Monitor
By introducing drive and stop components into the baby monitor, the problems of over-rotation and loosening are solved, enabling broader information acquisition and stable monitoring, and ensuring the stability of the monitor's connection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2026-03-31
AI Technical Summary
Existing baby monitors have problems such as getting stuck due to excessive rotation or becoming loose due to reverse rotation.
A monitor is designed, comprising a housing, an image acquisition component, a drive component, and a stop component. The drive component drives the image acquisition component and the housing to rotate in different directions via first and second output terminals, respectively. The stop component limits the rotation angle of the housing through stop members and stop members to prevent excessive rotation or loosening.
The information acquisition range of the image acquisition component has been expanded, ensuring connection stability, avoiding jamming and loosening issues, and improving monitoring effectiveness.
Smart Images

Figure CN224068738U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of electronic equipment technology, and specifically relates to a monitor. Background Technology
[0002] In modern parenting, baby monitors have become an indispensable tool for many families. Through a variety of functions, they provide parents with a convenient, safe, and reassuring parenting experience. Baby monitors can transmit sound and images from the baby's room in real time, allowing parents to stay informed about their baby's condition.
[0003] However, baby monitors on the market have issues with over-rotation causing them to jam or rotating out of control. Utility Model Content
[0004] The purpose of this application is to solve the problems of traditional baby monitors in the prior art, such as jamming due to excessive rotation or loosening due to reverse rotation.
[0005] This application provides a monitor, comprising: a housing, including a first housing and a second housing movably disposed thereon, the first housing having a clearance window; an image acquisition component movably disposed on the first housing and at least partially exposed through the clearance window; a drive component having a first output terminal and a second output terminal, the first output terminal being connected to the image acquisition component to drive the image acquisition component to rotate back and forth in a first direction in the housing; the second output terminal being connected to the second housing to drive the first housing to rotate back and forth in a second direction in the housing; and a stop component disposed on the housing, capable of limiting the rotation angle of the first housing in the second direction.
[0006] In one exemplary embodiment of this application, the stop assembly includes: a stop member protruding from the second housing and extending toward the first housing; and a stop member protruding from the first housing and extending toward the second housing; wherein the stop member is capable of abutting against the stop member when the first housing rotates relative to the second housing to limit the rotation angle of the first housing.
[0007] In one exemplary embodiment of this application, the stop assembly further includes an adapter disposed opposite to the second housing, the adapter being housed within the first housing, and the second output terminal being connected to the second housing via the adapter.
[0008] In one exemplary embodiment of this application, the adapter includes an arc-shaped side edge and a straight side edge disposed opposite to each other. The arc-shaped side edge is adapted to the inner wall of the first housing and is spaced apart from the corresponding first housing by a first distance. The straight side edge is spaced apart from the first housing by a second distance, wherein the second distance is greater than the first distance.
[0009] In one exemplary embodiment of this application, the stop assembly further includes a connector disposed on the inner wall of the first housing, and the adapter is detachably connected to the first housing via the connector.
[0010] In one exemplary embodiment of this application, the first housing is provided with an inclined surface, the avoidance window is provided on the inclined surface, and the ratio of the projection of the inclined surface in the second direction to the projection of the first housing in the second direction is between 2 / 3 and 4 / 5.
[0011] In one exemplary embodiment of this application, the image acquisition component includes: a ball-shaped housing, including an acquisition port and a receiving cavity, the acquisition port being exposed above the first housing through the clearance window, and the receiving cavity communicating with the inner cavity of the first housing; the ball-shaped housing having a first end and a second end opposite to each other in the first direction, the first end being rotatably connected to the first housing, and the second end being connected to the first output end; and a lens assembly and a circuit board disposed in the receiving cavity, the lens assembly corresponding to the acquisition port to acquire external information through the acquisition port; the circuit board being electrically connected to the lens assembly.
[0012] In one exemplary embodiment of this application, the first housing is provided with opposing rotating holes and clearance holes; the first end is provided with a rotating column, which is rotatably disposed in the rotating hole; the second end is provided with a connecting hole, and the first output end passes through the connecting hole and is inserted into the clearance hole.
[0013] In one exemplary embodiment of this application, the driving component includes: a first driving member disposed on the first housing, the first driving member including a first output terminal and connected to the image acquisition component through the first output terminal to drive the image acquisition component to rotate back and forth in a first direction of the housing; and a second driving member disposed on the first housing, the second driving member including a second output terminal and connected to the second housing through the second output terminal to drive the first housing to rotate back and forth in a second direction of the housing.
[0014] In one exemplary embodiment of this application, the monitor further includes a detection element and a control element. The detection element is inserted into the second housing and at least partially exposed within the second housing. The control element is electrically connected to the detection element and the image acquisition component, respectively. And / or the monitor further includes a speaker disposed within the first housing, the first housing having a sound outlet corresponding to the speaker, and the speaker being electrically connected to the image acquisition component. And / or the second housing has a through mounting hole, the monitor further includes a mounting member disposed within the mounting hole, the mounting member having a threaded hole inside, and the monitor being mounted on the mounting surface via the mounting member. And / or the monitor further includes a fastener, allowing the second housing to be mounted on the mounting surface via the fastener. And / or the monitor further includes an anti-slip pad disposed on the side of the second housing facing away from the first housing, and when the monitor is placed on a flat surface, the anti-slip pad contacts the flat surface.
[0015] The monitor in the embodiments of this application has at least the following beneficial effects:
[0016] The monitor according to the embodiments of this application includes at least a housing, an image acquisition component, a driving component, and a stop component. A first output terminal of the driving component can drive the image acquisition component to rotate back and forth in a first direction of the housing, enabling the image acquisition component to acquire information from different positions. A second output terminal of the driving component can drive a first housing relative to a second housing to rotate back and forth in a second direction of the housing, further adjusting the position of the image acquisition component, thereby enabling the image acquisition component to acquire information from different positions in another degree of freedom. By adjusting the position of the image acquisition component in different directions through the first and second output terminals respectively, the information acquisition range of the image acquisition component can be expanded, making the monitoring range of the monitor wider and the information acquired more comprehensive. When the first housing rotates back and forth relative to the second housing, the stop component can limit the rotation angle of the first housing relative to the second housing in the second direction to avoid problems such as excessive rotation or loosening due to reverse rotation of the first housing, ensuring the stability of the connection between the first and second housings.
[0017] Other features and advantages of this application will become apparent from the following detailed description, or may be learned in part from practice of this application.
[0018] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description
[0019] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application. It is obvious that the drawings described below are merely some embodiments of this application, and those skilled in the art can obtain other drawings based on these drawings without any inventive effort.
[0020] Figure 1 A schematic diagram of the structure of a monitor provided in an embodiment of this application is shown.
[0021] Figure 2 An exploded structural diagram showing the separation of the first housing and the second housing provided in an embodiment of this application is shown.
[0022] Figure 3 An exploded structural diagram of a monitor provided in an embodiment of this application is shown.
[0023] Figure 4 A cross-sectional structural diagram showing the connection between the second drive member and the second housing provided in an embodiment of this application is shown.
[0024] Figure 5 A cross-sectional structural diagram showing the mounting component separated from the second housing according to an embodiment of this application is shown.
[0025] Figure 6 A schematic diagram of the structure of the ball head shell provided in an embodiment of this application is shown.
[0026] Figure 7 A cross-sectional structural schematic diagram of the ball head shell provided in an embodiment of this application is shown.
[0027] Figure 8 A schematic diagram of the structure provided in the first housing according to an embodiment of this application, showing a rotating hole and a clearance hole, is shown.
[0028] Figure 9 This illustration shows a schematic diagram of the structure provided in this application embodiment, in which the first output shaft is inserted into the connecting hole.
[0029] Figure 10 A schematic diagram of the structure of the detection and control components provided in the embodiments of this application is shown.
[0030] Figure 11 A schematic diagram of the structure of the ball head housing provided in the embodiment of this application, which has a storage port and a reset port at the bottom, is shown.
[0031] Figure 12 A cross-sectional structural diagram of the front and rear shells fastened together according to an embodiment of this application is shown.
[0032] Figure 13A schematic diagram of the structure provided in the embodiment of this application shows a fastening element inside the rear shell.
[0033] Figure 14 A schematic diagram of the front shell with an inclined surface provided in an embodiment of this application is shown.
[0034] Figure 15 A schematic diagram of the structure of the connector provided in the embodiment of this application, which is disposed in the mounting groove, is shown.
[0035] Figure 16 It shows Figure 15 An enlarged schematic diagram of the two connectors located in the mounting slot.
[0036] Figure 17 A left view of the front shell provided in an embodiment of this application is shown.
[0037] Figure 18 The diagram shows a cross-sectional view of the interaction between the limiting block, the limiting groove, and the limiting strip provided in the embodiment of this application.
[0038] Figure 19 A schematic diagram of the structure of the shielding member provided in the embodiment of this application, which is disposed on the inner wall of the front shell, is shown.
[0039] Figure 20 This illustration shows a structural diagram of a rear shell with a first fastening post and a second fastening post provided in an embodiment of this application.
[0040] Figure 21 A schematic diagram of the structure provided in the embodiment of this application shows that the rear shell has heat dissipation holes and sound outlet holes.
[0041] Explanation of reference numerals in the attached figures:
[0042] 10. Monitor;
[0043] 100. Outer shell; 110. First shell; 111. Clearance window; 112. Inclined surface; 113. Rotation hole; 114. Clearance hole; 115. Annular mounting part; 116. Front shell; 1161. First side edge; 117. Rear shell; 1171. Second side edge; 118. Connector; 1180. Male snap; 1181. Abutment surface; 1182. Connecting rib; 1183. First inclined surface; 1184. Flat surface; 1185. Second inclined surface; 119. Fastening element; 119 0. Female buckle; 1191. Reinforcing rib; 1100. Limiting block; 1110. Mounting groove; 1111. First adapter post; 1112. Second adapter post; 1113. First fastening post; 1114. Second fastening post; 1115. Covering component; 1116. Sound outlet; 1117. First anti-slip part; 1118. Second anti-slip part; 1119. Limiting post; 1120. Limiting hole; 1121. Limiting groove; 1122. Limiting strip; 1123. Heat dissipation hole; 1124. Dummy hole;
[0044] 120. Second housing; 121. Protruding ring; 122. Insertion post; 123. Mounting hole; 1230. First part; 1231. Second part; 1232. First annular retaining tooth; 1233. Second annular retaining tooth;
[0045] 200. Image acquisition component; 210. Ball head housing; 211. Acquisition port; 212. Mounting post; 213. Reinforcing block; 214. First end; 215. Second end; 216. Rotating post; 217. Connecting hole; 218. Fixing post; 219. Abutment block; 2110. Limiting part; 2120. Hook; 2121. First hook block; 2122. Second hook block; 2123. Third hook block; 2124. Fourth hook block; 2130. Storage port; 2140. Reset port; 2150. Arc groove; 2160. Retrieval slot; 220. Lens assembly; 230. Circuit board; 240. LED light board; 250. Storage module; 260. Reset button;
[0046] 300, Drive assembly; 310, First drive component; 311, First body; 3110, Connecting ear; 312, First output end; 3120, Shaft body; 3121, Locking block; 3122, Locking part; 320, Second drive component; 321, Second body; 3210, Mounting ear; 322, Second output end;
[0047] 410. Stop component; 420. Stopping component; 430. Adapter component; 431. Arc-shaped side edge; 432. Straight side edge; 440. Connector; 441. Connecting post; 442. Reinforcing rib;
[0048] 500, Inspection component; 600, Control component; 700, Speaker; 800, Mounting component; 810, First engagement section; 820, Second engagement section; 900, Fastener; 1000, Anti-slip mat. Detailed Implementation
[0049] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the examples set forth herein; rather, these embodiments are provided to make this application more comprehensive and complete, and to fully convey the concept of the exemplary embodiments to those skilled in the art.
[0050] In this application, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0051] In this application, unless otherwise expressly specified and limited, the terms "assembly," "connection," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0052] Furthermore, the described features, structures, or characteristics can be combined in any suitable manner in one or more embodiments. Numerous specific details are provided in the following description to give a thorough understanding of embodiments of this application. However, those skilled in the art will recognize that the technical solutions of this application can be practiced without one or more of the specific details, or other methods, components, apparatuses, steps, etc., can be employed. In other instances, well-known methods, apparatuses, implementations, or operations are not shown or described in detail to avoid obscuring various aspects of this application.
[0053] In modern childcare environments, baby monitors are crucial devices for ensuring infant safety and health, and their performance and design are of great concern.
[0054] Figure 1 A schematic diagram of the monitor's structure is shown. Figure 2 A schematic diagram of the exploded structure showing the separation of the first and second shells is shown.
[0055] See Figure 1 and Figure 2As shown in the figure, this application embodiment provides a monitor 10, which can be used to monitor the sound and images in a baby's room in real time, allowing users to know the baby's status at any time. It may include a housing 100, an image acquisition component 200, a driving component 300, and a stop component (not shown in the figure). The following is a detailed description of each component.
[0056] In some embodiments of this application, see Figure 2 As shown, the housing 100 can form the overall shape of the monitor 10. It may include a first housing 110 and a second housing 120 that are movably disposed. The first housing 110 and the second housing 120 are arranged sequentially in a second direction of the housing 100, and the first housing 110 is rotatable relative to the second housing 120. For example, a raised ring 121 can be provided on the top of the second housing 120. The raised ring 121 is located on the inner side of the top wall of the second housing 120. In this way, when the first housing 110 is assembled onto the second housing 120, the raised ring 121 can quickly align the first housing 110 and the second housing 120, shortening the assembly time; and when the first housing 110 and the second housing 120 rotate relative to each other, the raised ring 121 can be used to guide and limit the rotation, improving the rotation accuracy of the first housing 110 and the image acquisition component 200.
[0057] It should be noted that the first direction of the outer casing 100 can be the radial direction of the outer casing 100, and the second direction can be the axial direction of the outer casing 100, that is, the first direction can be the horizontal direction and the second direction can be the vertical direction.
[0058] In some embodiments of this application, see Figure 2 and Figure 3 As shown, a hollow accommodating space (not shown in the figure) can be formed inside the first housing 110. This accommodating space can be used to install the image acquisition component 200, the drive component 300, and the stop component, so that all components are integrated within the first housing 110. For example, the image acquisition component 200 can be placed near the top of the first housing 110, the drive component 300 can be placed between the image acquisition component 200 and the second housing 120, and the stop component can be placed between the first housing 110 and the second housing 120. In this way, the components inside the housing 100 are arranged from top to bottom. This layout can minimize the space occupied by the monitor 10 in the first direction, making the monitor 10 slimmer, more compact, and more aesthetically pleasing.
[0059] In some embodiments of this application, the image acquisition component 200 can be movably disposed within the first housing 110 and partially exposed through the clearance window 111 on the first housing 110. The image acquisition component 200 can rotate both within the first housing 110 and at the clearance window 111, allowing it to acquire image information from different locations and expanding its acquisition range.
[0060] Figure 3 A schematic diagram of the exploded structure of the monitor is shown. Figure 4 A cross-sectional structural diagram showing the connection between the second drive component and the second housing is shown.
[0061] In some embodiments of this application, see Figure 3 and Figure 4 As shown, the driving component 300 has a first output terminal 312 and a second output terminal 322. The first output terminal 312 can be connected to the image acquisition component 200 to drive the image acquisition component 200 to rotate back and forth in a first direction of the housing 100. That is, the first output terminal 312 can drive the image acquisition component 200 to rotate back and forth about the first direction of the housing 100 as an axis, thereby adjusting the acquisition range of the image acquisition component 200 in the vertical direction to expand the acquisition range of the image acquisition component 200 in the vertical direction. The second output terminal 322 is connected to the second housing 120 to drive the first housing 110 to rotate back and forth in a second direction of the housing 100. That is, the second output terminal 322 can drive the image acquisition component 200 to rotate back and forth about the second direction of the housing 100 as an axis, thereby adjusting the acquisition position of the image acquisition component 200 in the circumferential direction of the housing 100 to further expand the acquisition range of the image acquisition component 200.
[0062] It is understood that the first output terminal 312 and the second output terminal 322 can simultaneously adjust the acquisition range of the image acquisition component 200 in the vertical direction and the circumferential direction of the housing 100, or can adjust the acquisition range of the image acquisition component 200 in the vertical direction or the circumferential direction of the housing 100 separately.
[0063] Figure 5 A cross-sectional structural diagram showing the mounting component separated from the second housing is shown.
[0064] In some embodiments of this application, see Figure 5 As shown, the stop assembly is provided on the housing 100, which can limit the rotation angle of the first housing 110 in the second direction to avoid the problem of the first housing 110 rotating too much or rotating loose in the opposite direction, and ensure that the rotation angle between the first housing 110 and the second housing 120 will not cause problems such as jamming.
[0065] In some embodiments of this application, please refer to... Figure 5 As shown, the stop assembly includes a stop member 410 and a stop member 420. The interaction between the stop member 410 and the stop member 420 can limit the rotation angle of the first housing 110 in the second direction of the housing 100, so as to avoid the problem of the first housing 110 rotating too much or rotating out of the reverse direction.
[0066] For example, a stop member 410 is disposed on the inner wall of the second housing 120 and can extend toward the first housing 110 and protrude outside the second housing 120. A stop member 420 is disposed on the inner wall of the first housing 110 and extends toward the second housing 120. When the first housing 110 and the second housing 120 are engaged, the stop member 410 can be inserted into the first housing 110. The stop member 420 can abut against the stop member 410 when the first housing 110 rotates relative to the second housing 120 to limit the rotation angle of the first housing 110, thereby avoiding the problem of excessive rotation or loosening due to reverse rotation of the first housing 110, and ensuring the connection stability between the first housing 110 and the second housing 120.
[0067] In another example, a stop member 410 is disposed on the inner wall of the first housing 110 and extends toward the second housing 120, protruding outside the first housing 110. A stop member 420 is disposed inside the second housing 120 and extends toward the first housing 110. When the first housing 110 and the second housing 120 are engaged, the stop member 410 can be inserted into the second housing 120. During rotation, the stop member 410 can abut against the stop member 420 to limit the rotation angle of the first housing 110.
[0068] Please refer to some embodiments of this application. Figure 5 As shown, the stop assembly also includes a connector 430 disposed opposite to the second housing 120. The connector 430 is housed within the first housing 110, and the second output terminal 322 is connected to the second housing 120 via the connector 430. The connector 430 may have a plate-like structure, which is spaced apart from the second housing 120 in the second direction. The connector 430 has a through hole in the second direction, through which the second output terminal 322 passes and connects to the second housing 120. The connector 430 can rotate under the action of the second output terminal 322, and the connector 430 is connected to the inner wall of the first housing 110. Therefore, during the rotation of the connector 430, the first housing 110 can be rotated relative to the second housing 120 to adjust the position of the clearance window 111 in the circumferential direction of the outer casing 100, thereby adjusting the position of the image acquisition component 200 located at the clearance window 111 in the circumferential direction of the outer casing 100 and expanding the acquisition range of the image acquisition component 200.
[0069] Please refer to some embodiments of this application. Figure 2 and Figure 3As shown, the adapter 430 includes an arcuate side edge 431 and a straight side edge 432 disposed opposite to each other. The arcuate side edge 431 is adapted to the inner wall of the first housing 110 and is spaced from the first housing 110 by a first distance (not shown) to allow cable routing. The straight side edge 432 is spaced from the inner wall of the first housing 110 by a second distance (not shown), the second distance being greater than the first distance, so as to avoid the protruding annular mounting portion 115 on the first housing 110, which can be used to mount the speaker 700, thus allowing the speaker 700 and the adapter 430 to be disposed on the same horizontal plane.
[0070] Please refer to some embodiments of this application. Figure 4 As shown, the stop assembly also includes a connector 440. The connector 440 is disposed on the inner wall of the first housing 110, and the adapter 430 is detachably connected to the first housing 110 via this connector 440. Thus, when the adapter 430 rotates, it can drive the first housing 110 to rotate relative to the second housing 120, thereby causing the first housing 110 to rotate relative to the second housing 120.
[0071] In some embodiments of this application, see Figure 3 and Figure 4 As shown, the connector 440 may include a connecting post 441 and a reinforcing rib 442. The connecting post 441 protrudes from the inner wall of the first housing 110, and its bottom is provided with a mounting hole 123 facing the second housing 120. It can be connected to the adapter 430 by a fixing structure such as screws or bolts. A reinforcing rib 442 is also provided on one side of the connecting post 441. One end of the reinforcing rib 442 is connected to the inner wall surface of the first housing 110, and the other end is connected to the connecting post 441. The reinforcing rib 442 can improve the strength of the connecting post 441 on the inner wall of the first housing 110 and prevent it from falling off during a collision.
[0072] Please refer to some embodiments of this application. Figure 2 As shown, the first housing 110 has an inclined surface 112. The inclined surface 112 can be inclined from the top of the first housing 110 to the bottom of the second housing 120, so that the inclined surface 112 forms an acute angle with the axis of symmetry of the first housing 110. Furthermore, the inclined surface 112 has a clearance window 111 with an area smaller than itself, which allows a portion of the image acquisition component 200 to be exposed through the clearance window 111 for acquiring external image information.
[0073] It should be noted that, please continue to refer to... Figure 2As shown, the opening area of the avoidance window 111 is smaller than the area of the inclined surface 112, which allows the field of view below the image acquisition component 200 to be exposed through the inclined surface 112. This effectively reduces the obstruction of the area below the image acquisition component 200 by the first housing 110, increases the image acquisition area, and greatly improves the monitoring effect of the monitor 10. The inclined surface 112 can be inverted teardrop shape, and the clearance window 111 can be circular. The clearance window 111 is located at the top of the inclined surface 112. That is to say, the curvature of the arc on the side of the inclined surface 112 away from the second housing 120 is equal to or approximately equal to the curvature of the arc on the side of the clearance window 111 away from the second housing 120, and the curvature of the arc on the side of the inclined surface 112 close to the second housing 120 is less than the curvature of the arc on the side of the clearance window 111 close to the second housing 120. This structure can overcome the problem that the lower field of view of the image acquisition component 200 extending out of the clearance window 111 is blocked by the housing 100 below it. At the same time, it can also reduce the loss of the housing space of the housing 100 due to the setting of the inclined surface 112. In addition, the teardrop-shaped inclined surface can also improve the overall aesthetics of the device.
[0074] In some embodiments of this application, the ratio of the projection of the inclined surface 112 in the second direction of the outer shell 100 to the projection of the first shell 110 in the second direction of the outer shell 100 can be 2 / 3, that is, the ratio of the projection of the inclined surface 112 in the vertical direction to the projection of the first shell 110 in the vertical direction can be 2 / 3.
[0075] In some other embodiments of this application, the ratio of the projection of the inclined surface 112 in the second direction of the outer shell 100 to the projection of the first shell 110 in the second direction of the outer shell 100 can also be 11 / 15, that is, the ratio of the projection of the inclined surface 112 in the vertical direction to the projection of the first shell 110 in the vertical direction can be 11 / 15.
[0076] In some embodiments of this application, the ratio of the projection of the inclined surface 112 in the second direction of the outer shell 100 to the projection of the first shell 110 in the second direction of the outer shell 100 can also be 4 / 5, that is, the ratio of the projection of the inclined surface 112 in the vertical direction to the projection of the first shell 110 in the vertical direction can be 4 / 5.
[0077] It should be noted that if the ratio of the projection of the inclined surface 112 on the second direction of the outer shell 100 to the projection of the first shell 110 on the second direction of the outer shell 100 is greater than 4 / 5, the area occupied by the inclined surface 112 is too large, resulting in the end of the first shell 110 closer to the inclined surface 112 being lighter and the end of the first shell 110 farther from the inclined surface 112 being heavier. The difference in weight at the two ends results in a significant reduction in the overturning moment of the first shell 110, which is prone to structural shaking, thus leading to weak fuselage stability of the first shell 110.
[0078] If the ratio of the projection of the inclined surface 112 in the second direction of the housing 100 to the projection of the first housing 110 in the second direction of the housing 100 is less than 2 / 3, the lateral dimension of the inclined surface 112 is excessively compressed, forcing the opening width of the avoidance window 111 to be reduced synchronously, thereby limiting the viewing angle of the image acquisition component 200 and reducing the acquisition range of the image acquisition component 200.
[0079] Based on this, the ratio of the projection of the inclined surface 112 on the second direction of the housing 100 to the projection of the first housing 110 on the second direction of the housing 100 can be between 2 / 3 and 4 / 5. This not only ensures that the monitor 10 has a wider detection field of view, but also ensures the assembly stability of the first housing 110 and the second housing 120.
[0080] Please refer to some embodiments of this application. Figure 2 and Figure 3 As shown, the image acquisition component 200 may include a ball-shaped housing 210. This ball-shaped housing 210 may have a hemispherical structure and has a mounting port (not shown in the figure) and an acquisition port 211 at its two axial ends, respectively. The portion of the ball-shaped housing 210 with the acquisition port 211 protrudes outside the first housing 110 through a clearance window 111, and the diameter of the ball-shaped housing 210 gradually increases in the direction from the acquisition port 211 to the mounting port, that is, the diameter of the mounting port is larger than the diameter of the acquisition port 211. By using a large-diameter mounting port, cable routing can be facilitated and sufficient operating space can be provided for the installation of the circuit board 230 and the lens assembly 220 described below.
[0081] In some embodiments of this application, the ball head housing 210 has a receiving cavity (not shown in the figure). This receiving cavity communicates with the receiving space inside the first housing 110 through a mounting port.
[0082] In some embodiments of this application, please refer to... Figure 3 As shown, the image acquisition assembly 200 may further include a lens group 220 and a circuit board 230 connected to each other. The lens group 220 and the circuit board 230 are mounted in the receiving cavity through a mounting port. The lens group 220 corresponds to the acquisition port 211 and can perform optical imaging through the acquisition port 211 to acquire external information; the circuit board 230 is located on the side of the lens group 220 away from the acquisition port 211 and is electrically connected to the lens group 220. It can provide power to the lens group 220 and control the physical actions of the lens group 220 (e.g., autofocus, aperture adjustment).
[0083] Figure 6 A schematic diagram of the ball-head shell structure is shown. Figure 7 A schematic cross-sectional view of the ball-shaped shell is shown. Figure 8 A schematic diagram showing the structure of the ball head housing with a storage port and a reset port at the bottom is shown.
[0084] Please refer to some embodiments of this application. Figure 6 and Figure 7 As shown, the ball head housing 210 also has a mounting post 212 inside its receiving cavity. The mounting post 212 is located on the inner wall of the receiving cavity and extends axially. The mounting post 212 has a threaded hole facing the mounting opening. The circuit board 230 has multiple threaded holes, which can be fixed to the mounting post 212 by screws or other fixing structures, so that the circuit board 230 and the lens assembly 220 can move together with the ball head housing 210.
[0085] In some embodiments of this application, see Figure 6 and Figure 7 As shown, a reinforcing block 213 is also provided inside the receiving cavity. The reinforcing block 213 is located on one side of the mounting post 212 and is connected to the inner wall of the receiving cavity. The reinforcing block 213 can improve the overall strength of the mounting post 212 and the receiving cavity, and improve the connection tightness. In addition, the outer side of the circuit board 230 abuts against the side of the reinforcing block 213 away from the inner wall of the receiving cavity, so as to further restrict the position of the circuit board 230 in the receiving cavity and ensure the stability of the circuit board 230 in the receiving cavity.
[0086] In some embodiments of this application, see Figure 6 As shown, the receiving cavity is provided with four mounting posts 212 and four reinforcing blocks 213 connected thereto. The four mounting posts 212 are respectively connected to the four diagonals of the circuit board 230, and the two opposite edges of the circuit board 230 abut against two reinforcing blocks 213 respectively, so as to fix the circuit board 230 in the receiving cavity and prevent it from shaking.
[0087] In some embodiments of this application, see Figure 6 As shown, the ball head housing 210 has a first end 214 and a second end 215 opposite each other in a first direction of the outer casing 100. The first end 214 can be rotatably connected to the first casing 110, and it can serve as a pivot point for rotation between the ball head housing 210 and the first casing 110, allowing the ball head housing 210 to rotate about this end; the second end 215 can be connected to the first output end 312 for transmitting power or motion to drive the ball head housing 210 to rotate about the first end 214.
[0088] Figure 8 A schematic diagram of the structure showing a rotating hole and a clearance hole inside the first housing is shown.
[0089] In some embodiments of this application, see Figure 4 , Figure 6 and Figure 8As shown, the first housing 110 has a corresponding rotating hole 113 and a clearance hole 114, with the clearance hole 114 and the rotating hole 113 coaxially arranged. A cylindrical rotating post 216 is provided on the side of the first end 214 away from the second end 215. The rotating post 216 can be inserted into the rotating hole 113 on the first housing 110 and can rotate within the rotating hole 113. The second end 215 has a through-hole 217 in a first direction. The first output end 312 can pass through the through-hole 217 and be inserted into the clearance hole 114 on the first housing 110. The first output end 312 can drive the first end 214 to rotate about the first output end 312 as its axis and the second end 215 to rotate about the axis of the rotating post 216, thereby causing the image acquisition component 200 to rotate in the first housing 110 to switch the position of the image acquisition component 200 at the clearance window 111. This example achieves a rotatable connection between the drive assembly and the first housing by using a combination of hole and column structures, resulting in a simpler structure and easier manufacturing.
[0090] In some embodiments of this application, see Figure 2 As shown, both the first end 214 and the second end 215 can be planar plate structures, that is, the surfaces of the first end 214 / second end 215 are perpendicular to the first direction of the outer shell 100. By adopting planar plate structures for the first end 214 and the second end 215, friction between the ball head shell 210 and the inner wall of the first shell 110 during rotation can be avoided, thereby improving the smoothness of rotation of the ball head shell 210 within the first shell 110.
[0091] In some embodiments of this application, see Figure 3 As shown, the drive assembly 300 includes a first drive element 310 and a second drive element 320. The first drive element 310 and the second drive element 320 are arranged at intervals between each other, and both the first drive element 310 and the second drive element 320 can be drive motors. The first drive element 310 and the second drive element 320 can be driven synchronously to improve the transmission synchronization of the monitor and improve the image acquisition effect; they can also be driven independently to expand the application scenarios.
[0092] Please continue to see Figure 3 As shown, the first driving component 310 may include a first body 311 and a first output terminal 312 connected to each other. The first body 311 and the first output terminal 312 are arranged sequentially in the first direction of the housing 100. The first body 311 is connected to the ball head housing 210, and the first output terminal 312 is connected to the first housing 110. It can drive the image acquisition component 200 to rotate back and forth in the first direction of the housing 100.
[0093] Figure 9 A schematic diagram of the structure in which the first output shaft is inserted into the connecting hole is shown.
[0094] In some embodiments of this application, see Figure 6 and Figure 9 As shown, the surface of the ball head housing 210 is also provided with a fixing post 218. The fixing post 218 is located at the second end 215 of the ball head housing 210 and extends toward the first end 214. The fixing post 218 has an opening that extends through along the first direction. The first body 311 has a connecting ear 3110 on the side near the first output end 312. The connecting ear 3110 has a through hole corresponding to the opening. The connecting ear 3110 and the fixing post 218 are detachably connected by a fixing structure such as screws or rivets, so that the first body 311 is fixed to the ball head housing 210.
[0095] It should be noted that, in the second direction of the outer casing 100, the ball head housing 210 is provided with two oppositely arranged fixing posts 218, and the first body 311 is provided with two oppositely arranged connecting ears 3110. The connection stability between the first driving member 310 and the ball head housing 210 can be ensured by the two fixing posts 218 and the two connecting ears 3110.
[0096] In some embodiments of this application, see Figure 6 As shown, an abutment block 219 is also protruding from the inner wall of the receiving cavity. The abutment block 219 is located at the second end 215 and extends toward the first end 214. The side of the abutment block 219 facing the second end 215 abuts against the first body 311, which improves the connection stability between the first body 311 and the ball head housing 210, and can also reduce the problem of the first body 311 causing the ball head housing 210 to vibrate.
[0097] In some embodiments of this application, the clearance hole 114 on the first housing 110 is an oblong hole. See also Figure 3 As shown, the first output terminal 312 includes a flat shaft body 3120, which can be locked in the clearance hole 114. The first body 311 drives the first output terminal 312 to rotate. Since the first output terminal 312 is confined within the clearance hole 114, it will drive the first body 311 to rotate in a circle. Since the first body 311 is connected to the ball head housing 210, when the first body 311 rotates in a circle, it will drive the ball head housing 210 to rotate in a circle around the first direction as the axis, thereby adjusting the position of the lens group 220 at the clearance window 111, so as to expand the acquisition range of the lens group 220 and thus increase the monitoring range of the monitor 10.
[0098] In some embodiments of this application, see Figure 3 and Figure 7As shown, the connecting hole 217 can be a circular hole, with an arc-shaped limiting part 2110 protruding from its inner wall. The first output end 312 also includes a locking block 3121 sleeved on the outside of the shaft body 3120. The locking block 3121 is disposed inside the connecting hole 217, and an arc-shaped locking part 3122 protrudes from the outside of the locking block 3121. There are gaps between the locking part 3122 and the inner wall of the connecting hole 217, as well as between the locking block 3121 and the limiting part 2110, to ensure that the ball head housing 210 can rotate smoothly. When the ball head housing 210 rotates circumferentially about the first direction as an axis, the limiting part 2110 can rotate circumferentially along the outer wall surface of the locking block 3121. During the rotation, the limiting part 2110 can abut against the locking part 3122 to limit the rotation angle of the ball head housing 210 and prevent jamming due to excessive rotation angle.
[0099] In some embodiments of this application, see Figure 4 and Figure 5 As shown, the second driving member 320 may include a second body 321 and a second output terminal 322 connected to each other. The second body 321 and the second output terminal 322 are arranged sequentially in a second direction of the housing 100. The second body 321 is connected to the first housing 110, and the second output terminal 322 is connected to the second housing 120. The second body 321 can drive the first housing 110 to rotate circumferentially about the second direction as the axis under the drive of the second output terminal 322, thereby enabling the first housing 110 to rotate circumferentially relative to the second housing 120.
[0100] In some embodiments of this application, see Figure 3 As shown, the second body 321 includes two mounting ears 3210 arranged sequentially in the first direction. The mounting ears 3210 correspond to the openings on the adapter 430. The mounting ears 3210 can be fixed to the side of the adapter 430 away from the second housing 120 by screws or other fixing structures.
[0101] In some embodiments of this application, see Figure 3 As shown, the inner wall of the second housing 120 is also provided with a plug-in post 122. The plug-in post 122 extends toward the first housing 110. The plug-in post 122 is provided with a mounting hole 123 that extends through in a second direction.
[0102] In some embodiments of this application, see Figure 5As shown, the mounting hole 123 includes a first portion 1230 and a second portion 1231. The first portion 1230 is located on the side of the second portion 1231 near the first housing 110, and the diameter of the first portion 1230 is smaller than the diameter of the second portion 1231. The outline of the first portion 1230 is the same as the outline of the second output terminal 322, and the second output terminal 322 is inserted into the first portion 1230 through a through hole on the adapter 430.
[0103] In some embodiments of this application, the second output terminal 322 is provided with a threaded hole with an opening in the second direction. Figure 5 As shown, when the second output terminal 322 is inserted into the first part 1230, a screw or other fixing structure is inserted from the second part 1231 toward the first part 1230 and screwed into the threaded hole at the second output terminal 322 to fix the second output terminal 322 into the mounting hole 123 of the insertion post 122, thereby fixing the second driving member 320 to the second housing 120. Since the second output terminal 322 is fixedly connected to the second housing 120, when the second body 321 drives the second output terminal 322 to rotate, the second body 321 will rotate, thereby driving the adapter 430 and the first housing 110 to rotate around the second direction as the axis, so as to adjust the acquisition position of the lens assembly 220 in the circumferential direction of the housing 100.
[0104] It should be noted that both the first driving element 310 and the second driving element 320 can be electrically connected to the circuit board 230, so that the working state of the first driving element 310 and the second driving element 320 can be controlled according to the received external information.
[0105] Figure 10 A schematic diagram of the detection and control components is shown.
[0106] In some embodiments of this application, see Figure 10 As shown, the monitor 10 may further include a detection element 500 and a control element 600. The detection element 500 is inserted into the second housing 120 and at least partially exposed within the second housing 120. The control element 600 is electrically connected to both the detection element 500 and the aforementioned circuit board 230.
[0107] In some embodiments of this application, the detection element 500 can be a temperature sensor, a humidity sensor, or a light sensor. The control element 600 is a control board. The detection element 500 is disposed on the side of the second housing 120 and extends outward to detect external information in real time. The control board is disposed inside the second housing 120 and connected to the detection element 500. It can transmit the acquired external information to the control element 600, and the control element 600 transmits the acquired external information to the user in real time via a network, allowing the user to intuitively obtain the current external information. For example, the detection element 500 can be a temperature and humidity sensor to detect the temperature and humidity in the indoor environment. When the indoor temperature is too high or too low, temperature alarm data is transmitted to the control element 600; or, when the indoor humidity is too high or too low, humidity alarm data is transmitted to the control element 600. The control element 600 can be connected to the central control system of the room and transmit the warning data to the central control system. The central control system can receive and process this early warning data, and based on the temperature early warning data, it can coordinate with the air conditioners in the room to activate heating mode when the indoor temperature is too low, or cooling mode when the indoor temperature is too high. Alternatively, based on the humidity early warning data, it can coordinate with the dryers or humidifiers in the room to activate humidification mode when the indoor humidity is too low, or dehumidification mode when the indoor humidity is too high. The monitor provided in this example can not only monitor indoor images, but also monitor indoor temperature and humidity, making it more comprehensive in function.
[0108] In some embodiments of this application, see Figure 10 As shown, the monitor 10 also includes a speaker 700. The speaker 700 is electrically connected to the image acquisition component 200, and can synchronously trigger the speaker 700 to play a preset alarm audio when the image acquisition component 200 detects a moving target; or, the speaker 700 can be used to acquire ambient sound, which is linked to the rotation angle of the image acquisition component 200 to support remote real-time voice communication.
[0109] In some embodiments of this application, see Figure 4 and Figure 5 As shown, an annular mounting portion 115 protrudes from the inner wall of the first housing 110 for mounting the speaker 700, so as to integrate the speaker 700 into the first housing 110 and improve the integration of the monitor 10. The first housing 110 is provided with a sound outlet 1116 communicating with the annular mounting portion 115, so that the speaker 700 can emit clearer and louder sound to the outside through the sound outlet 1116.
[0110] In some embodiments of this application, see Figure 5As shown, the monitor 10 also includes a mounting member 800 inserted into a mounting hole 123. The mounting hole 123 is provided with a first annular retaining tooth 1232 and a second annular retaining tooth 1233, which are arranged sequentially in a second direction and spaced apart from each other. The outer wall of the mounting member 800 is provided with a first engaging section 810 and a second engaging section 820 corresponding to the first annular retaining tooth 1232 and the second annular retaining tooth 1233. When the mounting member 800 is inserted into the mounting hole 123, the first engaging section 810 engages with the first annular retaining tooth 1232, and the second engaging section 820 engages with the second annular retaining tooth 1233, ensuring a tight connection between the mounting member 800 and the second housing 120 to prevent the mounting member 800 from falling off.
[0111] It should be noted that the mounting component 800 is hollow inside and has openings at both ends. The fixing structure for fixing the second output end 322 can be inserted into the threaded hole of the second output end 322 through the opening of the mounting component 800 near the first housing 110, so as to fix the second output end 322 in the mounting hole 123.
[0112] In some embodiments of this application, the mounting component 800 is insulated from the second output terminal 322.
[0113] In some embodiments of this application, see Figure 5 As shown, the mounting part 800 has a threaded hole, and the monitor 10 can be mounted on the surface to be mounted through the threaded hole on the mounting part 800.
[0114] In some embodiments of this application, see Figure 4 and Figure 5 As shown, the monitor 10 also includes a fastener 900. A bracket (not shown) protrudes from the inner bottom wall of the second housing 120 and is provided on opposite sides of the insertion post 122. The fastener 900 can pass through the bracket and connect to the surface to be installed.
[0115] In some embodiments of this application, see Figure 3 As shown, the monitor 10 also includes an anti-slip pad 1000. The anti-slip pad 1000 is located on the side of the second housing 120 away from the first housing 110. The outer side of the second housing 120 is provided with an anti-slip groove, and the anti-slip pad 1000 can be attached to or snapped into the anti-slip groove to improve the tightness of the connection between the anti-slip pad 1000 and the second housing 120.
[0116] It should be noted that the anti-slip mat 1000 includes multiple arc-shaped anti-slip blocks, and the second housing 120 is provided with multiple anti-slip grooves. The anti-slip grooves correspond one-to-one with the anti-slip blocks, and the multiple arc-shaped anti-slip blocks are arranged in a circular shape.
[0117] In addition, the monitor 10 can be mounted on the surface to be installed by mounting piece 800 and / or fastener 900, or it can be placed directly on the surface, with anti-slip pad 1000 increasing its anti-slip performance with the surface.
[0118] In some embodiments of this application, see Figure 3 As shown, the image acquisition component 200 also includes an LED light panel 240. The LED light panel 240 is located on the side of the circuit board 230 near the acquisition port 211, and has a through hole for the lens assembly 220 to pass through. The lens assembly 220 passes through this through hole and abuts against the inner wall of the ball head housing 210, acquiring external information through the acquisition port 211. The side of the LED light panel 240 away from the circuit board 230 has multiple spaced infrared LEDs (not shown in the figure). These infrared LEDs provide supplementary lighting for the lens assembly 220 in low-light environments, ensuring clear imaging.
[0119] In some embodiments of this application, see Figure 6 and Figure 7 As shown, a hook 2120 is also provided on the inner wall of the receiving cavity. The hook 2120 is provided with a limiting space. The LED light board 240 is locked in the limiting space to ensure that the LED light board 240 will not shake in the receiving cavity, thus ensuring the supplementary lighting effect and ensuring clear imaging.
[0120] For example, see Figure 6 As shown, the hook component 2120 includes a first hook block 2121, a second hook block 2122, a third hook block 2123, and a fourth hook block 2124, all of the same shape. The first hook block 2121, the second hook block 2122, the third hook block 2123, and the fourth hook block 2124 all extend axially in the ball head housing 210. The first hook block 2121 and the second hook block 2122 are spaced apart in a first direction of the housing 100, the first hook block 2121 and the third hook block 2123 are spaced apart in a second direction of the housing 100, and the third hook block 2123 and the fourth hook block 2124 are spaced apart in the first direction of the housing 100. The first hook block 2121, the second hook block 2122, the third hook block 2123, and the fourth hook block 2124 form a square limiting space. The LED light board 240 abuts against the first hook block 2121, the second hook block 2122, the third hook block 2123, and the fourth hook block 2124 at opposite ends in the second direction, so as to limit the position of the LED light board 240 in the receiving cavity, avoid shaking, and ensure the supplementary lighting effect.
[0121] In some embodiments of this application, see Figure 3As shown, a storage module 250 is located on the side of the circuit board 230 opposite to the lens assembly 220. The storage module 250 is electrically connected to the circuit board 230 and has a storage slot for inserting a memory card. When the memory card is inserted into the storage slot, the image information captured by the lens assembly 220 can be stored on the memory card via the circuit board 230, so that the user can view the previous information.
[0122] In some embodiments of this application, please refer to... Figure 3 As shown, a reset button 260 is provided on the side of the circuit board 230 away from the lens group 220. The reset button 260 is arranged in parallel with the storage module 250. Pressing the reset button 260 can clear the image information or initialize the circuit board 230.
[0123] Figure 11 A schematic diagram showing the structure of the ball head housing with a storage port and a reset port at the bottom is shown.
[0124] Please refer to some embodiments of this application. Figure 11 As shown, the bottom of the ball head housing 210 has a storage port 2130 for inserting a memory card and a reset port 2140 for exposing the reset button 260.
[0125] In some embodiments of this application, please refer to... Figure 11 As shown, the bottom of the ball-head housing 210 is provided with an arc-shaped groove 2150 that is recessed into the ball-head housing 210. The aforementioned storage port 2130 and reset port 2140 are both located within the arc-shaped groove 2150. The exposed portion of the memory card can be located within the arc-shaped groove 2150, which can prevent the memory card from colliding with the inner wall of the first housing 110 when the ball-head housing 210 rotates, thus preventing the memory card from becoming loose and ensuring the connection stability between the memory card and the storage module 250. The bottom of the ball-head housing 210 is also provided with a card removal slot 2160, which is recessed into the ball-head housing 210 and communicates with the storage port 2130 to facilitate the user in removing the memory card.
[0126] Figure 12 A cross-sectional structural diagram of the front and rear shells fastened together according to an embodiment of this application is shown.
[0127] Figure 13 A schematic diagram of the structure provided in the embodiment of this application shows a fastening element inside the rear shell.
[0128] In some embodiments of this application, see Figure 8 , Figure 12 and Figure 13As shown, the first housing 110 may include a front housing 116 and a rear housing 117, which are interlocked to form the aforementioned accommodating space. Both the front housing 116 and the rear housing 117 may be arc-shaped, and both may have a U-shaped cross-section.
[0129] Among them, see Figure 8 and Figure 13 As shown, the front shell 116 has a first side edge 1161. The rear shell 117 has a second side edge 1171 that abuts against the first side edge 1161. The front shell 116 is recessed away from the rear shell 117, and the rear shell 117 is recessed away from the front shell 116. The first side edge 1161 of the front shell 116 and the second side edge 1171 of the rear shell 117 engage with each other to form the aforementioned receiving chamber.
[0130] Understandably, this curved design not only makes it easier for users to hold the device, but also effectively increases the utilization of internal space, making the overall structure of the monitor 10 more compact.
[0131] In addition, in different embodiments, the front shell 116 and the rear shell 117 can also be square, hemispherical or irregular in shape to meet different design requirements and application scenarios.
[0132] Figure 14 A schematic diagram of a front shell with an inclined surface is shown.
[0133] In some embodiments of this application, see Figure 14 As shown, the front shell 116 has an inclined surface 112 on the side away from the rear shell 117.
[0134] The first housing 110 further includes a first connecting component (not shown in the figure) and a second connecting component (not shown in the figure). Both the first and second connecting components are located between the first side edge 1161 and the second side edge 1171. The first connecting component can lock the front housing 116 and the rear housing 117 in an assembly direction perpendicular to the front housing 116 and the rear housing 117. The second connecting component can align the front housing 116 and the rear housing 117 in the assembly direction. Thus, the second connecting component ensures a precise fit between the front housing 116 and the rear housing 117, while the first connecting component fastens the front housing 116 and the rear housing 117 together, simplifying the assembly process and increasing the assembly speed between the front housing 116 and the rear housing 117.
[0135] In some embodiments of this application, see Figure 8 and Figure 13As shown, the first connecting assembly includes a connector 118 and a fastening member 119 corresponding to the connector 118. The connector 118 is provided on the front shell 116, and the fastening member 119 is provided on the rear shell 117. The front shell 116 and the rear shell 117 are connected by the connector 118 and the fastening member 119 to lock the front shell 116 and the rear shell 117 in the assembly direction perpendicular to them. The connector 118 and the fastening member 119 simplify the assembly of the front shell 116 and the rear shell 117 and reduce the assembly difficulty.
[0136] In different embodiments, the front shell 116 may be provided with a fastening member 119, and the rear shell 117 may be provided with a connector 118, with the front shell 116 and the rear shell 117 connected by the connector 118 and the fastening member 119. Alternatively, the front shell 116 may be provided with both the connector 118 and the fastening member 119, and the rear shell 117 may also be provided with both the connector 118 and the fastening member 119. That is, the design positions of the connector 118 and the fastening member 119 can be adjusted and are not limited to each other.
[0137] In some embodiments of this application, see Figure 8 and Figure 13 As shown, the connector 118 includes a male buckle 1180 protruding from the inner wall of the front housing 116. The fastening member 119 includes a female buckle 1190 extending in the assembly direction of the front housing 116 and the rear housing 117, with the female buckle 1190 protruding from the upper surface of the rear housing 117 facing the front housing 116. When the front housing 116 and the rear housing 117 are fastened together, the male buckle 1180 can be inserted into the female buckle 1190 to lock the front housing 116 and the rear housing 117 together.
[0138] Figure 15 A schematic diagram of the connector being installed in the mounting slot is shown. Figure 16 It shows Figure 15 An enlarged schematic diagram of the two connectors located in the mounting slot.
[0139] In some embodiments of this application, see Figure 15 and Figure 16 As shown, the male buckle 1180 has an abutment surface 1181 on the side opposite to the rear shell 117, and this abutment surface 1181 is perpendicular to the assembly direction. When the front shell 116 and the rear shell 117 are fastened together, the female buckle 1190 can abut against the abutment surface 1181 of the male buckle 1180, preventing the female buckle 1190 from falling off the male buckle 1180, ensuring the tightness of the connection between the male buckle 1180 and the female buckle 1190, thereby improving the tightness of the connection between the front shell 116 and the rear shell 117, and ensuring that the front shell 116 and the rear shell 117 are not easily separated.
[0140] In different embodiments, the abutment surface 1181 may also form an acute angle with the inner wall surface of the front shell 116, that is, the abutment surface 1181 and the inner wall surface of the front shell 116 form a wedge-shaped limiting space (not shown in the figure). When the front shell 116 and the rear shell 117 are fastened together, the female buckle 1190 can be locked in the wedge-shaped limiting space. The wedge-shaped limiting space can be similar to a hook to further lock the female buckle 1190 onto the male buckle 1180, preventing the female buckle 1190 and the male buckle 1180 from separating from each other, further ensuring the tight contact between the male buckle 1180 and the female buckle 1190, thereby ensuring the tight connection between the front shell 116 and the rear shell 117.
[0141] In some embodiments of this application, see Figure 16 As shown, the connector 118 may further include a connecting rib 1182 connected to the male buckle 1180. The connecting rib 1182 and the male buckle 1180 are arranged sequentially in the assembly direction, and the connecting rib 1182 is located on the side of the male buckle 1180 closer to the rear shell 117. The connecting rib 1182 can increase the strength of the male buckle 1180 in the assembly direction, so that when the front shell 116 and the rear shell 117 are separated, it is not easy to break the male buckle 1180, thus ensuring the fastening between the front shell 116 and the rear shell 117.
[0142] In some embodiments of this application, see Figure 13 As shown, the fastening member 119 also includes a reinforcing rib 1191 connected to the female fastener 1190. The reinforcing rib 1191 is located on the side of the female fastener 1190 away from the front housing 116 and extends in the assembly direction, and the reinforcing rib 1191 is connected to the inner wall of the rear housing 117. This reinforcing rib 1191 can increase the strength of the female fastener 1190 on the rear housing 117 and prevent the female fastener 1190 from breaking during fastening and disassembly.
[0143] In some embodiments of this application, see Figure 16 As shown, the connecting rib 1182 has a first inclined surface 1183 on the side opposite to the inner wall of the front shell 116, and the male buckle 1180 has a plane 1184 and a second inclined surface 1185 opposite to the inner wall of the front shell 116. The first inclined surface 1183 is connected to the second inclined surface 1185 through the plane 1184.
[0144] Please see below. Figure 16As shown, the first inclined surface 1183 is inclined from the inner wall surface of the front shell 116 toward the direction away from the rear shell 117. When assembling the front shell 116 and the rear shell 117, the female buckle 1190 can slide along the first inclined surface 1183 into the front shell 116, allowing the female buckle 1190 to engage more smoothly with the male buckle 1180. The abutment surface 1181 is located on the side of the second inclined surface 1185 away from the rear shell 117. The plane 1184 is connected to the abutment surface 1181 through the second inclined surface 1185, and the extension line of the plane 1184 is perpendicular to the extension line of the abutment surface 1181, that is, the plane 1184 is parallel to the assembly direction. The second inclined surface 1185 is inclined from the top of the abutment surface 1181 toward the inner wall surface away from the front shell 116 and toward the rear shell 117. The inclination direction of the second inclined surface 1185 is opposite to the inclination direction of the first inclined surface 1183. By inclination of the second inclined surface 1185 toward the rear shell 117, the female buckle 1190 can slide from the abutment surface 1181 along the second inclined surface 1185 toward the rear shell 117. The female buckle 1190 can more easily and effectively disengage from the male buckle 1180, making the disassembly process of the front shell 116 and the rear shell 117 easier.
[0145] In some embodiments of this application, see Figure 13 As shown, the fastener 119 may include two reinforcing ribs 1191. The two reinforcing ribs 1191 are respectively spaced apart on the side of the female buckle 1190 away from the front shell 116 and both extend along the assembly direction. The two reinforcing ribs 1191 can further enhance the assembly strength of the female buckle 1190 on the rear shell 117, making it less prone to breakage.
[0146] Please refer to some embodiments of this application. Figure 8 As shown, the front shell 116 is provided with multiple plug-in units (not shown in the figure), which are arranged sequentially at intervals on the inner edge of the front shell 116. Each plug-in unit includes two plug-in parts 118 arranged at intervals. Correspondingly, the rear shell 117 is provided with multiple fastening parts 119, which are arranged sequentially at intervals on the inner edge of the rear shell 117. When the front shell 116 and the rear shell 117 are fastened together, the plug-in units correspond one-to-one with the fastening parts 119. The multiple plug-in units and the reinforcing parts make the front shell 116 and the rear shell 117 more securely fastened, preventing the front shell 116 and the rear shell 117 from falling off.
[0147] Figure 17 A left view of the front shell provided in an embodiment of this application is shown. Figure 18 A cross-sectional structural diagram showing the interaction of the limiting block, limiting groove, and limiting strip is shown. Figure 19 A schematic diagram of the structure of the shielding component located on the inner wall of the front shell is shown.
[0148] Please refer to some embodiments of this application. Figure 17 , Figure 18 and Figure 19 As shown, the first connecting assembly also includes a limiting block 1100 disposed on the front housing 116. This limiting block 1100 extends in the assembly direction and protrudes beyond the front housing 116, and the limiting block 1100 and the insertion unit are spaced apart on the first side edge 1161. When the front housing 116 and the rear housing 117 are fastened together, the limiting block 1100 protruding beyond the front housing 116 is inserted into the interior of the rear housing 117 and abuts against the inner wall surface of the rear housing 117, which can effectively prevent the front housing 116 from deforming and misaligning outward when the front housing 116 and the rear housing 117 are fastened together, thereby ensuring the overall flatness and aesthetics of the first housing 110.
[0149] In different embodiments, the limiting block 1100 may also be provided on the rear shell 117, or the limiting block 1100 may be provided on both the front shell 116 and the rear shell 117.
[0150] Please refer to some embodiments of this application. Figure 8 As shown, the first connecting assembly also includes a mounting groove 1110 on the front housing 116. The mounting groove 1110 opens towards the rear housing 117 and extends in the assembly direction. The aforementioned plug-in member 118 can be disposed within the mounting groove 1110. Because the mounting groove 1110 is recessed in the inner wall of the front housing 116, making the bottom wall of the mounting groove 1110 lower than the inner wall of the front housing 116, when the front housing 116 and the rear housing 117 are fastened together, the fastening member 119 can fit more closely to the bottom wall of the mounting groove 1110, ensuring that the outer edges of the fastening points of the front housing 116 and the rear housing 117 are flush, thus guaranteeing the aesthetics of the first housing 110.
[0151] It is understandable that the number of mounting slots 1110 corresponds one-to-one with the number of the aforementioned plug-in units, so as to ensure that the joint between the front shell 116 and the rear shell 117 is flush and without any height difference.
[0152] In some embodiments of this application, the second connecting assembly includes a first alignment member (not shown in the figure) and a second alignment member (not shown in the figure). The front shell 116 is provided with the first alignment member, and the rear shell 117 is provided with the second alignment member. When the front shell 116 and the rear shell 117 are fastened together, the first side edge 1161 abuts against the second side edge 1171, and the first alignment member and the second alignment member are aligned and connected.
[0153] In different embodiments, the front shell 116 is provided with a second alignment member, and the rear shell 117 is provided with a first alignment member.
[0154] In some embodiments of this application, a first alignment member is disposed on the inner wall of the front shell 116 and extends out of the front shell 116, and a second alignment member is disposed on the inner wall of the rear shell 117. When the front shell 116 and the rear shell 117 are fastened together, the first alignment member and the second alignment member abut against each other.
[0155] For example, see Figure 19 As shown, the first alignment member includes a first adapter post 1111 and a second adapter post 1112 disposed opposite to each other on the inner wall of the front housing 116. Both the first adapter post 1111 and the second adapter post 1112 extend in the assembly direction and protrude beyond the front housing 116. The first adapter post 1111 has a semi-circular hole (not shown in the figure) opening towards the rear housing 117. The second adapter post 1112 has a clearance notch (not shown in the figure) opening towards the rear housing 117.
[0156] Figure 20 A schematic diagram of the structure showing a first fastening post and a second fastening post on the rear shell is shown.
[0157] See Figure 20 As shown, the second alignment member includes a first fastening post 1113 and a second fastening post 1114 disposed opposite to each other on the inner wall of the rear housing 117. See also Figure 2 As shown, the first fastening post 1113 corresponds to the first adapter post 1111, and the second fastening post 1114 corresponds to the second adapter post 1112. When the front shell 116 and the rear shell 117 are fastened together, the first fastening post 1113 and the second fastening post 1114 abut against each other, so that the semi-circular hole on the first fastening post 1113 and the first adapter post 1111 forms a rotating hole 113, and the clearance notch on the second fastening post 1114 and the second adapter post 1112 forms a clearance hole 114. The rotating post 216 can be inserted into the rotating hole 113 formed by the first adapter post 1111 and the first fastening post 1113, and can rotate circumferentially relative to the rotating hole 113; the first output end 312 is locked in the clearance hole 114.
[0158] In different embodiments, the first alignment member can also be inserted into the second alignment member and engaged with it. That is, the first adapter post 1111 is inserted into the first fastening post 1113, and the second adapter post 1112 is inserted into the second fastening post 1114, to further increase the tightness of the connection between the front shell 116 and the rear shell 117. Alternatively, a portion of the first alignment member can abut against the second alignment member, and another portion can be engaged with the second alignment member. For example, the first adapter post 1111 abuts against the first fastening post 1113 and forms a semi-circular rotating hole 113 with the first fastening post 1113, and the second adapter post 1112 is inserted into the second fastening post 1114 and forms a clearance hole 114 with the second fastening post 1114.
[0159] It should be noted that the first adapter post 1111, the second adapter post 1112, the first fastening post 1113, and the second fastening post 1114 can all adopt an internal hollow structure, that is, there is a gap between them and the inner wall of the front shell 116 and the inner wall of the rear shell 117, so as to reduce the vibration and noise generated by the first drive member 310 during rotation, as described below, thereby making the monitor 10 rotate more smoothly and reducing noise, thus bringing users a better and quieter user experience.
[0160] Please refer to some embodiments of this application. Figure 19 As shown, a shielding member 1115 is provided on the side of the inclined surface 112 facing the rear housing 117. The shielding member 1115 extends in the assembly direction, is located below the clearance window 111, and is curved toward the clearance window 111 to make the shielding member 1115 arc-shaped. The shielding member 1115 can shield the internal components of the housing 100 when the image acquisition assembly 200 rotates upward, improving aesthetics; at the same time, the shielding member 1115 can also prevent external dust from entering the monitor 10 and accumulating on the electronic components inside the housing 100, improving heat dissipation performance and extending the service life of the internal electronic components.
[0161] It is worth mentioning that the first adapter post 1111 and the second adapter post 1112 both abut against the side of the inclined surface 112 near the rear shell 117, so as to improve the rigidity of the first adapter post 1111 and the second adapter post 1112 and prevent them from falling off due to collision.
[0162] In some embodiments of this application, the annular mounting portion 115 is provided on the inner wall of the rear shell 117 and extends in the assembly direction.
[0163] Figure 21 A schematic diagram showing the structure with heat dissipation holes and sound outlet holes on the rear cover is shown.
[0164] Please refer to some embodiments of this application. Figure 20 and Figure 21 As shown, the outer side of the rear cover 117 is provided with a sound outlet 1116 that communicates with the annular mounting portion 115, that is, the speaker 700 can release sound to the outside through the sound outlet 1116.
[0165] In different embodiments, the annular mounting portion 115 may also be provided on the inner wall of the front housing 116, and the front housing 116 may be provided with a sound outlet hole 1116 that extends through in the assembly direction.
[0166] Please refer to some embodiments of this application. Figure 8 As shown, a first anti-slip portion 1117 is provided on the front shell 116. The first anti-slip portion 1117 is located on the outer wall surface of the front shell 116 near the first side edge 1161, and the first anti-slip portion 1117 has multiple first curved surfaces (not shown in the figure). See also Figure 20As shown, a second anti-slip portion 1118 is provided on the rear shell 117. The second anti-slip portion 1118 is located on the outer wall surface of the rear shell 117 near the second side edge 1171, and the second anti-slip portion 1118 has multiple second curved surfaces (not shown in the figure). See also Figure 1 As shown, when the front shell 116 and the rear shell 117 are fastened together, the curved grooves on the first anti-slip part 1117 and the curved grooves on the second anti-slip part 1118 can correspond to each other, so that the user will not drop the monitor 10 from their hand when holding it. Moreover, by designing the first anti-slip part 1117 and the second anti-slip part 1118 as curved arc structures, the first anti-slip part 1117 and the second anti-slip part 1118 can fit into the gaps between the fingers, improving the user's grip comfort.
[0167] In other embodiments of this application, the curved grooves of the first anti-slip part 1117 and the curved grooves of the second anti-slip part 1118 may also be misaligned with each other, as long as they can increase the contact surface of the user holding the monitor 10 and prevent the risk of the monitor 10 slipping.
[0168] In some embodiments of this application, the front shell 116 is provided with a first anti-slip part 1117, which has multiple first curved surfaces, and the rear shell 117 is not provided with a second anti-slip part 1118. That is, the risk of the monitor 10 slipping is prevented by the first anti-slip part 1117.
[0169] In some other embodiments of this application, the rear shell 117 is provided with a second anti-slip part 1118, which has multiple second curved surfaces. The front shell 116 is not provided with a first anti-slip part 1117, that is, the risk of the monitor 10 slipping is prevented by the second anti-slip part 1118.
[0170] It is understandable that when the first anti-slip part 1117 or the second anti-slip part 1118 is used alone, the area of the first anti-slip part 1117 / the second anti-slip part 1118 can be equal to the sum of the areas of the first anti-slip part 1117 and the second anti-slip part 1118 spliced together.
[0171] Furthermore, the curved first anti-slip part 1117 and the second anti-slip part 1118 can be formed by injection molding and formed in the lower middle part of the front shell 116 and the rear shell 117. The aforementioned plug-in member 118 can be provided on the inner wall of the front shell 116 where the first anti-slip part 1117 is provided, and the aforementioned fastening member 119 can be provided on the inner wall of the rear shell 117 where the second anti-slip part 1118 is provided.
[0172] Please refer to some embodiments of this application. Figure 8 , Figure 12 and Figure 13As shown, the front shell 116 also includes a limiting post 1119 disposed on the front shell 116. The limiting post 1119 and the connector 118 are spaced apart on the first side edge 1161, and the limiting post 1119 extends in the assembly direction and protrudes from the front shell 116. A limiting cylinder (not shown in the figure) is provided on the inner wall of the rear shell 117, and a limiting hole 1120 is provided inside the limiting cylinder, which opens toward the front shell 116. When the front shell 116 and the rear shell 117 are fastened together, the limiting post 1119 protruding from the front shell 116 can be inserted into the limiting hole 1120, reducing the gap between the front shell 116 and the rear shell 117, and improving the flatness and aesthetics of the fastening point of the front shell 116 and the rear shell 117.
[0173] Please refer to some embodiments of this application. Figure 8 As shown, the bottom of the front shell 116 is provided with two limiting posts 1119 facing each other, and the rear shell 117 is provided with two limiting holes 1120 corresponding to the limiting posts 1119, which can improve the tightness of the connection between the front shell 116 and the rear shell 117. Moreover, the two limiting posts 1119 and the limiting holes 1120 facing each other can also avoid the alignment deviation between the front shell 116 and the rear shell 117, and ensure the flatness of the fastening between the front shell 116 and the rear shell 117.
[0174] In some other embodiments of this application, the rear shell 117 is provided with a limiting post 1119, and the front shell 116 is provided with a limiting hole 1120 corresponding to the limiting post 1119. When the front shell 116 and the rear shell 117 are fastened together, the limiting post 1119 can be inserted into the limiting hole 1120 so that the front shell 116 and the rear shell 117 are fastened together.
[0175] Please refer to some embodiments of this application. Figure 8 and Figure 13 As shown, the inner walls of the front shell 116 and the rear shell 117 may both be provided with connectors 440, and the connectors 440 on the front shell 116 and the rear shell 117 are arranged sequentially in the assembly direction.
[0176] For example, see Figure 8 and Figure 13 As shown, the front shell 116 is provided with two oppositely arranged connectors 440, and the inner wall of the rear shell 117 is also provided with two oppositely arranged connectors 440, which are respectively connected to the four diagonal corners of the adapter 430 so that the adapter 430 is placed flat in the accommodating cavity and thus parallel to the second shell 120.
[0177] In other embodiments of this application, the connector 440 may also be provided only on the front housing 116 or the rear housing 117, as long as the adapter 430 can be detachably fixed inside the monitor 10 housing 100.
[0178] Please refer to some embodiments of this application. Figure 8 and Figure 12 As shown, a limiting groove 1121 opening toward the rear shell 117 is provided at the first side edge 1161. A limiting strip 1122 is provided on the second side edge 1171. When the front shell 116 and the rear shell 117 are fastened together, the limiting strip 1122 can be engaged in the limiting groove 1121, further preventing the front shell 116 and the rear shell 117 from separating and ensuring the tight connection between the front shell 116 and the rear shell 117.
[0179] In some embodiments of this application, the front shell 116 is provided with a plurality of limiting grooves 1121, and the rear shell 117 is provided with a plurality of limiting strips 1122. The plurality of limiting strips 1122 are arranged at intervals on the outer surface of the rear shell 117. The plurality of limiting strips 1122 can improve the tightness of the connection between the front shell 116 and the rear shell 117 and prevent them from falling off.
[0180] It is understood that the limiting block 1100 can correspond to the limiting groove 1121, that is, at least one limiting block 1100 is provided at the position where the limiting groove 1121 is provided. Since the limiting block 1100 protruding from the inner wall surface of the front shell 116 abuts against the inner wall surface of the rear shell 117 when the front shell 116 and the rear shell 117 are fastened together, when the limiting strip 1122 is inserted into the limiting groove 1121, the limiting strip 1122 is sandwiched between the limiting block 1100 and the limiting groove 1121. The limiting strip 1122 can be limited outward by the inner wall surface of the limiting groove 1121, and can be limited inward by the limiting block 1100, thereby effectively restricting the inward and outward expansion of the rear shell 117, ensuring that there is no discontinuity at the joint between the front shell 116 and the rear shell 117, and ensuring the aesthetics of the front shell 116.
[0181] In addition, please see Figure 18 As shown, the limiting block 1100, the limiting groove 1121 and the limiting strip 1122 can also limit the relative movement of the front shell 116 and the rear shell 117 in the first direction and the second direction, effectively improving the tightness of the connection between the front shell 116 and the rear shell 117 and preventing the front shell 116 and the rear shell 117 from falling off.
[0182] Please refer to some embodiments of this application. Figure 5 As shown, multiple heat dissipation holes 1123 are provided on the outer wall of the rear housing 117. These heat dissipation holes 1123 correspond to the circuit board 230 in the image acquisition assembly 200, and can transfer heat from the circuit board 230 to the outside to reduce the temperature inside the accommodating cavity. The heat dissipation holes 1123 are located above the sound outlet 1116 to prevent heat from being transferred upwards and re-entering the accommodating cavity through the sound outlet 1116.
[0183] Please refer to some embodiments of this application. Figure 5As shown, a stop member 420 is provided on the rear housing 117. The stop member 420 is located below the annular mounting portion 115 and is connected to the outer contour of the annular mounting portion 115. This stop member 420 can cooperate with the stop member 410 provided on the second housing 120. During the rotation of the front housing 116 and the rear housing 117, the rotational movement between the front housing 116 and the rear housing 117 and the second housing 120 can be stopped, preventing the front housing 116 and the rear housing 117 from continuing to rotate.
[0184] It is understandable that placing the stop member 420 below the annular mounting portion 115 and connecting it to the annular mounting portion 115 can improve the strength of the stop member 420 on the rear shell 117 and avoid the problem of damage caused by excessive collision force between the stop member 410 and the stop member 420.
[0185] Please refer to some embodiments of this application. Figure 21 As shown, a false hole 1124 is also provided on the outer side of the rear shell 117. The false hole 1124 can be distributed on the outer periphery of the sound outlet hole 1116 and the heat dissipation hole 1123, and can be used to decorate the first shell 110.
[0186] In some embodiments of this application, a charging port (not shown in the figure) is provided on the side of the second housing 120. The control board is provided with a charging port (not shown in the figure), a charging management chip (not shown in the figure), and a power management chip (not shown in the figure). The charging port corresponds to the charging hole. External power is inserted into the charging port through the charging hole, and is transmitted to the charging management chip through the charging port. It is also transmitted to the power management chip through the input protection circuit. The power management chip converts the voltage to a level suitable for the circuit board 230 and the lens group 220, and then supplies power to the circuit board 230 through a line. This line can be routed through the first distance between the adapter 430 and the front housing 116.
[0187] Working principle: The lens assembly 220 stores the captured video in the memory card. Users can view the video in real time or watch playback on the terminal. The terminal's audio signal can also be output through the speaker 700. Users can also move the screen up, down, left, and right on the terminal. Upon receiving a signal, the circuit board 230 controls the first drive unit 310 and the second drive unit 320 to adjust the direction of the lens assembly 220, thereby acquiring the required positional information. Furthermore, the monitor 10 can be mounted in a fixed position using the mounting bracket 800 and / or fastener 900 at the bottom of the second housing 120, or it can be used directly on a desktop. The anti-slip pad 1000 increases the anti-slip performance between the monitor 10 and the desktop.
[0188] In the description of this specification, references to terms such as "some embodiments," "exemplarily," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. The illustrative expressions of the above terms in this specification do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0189] Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of this application. Therefore, any changes or modifications made in accordance with the claims and description of this application should fall within the scope of this patent application.
Claims
1. A monitor, characterized by, The application relates to a shell, an image acquisition assembly, a driving assembly and a stop assembly. The shell comprises a first shell and a second shell which are movably arranged, and a relief window is arranged on the first shell. The image acquisition assembly is movably arranged on the first shell and at least partially exposed from the first shell through the relief window. The driving assembly has a first output end and a second output end, the first output end is connected to the image acquisition assembly to drive the image acquisition assembly to rotate back and forth in a first direction of the shell, and the second output end is connected to the second shell to drive the first shell to rotate back and forth in a second direction of the shell. The stop assembly is arranged on the shell and can limit the rotation angle of the first shell in the second direction. The stop assembly comprises a stop part protruding from the second shell and extending towards the first shell, and a stop member protruding from the first shell and extending towards the second shell, the stop member can abut against the stop part when the first shell rotates relative to the second shell to limit the rotation angle of the first shell. The stop assembly further comprises a connecting part arranged opposite to the second shell, the connecting part is accommodated in the first shell, and the second output end is connected to the second shell through the connecting part.
2. The monitor of claim 1, wherein, The connecting part comprises an arc-shaped side edge and a straight side edge which are arranged oppositely, the arc-shaped side edge is matched with the inner wall of the first shell and spaced from the corresponding first shell by a first distance, and the straight side edge is spaced from the first shell by a second distance, wherein the second distance is greater than the first distance. The stop assembly further comprises a connecting part arranged on the inner wall of the first shell, and the connecting part is detachably connected to the first shell through the connecting part. An inclined surface is arranged on the first shell, the relief window is arranged on the inclined surface, and the projection ratio of the inclined surface in the second direction to the projection of the first shell in the second direction ranges from 2 / 3 to 4 / 5.
3. The monitor of claim 2, wherein, The image acquisition assembly comprises a ball head shell which comprises a collection port and a containing cavity, the collection port is exposed from the first shell through the relief window, and the containing cavity is communicated with the inner cavity of the first shell; the ball head shell has opposite first and second ends in the first direction, the first end is rotationally connected to the first shell, and the second end is connected to the first output end; and a lens group and a circuit board are arranged in the containing cavity, the lens group corresponds to the collection port to collect external information through the collection port, and the circuit board is electrically connected to the lens group.
4. The monitor of claim 3, wherein, The first shell has opposite rotation holes and relief holes, the first end is provided with a rotating column which is rotationally arranged in the rotation hole, and the second end is provided with a connecting hole through which the first output end is inserted into the relief hole.
5. The monitor of claim 3, wherein, The driving assembly comprises a first driving part arranged on the first shell, the first driving part comprises the first output end and is connected to the image acquisition assembly through the first output end to drive the image acquisition assembly to rotate back and forth in the first direction of the shell.
6. The monitor of claim 1, wherein, 7. The monitor of claim 1, wherein, 8. The monitor of claim 7, wherein, 9. The monitor of claim 1, wherein, And a second driving member is arranged in the first shell, the second driving member comprises the second output end and is connected with the second shell through the second output end to drive the first shell to rotate back and forth in the second direction of the shell.
10. The monitor of claim 1, wherein, The monitor further comprises a detecting member and a control member, the detecting member is inserted into the second shell and is at least partially exposed from the second shell, and the control member is electrically connected with the detecting member and the image acquisition assembly respectively; and / or The monitor further comprises a speaker arranged in the first shell, the first shell is provided with a sound outlet hole corresponding to the speaker, and the speaker is electrically connected with the image acquisition assembly; and / or The second shell is provided with a through mounting hole, and the monitor further comprises a mounting member arranged in the mounting hole, the mounting member is internally provided with a threaded hole, and the monitor is mounted on a mounting plane through the mounting member; and / or The monitor further comprises a fastening member, and the second shell can be mounted on the mounting plane through the fastening member; and / or The monitor further comprises an anti-skid pad, the anti-skid pad is arranged on a side of the second shell away from the first shell, and the anti-skid pad is in contact with a plane when the monitor is placed on the plane.