Building structure node safety monitoring device
By designing a safety monitoring device for building structure nodes, using the combination of components such as installation blocks, matching blocks and adhesive blocks, the problem that existing devices cannot be erected for a long time is solved, and stable monitoring and support of the beam body's wall pressure is achieved.
Patent Information
- Application Number
- CN202422401772.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The existing safety monitoring devices are not convenient to be installed between the wall and the beam body for a long time, resulting in the inability to effectively monitor the squeeze of the beam body on the wall, especially when the beam body is applied too much pressure, it cannot provide effective support.
A safety monitoring device for building structure nodes is designed. Through the combination of components such as installation blocks, matching blocks, butt plug blocks, and adhesive blocks, they are fixed between the beam body and the wall by pasting, and through the coordination of the inner extension rod and the outer cylinder, the pressure of the beam body to the wall is monitored.
It realizes long-term stable monitoring of building structure nodes, can effectively detect the extrusion of beams on the wall, and ensures the stable connection and pressure monitoring functions of the device.
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Figure CN223257907U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of safety monitoring devices, and more specifically, relates to a safety monitoring device for building structure nodes. Background Art
[0002] Building nodes are the detailed practices of building structures. Building professional nodes include many such as: eaves, gutters, parapets, flashing, ridges, roof facility foundations and pipe extensions to the roof, wall insulation treatment, expansion joints, etc. In the building structure, there is also a group of nodes between the beams and walls. In order to ensure the normal use of the beams, a safety monitoring device is required.
[0003] Based on the findings in the prior art, the existing beam structure will be squeezed against the wall when in use. If the pressure applied to the beam is too large, the wall will not be sufficient to support the beam. Therefore, it is necessary to monitor and process the nodes. However, the existing safety monitoring device is not convenient to be installed between the wall and the beam for a long time, making it inconvenient to use. Utility Model Content
[0004] In order to solve the above technical problems, the embodiments of the present disclosure relate to a building structure node safety monitoring device to solve the problem that the existing beam structure will be squeezed against the wall when in use. If the pressure applied to the beam is too large, the wall is not sufficient to support the beam, so the node needs to be monitored and processed. However, the existing safety monitoring device is not convenient to be installed between the wall and the beam for a long time, which makes it inconvenient to use.
[0005] In a first aspect, the present disclosure provides a building structure node safety monitoring device, which is achieved by the following specific technical means:
[0006] The cam is fixed on the locking cam, and the locking cam is fixed on the locking cam, and the locking cam is screwed ... The rod is slidably connected to the inside of the outer tube; the extended plug block is arranged as a rectangular protrusion, a cylindrical protrusion is provided on the extended plug block, and a spring is provided on the extended plug block; the docking plug block is arranged as a rectangular parallelepiped structure, a rectangular slot is provided on the docking plug block, and the rectangular slot of the docking plug block is connected with a circular through hole, and there are two groups of docking plug blocks in total; the alignment plug block is arranged as a rectangular parallelepiped structure, a rectangular frame-shaped protrusion is provided on the outer wall of the alignment plug block, and a circular through hole is provided in the middle position of the alignment plug block, and there are two groups of alignment plug blocks in total; the outer tube is arranged as a rectangular parallelepiped structure, a rectangular groove is provided on the outer tube, a rectangular protrusion is provided on the outer tube, a cylindrical protrusion is provided on the rectangular protrusion of the outer tube, and a pressure monitor is provided inside the outer tube.
[0007] At least in some embodiments, the mounting block is configured as a T-shaped block structure, a cylindrical protrusion is provided on the mounting block, a circular socket is provided on the outer wall of the mounting block, and a rectangular protrusion is provided on the mounting block; the mating block is configured as a U-shaped structure, the mating block is connected with an axial hole, a circular socket is provided on the outer wall of the mating block, and a rectangular protrusion is provided on the mating block.
[0008] At least in some embodiments, the telescopic slot is configured as a rectangular groove, and a circular through hole is connected to the telescopic slot.
[0009] At least in some embodiments, the retaining block is configured as an L-shaped structure, a cylindrical insert is provided on the inner side of the retaining block, and there are two groups of retaining blocks in total.
[0010] At least in some embodiments, the adhesive block is configured as a rectangular structure, an adhesive layer is provided on the adhesive block, and there are two groups of adhesive blocks in total; the connecting groove is configured as a rectangular groove, a threaded rod is provided in the connecting groove, and there are two groups of connecting grooves in total.
[0011] At least in some embodiments, the connecting tube is configured as a cylindrical structure, a turning handle is provided on the connecting tube, a threaded groove is provided on the bottom surface of the connecting tube, and there are two groups of connecting tubes in total.
[0012] At least in some embodiments, the outer solid block is configured as a square plate structure, a U-shaped protrusion is provided on the outer solid block, an axial hole is provided on the outer solid block, and there are two groups of outer solid blocks in total; the inner extending rod is configured as a rectangular parallelepiped structure, a rectangular protrusion is provided on the inner extending rod, and a cylindrical protrusion is provided on the rectangular protrusion of the inner extending rod.
[0013] The building structure node safety monitoring device proposed in this utility model has the following beneficial effects:
[0014] 1. A docking plug-in block and an adhesive block are provided. By putting the docking plug-in block on the installation block and the matching block, it is convenient to maintain the stability of the connection between the docking plug-in block, the matching block and the installation block during the insertion process and through the extended plug-in block. By fixing the adhesive block on the docking plug-in block, it can be fixed between the beam and the wall by adhesive. When the beam squeezes the wall node, it will force the installation block and the matching block to undergo slight changes, so that the node can be monitored and processed;
[0015] 2. Alignment blocks and external fixing blocks are set up. The alignment blocks are fixed inside the alignment blocks through connecting tubes, which makes it convenient to fix the inner extension rod and the outer matching tube, and to control the sliding of the inner extension rod in the outer matching tube under the slight change of the installation block and the matching block. The pressure exerted by the beam on the wall is monitored and processed in the form of an internal pressure monitor, so as to facilitate the safety monitoring device of the building structure nodes. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the three-dimensional assembly structure of the utility model.
[0017] Figure 2 It is a schematic diagram of the three-dimensional assembly structure of the utility model when viewed from above.
[0018] Figure 3 It is a schematic diagram of the exploded structure of the present utility model.
[0019] Figure 4 It is a schematic diagram of the exploded structure of the utility model when viewed from above.
[0020] Figure 5 It is a partial cutaway structural schematic diagram of the present utility model.
[0021] Figure 6 The utility model is Figure 5 Schematic diagram of the enlarged structure of part A.
[0022] In the figure, the corresponding relationship between the component names and the drawing numbers is as follows:
[0023] 1. Mounting block; 2. Matching block; 3. Telescopic slot; 4. Extending plug-in block; 5. Retaining block; 6. Docking plug-in block; 7. Adhesive block; 8. Connecting slot; 9. Alignment plug-in block; 10. Connecting tube; 11. External fixing block; 12. Inner extension rod; 13. External matching tube. DETAILED DESCRIPTION
[0024] The following is a further detailed description of the embodiments of the present invention in conjunction with the accompanying drawings and examples.
[0025] Example 1: As shown in the attached Figure 1 To the attached Figure 6 As shown: The utility model provides a building structure node safety monitoring device, comprising: a mounting block 1; a matching block 2 rotatably connected to the mounting block 1; a telescopic slot 3 is respectively provided inside the mounting block 1 and the matching block 2, and an extending plug block 4 is slidably connected inside the telescopic slot 3; a retaining block 5 is inserted between the mounting block 1 and the matching block 2; a docking plug block 6 is respectively sleeved on the outside of the mounting block 1 and the matching block 2; an adhesive block 7 is fixedly connected to the docking plug block 6; a connecting slot 8 is provided inside the docking plug block 6; an alignment plug block 9 is inserted inside the connecting slot 8 ; The connecting tube 10 is rotatably connected to the alignment plug block 9, and the connecting tube 10 is threadedly connected to the connecting groove 8; the outer side of the alignment plug block 9 is fixed with an outer solid block 11; the outer solid block 11 is rotatably connected to the inner extension rod 12 and the outer solid block 11 is rotatably connected to the outer tube 13; the inner extension rod 12 is slidably connected to the inside of the outer tube 13; the extending plug block 4 is provided with a rectangular protrusion, a cylindrical protrusion is provided on the extending plug block 4, and a spring is provided on the extending plug block 4; the extending plug block 4 is used to be inserted into the interior of the docking plug block 6 under the action of the spring, which is convenient for maintenance The connection between the docking plug block 6 and the mounting block 1 and the matching block 2 is stable; the docking plug block 6 is set as a rectangular parallelepiped structure, a rectangular slot is provided on the docking plug block 6, and the rectangular slot of the docking plug block 6 is connected with a circular through hole, and there are two groups of docking plug blocks 6; the docking plug block 6 is used to cooperate with the adhesive block 7 to connect with the building wall and beam body to facilitate the fixation of the device; the positioning plug block 9 is set as a rectangular parallelepiped structure, a rectangular frame-shaped protrusion is provided on the outer wall of the positioning plug block 9, and a circular through hole is provided in the middle position of the positioning plug block 9. There are two groups of blocks 9; the alignment plug block 9 is used to cooperate with the outer fixing block 11 to fix the inner extension rod 12 and the outer tube 13 under the action of the connecting tube 10; the outer tube 13 is set as a rectangular structure, and a rectangular groove is provided on the outer tube 13, and a rectangular protrusion is provided on the outer tube 13. A cylindrical protrusion is provided on the rectangular protrusion of the outer tube 13, and a pressure monitor is provided inside the outer tube 13; the outer tube 13 is used to monitor the node safety by squeezing the internal pressure monitor during the extension and contraction process with the inner extension rod 12.
[0026] Example 2: Based on Example 1, as shown in the attached Figure 1 To the attached Figure 6As shown, the mounting block 1 is set as a T-shaped block structure, the mounting block 1 is provided with a cylindrical protrusion, the outer wall of the mounting block 1 is provided with a circular socket, and the mounting block 1 is provided with a rectangular protrusion; the mounting block 1 is used to assist the matching block 2 to install other structures of the device to facilitate the adjustment of the device as a whole; the matching block 2 is set as a U-shaped structure, the matching block 2 is connected with an axial hole, the outer wall of the matching block 2 is provided with a circular socket, and the matching block 2 is provided with a rectangular protrusion; the matching block 2 is used to match the mounting block 1 to install other structures of the device to facilitate the adjustment of the device as a whole; the telescopic slot 3 is set as a rectangular groove, and the telescopic slot 3 is connected to the circular through hole; the telescopic slot 3 is used to assist in the installation of the extended plug block 4, which is convenient for the adjustment of the extended plug block 4; the holding block 5 is set as an L-shaped structure, and the inner side of the holding block 5 is provided with a cylindrical plug, and the holding block 5 is provided with two groups; the holding block 5 is used to maintain the relative state between the mounting block 1 and the matching block 2 to facilitate the installation process; the pasting block 7 is set as a rectangular parallelepiped structure, and the pasting block 7 is provided with an adhesive layer. There are two groups; the adhesive block 7 is used to fix the entire device between the wall and the beam; the connecting groove 8 is set as a rectangular groove, and a threaded rod is provided in the connecting groove 8. There are two groups of connecting grooves 8; the connecting groove 8 is used to fix the alignment plug 9 to facilitate its connection processing; the connecting tube 10 is set as a cylindrical structure, and a turning handle is provided on the connecting tube 10. A threaded groove is provided on the bottom surface of the connecting tube 10. There are two groups of connecting tubes 10; the connecting tube 10 is used to fix the alignment plug 9 in the connecting groove 8 during the rotation process , so as to facilitate the stability of the connection between the two; the outer solid block 11 is set as a square plate structure, the outer solid block 11 is provided with a U-shaped protrusion, the outer solid block 11 is provided with an axial hole, and there are two groups of outer solid blocks 11; the outer solid block 11 is used to fix the inner extension rod 12 and the outer tube 13, so as to facilitate the stability of the two; the inner extension rod 12 is set as a rectangular parallelepiped structure, the inner extension rod 12 is provided with a rectangular protrusion, and the rectangular protrusion of the inner extension rod 12 is provided with a cylindrical protrusion; the inner extension rod 12 is used to cooperate with the outer tube 13 to monitor and process the building nodes.
[0027] The specific usage and function of this embodiment are as follows:
[0028] In the present invention, when in use, the adhesive blocks 7 are fixed on the outer walls of the two groups of docking blocks 6, and then the two groups of docking blocks 6 are respectively put on the mounting block 1 and the matching block 2 to maintain the stability of the connection between the docking blocks 6 and the mounting block 1 and the matching block 2 under the action of the extended blocks 4. Then, the two groups of alignment blocks 9 are inserted into the connecting grooves 8, and the connecting tubes 10 are threadedly connected to the threaded rods of the connecting grooves 8 by rotating them, so as to facilitate the maintenance of the stability of the connection between the docking blocks 6 and the alignment blocks 9. Then, the entire device is fixed in the angle between the building wall and the beam body by the adhesive blocks 7, and as the inner extension rod 12 is driven, the inner extension rod 12 is extended and retracted in the outer matching tube 13, and the pressure exerted by the beam body on the wall is monitored and processed under the action of the internal pressure monitor, so as to monitor and process the building structure nodes.
[0029] In this article, there are several points to note:
[0030] 1. The drawings of the embodiments of the present disclosure only relate to the structures related to the embodiments of the present disclosure. Other structures may refer to conventional designs.
[0031] 2. In the absence of conflict, the embodiments of the present disclosure and the features therein may be combined with each other to form new embodiments.
[0032] The above are only specific embodiments of the present disclosure, but the scope of protection of the present disclosure is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this disclosure should be included in the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on the scope of protection of the claims.
Claims
1. A building structure node safety monitoring device, comprising: The mounting block (1) is characterized in that: a matching block (2) is rotatably connected to the mounting block (1); a telescopic groove (3) is respectively provided inside the mounting block (1) and the matching block (2), and an outward extension block (4) is slidably connected inside the telescopic groove (3); a retaining block (5) is inserted between the mounting block (1) and the matching block (2); a docking block (6) is respectively sleeved on the outside of the mounting block (1) and the matching block (2); an adhesive block (7) is fixedly connected to the docking block (6); a connecting groove (8) is provided inside the docking block (6); an alignment block (9) is inserted inside the connecting groove (8); a connecting tube (10) is rotatably connected inside the alignment block (9), and the connecting tube (10) is threadedly connected to the connecting groove (8); an outer solid block (11) is fixedly connected to the outer solid block (11); an inner extension rod (12) is rotatably connected to the outer solid block (11), and a The outer tube (13); the inner rod (12) is slidably connected to the inside of the outer tube (13); the outer plug block (4) is set as a rectangular protrusion, the outer plug block (4) is provided with a cylindrical protrusion, and the outer plug block (4) is provided with a spring; the docking plug block (6) is set as a rectangular parallelepiped structure, the docking plug block (6) is provided with a rectangular slot, the rectangular slot of the docking plug block (6) is connected with a circular through hole, and the docking plug block (6) is provided with two groups; the alignment plug block ( 9) is set as a rectangular parallelepiped structure, a rectangular frame-shaped protrusion is provided on the outer wall of the alignment plug (9), a circular through hole is provided in the middle position of the alignment plug (9), and there are two groups of alignment plugs (9); the outer tube (13) is set as a rectangular parallelepiped structure, a rectangular groove is provided on the outer tube (13), a rectangular protrusion is provided on the outer tube (13), a cylindrical protrusion is provided on the rectangular protrusion of the outer tube (13), and a pressure monitor is provided inside the outer tube (13).
2. A building structure node safety monitoring device according to claim 1, characterized in that: The mounting block (1) is configured as a T-shaped block structure, the mounting block (1) is provided with a cylindrical protrusion, the outer wall of the mounting block (1) is provided with a circular jack, and the mounting block (1) is provided with a rectangular protrusion; the matching block (2) is configured as a U-shaped structure, the matching block (2) is connected with an axial hole, the outer wall of the matching block (2) is provided with a circular jack, and the matching block (2) is provided with a rectangular protrusion.
3. The building structure node safety monitoring device according to claim 1, characterized in that: The telescopic groove (3) is configured as a rectangular groove, and the telescopic groove (3) is connected to a circular through hole.
4. The building structure node safety monitoring device according to claim 1, characterized in that: The retaining block (5) is configured as an L-shaped structure, and a cylindrical insert block is provided on the inner side of the retaining block (5). There are two groups of retaining blocks (5) in total.
5. The building structure node safety monitoring device according to claim 1, characterized in that: The pasting block (7) is configured as a rectangular parallelepiped structure, an pasting layer is provided on the pasting block (7), and there are two groups of pasting blocks (7); the connecting groove (8) is configured as a rectangular groove, a threaded rod is provided in the connecting groove (8), and there are two groups of connecting grooves (8).
6. The building structure node safety monitoring device according to claim 1, characterized in that: The connecting tube (10) is configured as a cylindrical structure. A turning handle is provided on the connecting tube (10). A threaded groove is provided on the bottom surface of the connecting tube (10). There are two groups of connecting tubes (10) in total.
7. The building structure node safety monitoring device according to claim 1, characterized in that: The outer solid block (11) is configured as a square plate-like structure, a U-shaped protrusion is provided on the outer solid block (11), an axial hole is provided on the outer solid block (11), and there are two groups of outer solid blocks (11); the inner extension rod (12) is configured as a rectangular parallelepiped structure, a rectangular protrusion is provided on the inner extension rod (12), and a cylindrical protrusion is provided on the rectangular protrusion of the inner extension rod (12).