Stacking device for net rack insulation boards
By using a stacking assembly consisting of a support cone and a distance sensor, the problem of large space occupation during the stacking process of the grid insulation board is solved, achieving stable stacking and optimized space utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANDONG LONGXIN ENERGY SAVING TECH CO LTD
- Filing Date
- 2025-05-14
- Publication Date
- 2026-04-21
AI Technical Summary
Due to the influence of steel wires, the steel wires make it difficult to stack the insulation panels stably, resulting in a large space occupation.
The stacking assembly, consisting of support cones and distance sensors, ensures stable stacking of the grid insulation panels by adjusting the distance and distribution of the support cones, thus reducing space occupation.
This method enables stable stacking of the space frame insulation panels, reduces space occupation, and improves stacking efficiency.
Smart Images

Figure CN224146680U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of grid insulation board stacking technology, specifically relating to a grid insulation board stacking device. Background Technology
[0002] With the increasing national efforts to promote building energy conservation, the demand for various thermal insulation materials is constantly increasing, and various new materials are emerging. The mesh insulation board is mainly composed of insulation board, mesh and diagonal steel wire. The produced composite insulation board is assembled into the outer formwork of the cast-in-place concrete wall, and the combined formwork is used as the inner formwork. The two formworks are combined into a cavity through connectors, and concrete is poured into the cavity after support.
[0003] After the production of the space frame insulation panels is completed, or when the space frame insulation panels need to be placed, a large number of space frame insulation panels are often difficult to stack due to the influence of the steel wires, thus affecting the space occupied for placement. Utility Model Content
[0004] This utility model provides a device for stacking wire mesh insulation boards, which uses a distance sensor to detect the distance between the supporting cones at their relative positions, and sets the required number of supporting cones by controlling the distribution of the distance, thereby ensuring the stable stacking of the wire mesh insulation boards and reducing the space occupied by stacking.
[0005] This utility model provides the following technical solution: a grid insulation board stacking device, comprising a plurality of stacked boards, with a plurality of stacking support components between every two boards. Each stacking component includes a support rod and two support cones. A connecting column is fixedly connected to the outside of each support cone. A distance distribution monitoring component is provided on the outside of one of the connecting columns. The distance distribution monitoring component includes a movable mounting base, a distance sensor, and two horizontal seats. The detection end of the distance sensor is opposite to the stacking component at the horizontal position and the support cone at the bottom position.
[0006] The support rod has external threads at both ends, and the support rod is threadedly connected to the connecting column through the external threads.
[0007] The connecting column has a movable groove, and the movable mounting seat is rotatably connected within the movable groove.
[0008] The distance sensor is fixedly installed in the movable mounting base, and the bottom of the movable groove is open.
[0009] The movable mounting base has movable rotating shafts fixedly connected to both sides, and one end of each of the two movable rotating shafts passes through the connecting column.
[0010] The two horizontal seats are fixed on both sides of the movable mounting base, and the two movable rotating shafts are located inside the two horizontal seats.
[0011] One end of the movable shaft is located outside the horizontal seat, and a fastening nut is threaded onto the outer wall of the movable shaft.
[0012] The beneficial effects of this utility model are:
[0013] This invention features a stacking assembly including a support rod and two support cones. When stacking insulation panels, the support cones are placed on the insulation panels, and the two insulation panels are supported by the opposing support cones on both sides. The distance between the two support cones can be adjusted according to the height of the insulation panels. Furthermore, based on the size of the insulation panels, a distance sensor detects the relative distance between the support cones. By controlling the distribution of this distance and setting the required number of support cones, the stacking of the insulation panels can be ensured to be stable, thus reducing the space occupied during stacking.
[0014] The parts of this utility model not described herein are the same as or can be implemented using existing technologies. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is a schematic diagram of the supporting cone cylinder in this utility model;
[0017] Figure 3 This is a schematic diagram of the structure of the medium-distance distributed monitoring component of this utility model;
[0018] Figure 4 This is a schematic diagram of the structure of the distance sensor of this utility model;
[0019] In the diagram: 1. Plate; 2. Stacking assembly; 21. Support cone; 22. Support rod; 23. Connecting column; 231. Movable groove; 3. Distance distribution monitoring assembly; 31. Movable mounting base; 32. Distance sensor; 33. Horizontal seat; 34. Movable rotating shaft; 35. Fastening nut. Detailed Implementation
[0020] Example:
[0021] Please see Figures 1-4The present invention provides the following technical solution: it includes several stacked plates 1, and several stacking components 2 are provided between every two plates 1. The stacking component 2 includes a support rod 22 and two support cones 21. A connecting column 23 is fixedly connected to the outside of the support cone 21. A distance distribution monitoring component 3 is provided on the outside of one of the connecting columns 23. The distance distribution monitoring component 3 includes a movable mounting base 31, a distance sensor 32 and two horizontal seats 33. The detection end of the distance sensor 32 is opposite to the stacking component 2 at the horizontal position and the support cone 21 at the bottom position.
[0022] In this implementation scheme: the stacking assembly 2 includes a support rod 22 and two support cones 21. When stacking the mesh insulation panels, the support cones 21 are placed on the mesh insulation panels. The two mesh insulation panels are supported by the support cones 21 positioned opposite each other on both sides. The distance between the two support cones 21 can be adjusted according to the height of the mesh insulation panels. When adjusting the position, the support rod 22 can be turned to change the position of the two support cones 21, thus adjusting the spacing. Nuts can be installed on the outside of the support rod 22 for fastening. According to the size of the mesh insulation panels, the distance between the support cones 21 can be detected by the distance sensor 32. By controlling the distribution of the distance and setting the required number of support cones 21, the stable stacking of the mesh insulation panels can be ensured. Stacking operations reduce space usage. When the distance between the two support cones 21 is adjusted, the movable mounting base 31 can be rotated to position the distance sensor 32 downwards, and the position can be restricted by the movable groove 231. At this time, the distance detected by the distance sensor 32 can be measured to ensure that each pair of support cones 21 is at the same length when in use. When distributing the positions of the support cones 21, they can be distributed according to the spacing detected by the distance sensor 32. That is, the distance sensor 32 can be rotated 90 degrees to face the side, which can evenly distribute the positions of the support cones 21. The data detected by the distance sensor 32 can be displayed on the screen or on a mobile phone. The principle of connecting the display is existing technology, which makes it easy for stacking workers to understand the distribution position.
[0023] Both ends of the support rod 22 have external threads, and the support rod 22 is threadedly connected to the connecting column 23 through the external threads. When adjusting the position, the distance can be adjusted by turning the support rod 22 and changing the position of the two support cones 21. Nuts can be set on the outside of the support rod 22 for fastening.
[0024] The connecting column 23 has a movable groove 231, and the movable mounting base 31 is rotatably connected in the movable groove 231. The distance sensor 32 is fixedly installed in the movable mounting base 31. The bottom of the movable groove 231 is open. When the movable mounting base 31 moves, its position can be restricted by the top wall and side wall of the movable groove 231, so that the detection end of the distance sensor 32 inside the movable mounting base 31 faces the side and bottom, so that the distance sensor 32 moves stably by ninety degrees.
[0025] Movable rotating shafts 34 are fixedly connected to both sides of the movable mounting base 31. One end of each movable rotating shaft 34 passes through the connecting column 23. Two horizontal seats 33 are fixed to both sides of the movable mounting base 31, and the two movable rotating shafts 34 are located inside the two horizontal seats 33. Under the action of the movable rotating shafts 34, the position of the distance sensor 32 can be adjusted. The distance is distributed towards the side, i.e., the spacing of the supporting cones 21, and towards the bottom, i.e., the distance between the two supporting cones 21.
[0026] One end of the movable shaft 34 is located outside the cross seat 33, and a fastening nut 35 is threaded onto the outer wall of the movable shaft 34. After adjusting the position of the movable mounting base 31, the fastening nut 35 can be tightened onto the movable shaft 34 to fix it.
[0027] The working principle and usage process of this utility model are as follows: Two stacked mesh insulation boards are supported by support cones 21 positioned opposite each other on both sides. The distance between the two support cones 21 can be adjusted according to the height of the mesh insulation board. This adjustment is achieved by turning the support rod 22, thereby changing the position of the two support cones 21. Nuts can be installed on the outside of the support rod 22 for tightening. Furthermore, based on the size of the mesh insulation board, the distance between the relatively positioned support cones 21 can be detected by a distance sensor 32. By controlling the distribution of the distance, the required number of support cones 21 can be set for support, thus enabling… To ensure the stable stacking of the insulation panels, the stacking reduces the space occupied. When the working distance between the two support cones 21 is adjusted, the movable mounting base 31 can be rotated so that the detection position of the distance sensor 32 faces downward. The position is restricted by the movable groove 231. At this time, the distance detected by the distance sensor 32 can be measured to ensure that each pair of support cones 21 is at the same length when in use. When distributing the positions of the support cones 21, they can be distributed according to the spacing detected by the distance sensor 32. That is, the distance sensor 32 can be rotated 90 degrees to face the side, so that the positions of the support cones 21 can be evenly distributed.
Claims
1. A net rack insulation board stacking device, comprising a plurality of stacked board bodies (1), characterized in that: Between each pair of plates (1), there are several stacking assemblies (2) for stacking support. Each stacking assembly (2) includes a support rod (22) and two support cones (21). A connecting column (23) is fixedly connected to the outside of the support cone (21). A distance distribution monitoring assembly (3) is provided on the outside of one of the connecting columns (23). The distance distribution monitoring assembly (3) includes a movable mounting base (31), a distance sensor (32), and two horizontal seats (33). The detection end of the distance sensor (32) is opposite to the stacking assembly (2) at the horizontal position and the support cone (21) at the bottom position.
2. The net rack insulation board stacking device according to claim 1, characterized in that: Both ends of the support rod (22) have external threads, and the support rod (22) is threadedly connected to the connecting column (23) through the external threads.
3. The device according to claim 1, wherein: The connecting column (23) has a movable groove (231), and the movable mounting base (31) is rotatably connected in the movable groove (231).
4. The net rack insulation board stacking device according to claim 3, characterized in that: The distance sensor (32) is fixedly installed in the movable mounting base (31), and the bottom of the movable groove (231) is open.
5. The net rack insulation board stacking device according to claim 1, wherein: Both sides of the movable mounting base (31) are fixedly connected to movable rotating shafts (34), and one end of each of the two movable rotating shafts (34) passes through the connecting column (23).
6. The net rack insulation board stacking device according to claim 5, wherein: The two horizontal seats (33) are fixed on both sides of the movable mounting base (31), and the two movable rotating shafts (34) are located inside the two horizontal seats (33).
7. The device according to claim 5, wherein: One end of the movable shaft (34) is located outside the cross seat (33), and a fastening nut (35) is threaded onto the outer wall of the movable shaft (34).