 10103 is provided on one side of the rotating shell 101 for placing control buttons for easy operation of the oscillating machine. A motor output terminal connector 10102 is installed at the bottom of the rotating shell 101, which can be connected to the motor output terminal to transmit the motor's power to the rotating shell and realize the rotation function.
[0033] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0034] Please see Figures 1-5The spherical shell 102 includes a first hemispherical shell 10201 and a second hemispherical shell 10202. One side of the first hemispherical shell 10201 and one side of the second hemispherical shell 10202 are fixedly connected. A second motor mounting base 10204 is installed on the inner side of the first hemispherical shell 10201, and a circuit board mounting base 10205 is installed on the inner side of the second hemispherical shell 10202. A second camera protective cover 10203 is installed on one side of the second hemispherical shell 10202. A rotating shaft is installed at the top of both sides inside the rotating shell 101. Circular openings are opened on adjacent sides of the first hemispherical shell 10201 and the second hemispherical shell 10202. The outer side of the rotating shaft is rotatably connected to the inner side of the circular opening. One side of 202 is fixedly connected, which facilitates the installation and maintenance of internal components and provides protection for internal motors, circuit boards, etc. A second motor mounting bracket 10204 is installed on the inner side of the first hemispherical shell 10201 to fix the motor and ensure stable operation of the motor, providing power for the rotation of the shell. A circuit board mounting bracket 10205 is installed on the inner side of the second hemispherical shell 10202 to fix the circuit board and keep the circuit board stable during operation. A second camera protective cover 10203 is installed on one side of the second hemispherical shell 10202 to protect the camera from the influence of the external environment. The rotational stability of the shell 102 is improved by rotating the outer side of the rotating shaft and the inner side of the circular opening.
[0035] Specifically, the working principle of this binocular monitoring oscillating camera housing is as follows: During use, a mounting base 103 is embedded in the inner side of the groove 10001, facilitating the installation and fixation of the base shell 100. The base shell 100 is installed and removed by rotating it, connected by the engagement of the protrusion 10003 and the groove 10001. Three anti-slip pads 104 are installed at the bottom of the base shell 100 to improve its anti-slip performance. A pair of mounting holes 10301 are provided at the bottom of the mounting base 103, allowing it to be fixed to the mounting surface with screws. The first... A first camera protective cover 10005 is installed on the side to protect the camera from external dust, moisture, impact, and other damage. Speaker mesh covers 10004 are installed on the second and fourth sides of the housing 100 to prevent foreign objects from entering and damaging the speaker. A power socket 10007 is provided on the third side of the bottom housing 100 for easy power connection to the oscillating camera, ensuring continuous power supply to the device. A first motor mounting bracket 10008 is installed at the bottom inside the bottom of the bottom housing 100 to fix the motor and keep it stable during operation. A control button slot 1 is provided on one side of the rotating housing 101. 0103 is used to house control buttons for easy operation of the oscillating machine. A motor output connector 10102 is installed at the bottom of the rotating shell 101, allowing connection to the motor output to transmit power to the rotating shell and achieve rotation. It is fixedly connected to one side of the first hemispherical shell 10201 and the other side of the second hemispherical shell 10202, facilitating the installation and maintenance of internal components and providing protection for internal components such as the motor and circuit boards. A second motor mounting bracket 10204 is installed inside the first hemispherical shell 10201 to secure the motor. Stable operation provides power for the rotation of the spherical shell. A circuit board fixing seat 10205 is installed on the inner side of the second hemispherical shell 10202 to fix the circuit board and keep it stable during operation. A second camera protective cover 10203 is installed on one side of the second hemispherical shell 10202 to protect the camera from the influence of the external environment. The rotational connection between the outer side of the rotating shaft and the inner side of the circular opening improves the rotational stability of the spherical shell 102. This utility model can effectively realize the function of quick installation, improve the user's disassembly and assembly efficiency, and has high practical value.
Claims
1. A housing for a binocular monitoring oscillating camera, characterized in that, include: The bottom shell (100) has a groove (10001) at its bottom end. A mounting base (103) is embedded in the inner side of the groove (10001). A pair of mounting holes (10301) are opened at the bottom end of the mounting base (103). A pair of first locking plates (10302) are installed on both sides of the mounting base (103). A locking groove (10303) is opened at the bottom end of the first locking plate (10302). A pair of second locking plates (10002) are installed at the bottom end of the inner side of the groove (10001). A protrusion (10003) is installed at the top of the second locking plate (10002). The protrusion (10003) and the groove (10001) are engaged and connected. Three anti-slip pads (104) are installed at the bottom end of the bottom shell (100). A rotating shell (101) has a groove (10101) at its bottom end. A slider (10006) is installed on the inner top of the bottom shell (100). The outer side of the slider (10006) and the inner side of the groove (10101) are slidably connected. A spherical shell (102) is provided on the inner top of the rotating shell (101).
2. The housing of a binocular monitoring oscillating camera according to claim 1, characterized in that, A first camera protective cover (10005) is installed on the first side of the bottom shell (100), a speaker mesh cover (10004) is installed on the second and fourth sides of the bottom shell (100), a power socket (10007) is opened on the third side of the bottom shell (100), and a first motor mounting base (10008) is installed at the bottom inside the bottom of the bottom shell (100).
3. The housing of a binocular monitoring oscillating camera according to claim 1, characterized in that, A control button slot (10103) is provided on one side of the rotating shell (101), and a motor output terminal connector (10102) is installed at the bottom of the rotating shell (101).
4. The housing of a binocular monitoring oscillating camera according to claim 1, characterized in that, The spherical shell (102) includes a first hemispherical shell (10201) and a second hemispherical shell (10202), with one side of the first hemispherical shell (10201) and one side of the second hemispherical shell (10202) fixedly connected.
5. The housing of a binocular monitoring oscillating camera according to claim 4, characterized in that, A second motor mounting bracket (10204) is installed on the inner side of the first hemispherical shell (10201).
6. The housing of a binocular monitoring oscillating camera according to claim 4, characterized in that, A circuit board mounting bracket (10205) is installed on the inner side of the second hemispherical shell (10202), and a second camera protective cover (10203) is installed on one side of the second hemispherical shell (10202).
7. The housing of a binocular monitoring oscillating camera according to claim 4, characterized in that, The rotating shell (101) has a rotating shaft installed at the top of both sides inside. The first hemispherical shell (10201) and the second hemispherical shell (10202) have circular openings on their adjacent sides. The outer side of the rotating shaft and the inner side of the circular opening are rotatably connected.