Full-angle high-definition network infrared gun-type camera
By introducing the rear-end camera and arc-shaped guide groove magnet structure into the infrared gun-type camera, the complex problems of full-angle monitoring and lens replacement are solved, full-angle monitoring and efficient lens replacement are achieved, and the cost and risk of high-altitude operations are reduced.
Patent Information
- Application Number
- CN202510820829.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-19
- Publication Date
- 2025-09-05
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing infrared gun-type cameras cannot achieve full-angle monitoring. The installation of two cameras increases costs, and the lens replacement process is complicated and the risk of high-altitude operations is high.
A full-angle high-definition network infrared gun-type camera is designed. By setting a rear-end camera behind the front-end camera, 180° monitoring is achieved. The lens can be quickly replaced through an arc guide groove and a magnet structure, and the rear-end camera can be flexibly adjusted in angle through an adjustment structure.
It realizes full-angle monitoring, reduces costs, improves the efficiency and safety of lens replacement, and enhances the flexibility and stability of the camera.
Smart Images

Figure CN120602749A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of infrared cameras, in particular to a full-angle high-definition network infrared gun-type camera. Background Art
[0002] A gun-type camera is a camera with a rectangular shape. It is widely used in the field of security monitoring due to its unique appearance and functional characteristics. With the widespread and in-depth application of security monitoring cameras, the high-definition imaging technology, high-definition fog-penetrating function, infrared detection and locking, day and night conversion infrared camera function of the gun-type camera have been widely used in television monitoring projects.
[0003] Existing infrared gun-type cameras cannot monitor at all angles, so two cameras need to be installed on the bracket to achieve full-angle monitoring. The use of two cameras increases the cost of regional monitoring. At the same time, the existing camera lenses cannot be replaced quickly. When replacing, the top rain cover needs to be removed to replace the lens. This process consumes a lot of time, and long-term high-altitude operations will also increase the risk of injury to maintenance personnel. Summary of the Invention
[0004] The present invention provides a full-angle high-definition network infrared gun-type camera, which solves the problems raised by the above background technology.
[0005] The present invention provides the following technical solution: a full-angle high-definition network infrared gun-type camera, comprising a front-end camera, a rear-end camera disposed behind the front-end camera, the front-end camera and the rear-end camera having the same structure, a front-end housing mounted on the outer edge of the front-end camera, a rear-end connecting assembly mounted on the outer edge of the rear-end camera, and the rear-end connecting assembly mounted on the front-end housing; The front-end camera includes a mounting bracket, an aluminum shell is installed on the outer edge of the mounting bracket, a monitoring mainboard is installed on the outer edge of the mounting bracket, an image camera and an infrared camera are installed on the outer edge of the monitoring mainboard, and the image camera and the infrared camera are both provided with a circular frame at one end away from the mounting bracket, the circular frame is installed on the aluminum shell, the inner wall of the circular frame is provided with an arc-shaped guide groove, the inner wall of the arc-shaped guide groove is provided with a transverse groove, the inner wall of the transverse groove is provided with a magnet, the inner wall of the circular frame is movably connected to a protective lens, the outer edge of the protective lens is provided with a long groove, and the inner wall of the long groove is slidably connected to an iron block.
[0006] As a preferred technical solution of the present invention: a circular groove is opened on the inner wall of the long groove, a cylinder is slidably connected to the inner wall of the circular groove, and the cylinder is fixedly assembled on the iron block.
[0007] As a preferred technical solution of the present invention: the image camera and the infrared camera are both provided with a sealing ring at one end away from the mounting bracket, and the sealing ring is located between the image camera, the infrared camera and the circular frame.
[0008] As a preferred technical solution of the present invention: the height of the long groove is higher than the height of the iron block, the arc guide groove extends from the top of the circular frame to the side of the circular frame, and the opening of the arc guide groove gradually becomes larger from the top to the side.
[0009] As a preferred technical solution of the present invention: the rear end connection assembly includes a rear end shell, the outer wall of the rear end shell is installed with a rear end connection bracket, the inner wall of the rear end connection bracket is fixedly equipped with a long axis, the outer edge of the long axis is movably connected to the front end connection bracket, and the front end connection bracket is installed on the front end shell.
[0010] As a preferred technical solution of the present invention: a positioning ring is installed on the outer wall of the front connecting bracket, a plurality of positioning grooves are provided on the inner wall of the positioning ring, a rotating cap is movably sleeved on the inner wall of the positioning ring, a sliding groove is provided on the outer wall of the rotating cap, a right moving bar and a left moving bar are slidably connected on the inner wall of the sliding groove, the right moving bar and the left moving bar are plugged into the positioning groove, and the rotating cap is fixedly assembled on the long axis.
[0011] As a preferred technical solution of the present invention: the inner cavity of the left movable bar is provided with a sliding hole, the inner wall of the sliding hole is slidably connected to a sliding rod, the sliding rod is fixedly assembled on the right movable bar, and the outer edge of the sliding rod is movably sleeved with a support spring.
[0012] As a preferred technical solution of the present invention: the outer edge of the left moving bar is fixedly equipped with a left button, the outer edge of the right moving bar is fixedly equipped with a right button, and the right button and the left button both pass through the rotating cap.
[0013] As a preferred technical solution of the present invention: the outer wall of the rear end shell is provided with a rear end through hole, the outer wall of the front end shell is provided with a front end through hole, and the inner walls of the front end through hole and the rear end through hole are installed with rectangular corrugated folded tubes.
[0014] As a preferred technical solution of the present invention: a main mainboard is installed in the inner cavity of the front end shell, a transmission line is installed at the bottom of the main mainboard, and a base bracket is fixedly assembled at the bottom of the front end shell.
[0015] The present invention has the following beneficial effects: 1. This full-angle high-definition network infrared gun-type camera sets a rear-end camera at the rear end of the front-end camera. The front-end camera monitors the front 180°, and the rear-end camera monitors the rear 180°. The front-end camera and the rear-end camera cooperate to achieve full-angle detection. The images monitored by the front-end camera and the rear-end camera are transmitted to the main motherboard and then to the terminal through the transmission line, thereby solving the problem that the existing infrared gun-type camera cannot monitor at all angles. Therefore, two cameras need to be installed on the bracket to achieve full-angle monitoring. The use of two cameras increases the cost of regional monitoring.
[0016] 2. This full-angle high-definition network infrared gun-type camera rotates the protective lens 90° clockwise. When the protective lens rotates, it will drive the iron block to move, separating the iron block from the magnet. The iron block is guided by the arc-shaped guide groove and gradually enters the long groove. When the protective lens completes the 90° turn, the iron block falls completely into the long groove due to its own gravity. At this time, the protective lens can be removed from the circular frame, thereby solving the problem that the existing camera lens cannot be quickly replaced. When replacing, the top rain cover needs to be removed to replace the lens. This process consumes a lot of time and the long time of high-altitude operation also increases the risk of injury to maintenance personnel.
[0017] 3. For this full-angle high-definition network infrared gun-type camera, press the left button and the right button with two fingers respectively, so that the left and right buttons move toward the middle at the same time. The left button will drive the left moving bar to move toward the middle, and the right button will drive the right moving bar to move toward the middle, so that the left and right moving bars are disengaged from the positioning slot. At this time, the angle of the rear-end camera can be adjusted, and the rear-end camera can be adjusted quickly. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the front three-dimensional structure of the present invention; Figure 2 This is a schematic diagram of the back three-dimensional structure of the present invention; Figure 3 It is a schematic diagram of the overall vertical cross-sectional structure of the present invention; Figure 4 This is a schematic diagram of the overall transverse cross-sectional structure of the present invention; Figure 5 For the present invention Figure 4 A in the figure shows the enlarged structural diagram; Figure 6 This is a schematic diagram of the disassembly structure of the protective lens of the present invention; Figure 7 This is a schematic diagram of the back-end connection component structure of the present invention; Figure 8 It is a schematic diagram of the cross-sectional structure of the rear-end connection component of the present invention.
[0019] Figure: 1, front camera; 2, rear camera; 3, front housing; 31, front perforation; 4, rear connection assembly; 5, base bracket; 6, rectangular corrugated folding tube; 7, main board; 8, transmission line; 101. Mounting bracket; 102. Monitoring mainboard; 103. Video camera; 104. Infrared camera; 105. Sealing ring; 106. Circular frame; 107. Arc guide groove; 108. Horizontal groove; 109. Magnet; 110. Protective lens; 111. Long groove; 112. Round groove; 113. Cylinder; 114. Iron block; 115. Aluminum housing; 401, rear end housing; 402, rear end connecting bracket; 403, long axis; 404, front end connecting bracket; 405, positioning ring; 406, positioning slot; 407, rotating cap; 408, sliding slot; 409, right side moving bar; 410, left side moving bar; 411, right side button; 412, left side button; 413, sliding hole; 414, sliding rod; 415, support spring; 416, rear end through hole. DETAILED DESCRIPTION
[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0021] See also Figure 1 - Figure 8 A full-angle high-definition network infrared gun-type camera includes a front-end camera 1, a rear-end camera 2 is provided behind the front-end camera 1, and the front-end camera 1 and the rear-end camera 2 have the same structure. A front-end housing 3 is installed on the outer edge of the front-end camera 1, and a rear-end connecting component 4 is installed on the outer edge of the rear-end camera 2. The rear-end connecting component 4 is installed on the front-end housing 3; In the above structure, by setting the rear-end camera 2 behind the front-end camera 1, the shooting angle of the front-end camera 1 and the rear-end camera 2 is 180° wide angle, and the coordinated use of the front-end camera 1 and the rear-end camera 2 can reach three hundred and sixty degrees, so that the shooting of this device can achieve full angles. It is connected to the front-end shell 3 through the rear-end connecting component 4. When the angle of the front-end camera 1 and the front-end shell 3 needs to be adjusted, the rear-end connecting component 4 and the rear-end camera 2 will follow the movement of the front-end camera 1 and the front-end shell 3. At this time, the angle of the rear-end camera 2 is adjusted by adjusting the rear-end connecting component 4, which improves the rationality and flexibility of the device.
[0022] The front-end camera 1 includes a mounting bracket 101, an aluminum shell 115 is installed on the outer edge of the mounting bracket 101, a monitoring mainboard 102 is installed on the outer edge of the mounting bracket 101, an image camera 103 and an infrared camera 104 are installed on the outer edge of the monitoring mainboard 102, and the image camera 103 and the infrared camera 104 are both provided with a circular frame 106 at the end away from the mounting bracket 101, the circular frame 106 is installed on the aluminum shell 115, an arc-shaped guide groove 107 is provided on the inner wall of the circular frame 106, a transverse groove 108 is provided on the inner wall of the arc-shaped guide groove 107, a magnet 109 is installed on the inner wall of the transverse groove 108, a protective lens 110 is movably connected to the inner wall of the circular frame 106, a long groove 111 is provided on the outer edge of the protective lens 110, and an iron block 114 is slidably connected to the inner wall of the long groove 111.
[0023] In the above structure, through the cooperation of the circular frame 106 and the protective lens 110, when the surface of the protective lens 110 is damaged, it needs to be replaced. By rotating the protective lens 110, the protective lens 110 drives the iron block 114 to move, and gradually the iron block 114 and the magnet 109 are separated from each other. When the protective lens 110 is rotated 90° clockwise, the protective lens 110 is pushed outward to separate the protective lens 110 from the circular frame 106. At this time, the protective lens 110 can be replaced.
[0024] In a preferred embodiment, a circular groove 112 is formed on the inner wall of the long groove 111 , a cylinder 113 is slidably connected to the inner wall of the circular groove 112 , and the cylinder 113 is fixedly assembled on the iron block 114 .
[0025] In the above structure, by cooperating with the cylinder 113 and the circular groove 112, the cylinder 113 slides in the circular groove 112, and the cylinder 113 can position the iron block 114, so that the iron block 114 is not prone to shaking, and the iron block 114 can only move in a straight line.
[0026] In a preferred embodiment, a sealing ring 105 is provided at one end of the image camera 103 and the infrared camera 104 away from the mounting bracket 101 . The sealing ring 105 is located between the image camera 103 and the infrared camera 104 and the circular frame 106 .
[0027] In the above structure, through the setting of the sealing ring 105, the sealing ring 105 can seal the gaps between the image camera 103 and the circular frame 106 and the infrared camera 104 and the circular frame 106, thereby preventing some dust and water from entering the front end shell 3 and improving the sealing performance of the device.
[0028] In a preferred embodiment, the height of the long groove 111 is higher than that of the iron block 114 , the arc guide groove 107 extends from the top of the circular frame 106 to the side of the circular frame 106 , and the opening of the arc guide groove 107 gradually becomes larger from the top to the side.
[0029] In the above structure, by setting the height of the long groove 111 to be higher than the height of the iron block 114, when the protective lens 110 is rotated clockwise to 90°, the iron block 114 can completely enter the long groove 111 by its own gravity, so that the iron block 114 will not contact the circular frame 106. At this time, the protective lens 110 can be pulled out. Through the setting of the arc guide groove 107, the protective lens 110 guides the iron block 114 through the arc guide groove 107 during the clockwise rotation process, so that the iron block 114 gradually enters the long groove 111, thereby improving the rationality and stability of the device.
[0030] In a preferred embodiment: the rear end connection assembly 4 includes a rear end shell 401, the outer wall of the rear end shell 401 is installed with a rear end connection bracket 402, the inner wall of the rear end connection bracket 402 is fixedly equipped with a long axis 403, the outer edge of the long axis 403 is movably connected to the front end connection bracket 404, and the front end connection bracket 404 is installed on the front end shell 3.
[0031] In the above structure, by bending the rear end camera 2 downward, the angle between the front end connecting bracket 404 and the rear end connecting bracket 402 changes. By continuously adjusting the rear end camera 2, the images captured by the front end camera 1 and the rear end camera 2 are 360 degrees, thereby improving the flexibility of the device.
[0032] In a preferred embodiment: a positioning ring 405 is installed on the outer wall of the front connecting bracket 404, and a plurality of positioning grooves 406 are provided on the inner wall of the positioning ring 405. A rotating cap 407 is movably sleeved on the inner wall of the positioning ring 405, and a sliding groove 408 is provided on the outer wall of the rotating cap 407. The inner wall of the sliding groove 408 is slidably connected with a right moving bar 409 and a left moving bar 410. The right moving bar 409 and the left moving bar 410 are plugged into the positioning groove 406, and the rotating cap 407 is fixedly assembled on the long shaft 403.
[0033] In the above structure, by moving the right moving bar 409 and the left moving bar 410 toward the middle, the left moving bar 410 and the right moving bar 409 are not plugged into the positioning groove 406 on the positioning ring 405. At this time, the rear end camera 2 can be bent downward by hand, and the right moving bar 409 and the left moving bar 410 cooperate with the positioning groove 406. When the right moving bar 409 and the left moving bar 410 are plugged into the positioning groove 406, the rear end camera 2 cannot move, so that the angle of the rear end camera 2 is positioned after being adjusted, thereby improving the rationality of the device.
[0034] In a preferred embodiment: a sliding hole 413 is opened in the inner cavity of the left movable bar 410, and a sliding rod 414 is slidably connected to the inner wall of the sliding hole 413. The sliding rod 414 is fixedly assembled on the right movable bar 409, and a support spring 415 is movably sleeved on the outer edge of the sliding rod 414.
[0035] In the above structure, through the cooperation of the sliding rod 414 and the sliding hole 413, the sliding rod 414 plays a limiting role on the support spring 415, so that the support spring 415 can always be in contact with the left moving bar 410 and the right moving bar 409. When the left moving bar 410 and the right moving bar 409 move toward the middle, the sliding rod 414 slides in the sliding hole 413, and the left moving bar 410 and the right moving bar 409 are supported by the elastic force of the support spring 415, so that the left moving bar 410 and the right moving bar 409 are inserted into the positioning groove 406 in a stationary state.
[0036] In a preferred embodiment, a left button 412 is fixedly mounted on the outer edge of the left moving bar 410 , and a right button 411 is fixedly mounted on the outer edge of the right moving bar 409 . Both the right button 411 and the left button 412 pass through the rotating cap 407 .
[0037] In the above structure, through the setting of the left button 412 and the right button 411, when it is necessary to move the left moving bar 410 and the right moving bar 409 out of the positioning groove 406, the left button 412 and the right button 411 are pressed simultaneously with two fingers. When the left button 412 moves toward the middle, the left moving bar 410 will be driven to move toward the middle, and when the right button 411 moves toward the middle, the right moving bar 409 will be driven to move toward the middle.
[0038] In a preferred embodiment, a rear end through-hole 416 is formed on the outer wall of the rear end shell 401 , a front end through-hole 31 is formed on the outer wall of the front end shell 3 , and a rectangular corrugated folded tube 6 is installed on the inner walls of the front end through-hole 31 and the rear end through-hole 416 .
[0039] In the above structure, through the setting of the rectangular corrugated folded tube 6, the rectangular corrugated folded tube 6 can connect the front end shell 3 with the rear end shell 401, so that the wiring harness in the rear end camera 2 can enter the front end shell 3 through the rectangular corrugated folded tube 6. The rectangular corrugated folded tube 6 has the characteristic of being able to be extended and shortened. When the angle of the rear end camera 2 changes, the rectangular corrugated folded tube 6 will be stretched, so that the rectangular corrugated folded tube 6 will not separate from the front end shell 3 and the rear end shell 401, thereby improving the rationality of the device.
[0040] In a preferred embodiment, a main mainboard 7 is installed in the inner cavity of the front end housing 3 , a transmission line 8 is installed at the bottom of the main mainboard 7 , and a base bracket 5 is fixedly assembled at the bottom of the front end housing 3 .
[0041] In the above structure, the front-end camera 1 is connected to the main main board 7 through a wiring harness, and the wiring harness of the rear-end camera 2 enters the front-end shell 3 through the rectangular corrugated folding tube 6 and is connected to the main main board 7, so that the images captured by the front-end camera 1 and the rear-end camera 2 can be processed by the main main board 7, and then the main main board 7 is transmitted out through the transmission line 8, and the network and power are provided to the main main board 7, the front-end camera 1 and the rear-end camera 2 through the transmission line 8.
[0042] Working principle: the front-end camera 1, the front-end housing 3, the rear-end connecting component 4 and the rear-end camera 2 are installed on the bracket through the base bracket 5. When the protective lens 110 in front of the image camera 103 and the infrared camera 104 is damaged or scratched, the protective lens 110 can be turned 90 degrees clockwise. When the protective lens 110 rotates, it will drive the iron block 114 to move, gradually separating the iron block 114 from the magnet 109, and guiding the iron block 114 through the arc-shaped guide groove 107 so that the iron block 114 gradually enters the long groove 111. When the protective lens 110 completes the 90-degree turn, the iron block 114 is completely separated due to its own gravity. The iron block 114 is located at the top of the circular frame 106, and the new protective lens 110 is then inserted into the circular frame 106. The iron block 114 is then rotated counterclockwise, and the iron block 114 gradually corresponds to the magnet 109. When the iron block 114 is close to the magnet 109, the iron block 114 will be attracted by the magnet 109. At this time, the iron block 114 is located between the protective lens 110 and the circular frame 106, and the iron block 114 limits the protective lens 110, so that the protective lens 110 cannot be pulled out of the circular frame 106. The front camera When the angle of the camera 1 is adjusted, the left button 412 and the right button 411 are pressed by two fingers respectively, so that the left button 412 and the right button 411 move toward the middle at the same time. The left button 412 will drive the left moving bar 410 to move toward the middle, and the right button 411 will drive the right moving bar 409 to move toward the middle, so that the left moving bar 410 and the right moving bar 409 are disengaged from the positioning groove 406. At this time, the angle of the rear camera 2 can be adjusted. When the angle of the rear camera 2 is adjusted to a suitable position, the left button 412 and the right button 411 are unloaded, and the left moving bar 410 and the right moving bar 409 are disengaged through the elastic force of the support spring 415. The right movable bar 409 is pushed outward, gradually inserting the left movable bar 410 and the right movable bar 409 into the right movable bar 409. At this time, the angle of the rear-end camera 2 cannot be adjusted. The front is monitored at 180° through the front-end camera 1, and the rear-end camera 2 monitors the rear at 180°. The wiring harness on the front-end camera 1 is connected to the main main board 7, and the wiring harness on the rear-end camera 2 is passed through the rectangular corrugated folding tube 6 into the front-end shell 3 and connected to the main main board 7. The information transmitted to the main main board 7 by the front-end camera 1 and the rear-end camera 2 is transmitted to the terminal through the transmission line 8. Full-angle monitoring is achieved through the cooperation of the front-end camera 1 and the rear-end camera 2.
[0043] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0044] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A full-angle high-definition network infrared gun-type camera, comprising a front-end camera (1), characterized in that: A rear camera (2) is provided behind the front camera (1), and the front camera (1) and the rear camera (2) have the same structure. A front housing (3) is installed on the outer edge of the front camera (1), and a rear connection component (4) is installed on the outer edge of the rear camera (2), and the rear connection component (4) is installed on the front housing (3). The front-end camera (1) includes a mounting bracket (101), an aluminum housing (115) is mounted on the outer edge of the mounting bracket (101), a monitoring mainboard (102) is mounted on the outer edge of the mounting bracket (101), an image camera (103) and an infrared camera (104) are mounted on the outer edge of the monitoring mainboard (102), and the image camera (103) and the infrared camera (104) are both provided with a circular frame (106) at one end away from the mounting bracket (101). 06) is installed on an aluminum shell (115), the inner wall of the circular frame (106) is provided with an arc-shaped guide groove (107), the inner wall of the arc-shaped guide groove (107) is provided with a transverse groove (108), the inner wall of the transverse groove (108) is provided with a magnet (109), the inner wall of the circular frame (106) is movably connected to a protective lens (110), the outer edge of the protective lens (110) is provided with a long groove (111), and the inner wall of the long groove (111) is slidably connected to an iron block (114).
2. The full-angle high-definition network infrared gun-type camera according to claim 1, characterized in that: The inner wall of the long groove (111) is provided with a circular groove (112), the inner wall of the circular groove (112) is slidably connected with a cylinder (113), and the cylinder (113) is fixedly assembled on the iron block (114).
3. The full-angle high-definition network infrared gun-type camera according to claim 1, characterized in that: The image camera (103) and the infrared camera (104) are both provided with a sealing ring (105) at one end away from the mounting bracket (101), and the sealing ring (105) is located between the image camera (103) and the infrared camera (104) and the circular frame (106).
4. The full-angle high-definition network infrared gun-type camera according to claim 1, characterized in that: The height of the long groove (111) is higher than the height of the iron block (114), and the arc-shaped guide groove (107) extends from the top of the circular frame (106) to the side of the circular frame (106), and the opening of the arc-shaped guide groove (107) gradually becomes larger from the top to the side.
5. The full-angle high-definition network infrared gun-type camera according to claim 1, characterized in that: The rear end connection assembly (4) comprises a rear end housing (401), a rear end connection bracket (402) being mounted on an outer wall of the rear end housing (401), a long shaft (403) being fixedly mounted on an inner wall of the rear end connection bracket (402), an outer edge of the long shaft (403) being movably connected to a front end connection bracket (404), and the front end connection bracket (404) being mounted on the front end housing (3).
6. The full-angle high-definition network infrared gun-type camera according to claim 5, characterized in that: The outer wall of the front connecting bracket (404) is installed with a positioning ring (405), the inner wall of the positioning ring (405) is provided with a plurality of positioning grooves (406), the inner wall of the positioning ring (405) is movably sleeved with a rotating cap (407), the outer wall of the rotating cap (407) is provided with a sliding groove (408), the inner wall of the sliding groove (408) is slidably connected with a right moving bar (409) and a left moving bar (410), the right moving bar (409) and the left moving bar (410) are plugged into the positioning groove (406), and the rotating cap (407) is fixedly assembled on the long shaft (403).
7. The full-angle high-definition network infrared gun-type camera according to claim 6, characterized in that: The inner cavity of the left movable bar (410) is provided with a sliding hole (413), the inner wall of the sliding hole (413) is slidably connected to a sliding rod (414), the sliding rod (414) is fixedly assembled on the right movable bar (409), and the outer edge of the sliding rod (414) is movably sleeved with a support spring (415).
8. The full-angle high-definition network infrared gun-type camera according to claim 7, characterized in that: The outer edge of the left moving bar (410) is fixedly equipped with a left button (412), and the outer edge of the right moving bar (409) is fixedly equipped with a right button (411), and both the right button (411) and the left button (412) pass through the rotating cap (407).
9. The full-angle high-definition network infrared gun-type camera according to claim 5, characterized in that: The outer wall of the rear end shell (401) is provided with a rear end through-hole (416), the outer wall of the front end shell (3) is provided with a front end through-hole (31), and the inner walls of the front end through-hole (31) and the rear end through-hole (416) are provided with rectangular corrugated folded tubes (6).
10. The full-angle high-definition network infrared gun-type camera according to claim 1, characterized in that: A main mainboard (7) is installed in the inner cavity of the front-end housing (3), a transmission line (8) is installed at the bottom of the main mainboard (7), and a base bracket (5) is fixedly mounted at the bottom of the front-end housing (3).