Base and head shaking machine camera

By designing a cable management channel on the base of the pan-tilt camera, the range of motion of the power cable is limited, solving the problems of the power cable getting tangled, pulled, worn, broken, or having loose connections during rotation, thus improving the reliability and ease of maintenance of the equipment.

CN224135557UActive Publication Date: 2026-04-17SHENZHEN XIAOPAI TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN XIAOPAI TECHNOLOGY CO LTD
Filing Date
2025-06-10
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In existing technologies, power cables are prone to tangling, pulling, wear, breakage, or loosening of the interface during the rotation of the pan-tilt camera, resulting in poor equipment reliability and ease of maintenance.

Method used

By forming a cable tray through the cooperation of the base support wall, support column and base body, the range of motion of the power connection cable is restricted. The restricted space formed by the cooperation of the body and the cable tray prevents the power connection cable from rotating disorderly, simplifies the structure and reduces costs.

Benefits of technology

It effectively avoids problems such as tangling, pulling, wear, breakage, or loosening of power connection cables, improving equipment reliability and maintenance convenience, and reducing after-sales maintenance needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a base and a head shaking machine camera. The base comprises a base main body, a support column extending from the middle of the front surface of the base main body along a direction perpendicular to the base main body, and a base support wall extending from the front surface of the base main body along a direction perpendicular to the base main body. The supporting column is used for being rotatably connected with a machine body of the head shaking machine camera; a power supply assembly is arranged on the base main body, and is connected with a rotating assembly arranged on the machine body through a power supply connecting wire; the base supporting wall is located on the periphery of the supporting column, the base supporting wall, the supporting column and the base body are matched to form the wire hiding groove, then the machine body is matched with the wire hiding groove to form the limiting space, the moving range of the power source connecting wire is limited, and the power source connecting wire is regularly tightened or relaxed in the wire hiding groove only along a single plane. And the problems of winding, pulling, abrasion, breakage or interface loosening and the like caused by multi-degree-of-freedom disordered rotation of the power supply connecting wire are avoided.
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Description

Technical Field

[0001] This utility model relates to the field of base technology, and in particular to a base and a pan-tilt camera. Background Technology

[0002] Currently, to expand the applicability of equipment, many devices, such as pan-tilt cameras, use a rotatable connection between their base and the upper portion. In existing technology, the power supply component is typically fixed to the stationary base and connected to the rotating components above the base via a power cable. However, since the upper portion can rotate, the power cable may rotate erratically during this process, leading to problems such as tangling, pulling, wear, breakage, or loose connections. Summary of the Invention

[0003] This utility model provides a base and a pan-tilt camera to solve the problem of disordered rotation of power connection cables in the prior art, which leads to tangling, pulling, wear, breakage or loosening of interfaces.

[0004] A base includes a base body, a support column extending from the center of the front of the base body in a direction perpendicular to the base body, and a base support wall extending from the front of the base body in a direction perpendicular to the base body.

[0005] The support column is used to rotatably connect with the body of the pan-tilt camera; the base body is equipped with a power supply component, which is connected to the rotating component on the body via a power connection cable.

[0006] The base support wall is located around the support column, and the base support wall, the support column and the base body cooperate to form a cable tray for accommodating the power connection cable.

[0007] Preferably, the width and depth of the cable tray are both greater than the sum of the diameters of the two power connection cables.

[0008] Preferably, the base further includes a protective wall extending from the front of the base body in a direction perpendicular to the base body, the protective wall being located around the base support wall;

[0009] The base body is provided with at least one reinforcing rib, the first end of each reinforcing rib is connected to the protective wall, and the second end of each reinforcing rib is connected to the base support wall.

[0010] A panning camera includes a camera head, a camera body, and a base; the camera head is rotatably mounted inside the camera body in a first direction, so that the camera in the camera head is hidden or exposed through a window in the camera body;

[0011] The fuselage is rotatably mounted on the support column in a second direction.

[0012] Preferably, there is a gap between the body and the base, and the size of the gap is 0.5mm-0.8mm.

[0013] Preferably, the fuselage includes a fuselage support frame and a fuselage outer shell;

[0014] The machine head is rotatably mounted on the machine body support in a first direction. A rotating component is provided inside the machine body support. The rotating component is rotatably mounted on the support column in a second direction. There is a gap between the machine body support and the base.

[0015] The outer casing is fitted onto the frame, the window is located on the outer casing, the head is located inside the outer casing, and the head is exposed through the window.

[0016] Preferably, the base support wall is provided with a first wire passage groove, and the body bracket is provided with a second wire passage groove; the first end of the power connection cable passes through the first wire passage groove and is connected to the power component, and the second end of the power connection cable passes through the second wire passage groove and is connected to the rotating component.

[0017] Preferably, the base body is provided with a first limiting member, and the body bracket is provided with a second limiting member, wherein the first limiting member and the second limiting member may abut or not abut.

[0018] Preferably, the fuselage support includes a support body, a support wall extending from the front of the support body in a direction perpendicular to the support body, and two support plates extending from opposite sides of the support wall in a direction perpendicular to the support body.

[0019] The rotating component is detachably mounted on the support body, and the machine head is rotatably mounted on the two support plates around the first direction.

[0020] Preferably, the rotating assembly includes a rotating motor, a rotating shaft, and fasteners;

[0021] The rotating motor is detachably mounted on the machine body bracket, the first end of the rotating shaft is connected to the output end of the rotating motor, and the second end of the rotating shaft passes through the support column;

[0022] The fastener is fixed to the support column and connected to the second end of the rotating shaft.

[0023] In this embodiment of the invention, a cable tray is formed by the base support wall, support column, and base body. Then, the machine body and the cable tray form a confined space, which restricts the range of motion of the power cable. This avoids disorderly rotation of the power cable without the need for additional guide wheels, spring cable winders, or other complex components, simplifying the structure, reducing costs, and ensuring compatibility with existing production processes. The power cable only tightens or relaxes regularly along a single plane within the cable tray, preventing problems such as tangling, pulling, wear, breakage, or loosening of the interface caused by disorderly rotation of the power cable with multiple degrees of freedom. This reduces the need for after-sales maintenance due to power cable failures and improves equipment reliability and maintenance convenience. Attached Figure Description

[0024] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the description of the embodiments of this application will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0025] Figure 1 This is an axonometric view of the base in one embodiment of the present invention;

[0026] Figure 2 This is a first axonometric view of a pan-tilt camera according to an embodiment of the present invention;

[0027] Figure 3 This is a second axonometric view of a pan-tilt camera according to one embodiment of the present invention;

[0028] Figure 4 yes Figure 3 Sectional view in;

[0029] Figure 5 This is an internal structural diagram of a pan-tilt camera according to one embodiment of the present invention;

[0030] Figure 6 This is an axonometric view of the fuselage in one embodiment of this utility model.

[0031] The components include: 1. Base; 11. Base body; 12. Support column; 13. Base support wall; 14. Cable tray; 15. Protective wall; 16. Reinforcing rib; 17. Foot pad; 18. First cable tray; 19. First limiting component; 2. Body; 21. Window; 22. Body bracket; 221. Bracket body; 222. Bracket support wall; 223. Support plate; 23. Body shell; 24. Second cable tray; 25. Second limiting component; 3. Power supply assembly; 31. Power board; 32. Connecting female connector; 33. Charging head; 4. Rotating assembly; 41. Rotating motor; 42. Rotating shaft; 43. Fastener; 5. Head; 6. Control module; 7. Switch button; 8. Sound transmission hole. Detailed Implementation

[0032] To make the technical problems, technical solutions, and beneficial effects solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0033] In the description of this application, it should be understood that the terms "longitudinal," "radial," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are used 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. In the description of this application, unless otherwise stated, "a plurality of" means two or more.

[0034] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0035] This utility model embodiment provides a base 1, as shown in the reference. Figure 1 , Figure 3 and Figure 4The base 1 includes a base body 11, a support column 12 extending from the center of the front of the base body 11 in a direction perpendicular to the base body 11, and a base support wall 13 extending from the front of the base body 11 in a direction perpendicular to the base body 11. The support column 12 is rotatably connected to the body 2 of the pan-tilt camera. A power supply assembly 3 is provided on the base body 11, and the power supply assembly 3 is connected to the rotating assembly 4 provided on the body 2 through a power connection cable. The base support wall 13 is located around the support column 12, and the base support wall 13, the support column 12 and the base body 11 cooperate to form a cable tray 14 for accommodating the power connection cable.

[0036] As an example, the base 1 is the base 1 of a pan-tilt camera, used to provide support for the main structure of the pan-tilt camera. The base 1 includes a base body 11, a support column 12, and a base support wall 13; the base body 11 is specifically a disc, which serves as a reference and provides support. The support column 12 is a component extending from the center of the front of the base body 11 in a direction perpendicular to the base body 11. Specifically, the support column 12 is a cylindrical structure, and the pan-tilt camera body 2 is rotatably mounted on the support column 12, providing convenience for the user to adjust the monitoring position of the pan-tilt camera. A power supply assembly 3 is provided on the base body 11. Specifically, the power supply assembly 3 includes a power board 31, a connecting female 32, and a charging head 33. The power board 31 is mounted on the base body 11 with screws. The connecting female 32 and the charging head 33 are both mounted on the power board 31. The connecting female 32 is connected to the rotating component 4 set on the body 2 through a power connection cable. The charging head 33 is used to connect to an external power source to provide power to the rotating component 4. The base support wall 13 is a component extending from the front of the base body 11 in a direction perpendicular to the base body 11. The base support wall 13 is located around the support column 12. This arrangement, with the base support wall 13, support column 12, and base body 11, forms a cable tray 14. The cable tray 14 can accommodate the power connection cable. At the same time, the body 2 acts as a limiting cover for the cable tray 14, ensuring that the power connection cable only moves within the cable tray 14, tightening and loosening as the body 2 rotates. This restricts the range of motion of the power connection cable, preventing disorderly rotation and preventing the power connection cable from rubbing against the internal structure of the base 1 (such as screw holes, heat sinks, and circuit board edges) during rotation. This avoids problems such as entanglement, pulling, wear, breakage, or loosening of the interface, eliminating dynamic interference issues related to the power connection cable. The base 1 is a one-piece injection molded structure. The support column 12 is cylindrical, the base support wall 13 is annular, and the cable tray 14 is a circular cable tray, which facilitates the orderly rotation of the power connection cable. The support column 12 has a mounting slot in the middle for installing the rotating component 4, ensuring the coaxiality of the cable tray 14 and the rotating component 4 (tolerance limit ≤ 0.1mm). The wall thickness of the support column 12 is 1.5mm-2mm, which improves the support strength of the support column 12 and ensures that the support column 12 can support the machine body 2, thereby improving the stability and safety of equipment assembly. The power connection cable should be made of soft wire (with silicone or soft PVC outer sheath), and the outermost layer should be wrapped with wear-resistant acetate cloth to improve the flexibility and wear resistance of the power connection cable and prevent wear or breakage. Depending on actual needs, Teflon or wear-resistant silicone can be added to the internal surfaces of the cable tray 14. The inner surface of the cable tray 14 and the outer surface of the support column 12 should be smoothed to improve the wear resistance and noise reduction of the power connection cable during rotation. The plugs at both ends of the power connection cable are reinforced with adhesive to prevent loosening of the connection between the power connection cable and the power component 3 and / or the rotating component 4.

[0037] In this example, the base support wall 13, support column 12 and base body 11 cooperate to form a cable tray 14. Then, the machine body 2 cooperates with the cable tray 14 to form a confined space, which restricts the range of motion of the power connection cable. Without the need to add additional guide wheels, spring cable winders and other complex components, the disorderly rotation of the power connection cable can be avoided, simplifying the structure, reducing costs, and being compatible with existing production processes. The power connection cable is only tightened or relaxed regularly along a single plane in the cable tray 14, avoiding problems such as tangling, pulling, wear, breakage or loosening of the interface caused by the disorderly rotation of the power connection cable with multiple degrees of freedom. This reduces the need for after-sales maintenance due to power connection cable failure and improves the reliability and maintenance convenience of the equipment.

[0038] In one embodiment, reference is made to Figure 1 and Figure 4 The width and depth of the cable tray 14 are both greater than the sum of the diameters of the two power connection cables.

[0039] As an example, the width and depth of the cable tray 14 are both greater than the sum of the diameters of the two power connection cables. Specifically, the distance between the support column 12 and the base support wall 13 and the distance between the base body 11 and the body 2 are both greater than the sum of the diameters of the two power connection cables (after being wrapped in wear-resistant acetate cloth). This design ensures that the power connection cables can slide smoothly within the cable tray 14, and the power connection cables can form an "S-shape" or "Ω-shape" adaptive bend, avoiding hard bending of the power connection cables.

[0040] In one embodiment, reference is made to Figure 1 and Figure 4 The base 1 also includes a protective wall 15 extending from the front of the base body 11 in a direction perpendicular to the base body 11. The protective wall 15 is located around the base support wall 13. The base body 11 is provided with at least one reinforcing rib 16. The first end of each reinforcing rib 16 is connected to the protective wall 15, and the second end of each reinforcing rib 16 is connected to the base support wall 13.

[0041] As an example, the base 1 also includes a protective wall 15, which extends from the front of the base body 11 in a direction perpendicular to the base body 11. The protective wall 15 is located around the base support wall 13, which can shield the internal structure of the base 1, eliminate the risk of equipment privacy leakage, and also reduce the direct intrusion of dust into the base 1 through physical shielding, thus reducing the maintenance frequency. The base body 11 is provided with at least one reinforcing rib 16. The first end of each reinforcing rib 16 is connected to the protective wall 15, and the second end of each reinforcing rib 16 is connected to the base support wall 13. Specifically, there are multiple reinforcing ribs 16, which are arranged at intervals along the circumference of the support column 12. The reinforcing ribs 16 can improve the support strength of the base support wall 13 and the protective wall 15, thereby increasing the service life of the base 1. The base body 11 is provided with a protrusion, and the base support wall 13 and the support column 12 are located on the protrusion, which can prevent the reinforcing ribs 16 from conflicting with the cable tray 14 and prevent interference with the rotation of the power connection wires. Multiple feet 17 are provided on the back of the base body 11, arranged in a ring at intervals to improve the anti-slip performance of the base 1, thus providing a stable and safe placement environment for the pan-tilt camera. A recess is also provided on the back of the base body 11. When it is necessary to fix the pan-tilt camera to a wall or ceiling in special scenarios, the mounting bracket can be fixed to the wall or ceiling first, and then the recess of the base body 11 can be engaged with the latch on the mounting bracket, facilitating the installation and removal of the pan-tilt camera.

[0042] This utility model embodiment provides a pan-tilt camera, see reference. Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 It includes a head 5, a body 2 and a base 1; the head 5 is rotatably mounted inside the body 2 in a first direction, so that the camera in the head 5 is hidden or exposed through the window 21 of the body 2; the body 2 is rotatably mounted on the support column 12 in a second direction.

[0043] Among them, the first direction and the second direction are two mutually perpendicular directions; the first direction is the radial direction of the support column 12, which can also be said to be the horizontal direction of the pan-tilt camera; the second direction is the axial direction of the support column 12, which can also be said to be the vertical direction of the pan-tilt camera, i.e., the height direction of the pan-tilt camera.

[0044] As an example, the pan-tilt camera includes a head 5, a body 2, and a base 1. During installation, the head 5 is rotatably mounted inside the body 2 in a first direction, so that the camera in the head 5 is hidden or exposed through the opening 21 of the body 2. This allows the tilt angle of the head 5 to be adjusted, thereby meeting the user's privacy and monitoring needs. The body 2 is rotatably mounted on the support column 12 in a second direction, which allows the orientation of the head 5 to be adjusted, providing convenience for the user to adjust the monitoring position of the pan-tilt camera.

[0045] In this embodiment, the base 1 includes a base body 11, a support column 12, and a base support wall 13. The base body 11 is specifically a disc, which serves as a reference and provides support. The support column 12 is a component extending from the center of the front of the base body 11 in a direction perpendicular to the base body 11. Specifically, the support column 12 is a cylindrical structure, and the body 2 of the pan-tilt camera is rotatably mounted on the support column 12, providing convenience for the user to adjust the monitoring position of the pan-tilt camera. A power supply assembly 3 is provided on the base body 11. Specifically, the power supply assembly 3 includes a power board 31, a connecting female 32, and a charging head 33. The power board 31 is mounted on the base body 11 with screws. The connecting female 32 and the charging head 33 are both mounted on the power board 31. The connecting female 32 is connected to the rotating component 4 set on the body 2 through a power connection cable. The charging head 33 is used to connect to an external power source to provide power to the rotating component 4. The base support wall 13 is a component that extends from the front of the base body 11 in a direction perpendicular to the base body 11. The base support wall 13 is located on the periphery of the support column 12. With this arrangement, the base support wall 13, the support column 12 and the base body 11 cooperate to form a cable tray 14. The cable tray 14 can accommodate the power connection cable. At the same time, the body 2 acts as a limiting cover for the cable tray 14, so that the power connection cable can only move within the cable tray 14 and tighten and loosen with the rotation of the body 2. This restricts the range of motion of the power connection cable, avoids disorderly rotation of the power connection cable, and prevents the power connection cable from scratching the internal structure of the base 1 (such as screw holes, heat sinks, and circuit board edges) during rotation. This avoids adverse phenomena such as entanglement, pulling, wear, breakage or loosening of the interface, and eliminates the problem of dynamic interference of the power connection cable.

[0046] In this example, the base support wall 13, support column 12 and base body 11 cooperate to form a cable tray 14. Then, the machine body 2 cooperates with the cable tray 14 to form a confined space, which restricts the range of motion of the power connection cable. Without the need to add additional guide wheels, spring cable winders and other complex components, the disorderly rotation of the power connection cable can be avoided, simplifying the structure, reducing costs, and being compatible with existing production processes. The power connection cable is only tightened or relaxed regularly along a single plane in the cable tray 14, avoiding problems such as tangling, pulling, wear, breakage or loosening of the interface caused by the disorderly rotation of the power connection cable with multiple degrees of freedom. This reduces the need for after-sales maintenance due to power connection cable failure and improves the reliability and maintenance convenience of the equipment.

[0047] In one embodiment, reference is made to Figure 4 and Figure 5 There is a gap between the body 2 and the base 1, and the size of the gap is 0.5mm-0.8mm.

[0048] As an example, during the design process, a gap is made between the body 2 and the base 1, specifically the size of the gap being 0.5mm-0.8mm. This makes the cable tray 14 a semi-enclosed cable tray, which can prevent the body 2 from directly contacting and rubbing against the base 1, eliminate abnormal noise caused by structural collisions, reduce mechanical wear, and extend the service life of the equipment.

[0049] In one embodiment, reference is made to Figure 4 and Figure 5 The body 2 includes a body support 22 and a body shell 23; the head 5 is rotatably mounted on the body support 22 in a first direction, and a rotating component 4 is provided inside the body support 22. The rotating component 4 is rotatably mounted on the support column 12 in a second direction. There is a gap between the body support 22 and the base 1; the body shell 23 is fitted onto the body support 22, and a window 21 is provided on the body shell 23. The head 5 is located inside the body shell 23 and is exposed through the window 21.

[0050] As an example, the camera body 2 includes a camera body bracket 22 and a camera body housing 23. During installation, the camera head 5 is rotatably mounted on the camera body bracket 22 in a first direction. The camera body housing 23 is fitted onto the camera body bracket 22, and a window 21 is provided on the camera body housing 23. The camera head 5 is located inside the camera body housing 23 and is exposed through the window 21. In this way, the camera body housing 23 provides protection for the internal structure of the pan-tilt camera, and also allows the camera in the camera head 5 to be hidden or exposed through the window 21 of the camera body 2. The tilt angle of the camera head 5 can be adjusted, thereby meeting the user's privacy and monitoring needs. A rotating component 4 is provided inside the camera body bracket 22. The rotating component 4 is rotatably mounted on the support column 12 in a second direction, which allows the orientation of the camera head 5 to be adjusted, providing convenience for the user to adjust the monitoring position of the pan-tilt camera. There is a gap between the camera body bracket 22 and the base 1, which can avoid direct contact and friction between the camera body bracket 22 and the base 1, eliminate abnormal noise caused by structural collision, reduce mechanical wear, and extend the service life of the equipment. It also facilitates the use of the machine head 5. Among them, the side of the machine body bracket 22 near the base 1 is flat, and the area corresponding to the cable tray 14 of the base 1 has no protruding features. Moreover, this area is treated with light-saving treatment on the mold to avoid interference with the power connection cable.

[0051] In one embodiment, reference is made to Figure 1 and Figure 6 The base support wall 13 is provided with a first wire passage groove 18, and the body bracket 22 is provided with a second wire passage groove 24; the first end of the power connection wire passes through the first wire passage groove 18 and is connected to the power component 3, and the second end of the power connection wire passes through the second wire passage groove 24 and is connected to the rotating component 4.

[0052] As an example, a first cable tray 18 is provided on the base support wall 13, and a second cable tray 24 is provided on the body bracket 22. During installation, the first end of the power cable passes through the first cable tray 18 and connects to the power assembly 3, and the second end of the power cable passes through the second cable tray 24 and connects to the rotating assembly 4. This facilitates the arrangement of the power cable and restricts both ends of the power cable, so that the power cable can only move within the cable tray 14 to tighten and loosen as the body 2 rotates. This restricts the range of motion of the power cable, avoids disorderly rotation of the power cable, prevents the power cable from rubbing against the internal structure of the base 1 during rotation, and avoids adverse phenomena such as entanglement, pulling, wear, breakage or loosening of the interface, thus eliminating the problem of dynamic interference of the power cable. The widths of the first wire guide groove 18 and the second wire guide groove 24 are both greater than the diameter of the power connection cable, allowing the power connection cable to slide easily during rotation and facilitating pulling during assembly to prevent breakage. The plugs at both ends of the power connection cable cannot pass through the first wire guide groove 18 or the second wire guide groove 24 to prevent loosening of the cable connectors. The opening of the first wire guide groove 18 faces the cable exit direction of the power assembly 3, and its width is approximately 1mm larger than the diameter of the power connection cable.

[0053] In one embodiment, reference is made to Figure 1 and Figure 6 The base body 11 is provided with a first limiting member 19, and the body bracket 22 is provided with a second limiting member 25. The first limiting member 19 and the second limiting member 25 may abut or not abut.

[0054] As an example, a first limiting member 19 is provided on the base body 11, and a second limiting member 25 is provided on the body bracket 22. The first limiting member 19 and the second limiting member 25 may abut or not abut, which can limit or not limit the body bracket 22, thereby restricting the rotation stroke of the body 2. For example, when the body bracket 22 rotates clockwise around the axis of the support column 12, the power connection cable can be wound around the support column 12. When the first limiting member 19 and the second limiting member 25 abut, the body bracket 22 can be restricted from continuing to rotate clockwise around the axis of the support column 12, preventing the power connection cable in the cable tray 14 from continuing to be wound around the support column 12, thus avoiding the phenomenon of the power connection cable being pulled off. The length of the power connection cable in the cable tray 14 is approximately 1.5 turns around the support column 12 plus a 5-10mm allowance, effectively preventing the power connection cable from being pulled off.

[0055] In one embodiment, reference is made to Figure 5The machine body support 22 includes a support body 221, a support wall 222 extending from the front of the support body 221 in a direction perpendicular to the support body 221, and two support plates 223 extending from the opposite sides of the support wall 222 in a direction perpendicular to the support body 221; the rotating assembly 4 is detachably mounted on the support body 221, and the machine head 5 is rotatably mounted on the two support plates 223 around a first direction.

[0056] As an example, the camera body bracket 22 includes a bracket body 221, a bracket support wall 222, and two support plates 223. The rotating component 4 is detachably mounted on the bracket body 221 by means of screwing, snap-fitting, or bonding. Specifically, the bracket body 221 has a first bolt hole, and the rotating component 4 has a second bolt hole. Bolts are inserted into the first and second bolt holes to mount the rotating component 4 on the bracket body 221. The bracket support wall 222 is a component extending from the front of the bracket body 221 in a direction perpendicular to the bracket body 221. The two support plates 223 are two components extending from the opposite sides of the bracket support wall 222 in a direction perpendicular to the bracket body 221. During installation, the camera head 5 is rotatably mounted on the two support plates 223 in a first direction, so that the camera in the camera head 5 is hidden or exposed through the opening 21 of the body 2. This allows adjustment of the tilt angle of the camera head 5, thereby meeting the user's privacy and monitoring needs.

[0057] In one example, the pan-tilt camera also includes a control module 6, which is mounted on the support wall 222 and connected to the rotating component 4. A switch button 7 is located on the housing 23, corresponding to the control module 6. During assembly, the first end of the power cable is connected to the main board of the switch module, and the second end passes through the support body 221 and is inserted into the power assembly 3 of the base 1. Pressing the switch button 7 causes the control module 6 to control the rotating component 4 and / or the camera head 5, enabling the camera body 2 to rotate in a second direction and / or the camera head 5 to rotate in a first direction, thus meeting the user's privacy and monitoring needs. The power cable can also be directly connected to the rotating component 4 and / or the camera head 5. The pan-tilt camera also includes a speaker module, mounted on the support wall 222. A sound transmission hole 8 is located on the housing 23, corresponding to the speaker module, thus enabling the pan-tilt camera to have a voice broadcast function.

[0058] In one embodiment, reference is made to Figure 4 The rotating assembly 4 includes a rotating motor 41, a rotating shaft 42, and a fastener 43. The rotating motor 41 is detachably mounted on the machine body bracket 22. The first end of the rotating shaft 42 is connected to the output end of the rotating motor 41, and the second end of the rotating shaft 42 passes through the support column 12. The fastener 43 is fixed on the support column 12 and is connected to the second end of the rotating shaft 42.

[0059] As an example, the rotating assembly 4 includes a rotating motor 41, a rotating shaft 42, and a fastener 43. During installation, the rotating motor 41 is detachably mounted on the camera body bracket 22 using methods such as screwing, snap-fitting, or gluing. First, the first end of the rotating shaft 42 is connected to the output end of the rotating motor 41, and the second end of the rotating shaft 42 passes through the support column 12. Then, the fastener 43 is fixed to the support column 12 and connected to the second end of the rotating shaft 42. With this configuration, by controlling the rotating motor 41 to drive the rotating shaft 42 to rotate, and because the rotating shaft 42 is fixed to the support column 12 by the fastener 43, the rotating motor 41 and the camera body bracket 22 are rotatable structures. Therefore, the rotating motor 41 and the camera body bracket 22 rotate around the rotating shaft 42, which allows adjustment of the orientation of the camera head 5, providing convenience for users to adjust the monitoring orientation of the pan-tilt camera. The diameter of the rotating shaft 42 is 4-6mm, and the outer diameter of the support column 12 is approximately 8-9mm, ensuring the support strength for the camera body 2. Fastener 43 is a serrated washer screw to ensure connection accuracy and reliability.

[0060] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.

Claims

1. A base, characterized in that, It includes a base body, a support column extending from the center of the front of the base body in a direction perpendicular to the base body, and a base support wall extending from the front of the base body in a direction perpendicular to the base body. The support column is used to rotatably connect with the body of the pan-tilt camera; the base body is equipped with a power supply component, which is connected to the rotating component on the body via a power connection cable. The base support wall is located around the support column, and the base support wall, the support column and the base body cooperate to form a cable tray for accommodating the power connection cable.

2. The base of claim 1, wherein, The width and depth of the cable tray are both greater than the sum of the diameters of the two power connection wires.

3. The base of claim 1, wherein, The base also includes a protective wall extending from the front of the base body in a direction perpendicular to the base body, the protective wall being located around the base support wall; The base body is provided with at least one reinforcing rib, the first end of each reinforcing rib is connected to the protective wall, and the second end of each reinforcing rib is connected to the base support wall.

4. A head-tilting camera, characterized by comprising: It includes a camera head, a body, and a base as described in any one of claims 1-3; the camera head is rotatably mounted inside the body about a first direction, so that the camera in the camera head is hidden or exposed through a window in the body; The fuselage is rotatably mounted on the support column in a second direction.

5. The head-tilting camcorder according to claim 4, characterized by There is a gap between the body and the base, and the size of the gap is 0.5mm-0.8mm.

6. The head-tilting camcorder according to claim 4, characterized by The fuselage includes a fuselage frame and a fuselage shell; The machine head is rotatably mounted on the machine body support in a first direction. A rotating component is provided inside the machine body support. The rotating component is rotatably mounted on the support column in a second direction. There is a gap between the machine body support and the base. The outer casing is fitted onto the frame, the window is located on the outer casing, the head is located inside the outer casing, and the head is exposed through the window.

7. The head-tilting camcorder according to claim 6, characterized by The base support wall is provided with a first wire passage groove, and the body bracket is provided with a second wire passage groove; the first end of the power connection cable passes through the first wire passage groove and is connected to the power component, and the second end of the power connection cable passes through the second wire passage groove and is connected to the rotating component.

8. The head-tilting camcorder according to claim 6, characterized by The base body is provided with a first limiting member, and the body bracket is provided with a second limiting member. The first limiting member may abut against or not abut against the second limiting member.

9. The head-tilting camcorder according to claim 6, characterized by The fuselage support includes a support body, a support wall extending from the front of the support body in a direction perpendicular to the support body, and two support plates extending from opposite sides of the support wall in a direction perpendicular to the support body. The rotating component is detachably mounted on the support body, and the machine head is rotatably mounted on the two support plates around the first direction.

10. The head-tilting camcorder according to claim 6, characterized by The rotating assembly includes a rotating motor, a rotating shaft, and fasteners; The rotating motor is detachably mounted on the machine body bracket, the first end of the rotating shaft is connected to the output end of the rotating motor, and the second end of the rotating shaft passes through the support column; The fastener is fixed to the support column and is connected to the second end of the rotating shaft.