Thermal insulation shed for super-high altitude secondary high-strength grouting construction operation
By designing a combination of a quick-install base plate and enclosure structure as well as a temperature sensor heating plate, the problems of slow installation and poor temperature control of the insulation shed were solved, and the rapid erection of the insulation shed and grouting construction with suitable temperature were achieved.
Patent Information
- Application Number
- CN202422512090.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-17
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-10-17
AI Technical Summary
In the existing technology, the installation of the insulation shed is slow and the temperature inside the work shed cannot be effectively maintained, which affects the quality of high-strength grouting construction.
An ultra-high-altitude secondary high-strength grouting construction insulation shed has been designed. It uses a quickly installable base plate and enclosure structure, and is equipped with temperature sensors and heating plates. Temperature monitoring and heating devices are used to keep the temperature inside the shed within an appropriate range.
The rapid erection of the insulation shed and effective temperature control were achieved, ensuring that grouting operations and maintenance were carried out at suitable temperatures, thereby improving construction quality.
Smart Images

Figure CN223317578U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of construction insulation sheds, specifically an insulation shed for ultra-high altitude secondary high-strength grouting construction operations. Background Art
[0002] In the construction industry, due to the low temperatures and high wind speeds found at high altitudes, high-strength grouting operations often require the installation of an insulation shed for insulation and wind protection. The temperature and humidity within the shed must meet the construction requirements for secondary high-strength grouting materials. Excessively high or low temperatures can affect the grouting material's performance, such as setting time and strength development. Effective insulation and temperature control measures ensure that the grouting material is stirred and poured within the appropriate temperature range (e.g., above 5-10°C), thereby ensuring the grouting quality and achieving the specified strength and density requirements.
[0003] In the existing technology, after the outer frame of the insulation shed is installed, PVC-coated canvas needs to be laid promptly for windproofing and insulation. However, due to the large size of the insulation shed, the assembly of the outer frame is slow, which has a certain impact on the efficiency of the insulation shed installation. At the same time, because the traditional PVC-coated canvas insulation shed can only play the role of heat insulation and cold protection, but cannot effectively maintain the temperature inside the work shed, if the temperature inside the work shed is too low, it will have an adverse effect on grouting work and maintenance. Therefore, in order to solve this problem, it is necessary to propose an ultra-high altitude secondary high-strength grouting construction work insulation shed. Utility Model Content
[0004] The purpose of this application is to provide an insulation shed for secondary high-strength grouting construction operations at ultra-high altitudes in order to solve the above-mentioned problems.
[0005] The technical solution adopted in this application is as follows: an ultra-high altitude secondary high-strength grouting construction work insulation shed, comprising a plurality of base plates, the top of the base plates being snap-fitted with an enclosure, the middle of the enclosure being provided with a side canvas, sockets being fixedly mounted on both sides of the outer wall of the base plates, angle plates being fixedly mounted on both sides of the outer wall of the enclosure, a wedge-shaped rod being fixedly mounted on the bottom of the angle plates being inserted into the socket, a locking block having an inner end snap-fitted on the outer wall of the wedge-shaped rod being slidably mounted inside the socket, and the outer end of the locking block being fixedly connected to a pull rod inserted into the outer wall of the socket.
[0006] A bracket is provided on the inner side of the top of the enclosure, a top plate is clamped and installed on the bracket, a top canvas is provided on the inner side of the top plate, a plurality of threaded rods are fixedly installed on the bracket, a plurality of holes for sleeve installation on the threaded rods are opened on the top plate, a pressure plate is extruded and installed on the top of the top plate, a plurality of through holes adapted to the threaded rods are opened on the pressure plate, and a nut is threadedly connected to the outer wall of the threaded rod above the pressure plate.
[0007] A bracket is placed in the middle of the inner side of the plurality of substrates, a conductive slip ring is fixedly installed on the top of the bracket, a heating plate is fixedly installed on the rotating end of the top of the conductive slip ring, a gear ring is fixedly installed on the outer wall of the rotating end of the conductive slip ring, and a gear is meshed on the outer side of the gear ring.
[0008] In a preferred embodiment, the substrate has an arc-shaped structure, and multiple substrates can be combined and spliced into a circle. Bolt buckles and anchor plates are fixedly installed on both sides of the outer wall of the substrate. Adjacent substrates are connected and fixed to each other by bolts connected in series with bolt buckles, and anchor rods are inserted and installed on the anchor plates.
[0009] In a preferred embodiment, an embedding groove adapted to the enclosure is provided on the top of the base plate, the bottom of the enclosure is snap-fitted into the embedding groove, and convex strips and sealing grooves adapted to the convex strips are provided on both sides of the enclosure.
[0010] In a preferred embodiment, a socket is provided at the top of the socket and is adapted to fit the wedge rod. The wedge rod is inserted into the socket. A limiting groove adapted to fit the locking block is provided on the outside of the socket in the socket. The outer end of the locking block is fixedly connected to the limiting groove by a spring.
[0011] In a preferred embodiment, the opposite ends of the wedge rod and the locking block are both inclined, and the outer wall of the wedge rod is provided with a locking groove adapted to the locking block, and the locking block is snap-fitted into the locking groove.
[0012] In a preferred embodiment, the top plate is composed of a plurality of arc plates, and the plurality of arc plates are not fixedly connected to each other, and the top canvas in the middle of the top plate is a sewn one-piece structure.
[0013] In a preferred embodiment, a temperature sensor is fixedly mounted on the front wall of the bracket, a driving motor with an output shaft fixed to a gear is fixedly mounted on the side wall of the conductive slip ring, and an electrical interface is provided on the side wall of the bracket.
[0014] In summary, due to the adoption of the above technical solution, the beneficial effects of this application are:
[0015] 1. In the present application, through the above design, when using and installing the present device, a plurality of base plates are first installed on the periphery of the grouting area, and the plurality of base plates are connected and fixed by bolts in series with the bolt buckles on the outer wall of the base plates to form a circular base. Then, the anchor rods are drilled into the base surface through the anchor plates as needed to fix the assembled base plates. Then, the bottom of the enclosure is snap-fitted into the embedded groove opened on the top of the base plate, so that the wedge-shaped rod at the bottom of the upper corner plate of the outer wall of the enclosure is inserted into the socket. At this time, since the relative ends of the wedge rod and the locking block are inclined, the wedge rod will first abut the locking block to compress the spring outward and move to make way. Until the wedge rod is fully inserted into place, the locking block encounters the locking groove, and it will be snapped into the locking groove under the rebound of the spring, thereby locking the wedge rod to a limit. At this time, the enclosure is firm and It can be quickly installed on the base plate. Of course, since a pull rod is also designed here, when disassembling in the later stage, the pull rod can be directly pulled to drive the lock block out of the lock groove to release the lock of the wedge rod, thereby realizing the rapid disassembly of the enclosure. After a single enclosure is installed, the remaining enclosures can be installed according to the same steps. The adjacent enclosures can be tightly docked and sealed through the convex strips and sealing grooves when combined and spliced. After the enclosure is installed on the base plate, the top plate is immediately sleeved on the threaded rod at the top of the bracket through the hole, and then the pressure plate is fitted on the top of the top plate through the perforated threaded rod. Finally, it is threaded to the top of the threaded rod through the nut, so that the pressure plate is tightly squeezed on the top plate, so that the top canvas can be installed, and combined with the side canvas on the enclosure to form an insulation cover, thereby completing the quick and easy erection of the insulation work shed.
[0016] 2. In this application, through the above design, before the above-described insulation work shed is erected, the bracket can be placed in the grouting area in the middle of the insulation work shed according to the local construction climate conditions, and then the external power supply is plugged into the electrical interface. When the work shed is erected, the temperature sensor will monitor the temperature in real time in the shed. When the temperature is lower than the temperature required for grouting or maintenance, the temperature sensor will send an electrical signal to the circuit control board that controls the start of the heating plate, so that the heating plate starts to heat up. At the same time, the drive motor under the gear also starts to drive the gear meshing ring to rotate, and finally drive the heating plate to rotate, so as to heat the grouting work area on the surrounding base surfaces for thermal radiation heating, thereby ensuring that the temperature in the work shed is suitable for grouting and maintenance needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the structure of this application;
[0018] Figure 2 For this application Figure 1 A magnified schematic diagram of the structure of part A in the middle;
[0019] Figure 3 This is a schematic plan view of the structure inside the socket in this application.
[0020] Figure 4 This is a schematic diagram of the structure on the bracket in this application.
[0021] Markings in the figure: 1-base plate, 2-bolt buckle, 3-anchor plate, 4-enclosure, 5-side canvas, 6-convex strip, 7-sealing groove, 8-socket, 9-angle plate, 10-wedge rod, 11-jack, 12-lock block, 13-lock slot, 14-pull rod, 15-bracket, 16-top plate, 17-top canvas, 18-threaded rod, 19-hole, 20-pressure plate, 21-bracket, 22-temperature sensor, 23-conductive slip ring, 24-heating plate, 25-gear ring, 26-gear, 27-electrical interface. DETAILED DESCRIPTION
[0022] In order to make the purpose, technical solutions and advantages of this application more clear, the following further describes this application in detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.
[0023] Reference Figure 1 、 2 3. A heat preservation shed for secondary high-strength grouting construction at ultra-high altitudes comprises a plurality of base plates 1. The base plates 1 are in an arc-shaped structure, and a plurality of base plates 1 can be combined and spliced into a circle. Bolt buckles 2 and anchor plates 3 are fixedly installed on both sides of the outer wall of the base plates 1. Adjacent base plates 1 are connected and fixed to each other by bolts connected in series with the bolt buckles 2. Anchor rods are plugged and installed on the anchor plates 3. A fence 4 is snap-fitted and installed on the top of the base plate 1. A side canvas 5 is provided in the middle of the fence 4. An embedding groove adapted to the fence 4 is provided on the top of the base plate 1, and the bottom of the fence 4 is snap-fitted and installed in the embedding groove. A convex strip 6 and a sealing groove 7 adapted to the convex strip 6 are respectively provided on both sides of the fence 4. Sockets 8 are fixedly installed on both sides of the outer wall of the base plate 1, and the outer wall of the fence 4 is fixed on both sides. A corner plate 9 is installed, and a wedge rod 10 is fixedly installed at the bottom of the corner plate 9 and inserted into the socket 8. A socket 11 is provided on the top of the socket 8 that is compatible with the wedge rod 10. The wedge rod 10 is inserted and installed in the socket 11. A locking block 12 is slidingly installed inside the socket 8, and the inner end of the locking block 12 is clamped and installed on the outer wall of the wedge rod 10. A limiting groove that is compatible with the locking block 12 is provided on the outside of the socket 8 and is fixedly connected to the limiting groove by a spring. The opposite ends of the wedge rod 10 and the locking block 12 are both inclined in design. A locking groove 13 that is compatible with the locking block 12 is provided on the outer wall of the wedge rod 10. The locking block 12 is clamped and installed in the locking groove 13. The outer end of the locking block 12 is fixedly connected to a pull rod 14 that is inserted into the outer wall of the socket 8.
[0024] Through the above design, when using and installing this device, first install multiple base plates 1 on the periphery of the grouting area, and connect the multiple base plates 1 with the bolt buckles 2 on the outer wall of the base plates 1 by bolts in series to form a circular base. Then, according to needs, the anchor rods are drilled into the base surface through the anchor plates 3 to fix the assembled base plates 1. Then, the bottom of the enclosure 4 is snap-fitted into the embedded groove opened at the top of the base plate 1, so that the wedge rod 10 at the bottom of the corner plate 9 on the outer wall of the enclosure 4 is inserted into the socket 8. At this time, since the opposite ends of the wedge rod 10 and the locking block 12 are both inclined, the wedge rod 10 will first abut the locking block 12 to compress the spring outward. Move out of the way until the wedge rod 10 is fully inserted into place, and the locking block 12 encounters the locking groove 13, and will be engaged into the locking groove 13 under the rebound of the spring, thereby locking the wedge rod 10 to a limit. At this time, the enclosure 4 is firmly and quickly installed on the base plate 1. Of course, since a pull rod 14 is also designed here, when disassembling in the later stage, the pull rod 14 is directly pulled to drive the locking block 12 out of the locking groove 13 to release the lock of the wedge rod 10, thereby realizing the rapid disassembly of the enclosure 4. After a single enclosure 4 is installed, the remaining enclosures 4 can be installed according to the same steps. Adjacent enclosures 4 can be tightly docked and sealed through the ridges 6 and the sealing grooves 7 when combined and spliced.
[0025] Reference Figure 1 、 2 A bracket 15 is provided on the inner side of the top of the enclosure 4, and a top plate 16 is clamped and installed on the bracket 15. A top canvas 17 is provided on the inner side of the top plate 16. The top plate 16 is composed of a plurality of arc plates, and the plurality of arc plates are not fixedly connected. The top canvas 17 in the middle of the top plate 16 is a sewn one-piece structure. A plurality of threaded rods 18 are fixedly installed on the bracket 15, and a plurality of sleeve holes 19 are provided on the top plate 16 for sleeve installation on the threaded rods 18. A pressing plate 20 is extruded and installed on the top of the top plate 16. A plurality of through holes compatible with the threaded rods 18 are provided on the pressing plate 20. The outer wall of the threaded rod 18 is located above the pressing plate 20 and is threadedly connected with a nut.
[0026] Through the above design, after the enclosure 4 is installed on the base plate 1, the top plate 16 is immediately sleeved on the threaded rod 18 at the top of the bracket 15 through the sleeve hole 19, and then the pressure plate 20 is fitted on the top of the top plate 16 through the perforated sleeve threaded rod 18, and finally connected to the top of the threaded rod 18 through a nut thread, so that the pressure plate 20 is tightly squeezed on the top plate 16, and the top canvas 17 can be installed, and combined with the side canvas 5 on the enclosure 4 to form an insulation cover, thereby completing the quick and easy erection of the insulation work shed.
[0027] Reference Figure 1 、 4A bracket 21 is placed in the middle of the inner side of multiple substrates 1, a conductive slip ring 23 is fixedly installed on the top of the bracket 21, a heating plate 24 is fixedly installed on the rotating end of the top of the conductive slip ring 23, a gear ring 25 is fixedly installed on the outer wall of the rotating end of the conductive slip ring 23, and a gear 26 is meshed on the outer side of the gear ring 25, a temperature sensor 22 is fixedly installed on the front wall of the bracket 21, a drive motor whose output shaft is fixed to the gear 26 is fixedly installed on the side wall of the conductive slip ring 23, and an electrical interface 27 is provided on the side wall of the bracket 21.
[0028] Through the above design, before the above-described insulation work shed is erected, the bracket 21 can be placed in the grouting area in the middle of the insulation work shed according to the local construction climate conditions, and then the external power supply is plugged into the electrical interface 27. When the work shed is erected, the temperature sensor 22 will monitor the temperature in real time in the shed. When the temperature is lower than the temperature required for grouting operation or maintenance, the temperature sensor 22 will send an electrical signal to the circuit control board that controls the start of the heating plate 24, so that the heating plate 24 starts to generate heat. At the same time, the drive motor under the gear 26 also starts to drive the gear 26 to engage the gear ring 25 to rotate, so as to finally drive the heating plate 24 to rotate, so as to heat the grouting operation area on the surrounding base surfaces by thermal radiation, thereby ensuring that the temperature in the work shed is suitable for the needs of grouting operation and maintenance.
[0029] The implementation principle of the embodiment of this application is:
[0030] First, when using and installing this device, multiple base plates 1 are first installed on the periphery of the grouting area, and the multiple base plates 1 are connected and fixed by bolting the bolt buckles 2 on the outer wall of the base plates 1 in series to form a circular base. Then, as needed, the anchor rods are drilled into the base surface through the anchor plates 3 to fix the assembled base plates 1. Then, the bottom of the enclosure 4 is snap-fitted and installed in the embedded groove opened at the top of the base plate 1, so that the wedge rod 10 at the bottom of the corner plate 9 on the outer wall of the enclosure 4 is inserted into the socket 8. At this time, since the opposite ends of the wedge rod 10 and the locking block 12 are both inclined, the wedge rod 10 will first abut the locking block 12 to compress the spring and move outward. Make way until the wedge rod 10 is fully inserted into place, the locking block 12 encounters the locking groove 13, and will be engaged into the locking groove 13 under the rebound of the spring, thereby locking the wedge rod 10 to a limit. At this time, the enclosure 4 is firmly and quickly installed on the base plate 1. Of course, since a pull rod 14 is also designed here, when disassembling in the later stage, the pull rod 14 is directly pulled to drive the locking block 12 out of the locking groove 13 to release the lock of the wedge rod 10, thereby realizing the rapid disassembly of the enclosure 4. After a single enclosure 4 is installed, the remaining enclosures 4 can be installed according to the same steps. Adjacent enclosures 4 can be tightly docked and sealed through the ridges 6 and the sealing grooves 7 when combined and spliced.
[0031] After the enclosure 4 is installed on the base plate 1, the top plate 16 is immediately sleeved on the threaded rod 18 at the top of the bracket 15 through the sleeve hole 19, and then the pressure plate 20 is fitted on the top of the top plate 16 through the perforated sleeve threaded rod 18, and finally connected to the top of the threaded rod 18 through a nut thread, so that the pressure plate 20 is tightly squeezed on the top plate 16, and the top canvas 17 can be installed, and combined with the side canvas 5 on the enclosure 4 to form an insulation cover, thereby completing the quick and easy erection of the insulation work shed.
[0032] Before the above-described insulation work shed is erected, the bracket 21 can be placed in the grouting area in the middle of the insulation work shed according to the local construction climate conditions, and then the external power supply is plugged into the electrical interface 27. When the work shed is erected, the temperature sensor 22 will monitor the temperature in real time in the shed. When the temperature is lower than the temperature required for grouting operations or maintenance, the temperature sensor 22 will send an electrical signal to the circuit control board that controls the start of the heating plate 24, so that the heating plate 24 starts to generate heat. At the same time, the drive motor under the gear 26 also starts to drive the gear 26 to engage the gear ring 25 to rotate, so as to finally drive the heating plate 24 to rotate, so as to heat the grouting operation area on the surrounding base surfaces by thermal radiation, thereby ensuring that the temperature in the work shed is suitable for the needs of grouting operations and maintenance.
[0033] The above are only preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present application should be included in the scope of protection of the present application.
Claims
1. A super-high altitude secondary high-strength grouting construction operation insulation shed, comprising a plurality of base plates (1), characterized in that: The top of the base plate (1) is fixedly mounted with a fence (4), the middle of the fence (4) is provided with a side canvas (5), both sides of the outer wall of the base plate (1) are fixedly mounted with sockets (8), both sides of the outer wall of the fence (4) are fixedly mounted with angle plates (9), the bottom of the angle plates (9) is fixedly mounted with a wedge-shaped rod (10) inserted into the socket (8), the interior of the socket (8) is slidably mounted with a locking block (12) whose inner end is fixedly mounted on the outer wall of the wedge-shaped rod (10), and the outer end of the locking block (12) is fixedly connected to a pull rod (14) inserted into the outer wall of the socket (8); A bracket (15) is provided on the inner side of the top of the enclosure (4), a top plate (16) is mounted on the bracket (15), a top canvas (17) is provided on the inner side of the top plate (16), a plurality of threaded rods (18) are fixedly mounted on the bracket (15), a plurality of sleeve holes (19) are provided on the top plate (16) and are sleeved on the threaded rods (18), a pressure plate (20) is extruded and mounted on the top of the top plate (16), a plurality of through holes are provided on the pressure plate (20) and are adapted to the threaded rods (18), and a nut is threadedly connected to the outer wall of the threaded rod (18) above the pressure plate (20); A bracket (21) is placed in the middle of the inner side of the plurality of substrates (1), a conductive slip ring (23) is fixedly mounted on the top of the bracket (21), a heating plate (24) is fixedly mounted on the rotating end of the top of the conductive slip ring (23), a gear ring (25) is fixedly mounted on the outer wall of the rotating end of the conductive slip ring (23), and a gear (26) is meshed on the outer side of the gear ring (25).
2. The ultra-high altitude secondary high-strength grouting construction work insulation shed according to claim 1, characterized in that: The base plate (1) has an arc-shaped structure, and a plurality of the base plates (1) can be assembled and spliced into a circle. Bolt buckles (2) and anchor plates (3) are fixedly installed on both sides of the outer wall of the base plate (1). Adjacent base plates (1) are connected and fixed to each other by bolts connected in series with the bolt buckles (2). Anchor rods are inserted and installed on the anchor plates (3).
3. The ultra-high altitude secondary high-strength grouting construction work insulation shed according to claim 1, characterized in that: The top of the base plate (1) is provided with an embedding groove adapted to the enclosure (4), the bottom of the enclosure (4) is snap-fitted and installed in the embedding groove, and both sides of the enclosure (4) are respectively provided with convex strips (6) and sealing grooves (7) adapted to the convex strips (6).
4. The ultra-high altitude secondary high-strength grouting construction work insulation shed according to claim 1, characterized in that: The top of the socket (8) is provided with a socket (11) adapted to the wedge rod (10), the wedge rod (10) is inserted and installed in the socket (11), and a limiting slide groove adapted to the locking block (12) is provided on the outside of the socket (11) in the socket (8), and the outer end of the locking block (12) is fixedly connected to the limiting slide groove via a spring.
5. The ultra-high altitude secondary high-strength grouting construction work insulation shed according to claim 1, characterized in that: The opposite ends of the wedge rod (10) and the locking block (12) are both inclined, and the outer wall of the wedge rod (10) is provided with a locking groove (13) adapted to the locking block (12), and the locking block (12) is snap-fitted into the locking groove (13).
6. The ultra-high altitude secondary high-strength grouting construction work insulation shed according to claim 1, characterized in that: The top plate (16) is composed of a plurality of arc plates, and the plurality of arc plates are not fixedly connected to each other. The top canvas (17) in the middle of the top plate (16) is a sewn integral structure.
7. The ultra-high altitude secondary high-strength grouting construction work insulation shed according to claim 1, characterized in that: A temperature sensor (22) is fixedly mounted on the front wall of the bracket (21), a driving motor whose output shaft is fixed to a gear (26) is fixedly mounted on the side wall of the conductive slip ring (23), and an electrical interface (27) is provided on the side wall of the bracket (21).