A monitoring device for digital buildings
Patent Information
- Application Number
- CN202522368511.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-07
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-11-07
AI Technical Summary
[0004]现有监控设备通常通过支架或基座固定于墙面、天花板或特定结构体上,安装位置一经确定便无法灵活调整
[0023] Compared with existing technologies, this utility model has a simple structure and is easy to operate. It expands the monitoring coverage by using a ring-shaped stroke unit, enabling the digital building monitor to be movable. At the same time, by utilizing the elastic deformation of the spring and the cooperation of the limiting post and the limiting groove, the installation is completed when the positioning block is inserted into the positioning groove and the limiting post is inserted into the limiting groove. When the outer section is pressed until the limiting shaft is disengaged from the limiting groove, the positioning block can be disassembled from the positioning groove, thus achieving boltless disassembly and assembly of the digital building monitor, significantly improving maintenance efficiency and overcoming the problems of cumbersome disassembly of traditional monitors.
Smart Images

Figure CN224730388U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of monitoring equipment technology, specifically to a monitoring device for digital buildings. Background Technology
[0002] With the rapid development of smart cities and digital buildings, real-time monitoring of the building's internal and external environment has become a crucial aspect of ensuring safety and optimizing management. Currently, the monitoring equipment widely used in digital buildings mainly relies on fixed installation solutions, which have the following significant drawbacks in application:
[0003] Firstly, the monitoring location is fixed, limiting the coverage area:
[0004] Existing surveillance equipment is typically fixed to walls, ceilings, or specific structures using brackets or bases, and the installation location cannot be flexibly adjusted once determined. Such equipment can only cover a limited area within a static field of view, cannot perform mobile monitoring according to actual needs, and requires the deployment of a large number of fixed devices to achieve comprehensive coverage, resulting in high costs.
[0005] Secondly, the fixing method relies on bolt assembly, resulting in low maintenance efficiency.
[0006] Traditional monitoring equipment generally uses a multi-bolt fastening installation method, which requires four bolts to connect the equipment base to the building structure. This is cumbersome to disassemble and assemble, and when performing regular maintenance, cleaning or upgrading the equipment, each bolt must be removed one by one, which is time-consuming and labor-intensive.
[0007] Therefore, there is an urgent need for a mobile, boltless, and quick-assembly monitoring device suitable for digital buildings to overcome the coverage limitations of fixed monitoring and improve maintenance efficiency and system flexibility. Utility Model Content
[0008] The purpose of this invention is to provide a monitoring device for digital buildings.
[0009] This utility model provides the following technical solution:
[0010] This utility model proposes a monitoring device for digital buildings, including a ring-shaped travel unit and a guide platform disposed on the ring-shaped travel unit and capable of moving along the ring-shaped travel unit. A locking seat is fixedly disposed at the lower end of the guide platform, and a positioning transverse groove is provided on the side of the locking seat.
[0011] It also includes a monitor, and a positioning block is fixedly installed on the side of the monitor. The positioning block can extend into the positioning groove. The locking seat is provided with at least two sets of limiting members. The two sets of limiting members are respectively located above and below the positioning groove. Both sets of limiting members include a vertical limiting shaft. The upper and lower ends of the positioning block are respectively provided with limiting grooves. The two limiting shafts can be respectively pushed into the corresponding limiting grooves to limit the positioning block and prevent it from coming out of the positioning groove.
[0012] The limiting shaft has an oblique adjustment surface facing the monitor and can extend into the limiting groove and fit against the positioning block.
[0013] Furthermore, the annular stroke unit includes an annular frame, the bottom of which is provided with two spaced drive teeth, and the two drive teeth are provided with a drive belt that constitutes a transmission. The guide platform is fixed to the drive belt by a fixed section. A drive motor is fixedly provided on the top of the annular frame, and the output shaft of the drive motor is connected to one of the drive teeth.
[0014] Furthermore, the bottom of the annular frame is provided with an annular track, and two sets of rollers are rotatably arranged on the guide platform, each set of rollers including two rollers; the inner and outer walls of the annular track are provided with outwardly protruding limiting protrusions, and each roller is provided with a recessed groove for the limiting protrusions to be inserted.
[0015] Furthermore, the two sets of limiting components are asymmetrically arranged above and below the positioning transverse groove.
[0016] Furthermore, the inner side of the limiting shaft is a vertical blocking surface. When the positioning block is fully inserted into the positioning groove, the limiting shaft will push into the corresponding limiting groove, and the blocking surface will abut against the wall of the corresponding limiting groove.
[0017] Furthermore, the locking seat has two inner cavities for the movement of corresponding limiting shafts. Each inner cavity is also provided with a movable block located outside the corresponding limiting shaft. The movable block is fixed to the corresponding limiting shaft by a fixed connecting section. The inner side of the inner cavity communicates with the positioning transverse groove, and a limiting block is fixedly provided on the inner side of the inner cavity to prevent the fixed connecting section from falling out of the inner cavity.
[0018] A spring is provided between the outer side of the inner cavity and the movable block. During the process of the positioning horizontal block extending into the positioning horizontal groove, the limiting shaft moves outward and the spring is compressed. When the positioning horizontal block is fully extended into the positioning horizontal groove, the elastic potential energy of the compressed spring will push the limiting shaft into the limiting groove to achieve the limiting.
[0019] Furthermore, the outer side of the movable block is provided with an outer groove for the spring to extend into.
[0020] Furthermore, the locking seat has push holes on its side that are respectively connected to two inner cavities. A push shaft is inserted into the push hole and contacts the corresponding movable block. The end faces of the push shaft and the corresponding movable block that are in contact with each other are inclined. As the push shaft moves toward the corresponding movable block, the movable block will be squeezed outward, thereby causing the corresponding limiting shaft to disengage from the limiting groove.
[0021] Furthermore, the ends of the two push shafts away from the corresponding movable blocks are fixed by an external section, which is spaced from the locking seat.
[0022] Furthermore, the locking seat is fixed to the guide platform by bolts, and the head of the bolts can abut against one of the push shafts for limiting.
[0023] Compared with existing technologies, this utility model has a simple structure and is easy to operate. It expands the monitoring coverage by using a ring-shaped stroke unit, enabling the digital building monitor to be movable. At the same time, by utilizing the elastic deformation of the spring and the cooperation of the limiting post and the limiting groove, the installation is completed when the positioning block is inserted into the positioning groove and the limiting post is inserted into the limiting groove. When the outer section is pressed until the limiting shaft is disengaged from the limiting groove, the positioning block can be disassembled from the positioning groove, thus achieving boltless disassembly and assembly of the digital building monitor, significantly improving maintenance efficiency and overcoming the problems of cumbersome disassembly of traditional monitors. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of this utility model.
[0025] Figure 2 This is a schematic diagram of the structure of a ring-shaped stroke unit.
[0026] Figure 3 for Figure 2 A magnified view of A in the middle.
[0027] Figure 4 for Figure 1 A magnified view of B in the middle.
[0028] Figure 5 for Figure 4 A magnified view of C.
[0029] In the diagram: 11. Ring frame; 111. Ring track; 112. Limiting protrusion; 12. Guide platform; 13. Roller; 131. Recessed groove; 14. Drive gear; 15. Drive belt; 16. Fixed section; 17. Drive motor; 21. Locking seat; 22. Positioning transverse groove; 31. Monitor; 32. Positioning transverse block; 321. Limiting groove; 41. Limiting shaft; 42. Adjustment surface; 43. Blocking surface; 51. Inner cavity; 52. Movable block; 53. Fixed connection section; 54. Limiting block; 55. Spring component; 56. Outer groove; 61. Push hole; 62. Push shaft; 71. External connection section; 72. Soft pad; 81. Bolt. Detailed Implementation
[0030] The present invention will be further described below with reference to the accompanying drawings.
[0031] See Figure 1 , Figure 4 and Figure 5 In one embodiment of the present invention, a monitoring device 21 for digital buildings includes a ring-shaped travel unit and a guide platform 12 disposed on the ring-shaped travel unit and capable of moving along the ring-shaped travel unit. A locking seat 21 is fixedly disposed at the lower end of the guide platform 12, and a positioning transverse groove 22 is provided on the side of the locking seat 21.
[0032] It also includes a monitor 31, on the side of which a positioning block 32 is fixedly installed. The positioning block 32 can extend into the positioning groove 22. The locking seat 21 is provided with at least two sets of limiting members. The two sets of limiting members are respectively located above and below the positioning groove 22. Both sets of limiting members include a vertical limiting shaft 41. The upper and lower ends of the positioning block 32 are respectively provided with limiting grooves 321. The two limiting shafts 41 can be respectively pushed into the corresponding limiting grooves 321 to limit the positioning block 32 and prevent it from falling out of the positioning groove 22.
[0033] The limiting shaft 41 has an inclined adjustment surface 42 facing the monitor 31 and can extend into the limiting groove 321 and fit against the positioning block 32. The inclined surface allows the positioning block to smoothly and completely extend into the positioning groove, making the assembly process smooth. The guide table can move a wide range along the annular stroke unit, and the monitor is fixed on the locking seat, so it moves with the guide table to achieve wide-range, mobile monitoring and full coverage. The positioning block on the side of the monitor can extend into the positioning groove, and then the limiting shaft can push into the corresponding limiting groove to restrict the positioning block and prevent it from coming out of the positioning groove.
[0034] See Figure 2In one embodiment of this utility model, the annular stroke unit includes an annular frame 11. The bottom of the annular frame 11 is provided with two spaced drive teeth 14. The two drive teeth 14 are provided with drive belts 15 that form a transmission. The guide platform 12 is fixed to the drive belts 15 through a fixed section 16. A drive motor 17 is fixedly provided on the top of the annular frame 11. The output shaft of the drive motor 17 is connected to one of the drive teeth 14. The drive motor provides power to the drive teeth, thereby enabling the guide platform to move.
[0035] See Figure 2 and Figure 3 In the above embodiment, the bottom of the annular frame 11 is provided with an annular track 111, and the guide platform 12 is rotatably provided with two sets of rollers that are independent on both sides of the annular track 111. Each set of rollers includes two rollers 13. The inner and outer walls of the annular track 111 are provided with outwardly protruding limiting protrusions 112, and each roller 13 is provided with a recessed groove 131 for the limiting protrusions 112 to be inserted into. Through the cooperation of the limiting protrusions and the recessed grooves, the guide platform is limited to the annular track, and the rollers reduce friction. This ensures that the guide platform can smoothly move the monitor under the drive of the drive motor.
[0036] See Figure 4 and Figure 5 In one embodiment of this utility model, the two sets of limiting components are asymmetrically arranged above and below the positioning transverse groove 22; the positioning is limited by an alternating method to ensure that the positioning transverse block is firmly restricted within the positioning transverse groove.
[0037] See Figure 5 In one embodiment of this utility model, the inner side of the limiting shaft 41 is a vertical blocking surface 43. When the positioning horizontal block 32 is fully inserted into the positioning horizontal groove 22, the limiting shaft 41 will push into the corresponding limiting groove 321, and the blocking surface 43 will abut against the wall of the corresponding limiting groove 321. The blocking surface can abut against the wall of the corresponding limiting groove to achieve the purpose of preventing detachment.
[0038] See Figure 4 and Figure 5 In one embodiment of this utility model, the locking seat 21 has two inner cavities 51 respectively for the movement of corresponding limiting shafts 41. The inner cavity 51 is also provided with a movable block 52 located outside the corresponding limiting shaft 41. The movable block 52 is fixed to the corresponding limiting shaft 41 by a fixed connecting section 53. The inner side of the inner cavity 51 communicates with the positioning transverse groove 22, and a limiting block 54 is fixedly provided on the inner side of the inner cavity 51 to prevent the fixed connecting section 53 from falling out of the inner cavity 51.
[0039] See Figure 5A spring 55 is provided between the outer side of the inner cavity 51 and the movable block 52. During the process of the positioning horizontal block 32 extending into the positioning horizontal groove 22, the limiting shaft 41 moves outward and the spring 55 is compressed. When the positioning horizontal block 32 is fully extended into the positioning horizontal groove 22, the elastic potential energy of the compressed spring 55 pushes the limiting shaft 41 into the limiting groove 321 to achieve the limiting.
[0040] Please continue reading. Figure 5 In the above embodiment, the outer side of the movable block 52 is provided with an outer groove 56 for the spring member 55 to extend into; to avoid excessive compression of the spring member and to ensure that the spring compression is within the elastic deformation range.
[0041] See Figure 4 and Figure 5 In one embodiment of this utility model, the locking seat 21 has push holes 61 on its side that are respectively connected to two inner cavities 51. A push shaft 62 is inserted into the push hole 61. The push shaft 62 is in contact with the corresponding movable block 52, and the end faces of the push shaft 62 and the corresponding movable block 52 that are in contact with each other are both inclined surfaces. As the push shaft 62 moves toward the corresponding movable block 52, the movable block 52 will be squeezed outward, thereby causing the corresponding limiting shaft 41 to disengage from the limiting groove 321. After the limiting shaft disengages from the limiting groove, the positioning horizontal block can be disengaged from the positioning horizontal groove.
[0042] See Figure 5 In the above embodiment, the ends of the two push shafts 62 away from the corresponding movable block 52 are fixed by an outer section 71. The outer section 71 is spaced from the locking seat 21, and a soft pad 72 is fixedly provided on the side of the outer section 71 facing the positioning block 32. The outer section can fix the two push shafts and realize the joint control of the movement of the two push shafts.
[0043] See Figure 4 and Figure 5 In the above embodiment, the locking seat 21 and the guide platform 12 are fixed together by bolts 81, and the head of the bolts 81 can abut against one of the push shafts 62 for limiting.
[0044] The working process of this embodiment is as follows:
[0045] The drive motor 17 is used to control one of the drive teeth 14 to rotate, thereby driving the drive belt 15 and the guide platform 12 fixed on the drive belt 15 to move, so that the guide platform 12 can move a wide range along the ring frame 11 to achieve full coverage of the monitoring range.
[0046] When assembling the monitor 31, the positioning block 32 of the monitor 31 is pushed into the positioning groove 22. During this process, the adjusting surface 42 will contact the positioning block 32 extending into the positioning groove 22, the limiting shaft 41 will move outward, and the spring 55 will be compressed, allowing the positioning block 32 to extend into the positioning groove 22. When the positioning block 32 is fully extended into the positioning groove 22, the limiting shaft 41 will be pushed into the corresponding limiting groove 321 by the compressed spring 55, and the blocking surface 43 will abut against the wall of the corresponding limiting groove 321, achieving stable assembly of the monitor 31.
[0047] When removing the monitor 31, the operator only needs to press the outer section 71. The leftward movement of the outer section 71 will control the push shaft 62 to move to the left as well. As the push shaft 62 moves to the left, the movable block 52 will be squeezed outward, thereby causing the corresponding limit shaft 41 to disengage from the limit groove 321. At this time, simply pull the monitor 31 to the left to complete the removal.
[0048] The embodiments of this utility model are given for the purpose of illustration and description. Although embodiments of this utility model have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this utility model. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of this utility model.
Claims
1. A monitoring device for digital buildings, characterized in that: It includes a ring-shaped travel unit and a guide platform (12) disposed on the ring-shaped travel unit and capable of moving along the ring-shaped travel unit. A locking seat (21) is fixedly disposed at the lower end of the guide platform (12), and a positioning transverse groove (22) is provided on the side of the locking seat (21). It also includes a monitor (31), on which a positioning block (32) is fixedly installed on the side. The positioning block (32) can extend into the positioning groove (22). The locking seat (21) is provided with at least two sets of limiting components. The two sets of limiting components are respectively located above and below the positioning groove (22). Both sets of limiting components include a vertical limiting shaft (41). The upper and lower ends of the positioning block (32) are respectively provided with limiting grooves (321). The two limiting shafts (41) can be respectively pushed into the corresponding limiting grooves (321) to limit the positioning block (32) and prevent it from coming out of the positioning groove (22). The limiting shaft (41) has an oblique adjustment surface (42) facing the monitor (31) and can extend into the limiting groove (321) and fit against the positioning block (32).
2. The monitoring equipment for digital buildings according to claim 1, characterized in that: The annular stroke unit includes an annular frame (11), the bottom of which is provided with two spaced drive teeth (14), and the two drive teeth (14) are provided with a drive belt (15) that constitutes the transmission. The guide platform (12) is fixed to the drive belt (15) by a fixed section (16). A drive motor (17) is fixedly provided on the top of the annular frame (11), and the output shaft of the drive motor (17) is connected to one of the drive teeth (14).
3. A monitoring device for digital buildings according to claim 2, characterized in that: The bottom of the ring frame (11) is provided with a ring track (111), and two sets of rollers are rotatably arranged on the guide platform (12) on both sides of the ring track (111). Each set of rollers includes two rollers (13). The inner and outer walls of the ring track (111) are provided with outwardly protruding limiting protrusions (112), and each roller (13) is provided with a recessed groove (131) for the limiting protrusions (112) to be pushed into.
4. A monitoring device for digital buildings according to claim 1, characterized in that: The two sets of limiting components are asymmetrically arranged above and below the positioning transverse groove (22).
5. A monitoring device for digital buildings according to claim 1, characterized in that: The inner side of the limiting shaft (41) is a vertical blocking surface (43). When the positioning block (32) is fully inserted into the positioning groove (22), the limiting shaft (41) will push into the corresponding limiting groove (321), and the blocking surface (43) will abut against the wall of the corresponding limiting groove (321).
6. A monitoring device for digital buildings according to claim 1, characterized in that: The locking seat (21) has two inner cavities (51) for the movement of the corresponding limiting shaft (41). The inner cavity (51) is also provided with a movable block (52) located outside the corresponding limiting shaft (41). The movable block (52) is fixed to the corresponding limiting shaft (41) by a fixed connecting section (53). The inner side of the inner cavity (51) communicates with the positioning transverse groove (22), and a limiting block (54) is fixedly provided on the inner side of the inner cavity (51) to prevent the fixed connecting section (53) from falling out of the inner cavity (51). A spring (55) is provided between the outer side of the inner cavity (51) and the movable block (52). During the process of the positioning block (32) extending into the positioning groove (22), the limiting shaft (41) moves outward and the spring (55) is compressed. When the positioning block (32) is fully extended into the positioning groove (22), the elastic potential energy of the compressed spring (55) pushes the limiting shaft (41) into the limiting groove (321) to achieve the limiting.
7. A monitoring device for digital buildings according to claim 6, characterized in that: The movable block (52) has an outer groove (56) on its outer side for the spring (55) to extend into.
8. A monitoring device for digital buildings according to claim 6, characterized in that: The locking seat (21) has push holes (61) on its side that are connected to two inner cavities (51) respectively. A push shaft (62) is inserted into the push hole (61). The push shaft (62) is in contact with the corresponding movable block (52). The end faces of the push shaft (62) and the corresponding movable block (52) in contact with each other are both inclined. As the push shaft (62) moves toward the corresponding movable block (52), the movable block (52) will be squeezed outward, thereby causing the corresponding limiting shaft (41) to disengage from the limiting groove (321).
9. A monitoring device for digital buildings according to claim 8, characterized in that: The ends of the two push shafts (62) away from the corresponding movable blocks (52) are fixed by an external section (71) which is spaced from the locking seat (21).
10. A monitoring device for digital buildings according to claim 9, characterized in that: The locking seat (21) is fixed to the guide platform (12) by bolts (81), and the head of the bolts (81) can abut against one of the push shafts (62) for limiting.