A real-time monitoring device based on the Internet of Things
Patent Information
- Application Number
- CN202522135546.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-10-10
AI Technical Summary
[0002]实时监控是指对系统运行过程进行同步监控的技术,通过动态数据采集、分析与反馈实现系统状态的持续追踪;该技术覆盖文件同步、工业控制、公共管理等多个领域,采用预设规则与智能算法实现自动化监管,但现有的实时监控装置在监控矿场时,一般不容易对监控结构进行全方位角度调节,导致监控范围较小,需要增加监控结构的个数,增加了监控成本,降低了监控效果,而且一般不容易对监控设备进行防护处理,在采矿时,会有石块落下,从而对监控设备造成损伤,降低了设备的使用效果
[0010] The beneficial effects of this utility model are: by adopting an angle adjustment component, the monitoring structure can be adjusted in all directions, thereby increasing the monitoring range without increasing the number of monitoring structures, reducing monitoring costs and improving monitoring effectiveness;
Smart Images

Figure CN224730367U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of real-time monitoring technology, and in particular to a real-time monitoring device based on the Internet of Things. Background Technology
[0002] Real-time monitoring refers to the technology of synchronously monitoring the system operation process. It achieves continuous tracking of the system status through dynamic data collection, analysis and feedback. This technology covers multiple fields such as file synchronization, industrial control and public management. It uses preset rules and intelligent algorithms to achieve automated supervision. However, when monitoring mines, existing real-time monitoring devices are generally not easy to adjust the monitoring structure from all angles, resulting in a small monitoring range. This requires increasing the number of monitoring structures, which increases monitoring costs and reduces monitoring effectiveness. Moreover, it is generally not easy to protect the monitoring equipment. During mining, falling rocks can damage the monitoring equipment and reduce its effectiveness. Utility Model Content
[0003] The problem solved by this utility model is to provide a real-time monitoring device based on the Internet of Things, which can adjust the monitoring structure in all directions to increase the monitoring range without increasing the number of monitoring structures, thereby reducing monitoring costs and improving monitoring effectiveness. Moreover, it can protect the monitoring equipment so as to avoid damage to the monitoring equipment when stones fall, thus improving the effectiveness of the equipment.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: a real-time monitoring device based on the Internet of Things, comprising a mounting base body, an angle adjustment component, and a protective component, wherein the angle adjustment component is mounted on the mounting base body, and a protective component is mounted on the outside of one side of the mounting base body;
[0005] The angle adjustment assembly includes a motor, a rotating disk, an arc-shaped protrusion, a movable hole, a ball joint hinge, an arc-shaped adjustment block, an adjustment rod, a first spring, a movable disk, a spherical groove, and a monitoring probe. Arc-shaped adjustment blocks are distributed and installed within the mounting base body. An adjustment rod is fixedly connected to one side of each arc-shaped adjustment block. Movable holes are distributed on one side of the mounting base body corresponding to the position of the adjustment rod. A first spring is fixedly connected to one side of each arc-shaped adjustment block, and the other end of the first spring is fixedly connected to the inner wall of the mounting base body. A motor is embedded in the inner wall of one side of the mounting base body. A rotating disk is fixedly connected to one end of the motor's output shaft. An arc-shaped adjustment block is fixedly connected to one side of the rotating disk corresponding to the position of the arc-shaped adjustment block. A movable disk is fixedly connected to the outer wall of one end of the adjustment rod. A ball joint hinge is fixedly connected to one side of the mounting base body. A spherical groove is opened on one side of the movable disk corresponding to the position of the ball joint hinge. A monitoring probe is installed on the outer wall of the other side of the movable disk.
[0006] Preferably, the protective assembly includes a guide rod, a connecting plate, a second spring, a protective cover, a lifting hole, a protective net, and a camera hole. The guide rod is fixedly distributed on one outer wall of the movable plate, and a protective cover is installed on the outside of one side of the movable plate. The protective cover has lifting holes distributed on the protective cover corresponding to the positions of the guide rods. One end of the guide rod is fixedly connected to the connecting plate, and the second spring is fixedly connected to the connecting plate. The other end of the second spring is fixedly connected to the outer wall of the protective cover. A protective net is symmetrically embedded on one inner wall of the protective cover, and a camera hole is opened in the middle of the protective cover corresponding to the position of the monitoring probe.
[0007] Preferably, a connecting plate is symmetrically fixed to the outer side of the mounting base body, and bolts are sleeved on the connecting plate.
[0008] Preferably, a battery is installed on the bottom outer wall of the mounting base body, and the electrical input terminal of the battery is electrically connected to the electrical input terminal of the monitoring probe.
[0009] Preferably, the second spring is sleeved on the outer wall of the guide rod, and there are four second springs.
[0010] The beneficial effects of this utility model are: by adopting an angle adjustment component, the monitoring structure can be adjusted in all directions, thereby increasing the monitoring range without increasing the number of monitoring structures, reducing monitoring costs and improving monitoring effectiveness;
[0011] Protective components are used to protect the monitoring equipment, preventing damage when stones fall and improving the equipment's performance. Attached Figure Description
[0012] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0013] Figure 2 This is a front sectional view of the present invention;
[0014] Figure 3 This is a three-dimensional structural diagram of the present invention.
[0015] Legend:
[0016] 1. Mounting base body; 2. Angle adjustment assembly; 3. Protective assembly; 4. Connecting plate; 5. Bolt; 6. Battery; 201. Motor; 202. Rotating disk; 203. Arc-shaped protrusion; 204. Movable hole; 205. Ball joint hinge; 206. Arc-shaped adjusting block; 207. Adjusting rod; 208. First spring; 209. Movable disk; 2010. Spherical groove; 2011. Monitoring probe; 301. Guide rod; 302. Connecting disk; 303. Second spring; 304. Protective cover; 305. Lifting hole; 306. Protective net; 307. Camera hole. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0018] Example 1
[0019] See Figures 1-3 A real-time monitoring device based on the Internet of Things includes a mounting base body 1, an angle adjustment component 2, and a protective component 3. The angle adjustment component 2 is installed on the mounting base body 1, and the protective component 3 is installed on one side of the mounting base body 1. A connecting plate 4 is symmetrically fixed to the outer side of the mounting base body 1, and bolts 5 are sleeved on the connecting plate 4. The mounting base body 1 is placed in a designated position in the mine, and then the mounting base body 1 is positioned by bolts 5 on the connecting plate 4. A storage battery 6 is installed on the bottom outer wall of the mounting base body 1, and the electrical input terminal of the storage battery 6 is electrically connected to the electrical input terminal of the monitoring probe 2011. The monitoring probe 2011 can be powered by the storage battery 6, so that the mine can still be monitored in real time when there is a power outage.
[0020] The angle adjustment assembly 2 includes a motor 201, a rotating disk 202, an arc-shaped protrusion 203, a movable hole 204, a ball joint hinge 205, an arc-shaped adjustment block 206, an adjustment rod 207, a first spring 208, a movable disk 209, a spherical groove 2010, and a monitoring probe 2011. Arc-shaped adjustment blocks 206 are distributed and installed inside the mounting base body 1. An adjustment rod 207 is fixedly connected to one side of the arc-shaped adjustment block 206. Movable holes 204 are distributed on one side of the mounting base body 1 corresponding to the position of the adjustment rod 207. A first spring 208 is fixedly connected to one side of the arc-shaped adjustment block 206. The other end of 08 is fixed to the inner wall of the mounting base body 1. A motor 201 is embedded in the inner wall of one side of the mounting base body 1. A rotating disk 202 is fixed to one end of the output shaft of the motor 201. An arc-shaped adjusting block 206 is fixed to one side of the rotating disk 202 at the position corresponding to the arc-shaped adjusting block 206. A movable disk 209 is fixed to the outer wall of one end of the adjusting rod 207. A ball joint hinge 205 is fixed to one side of the mounting base body 1. A spherical groove 2010 is opened on one side of the movable disk 209 at the position corresponding to the ball joint hinge 205. A monitoring probe 2011 is installed on the outer wall of the other side of the movable disk 209.
[0021] Working principle: First, the mounting base body 1 is placed in the designated position in the mine. Then, the mounting base body 1 is installed in position using the bolts 5 on the connecting plate 4. When the angle of the monitoring probe 2011 needs to be adjusted, the motor 201 is started to rotate the arc-shaped protrusion 203 on the rotating disk 202 to the designated angle, thereby pressing the arc-shaped adjusting block 206 in the designated position. This causes the adjusting rod 207 to shift along the movable hole 204, thereby causing the spherical groove 2010 on the movable disk 209 to deflect along the ball joint hinge 205. At this time, the monitoring probe 2011 is activated to monitor the designated position in the mine through the shooting hole 307. The system performs real-time monitoring. After monitoring ends, the motor 201 is started to reset the arc-shaped protrusion 203 on the rotating disk 202, separating the arc-shaped protrusion 203 from the arc-shaped adjusting block 206. Then, under the action of the second spring 303, the adjusting rod 207 is reset along the movable hole 204, and then the spherical groove 2010 on the movable disk 209 is reset along the ball joint hinge 205, thereby resetting the monitoring probe 2011. This allows for omnidirectional angle adjustment of the monitoring structure, thereby increasing the monitoring range without increasing the number of monitoring structures, reducing monitoring costs, and improving monitoring effectiveness.
[0022] Example 2
[0023] See Figures 1-2The protective component 3 includes a guide rod 301, a connecting plate 302, a second spring 303, a protective cover 304, a lifting hole 305, a protective net 306, and a shooting hole 307. The guide rod 301 is fixedly attached to one side of the outer wall of the movable plate 209. A protective cover 304 is installed on the outside of one side of the movable plate 209. Lifting holes 305 are provided on the protective cover 304 corresponding to the positions of the guide rods 301. One end of the guide rod 301 is fixedly attached to the connecting plate 302. A second spring 303 is fixedly attached to the connecting plate 302. The other end of 303 is fixed to the outer wall of the protective cover 304. A protective net 306 is symmetrically installed on the inner wall of one side of the protective cover 304. A shooting hole 307 is opened in the middle of the protective cover 304 corresponding to the position of the monitoring probe 2011. The second spring 303 is sleeved on the outer wall of the guide rod 301, and there are four second springs 303. When the falling rock separates from the protective cover 304, the lifting hole 305 on the protective cover 304 is reset along the guide rod 301 under the action of the second spring 303.
[0024] When a rock falls above the mounting base 1, the protective cover 304 and the protective net 306 can withstand the falling rock. Under the impact of the falling rock, the lifting hole 305 on the protective cover 304 moves along the guide rod 301. When the falling rock separates from the protective cover 304, the lifting hole 305 on the protective cover 304 is reset along the guide rod 301 under the action of the second spring 303. This can protect the monitoring equipment and prevent damage to the monitoring equipment when the rock falls, thus improving the effectiveness of the equipment.
[0025] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A real-time monitoring device based on the Internet of Things, characterized in that, The device includes a mounting base body (1), an angle adjustment component (2), a protective component (3), a connecting plate (4), bolts (5), a battery (6), a motor (201), a rotating disk (202), an arc-shaped protrusion (203), a movable hole (204), a ball joint hinge (205), an arc-shaped adjustment block (206), an adjustment rod (207), a first spring (208), a movable disk (209), a spherical groove (2010), a monitoring probe (2011), a guide rod (301), a connecting disk (302), a second spring (303), a protective cover (304), a lifting hole (305), a protective net (306), and a shooting hole (307). The angle adjustment component (2) is installed on the mounting base body (1), and the protective component (3) is installed on the outside of one side of the mounting base body (1). The angle adjustment assembly (2) includes a motor (201), a rotating disk (202), an arc-shaped protrusion (203), a movable hole (204), a ball joint hinge (205), an arc-shaped adjustment block (206), an adjustment rod (207), a first spring (208), a movable disk (209), a spherical groove (2010), and a monitoring probe (2011). The arc-shaped adjustment block (206) is installed within the mounting base body (1). An adjustment rod (207) is fixedly connected to one side of the arc-shaped adjustment block (206). Movable holes (204) are distributed on one side of the mounting base body (1) corresponding to the position of the adjustment rod (207). A first spring (208) is fixedly connected to one side of the arc-shaped adjustment block (206), and the first spring... The other end of (208) is fixed to the inner wall of the mounting base body (1). A motor (201) is embedded in the inner wall of one side of the mounting base body (1). A rotating disk (202) is fixed to one end of the output shaft of the motor (201). An arc-shaped adjusting block (206) is fixed to one side of the rotating disk (202) at the position corresponding to the arc-shaped adjusting block (206). A movable disk (209) is fixed to one end of the outer wall of the adjusting rod (207). A ball joint hinge (205) is fixed to one side of the mounting base body (1). A spherical groove (2010) is opened on one side of the movable disk (209) at the position corresponding to the ball joint hinge (205). A monitoring probe (2011) is installed on the other side of the outer wall of the movable disk (209).
2. The real-time monitoring device based on the Internet of Things according to claim 1, characterized in that, The protective component (3) includes a guide rod (301), a connecting plate (302), a second spring (303), a protective cover (304), a lifting hole (305), a protective net (306), and a shooting hole (307). The guide rod (301) is fixedly connected to one side of the outer wall of the movable plate (209). The protective cover (304) is installed on the outside of one side of the movable plate (209). The protective cover (304) has openings corresponding to the positions of the guide rod (301). The guide rod (301) has a lifting hole (305), and a connecting plate (302) is fixedly connected to one end of the guide rod (301). A second spring (303) is fixedly connected to the connecting plate (302), and the other end of the second spring (303) is fixedly connected to the outer wall of the protective cover (304). A protective net (306) is symmetrically inlaid on one inner wall of the protective cover (304). A shooting hole (307) is opened in the middle of the protective cover (304) corresponding to the position of the monitoring probe (2011).
3. The real-time monitoring device based on the Internet of Things according to claim 1, characterized in that, A connecting plate (4) is symmetrically fixed to the outer side of the mounting base body (1), and a bolt (5) is sleeved on the connecting plate (4).
4. The real-time monitoring device based on the Internet of Things according to claim 1, characterized in that, A storage battery (6) is installed on the bottom outer wall of the mounting base body (1), and the electrical input terminal of the storage battery (6) is electrically connected to the electrical input terminal of the monitoring probe (2011).
5. A real-time monitoring device based on the Internet of Things according to claim 2, characterized in that, The second spring (303) is sleeved on the outer wall of the guide rod (301), and there are four second springs (303).