Monitoring device
By incorporating a rotating and operating part into the monitoring device, the camera viewing angle can be adjusted, solving the problem of fixed viewing angle of the monitoring device on the window glass, improving the monitoring effect and simplifying the structure.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN QIHOO INTELLIGENT TECH CO LTD
- Filing Date
- 2026-06-22
- Publication Date
- 2026-07-24
AI Technical Summary
When a surveillance device is installed on a window, the fixed shooting angle affects the monitoring effect.
Design a monitoring device comprising a rotating part and an operating part. A camera is mounted on the rotating part, and the user can apply force to rotate the camera through the operating part to adjust the camera's viewing angle.
It enriches the shooting angles of the monitoring device, improves the monitoring effect, and simplifies the structure to meet the requirements of miniaturization.
Smart Images

Figure CN122457892A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of monitoring device technology, and in particular to a monitoring device. Background Technology
[0002] With the technological advancements in surveillance equipment, its applications are becoming increasingly widespread. For example, some surveillance devices are now installed on window glass to monitor the outside of the window. Since the shooting angle is a crucial factor affecting the monitoring effectiveness, enriching the shooting angles of surveillance devices has become a pressing technical challenge in the field of surveillance equipment technology. Summary of the Invention
[0003] The main purpose of this application is to provide a monitoring device that enriches the shooting angles of the monitoring device in order to improve the monitoring effect.
[0004] To achieve the above objectives, the monitoring device proposed in this application includes: The carrier has a first receiving cavity, and the carrier also has a clearance hole and a first exposure hole, the clearance hole and the first exposure hole being connected to the first receiving cavity; An operating member, comprising a rotating part and an operating part, wherein at least a portion of the rotating part is rotatably disposed within the first receiving cavity; the operating part is connected to the rotating part and is disposed corresponding to the clearance hole, and at least a portion of the operating part is located outside the first receiving cavity; and A camera is disposed on the rotating part and is configured corresponding to the first exposure hole.
[0005] Optionally, at least a portion of the outer surface of the rotating part is configured as a first spherical surface, and the carrier is provided with an abutment limiting surface within the first accommodating cavity; The abutting and limiting surface encloses and defines a mating space, which is connected to the clearance hole and the first exposure hole. The rotating part rotates and engages with the mating space through the first spherical surface.
[0006] Optionally, the first spherical surface includes a first sub-surface and a second sub-surface disposed opposite to each other in a first direction, and the operating part protrudes from the first sub-surface; The abutting and limiting surface includes a first abutting surface and a second abutting surface, wherein the first abutting surface abuts against the first sub-surface and is arranged around the clearance hole; The second abutting surface abuts against the second sub-surface, and the mating space is defined between the first abutting surface and the second abutting surface.
[0007] Optionally, a portion of the first sub-surface is accommodated within the clearance hole, wherein the clearance hole communicates with one end of the first accommodating cavity, and the wall of the clearance hole is provided with the first abutment surface; A portion of the second sub-surface is housed within the first exposure hole, and the first exposure hole is connected to one end of the first receiving cavity. The wall of the first exposure hole is provided with the second abutment surface.
[0008] Optionally, the cavity wall of the first accommodating cavity includes a first cavity wall and a second cavity wall spaced apart from each other. The first cavity wall includes a first cylinder and a first plate, with the first plate surrounding one end of the first cylinder. The inner side of the first cylinder is configured with the clearance hole, and the end of the first cylinder away from the first plate is provided with the first abutment surface. And / or, the second cavity wall includes a second cylinder and a second plate, the second plate surrounding one end of the second cylinder; the inner side of the second cylinder is configured with the first exposure hole, and the end of the second cylinder away from the second plate is provided with the second abutment surface.
[0009] Optionally, the second abutting surface is disposed around the first exposed hole and spaced apart from the first abutting surface in the first direction; The rotating part is provided with a first stop on at least one side in the second direction, and the first stop is located between the first abutting surface and the second abutting surface; the part supported in the first accommodating cavity is provided with a first stop fitting part, the first stop fitting part is provided on the rotation path of the first stop part, and is configured to abut and limit the rotation stroke of the rotating part around an axis parallel to the third direction, wherein the first direction, the second direction and the third direction intersect each other; And / or, the rotating part is provided with a second stop on at least one side of the third direction, the second stop being located between the first abutment surface and the second abutment surface; the part supported in the first accommodating cavity is provided with a second stop fitting part, the second stop being located between the first abutment surface and the second abutment surface; the second stop fitting part is provided on the rotation path of the second stop and configured to abut and limit the rotational stroke of the rotating part around an axis parallel to the second direction.
[0010] Optionally, the monitoring device further includes an elastic element disposed between the first spherical surface and the abutment limiting surface, and surrounding the operating part; Alternatively, the elastic element is disposed within the first accommodating cavity and is offset from the abutting and limiting surface on the first spherical surface. The elastic element abuts against the first spherical surface and is disposed around the operating part.
[0011] Optionally, the rotating part is provided with a second receiving cavity, and the rotating part is also provided with a second exposure hole communicating with the second receiving cavity; The camera is located inside the second accommodating cavity and is positioned corresponding to the second exposure hole.
[0012] Optionally, the monitoring device further includes an auxiliary component, which is detachably disposed on the carrier and located on the side of the carrier having the first exposure hole. The auxiliary component has a third exposure hole at a position corresponding to the first exposure hole.
[0013] Optionally, the carrier and the auxiliary component are magnetically connected; And / or, the auxiliary component has an adhesive component on the side opposite to the support component.
[0014] The monitoring device in this application includes an operating component comprising a rotating part and an operating part. The rotating part allows for rotatable mounting to a support member and is used to install a camera; the operating part allows the user to apply force to rotate the camera, thereby driving the camera to rotate. This enables adjustment of the camera's shooting angle, enriching the monitoring device's viewing angles and improving its monitoring effectiveness. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art 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 the structures shown in these drawings without creative effort.
[0016] Figure 1 This is a schematic diagram of the structure of an embodiment of the monitoring device of this application; Figure 2 for Figure 1 Another perspective view of the monitoring device; Figure 3 for Figure 1 A schematic diagram of the exploded structure of the monitoring device; Figure 4 for Figure 3 A cross-sectional schematic diagram of the monitoring device in the middle; Figure 5 for Figure 3 Another cross-sectional view of the monitoring device.
[0017] Explanation of icon numbers: 100. Monitoring device; 10. Bearing component; 11. First receiving cavity; 111. First cavity wall; 113. Second cavity wall; 13. Abutment limiting surface; 131. First abutment surface; 133. Second abutment surface; 15. First component; 151. First plate; 152. First cylinder; 153. Clearance hole; 17. Second component; 171. Second plate; 173. Second cylinder; 174. First exposure hole; 175. Enclosing cylinder; 176. Annular groove; 19. Third component; 191. First stop fitting part; 192. First groove; 193. Second stop fitting part; 194. Second protrusion. 30. Operating component; 31. Rotating part; 311. Second receiving cavity; 312. First spherical surface; 313. First sub-surface; 314. Second sub-surface; 315. First part; 316. Second part; 317. First stop part; 318. First protrusion; 319. Second stop part; 320. Second groove; 321. Second exposure hole; 33. Operating part; 331. Extension rod; 333. Grip plate; 50. Camera; 60. Elastic component; 70. Auxiliary component; 71. Third exposure hole; 80. Metal component; 90. Adhesive component; X, First direction; Y, Second direction; Z, Third direction.
[0018] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0019] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0020] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.
[0021] In this application, unless otherwise expressly specified and limited, the terms "connection," "fixed," etc., should be interpreted broadly. For example, "fixed" can mean a fixed connection, a detachable connection, or an integral part; it can mean a mechanical connection or an electrical connection; it can mean a direct connection or an indirect connection through an intermediate medium; it can mean the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0022] Furthermore, the use of terms such as "first" and "second" in this application is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the word "and / or" throughout the text means including three parallel solutions; for example, "A and / or B" includes solution A, solution B, or a solution that simultaneously satisfies A and B. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of a person skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed in this application.
[0023] Some monitoring devices in related technologies are gradually being installed on window glass to monitor the environment outside the window. However, due to the need for windows to allow light and the limited load-bearing capacity of the glass itself, these monitoring devices need to be relatively small. Consequently, they cannot have the same internal space as wall-mounted devices to accommodate complex structures such as motors and control boards. This results in a fixed viewing angle after the monitoring device is attached to the window glass, affecting its monitoring effectiveness.
[0024] Therefore, based on the above considerations, this application proposes a novel monitoring device to solve the technical problem that the limited shooting angle of the monitoring device affects the monitoring effect.
[0025] In addition, it should be noted that the monitoring device proposed in this application can be installed on the window glass as described above to play a safety monitoring role on the environment outside the window; of course, it can also be installed on the glass inside the room or on some panels to play a safety monitoring role on the indoor environment. This application does not limit the specific application scenario of the monitoring device.
[0026] Please refer to the reference. Figures 1 to 4 In one embodiment of this application, the monitoring device 100 includes a carrier 10, an operating member 30, and a camera 50. The carrier 10 has a first receiving cavity 11, and the carrier 10 also has a clearance hole 153 and a first exposure hole 174, both of which are connected to the first receiving cavity 11. The operating member 30 includes a rotating part 31 and an operating part 33. At least a portion of the rotating part 31 is rotatably disposed in the first receiving cavity 11. The operating part 33 is connected to the rotating part 31 and is disposed corresponding to the clearance hole 153. At least a portion of the operating part 33 is located outside the first receiving cavity 11. The camera 50 is disposed on the rotating part 31 and is disposed corresponding to the first exposure hole 174.
[0027] The carrier 10 can be used to form a first receiving cavity 11, through which the portion accommodating the operating component 30, the camera 50, or other components of the monitoring device 100 can be mounted. The carrier 10 can be a shell structure or a base structure, as long as it can form the first receiving cavity 11 internally; this application does not limit the structural type of the carrier 10. Furthermore, the carrier 10 can be divided into two, three, or more separate parts, with at least two of these separate parts enclosing the first receiving cavity 11. Additionally, the shape of the carrier 10 can be a cuboid, a cube, or a cylinder, etc.; this application does not limit the shape of the carrier 10. Moreover, the carrier 10 can be directly mounted onto a corresponding supporting object, such as the glass of a window. Of course, the monitoring device 100 can also include an auxiliary component 70, as described below, with the carrier 10 mounted on the auxiliary component 70, which in turn mounts the auxiliary component 70 onto the corresponding supporting object. In addition, it should be noted that the monitoring device 100 can be installed with the first exposure hole 174 facing the supporting object. Therefore, when the supporting object is not a light-transmitting material such as glass, the supporting object can be installed without covering the first exposure hole 174, for example, by opening a hole to avoid it, or by directly setting it on one side of the first exposure hole 174.
[0028] The shape of the first receiving cavity 11 can be the same as or different from that of the support member 10. This application does not limit the shape of the first receiving cavity 11. The clearance hole 153 can be used to allow clearance for parts of the operating member 30, such as the rotating part 31 and / or the operating part 33, so that the operating member 30 can rotate accordingly. The first exposure hole 174 can be used to expose the camera 50 so that the camera 50 can capture and monitor the outside of the first receiving cavity. The exposure of the camera 50 by the first exposure hole 174 includes both cases where a portion of the camera 50 extends into the first exposure hole 174 and cases where the camera 50 is completely contained within the first receiving cavity. Furthermore, the clearance hole 153 and the first exposure hole 174 can be located on opposite sides of the support member 10 so that when the user rotates the operating member 30, it is less likely to collide or interfere with the supporting object used to install and support the monitoring device 100, thereby improving the convenience of rotation adjustment. Of course, this application is not limited to this. In some embodiments, the clearance hole 153 and the first exposure hole 174 may also be disposed on adjacent sides of the support member 10. In addition, the shape of the clearance hole 153 may be rectangular, square, or circular, etc., and this application does not limit the shape of the clearance hole 153. Similarly, the shape of the first exposure hole 174 may be rectangular, square, or circular, etc., and this application does not limit the shape of the first exposure hole 174.
[0029] The operating member 30 can be rotatably engaged with the carrier member 10 via the rotating part 31. The rotating part 31 can be rotatably engaged with the carrier member 10 through a mating space between the first spherical surface 312 and the carrier member 10, as described below, allowing rotation around at least two intersecting axes to achieve rotational adjustment in at least two directions. Alternatively, the rotating part 31 can be rotatably engaged with a rotating hole in the carrier member 10 via a rotating shaft, allowing rotation around an axis parallel to the rotating shaft. Furthermore, the operating part 33 can be used for user-applied force actuation. The operating part 33 can be a rod structure or a protrusion structure; this application does not limit the structural type of the operating part 33.
[0030] The camera 50 can be used for surveillance photography. Since the surveillance photography principle of the camera 50 is based on existing technology, the specific structure of the camera 50 is not limited here. In addition, the camera 50 can be disposed in the second receiving cavity 311 of the rotating part 31 as described below, or it can be disposed directly on the outside of the rotating part 31.
[0031] The monitoring device 100 in this application includes an operating component 30 comprising a rotating part 31 and an operating part 33. The rotating part 31 allows for rotatable mounting to the support member 10 and is used to mount the camera 50. The operating part 33 allows the user to apply force to rotate the camera 50 by rotating the operating component 30. This allows for adjustment of the camera 50's shooting angle, enriching the shooting angles of the monitoring device 100 and improving its monitoring effect. Furthermore, since the camera 50 is manually driven to rotate directly through the operating component 30, there is no need to include complex structures such as motors, motor control boards, power supplies, and corresponding wiring within the support member 10. This simplifies the structural design of the monitoring device 100 and meets the miniaturization requirements of various applications.
[0032] Please refer to Figure 4 In one embodiment of this application, at least a portion of the outer surface of the rotating part 31 is configured as a first spherical surface 312, and the carrier 10 is provided with an abutting limiting surface 13 in the first accommodating cavity 11; the abutting limiting surface 13 encloses and defines a mating space, which is connected to the clearance hole 153 and the first exposure hole 174, and the rotating part 31 rotates and engages with the mating space through the first spherical surface 312.
[0033] The configuration of at least part of the outer side of the rotating part 31 as a first spherical surface 312 means that the outer side of the rotating part 31 can be integrally formed as a complete first spherical surface 312. Alternatively, the outer side of the rotating part 31 can be formed as a first spherical surface 312 in two parts: one at the end near the operating part 33 and the other at the end away from the operating part 33. The abutting and limiting surface 13 can be a second spherical surface adapted to and abutting the first spherical surface 312. It can be used to define a mating space and restrict the rotating part 31 to always rotate around the center of the first spherical surface 312, thus achieving rotational mating between the first spherical surface 312 and the mating space. The abutting and limiting surface 13 can be a continuous and complete wall surface; alternatively, it can be a combination of at least two spaced sub-spherical surfaces, with the mating space enclosed by at least two spaced sub-spherical surfaces. For example, the first abutting surface 131 and the second abutting surface 133 along the first direction X as described below. Of course, it can also be at least two sub-spherical surfaces along the second direction Y or the third direction Z.
[0034] In this embodiment, the rotating part 31 is configured to rotate and engage with the mating space through the first spherical surface 312, so that the rotating part 31 can rotate in at least two directions around the center of the first spherical surface 312. That is, the rotating part 31 can have at least two intersecting rotation axes, which is beneficial to further enrich the shooting angle of the monitoring device 100.
[0035] Please refer to the reference. Figure 3 and 4 In one embodiment of this application, the first spherical surface 312 includes a first sub-surface 313 and a second sub-surface 314 disposed opposite to each other in the first direction X, and the operating part 33 protrudes from the first sub-surface 313; the abutting and limiting surface 13 includes a first abutting surface 131 and a second abutting surface 133, the first abutting surface 131 abuts against the first sub-surface 313 and is disposed around the clearance hole 153; the second abutting surface 133 abuts against the second sub-surface 314, and a mating space is defined between the first abutting surface 131 and the second abutting surface 133.
[0036] The first sub-surface 313 may protrude towards one side in the first direction X, and the second sub-surface 314 may protrude towards the other side in the second direction Y. The first sub-surface 313 and the second sub-surface 314 may be connected, or they may be spaced apart, or they may be in contact but not connected. Furthermore, the centers of the spheres of the first sub-surface 313 and the second sub-surface 314 coincide, but their sphere diameters may be the same or different. In addition, when the monitoring device 100 is in normal installation and use, the first direction X may be a horizontal direction. Of course, in other embodiments, the first direction X may also be a vertical direction or other directions.
[0037] The first abutting surface 131 and the second abutting surface 133 can be used to abut and limit the rotation of the rotating part 31 around the center of the first spherical surface 312, respectively. The first abutting surface 131 can be the wall of the clearance hole 153 as described below; alternatively, it can be a spherical cover independent of and surrounding the clearance hole 153, or it can be a plurality of spherical plates spaced circumferentially around the clearance hole 153. Similarly, the second abutting surface 133 can be the wall of the first exposure hole 174 as described below; alternatively, it can be a spherical cover independent of and surrounding the first exposure hole 174, or it can be a plurality of spherical plates spaced circumferentially around the first exposure hole 174. Alternatively, in some embodiments, the second abutment surface 133 may be located on adjacent sides of the clearance hole 153, such that the second abutment surface 133 and the first exposure hole 174 are located on different sides. In this case, the second abutment surface 133 may be disposed on the spherical cover, or disposed on a plurality of spherical plates spaced apart, or on a column or seat structure with a concave spherical surface, through which the concave spherical surface is formed as the second abutment surface 133.
[0038] In this embodiment, the first abutting surface 131 and the second abutting surface 133 of the abutting limiting surface 13 are respectively connected to the first sub-surface 313 and the second sub-surface 314 facing each other during the abutting, so that the rotating part 31 can be abutted and limited by the relative first abutting surface 131 and the second abutting surface 133, thereby improving the stability of the rotating part 31 installed in the first accommodating cavity 11.
[0039] Furthermore, when the first contact surface 131 and the second contact surface 133 are separate structures, the rotating part 31 can be conveniently clamped and installed by the opposing first contact surface 131 and second contact surface 133, so as to improve the convenience of installing the rotating part 31.
[0040] Furthermore, when the first sub-surface 313 and the second sub-surface 314 are spaced apart, the first spherical surface 312 can be simplified, thereby improving the ease of manufacturing the rotating part 31. At the same time, the structure of the abutting limiting surface 312 that abuts against the first spherical surface 312 can also be simplified, further improving the ease of manufacturing the limiting support part.
[0041] Please refer to Figure 4In one embodiment of this application, a portion of the first sub-surface 313 is accommodated within a clearance hole 153, the clearance hole 153 is connected to one end of the first accommodating cavity 11, and the wall of the clearance hole 153 is provided with a first abutting surface 131; a portion of the second sub-surface 314 is accommodated within a first exposure hole 174, the first exposure hole 174 is connected to one end of the first accommodating cavity 11, and the wall of the first exposure hole 174 is provided with a second abutting surface 133.
[0042] In this embodiment, the wall structure of the clearance hole 153 can be used to both enclose and form the clearance hole 153 and to form the first abutment surface 131. Similarly, the wall structure of the first exposed hole 174 can also be used to both enclose and form the first exposed hole 174 and to form the second abutment surface 133. Thus, at least two functions are achieved through a single structural design, which simplifies the structural configuration of the support member 10. Furthermore, the rotating part 31 is directly clamped and installed between the wall of the clearance hole 153 and the wall of the first exposed hole 174, and is partially housed within both the clearance hole 153 and the first exposed hole 174. This improves the compactness of the structural distribution, better meeting the miniaturization requirements of the monitoring device 100.
[0043] Please refer to Figure 4 In one embodiment of this application, the cavity wall of the first accommodating cavity 11 includes a first cavity wall 111 and a second cavity wall 113 that are spaced apart from each other. The first cavity wall 111 includes a first cylindrical body 152 and a first plate body 151. The first plate body 151 surrounds one end of the first cylindrical body 152. The inner side of the first cylindrical body 152 is configured with a clearance hole 153. The end of the first cylindrical body 152 away from the first plate body 151 is provided with a first abutment surface 131.
[0044] In this embodiment, the first cavity wall 111 is configured to include a first cylindrical body 152 and a first plate 151. The end of the first cylindrical body 152 away from the first plate 151 abuts against the first sub-surface 313, so that in the first direction X, the first cylindrical body 152 can be closer to the rotating part 31 than the first plate 151. Thus, while ensuring that the wall of the avoidance hole 153 abuts against the first sub-surface 313, other positions of the first accommodating cavity 11 can still have a large space in the first direction X to accommodate other structures.
[0045] Please refer to Figure 4To achieve the same effect at the first exposure hole 174, in one embodiment of this application, the second cavity wall 113 includes a second cylindrical body 173 and a second plate 171, with the second plate 171 surrounding one end of the second cylindrical body 173; the inner side of the second cylindrical body 173 is configured with the first exposure hole 174, and the end of the second cylindrical body 173 away from the second plate 171 is provided with a second abutment surface 133. Furthermore, this arrangement allows the second cylindrical body 173 to better accommodate, conceal, and protect the rotating part 31 and the camera 50.
[0046] Of course, this application is not limited to this. In other embodiments, the cavity wall of the first receiving cavity 11 may only include the first plate 151, and the clearance hole 153 may be formed in the first plate 151. Similarly, the cavity wall of the second receiving cavity 311 may only include the second plate 171, and the clearance hole 153 may be formed in the second plate 171.
[0047] Please refer to Figure 4 In one embodiment of this application, the first cylinder 152 may be configured in a constricted shape in the direction from the first cavity wall 111 toward the second cavity wall 113, so as to better avoid the operating part 33 during rotation.
[0048] Please refer to Figure 4 In one embodiment of this application, the second cylinder 173 may be flared in the direction from the first cavity wall 111 to the second cavity wall 113, so as to better avoid the camera 50 installed in the rotating part 31 during rotation, and to take into account the shooting angle required by the camera 50.
[0049] Please refer to Figure 4 In one embodiment of this application, the carrier 10 includes a first component 15 and a second component 17, which together form a first accommodating cavity 11.
[0050] In this embodiment, the first component 15 and the second component 17 can be manufactured separately and then assembled together to form the first accommodating cavity 11. The structures of the first component 15 and the second component 17 are relatively simple, which helps to improve the convenience of processing and manufacturing the support component 10.
[0051] The first component 15 and the second component 17 may each be a cover structure with an opening on one side, and the other may be a plate structure or a cover structure with an opening on one side. In addition, the first component 15 may have the first cavity wall 111 described above, and the second component 17 may have the second cavity wall 113 described above.
[0052] Please refer to Figure 4In one embodiment of this application, the second abutment surface 133 is disposed around the first exposure hole 174 and spaced apart from the first abutment surface 131 in the first direction X; the rotating part 31 is provided with a first stop part 317 on at least one side in the second direction Y, the first stop part 317 being located between the first abutment surface 131 and the second abutment surface 133; a first stop fitting part 191 is provided in the first accommodating cavity 11, the first stop fitting part 191 being disposed on the rotation path of the first stop part 317 and configured to abut and limit the rotation stroke of the rotating part 31 around an axis parallel to the third direction Z, the first direction X, the second direction Y and the third direction Z intersect each other; In this embodiment, the cooperation between the first stop portion 317 and the first stop mating portion 191 can limit the rotational stroke of the rotating portion 31 around an axis parallel to the third direction Z, reducing the possibility of damage to other structures caused by excessive rotation of the operating member 30. To improve manufacturing convenience, the first stop portion 317 can be a first protrusion 318, which can be a column or a block structure. The first stop mating portion 191 can be a first groove 192, within which the first protrusion 318 can be accommodated, and the two opposing groove walls of the first groove 192 abut and limit the first protrusion 318.
[0053] Please refer to Figure 5 To achieve the same effect during the rotation of the rotating part 31 around the axis in the second direction Y, in one embodiment of this application, the rotating part 31 is provided with a second stop part 319 on at least one side in the third direction Z, the second stop part 319 being located between the first abutment surface 131 and the second abutment surface 133; a second stop fitting part 193 is provided within the first accommodating cavity 11, the second stop part 319 being located between the first abutment surface 131 and the second abutment surface 133; the second stop fitting part 193 is provided on the rotation path of the second stop part 319 and configured to abut and limit the rotational stroke of the rotating part 31 around the axis parallel to the second direction Y. To improve the convenience of processing and manufacturing, The second stop portion 319 can be a second groove 320. The second stop mating portion 193 can be a second protrusion 194, which can be accommodated in the second groove 320, and then the second protrusion 194 is abutted and limited by the two opposite groove walls of the second groove 320. Alternatively, the rotating portion 31 can be provided with second grooves 320 on both sides in the third direction Z. One end of each of the two second grooves 320 in the first direction X can be open. When the rotating portion 31 rotates toward the first side in the third direction Z, the abutting and limiting engagement between the second grooves 320 on the opposite second side and the second protrusion 194 can be achieved. When the rotating portion 31 rotates toward the second side in the third direction Z, the abutting and limiting engagement between the second grooves 320 on the opposite first side and the second protrusion 194 can be achieved.
[0054] In other embodiments, the first stop portion 317 and the first stop mating portion 191 may be configured as a groove and a protrusion, respectively. Similarly, the second stop portion 319 and the second stop mating portion 193 may also be configured as a protrusion and a groove, respectively.
[0055] In one embodiment of this application, in order to improve the convenience of processing and manufacturing the first stop portion 317 and the second stop portion 319, the first stop portion 317 and the second stop portion 319 may both be disposed on the second sub-surface 314.
[0056] Please refer to the reference. Figure 4 and Figure 5 In one embodiment of this application, to improve the ease of manufacturing the first stop fitting part 191 and the second stop fitting part 193, the second component 17 may have a surrounding cylinder 175 protruding from the inner side of the second cavity wall 113. The surrounding cylinder 175 may surround the first exposure hole 174 and the rotating part 31. The support member 10 may also include a third component 19, which may be a cover structure with openings at both ends in the first direction X, and surround the outer side of the rotating part 31. In this case, the third component 19 and the surrounding cylinder 175 can surround the first groove 192, and a second protrusion 194 is provided on the inner side of the third component 19. In addition, when the second cavity wall 113 includes the second plate 171 and the second cylinder 173 as described above, the surrounding cylinder 175 may be provided on the surface of the second cylinder 173 for surrounding and forming the first receiving cavity 11.
[0057] Please refer to Figure 4 In one embodiment of this application, the monitoring device 100 further includes an elastic member 60, which is disposed in the first accommodating cavity 11 and is offset from the abutting limiting surface 13 on the first spherical surface 312. The elastic member 60 abuts against the first spherical surface 312 and is disposed around the operating part 33.
[0058] In this embodiment, the elastic element 60 can be made of an elastic material, such as silicone or rubber, forming a ring structure, and can be disposed between the bearing member 10 (excluding the abutment limiting surface 13) and the rotating part 31. In this case, the elastic element 60 can be compressed by the rotating part 31 and the bearing member 10, thereby generating a deformation elastic force acting on the rotating part 31, so that the rotating part 31 can be stably maintained in the required position after rotation adjustment. Simultaneously, it can provide a damping feel during rotation for more accurate adjustment. Furthermore, the elastic element 60 is a ring structure surrounding the operating part 33, allowing for stepless adjustment of the feel throughout. In addition, the elastic element 60 is offset from the abutment limiting surface 13 on the first spherical surface 312, allowing the rotating part 31 to be better supported by the abutment limiting surface 13, improving the stability of the rotating part 31 during installation. It also facilitates the provision of installation positions for the elastic element 60 at other locations on the bearing member 10, improving the ease of installation. For example, an annular groove 176 can be formed at the connection between the enclosing cylinder 175 and the second cylinder 173, and the elastic element 60 is disposed in the annular groove 176.
[0059] Of course, this application is not limited to this. In other embodiments, the elastic member 60 may also be disposed between the first spherical surface 312 and the abutment limiting surface 13, and surrounding the operating part 33.
[0060] Please refer to Figure 4 In one embodiment of this application, the rotating part 31 is provided with a second accommodating cavity 311, and the rotating part 31 is also provided with a second exposure hole 321 communicating with the second accommodating cavity 311; the camera 50 is disposed in the second accommodating cavity 311 and is correspondingly disposed with the second exposure hole 321.
[0061] In this embodiment, a second accommodating cavity 311 for accommodating the camera 50 is provided in the rotating part 31, which can improve the compactness of the distribution between the camera 50 and the rotating part 31, so as to better meet the miniaturization requirements of the monitoring device 100.
[0062] In one embodiment of this application, the rotating part 31 may include a first part 315 and a second part 316, the first part 315 and the second part 316 forming a second accommodating cavity 311.
[0063] In this embodiment, the first part 315 and the second part 316 can be manufactured separately and then assembled together to form the second accommodating cavity 311. The structures of the first part 315 and the second part 316 are relatively simple, which improves the ease of manufacturing the rotating part 31. Specifically, the first sub-surface 313 and the operating part 33 can be provided in the first part 315, while the second sub-surface 314, the second stop part 319, the third stop part, and the second exposure hole 321 can be provided in the second part 316.
[0064] Please refer to the reference. Figure 2 and Figure 3 In one embodiment of this application, the monitoring device 100 further includes an auxiliary component 70, which is detachably disposed on the support member 10 and located on the side of the support member 10 having a first exposure hole 174. The auxiliary component 70 has a third exposure hole 71 at the position corresponding to the first exposure hole 174.
[0065] In this embodiment, the auxiliary component 70 allows the carrier 10 to be connected to the supporting object at intervals. The carrier 10 and the auxiliary component 70 are detachable, facilitating the disassembly and removal of the main components of the monitoring device 100, namely the carrier 10, the camera 50 mounted on the carrier 10, and the operating components 30, thereby improving the convenience of maintenance and charging the monitoring device 100. To facilitate charging the monitoring device 100, the first accommodating cavity 11 may also contain a battery electrically connected to the camera 50, and a charging interface electrically connected to the battery may be provided on the carrier 10.
[0066] In one embodiment of this application, the carrier 10 and the auxiliary member 70 are magnetically connected.
[0067] In this embodiment, the carrier 10 and the auxiliary component 70 are magnetically connected, which simplifies the assembly and disassembly process and improves the ease of installation and manufacturing. Specifically, the carrier 10 may be equipped with a magnet, while the auxiliary component 70 may have a metal part 80 that can be attracted by the magnet.
[0068] Of course, in other embodiments, the carrier 10 and the auxiliary component 70 may be configured as a snap-fit connection or a threaded connection, etc.
[0069] Please refer to the reference. Figure 2 and Figure 3 In one embodiment of this application, the auxiliary member 70 is provided with an adhesive member 90 on the side opposite to the support member 10.
[0070] In this embodiment, the auxiliary component 70 can be bonded to the supporting object via the adhesive component 90, improving the convenience and stability of installing the auxiliary component 70. The adhesive component 90 uses double-sided adhesive or other adhesive layers.
[0071] In one embodiment of this application, the operating part 33 may include an extension rod 331 and a grip plate 333. The extension rod 331 is connected to the rotating part 31, and the grip plate 333 is connected to the end of the extension rod 331 away from the rotating part 31, so as to take into account both the convenience of gripping and the compactness of the overall structure.
[0072] The above description is merely a preferred embodiment of this application and does not limit the patent scope of this application. Any equivalent structural transformations made based on the inventive concept of this application and the contents of the specification and drawings of this application, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this application.
Claims
1. A monitoring device, characterized in that, include: The carrier has a first receiving cavity, and the carrier also has a clearance hole and a first exposure hole, the clearance hole and the first exposure hole being connected to the first receiving cavity; An operating member, comprising a rotating part and an operating part, wherein at least a portion of the rotating part is rotatably disposed within the first receiving cavity; the operating part is connected to the rotating part and is disposed corresponding to the clearance hole, and at least a portion of the operating part is located outside the first receiving cavity; and A camera is disposed on the rotating part and is configured corresponding to the first exposure hole.
2. The monitoring device as described in claim 1, characterized in that, At least a portion of the outer surface of the rotating part is configured as a first spherical surface, and the carrier is provided with an abutment limiting surface in the first accommodating cavity; The abutting and limiting surface encloses and defines a mating space, which is connected to the clearance hole and the first exposure hole. The rotating part rotates and engages with the mating space through the first spherical surface.
3. The monitoring device as described in claim 2, characterized in that, The first spherical surface includes a first sub-surface and a second sub-surface disposed opposite to each other in a first direction, and the operating part protrudes from the first sub-surface; The abutting and limiting surface includes a first abutting surface and a second abutting surface, wherein the first abutting surface abuts against the first sub-surface and is arranged around the clearance hole; The second abutting surface abuts against the second sub-surface, and the mating space is defined between the first abutting surface and the second abutting surface.
4. The monitoring device as described in claim 3, characterized in that, A portion of the first sub-surface is accommodated within the clearance hole, and the clearance hole is connected to one end of the first accommodating cavity. The wall of the clearance hole is provided with the first abutment surface. A portion of the second sub-surface is housed within the first exposure hole, and the first exposure hole is connected to one end of the first receiving cavity. The wall of the first exposure hole is provided with the second abutment surface.
5. The monitoring device as described in claim 4, characterized in that, The cavity wall of the first accommodating cavity includes a first cavity wall and a second cavity wall that are spaced apart from each other. The first cavity wall includes a first cylinder and a first plate. The first plate surrounds one end of the first cylinder. The inner side of the first cylinder is configured with the clearance hole. The end of the first cylinder away from the first plate is provided with the first abutment surface. And / or, the second cavity wall includes a second cylinder and a second plate, the second plate surrounding one end of the second cylinder; the inner side of the second cylinder is configured with the first exposure hole, and the end of the second cylinder away from the second plate is provided with the second abutment surface.
6. The monitoring device as described in claim 3, characterized in that, The second abutting surface is disposed around the first exposed hole and is spaced apart from the first abutting surface in the first direction; The rotating part is provided with a first stop on at least one side in the second direction, and the first stop is located between the first abutting surface and the second abutting surface; the part supported in the first accommodating cavity is provided with a first stop fitting part, the first stop fitting part is provided on the rotation path of the first stop part, and is configured to abut and limit the rotation stroke of the rotating part around an axis parallel to the third direction, wherein the first direction, the second direction and the third direction intersect each other; And / or, the rotating part is provided with a second stop on at least one side of the third direction, the second stop being located between the first abutment surface and the second abutment surface; the part supported in the first accommodating cavity is provided with a second stop fitting part, the second stop being located between the first abutment surface and the second abutment surface; the second stop fitting part is provided on the rotation path of the second stop and configured to abut and limit the rotational stroke of the rotating part around an axis parallel to the second direction.
7. The monitoring device as described in claim 2, characterized in that, The monitoring device also includes an elastic element, which is disposed between the first spherical surface and the abutment limiting surface, and surrounds the operating part; Alternatively, the elastic element is disposed within the first accommodating cavity and is offset from the abutting and limiting surface on the first spherical surface. The elastic element abuts against the first spherical surface and is disposed around the operating part.
8. The monitoring device according to any one of claims 1 to 7, characterized in that, The rotating part is provided with a second receiving cavity, and the rotating part is also provided with a second exposure hole communicating with the second receiving cavity; The camera is located inside the second accommodating cavity and is positioned corresponding to the second exposure hole.
9. The monitoring device according to any one of claims 1 to 7, characterized in that, The monitoring device also includes an auxiliary component, which is detachably disposed on the support member and located on the side of the support member having the first exposure hole. The auxiliary component has a third exposure hole at the position corresponding to the first exposure hole.
10. The monitoring device as described in claim 9, characterized in that, The support member and the auxiliary member are magnetically connected; And / or, the auxiliary component has an adhesive component on the side opposite to the support component.