Building auxiliary material injection device suitable for high floors
By designing a building material injection device suitable for high-rise buildings, and utilizing hoisting equipment and a spiral feeding shaft, the problem of inconvenient transportation of building materials for high-rise buildings was solved, achieving efficient and safe material delivery and precise injection, thereby improving construction quality and safety.
Patent Information
- Application Number
- CN202520156134.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-01-23
AI Technical Summary
In the construction of high-rise buildings, existing technologies are difficult to use efficiently to transport auxiliary materials such as cement and sand, especially in the absence of elevators, which is time-consuming and labor-intensive, affecting construction efficiency and quality.
A building material injection device was designed, comprising a funnel, a feeding pipe, a spiral feeding shaft, and a drive motor. The auxiliary materials are transported to higher floors using hoisting equipment, and the flow rate and timing of the auxiliary materials are controlled by the spiral feeding shaft and the discharge valve to ensure precise injection into the building structure.
It improves the efficiency and accuracy of transporting auxiliary materials for high-rise buildings, ensures construction quality, reduces the risks of working at heights, and improves construction safety and efficiency.
Smart Images

Figure CN223853846U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to building technical field especially suitable for building auxiliary material injection device of high floor. BACKGROUND
[0002] Building, as an important symbol in the development process of human civilization, is not only the high unification of practicality and aesthetics, but also the comprehensive embodiment of technology, art, culture and social needs. With its unique form, structure and function, it meets people's diversified life needs such as living, working and entertainment, carries historical memory, cultural heritage and era spirit, constantly promotes the renewal of city appearance and the progress of human civilization, is the bridge connecting the past and the future, and is also the masterpiece of human wisdom and creativity.
[0003] Building auxiliary material injection is an indispensable part in the process of building construction, which involves accurately injecting various auxiliary materials such as mortar, concrete additive and waterproof material into building structure to ensure the stability, durability and functionality of building. Correct use of these auxiliary materials and mastery of injection technology are of great significance to improve building quality and ensure construction safety.
[0004] When using building auxiliary materials, including the use of cement sand, but we consider that when using auxiliary materials on high floors, it is not convenient to transport cement sand to the indoor of high floors, which greatly reduces the efficiency of building auxiliary material use, especially in the case where the elevator has not been constructed, which is extremely time-consuming and laborious, and is extremely inconvenient, so an injection device for building auxiliary materials suitable for high floors is needed to solve the above problems. CONTENT OF THE UTILITY MODEL
[0005] The utility model aims at providing a building auxiliary material injection device suitable for high floors, solving the problem that it is not convenient to transport cement sand to the indoor of high floors when using auxiliary materials on high floors in the prior art, which greatly reduces the efficiency of building auxiliary material use, especially in the case where the elevator has not been constructed, which is extremely time-consuming and laborious.
[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0007] A building auxiliary material injection device suitable for high floors, comprising a hopper, the bottom of the hopper is fixedly connected with a bottom plate on both sides, and a feeding pipe is arranged on one side of the bottom of the hopper, the two ends of the feeding pipe respectively penetrate through the two bottom plates, a drive motor is fixedly connected on one side of the feeding pipe through bolts, and a spiral feeding shaft is rotatably connected to the inner side of the feeding pipe, one end of the spiral feeding shaft penetrates through the side wall of the feeding pipe and is in transmission connection with the output shaft of the drive motor, the inlet on one side of the top of the feeding pipe is in communication with one side of the bottom of the hopper, and a discharge valve is installed at the outlet of the feeding pipe.
[0008] Preferably, the top of the hopper is communicated with a top frame, and the top of the top frame is fixedly connected with a lifting ring at each of the four corners.
[0009] Preferably, the inner side of the top frame is provided with a top plate, and the two ends of the top plate respectively penetrate through the two sides of the top frame.
[0010] Preferably, the two sides of the top frame are both provided with a bearing groove, and the two ends of the top plate respectively penetrate through the two sides of the top frame through the bearing grooves.
[0011] Preferably, one end of the spiral feeding shaft is rotatably connected between the inner wall of the feeding pipe and the shaft, and the other end of the spiral feeding shaft penetrates through the side wall of the feeding pipe through a bearing sleeve.
[0012] Preferably, the top inlet of the feeding pipe is communicated with one side of the bottom of the hopper through a discharging valve, and one end of the feeding pipe is fixedly connected with a handle at the top.
[0013] The utility model has the following beneficial effects:
[0014] The utility model solves the problem of inconvenient auxiliary material transportation in high-rise buildings. In the traditional construction method, it is extremely time-consuming and laborious to transport cement, sand and other auxiliary materials to high floors, especially when the elevator has not been constructed. The injection device can easily transport auxiliary materials to high-rise indoor through the cooperation of hoisting equipment and feeding pipe, greatly improving the construction efficiency. Secondly, the injection device improves the precision of the use of building auxiliary materials. Through the rotation of the spiral feeding shaft and the control of the discharging valve, the flow and discharging time of the auxiliary materials can be accurately controlled to ensure that the auxiliary materials can be accurately injected into the building structure. This helps to improve the stability, durability and functionality of the building and ensures the construction quality. In addition, the injection device also has the advantages of simple structure, convenient operation, safety and reliability. The design of the hopper, bottom plate and feeding pipe is reasonable and compact, making the whole device easy to install and disassemble. The transmission connection between the driving motor and the spiral feeding shaft is stable and reliable, which can ensure the normal operation of the equipment. At the same time, the method of transporting auxiliary materials through the window opening also avoids the risk of high-altitude operation and improves the safety of construction. The utility model effectively solves the problem of inconvenient auxiliary material transportation in high-rise buildings, improves the construction efficiency and building quality, and has wide application prospect and practical value. BRIEF DESCRIPTION OF DRAWINGS
[0015] In order to more clearly illustrate the technical scheme of the embodiments of the utility model, the following will briefly introduce the drawings needed to be used in the embodiment description. Obviously, the drawings in the following description are some embodiments of the utility model, and those skilled in the art can also obtain other drawings according to these drawings without creating creative labor.
[0016] Figure 1It is the whole main view structure schematic diagram of the utility model;
[0017] Figure 2 It is the side view structure schematic diagram of the utility model;
[0018] Figure 3 It is the overhead structure schematic diagram of the utility model;
[0019] Figure 4 It is the bottom view structure schematic diagram of the utility model;
[0020] Figure 5 It is the inside structure schematic diagram of the feeding pipe of the utility model.
[0021] In the drawing: 1, hopper; 2, top frame; 3, top plate; 4, lifting ring; 5, bottom plate; 6, feeding pipe; 7, drive motor; 8, unloading valve; 9, handle; 10, spiral feeding shaft; 11, bearing groove; 12, discharge valve. Specific implementation
[0022] In order to make the purpose, technical scheme and advantages of the utility model more clear and obvious, the utility model is further described in detail below in combination with the drawings and examples.It should be understood that the specific examples described here are only used to explain the utility model, and are not used to limit the utility model.
[0023] Reference Figures 1-5 A building auxiliary material injection device suitable for high floors, comprising a hopper 1, both sides of the bottom of the hopper 1 are fixedly connected with bottom plates 5, and one side of the bottom of the hopper 1 is provided with a feeding pipe 6, the feeding pipe 6 is a channel for auxiliary material conveying, which is designed so that the auxiliary material can be conveyed from the bottom of the hopper 1 to the designated position of the high floor under the action of the drive motor 7 and the spiral feeding shaft 10, both ends of the feeding pipe 6 penetrate through two bottom plates 5 respectively, one side of the feeding pipe 6 is fixedly connected with the drive motor 7 through bolts, and the inside of the feeding pipe 6 is rotatably connected with the spiral feeding shaft 10, the spiral feeding shaft 10 is a key component for auxiliary material conveying, its rotary motion pushes the auxiliary material from the bottom of the hopper 1 into the feeding pipe 6 and conveys it to the high floor along the pipeline, one end of the spiral feeding shaft 10 penetrates through the side wall of the feeding pipe 6 and is in transmission connection with the output shaft of the drive motor 7, the inlet at one side of the top of the feeding pipe 6 is in communication with one side of the bottom of the hopper 1, and the outlet of the feeding pipe 6 is provided with an unloading valve 8, the unloading valve 8 is installed at the outlet of the feeding pipe 6 and is used for controlling the unloading of the auxiliary material, when the auxiliary material is conveyed to the designated position, the construction personnel can operate the unloading valve 8 so that the auxiliary material is accurately unloaded to the required position.
[0024] Further, the top of the hopper 1 is communicated with a top frame 2, and the top of the top frame 2 is fixedly connected with a lifting ring 4 at four corners, when preparing to hoist the hopper 1, the construction personnel can connect the lifting hook or lifting rope of the crane to the lifting ring 4, the lifting ring 4 is evenly distributed at the four corners of the top frame 2, which ensures the stability and balance in the hoisting process, so that the hopper 1 can be safely and stably lifted and slowly moved to the high floor along the building outer wall, avoiding the auxiliary materials from spilling or the equipment from being damaged due to imbalance in the hoisting process.
[0025] Further, the inside of the top frame 2 is provided with a top plate 3, and the two ends of the top plate 3 penetrate through the two sides of the top frame 2, when loading the building auxiliary materials, the construction personnel can place the top plate 3 inside the top frame 2 to block the top opening of the hopper 1, preventing the auxiliary materials from spilling during hoisting or transportation, when unloading is needed, the top plate 3 can be pulled out of the top frame 2, improving the sealing performance of the hopper 1 during loading and transportation, reducing the waste of auxiliary materials, and also protecting the construction environment.
[0026] Further, the two sides of the top frame 2 are provided with bearing grooves 11, and the two ends of the top plate 3 penetrate through the two sides of the top frame 2 through the bearing grooves 11, the two ends of the top plate 3 slide on the two sides of the top frame 2 through the bearing grooves 11, so that the top plate 3 can be easily put into or pulled out of the top frame 2, enhancing the connection stability and flexibility between the top plate 3 and the top frame 2, making the placement and extraction of the top plate 3 more convenient and fast.
[0027] Further, one end of the spiral feeding shaft 10 is rotatably connected between the pivot and the inner wall of the feeding pipe 6, and the other end of the spiral feeding shaft 10 penetrates through the side wall of the feeding pipe 6 through the bearing sleeve.
[0028] Further, the top inlet of the feeding pipe 6 is communicated with one side of the bottom of the hopper 1 through the discharge valve 12, and one end of the feeding pipe 6 is fixedly connected with a handle 9, when it is needed to start feeding, the construction personnel can open the discharge valve 12, so that the auxiliary materials in the hopper 1 can smoothly enter the feeding pipe 6, at the same time, the design of the handle 9 enables the construction personnel to conveniently move and adjust the position of the feeding pipe 6, enhancing the connection flexibility between the feeding pipe 6 and the hopper 1, making the conveying of the auxiliary materials more controllable, and the design of the handle 9 also improves the operation convenience of the construction personnel.
[0029] In summary:
[0030] When using this building auxiliary material injection device suitable for high floors, first, the construction personnel needs to prepare the hopper 1 according to the specific needs of the construction site. The design of the hopper 1 facilitates the loading of building auxiliary materials such as sand, cement, etc. The top of the hopper 1 is connected with the top frame 2, and the top frame 2 is fixedly connected with the lifting ring 4 at the top of the four corners. When preparing to hoist the hopper 1, the construction personnel connects the lifting hook or lifting rope of the crane to the lifting ring 4. Since the lifting ring 4 is evenly distributed at the four corners of the top frame 2, it ensures stability and balance during hoisting, so that the hopper 1 can be safely and stably lifted and slowly moved along the building exterior wall to the high floor, avoiding auxiliary material spilling or equipment damage due to imbalance during hoisting. When the hopper 1 is hoisted to the desired floor height, the construction personnel passes one end of the feeding pipe 6 into the room through the window of the floor. The design of the feeding pipe 6 allows it to flexibly pass through the window and other openings, facilitating the delivery of auxiliary materials to the designated location indoors. At this time, the bottom side of the hopper 1 is connected with the inlet of the feeding pipe 6 through the discharge valve 12, ensuring that the auxiliary materials can smoothly enter the feeding pipe 6. The top of one end of the feeding pipe 6 is fixedly connected with the handle 9, which allows the construction personnel to conveniently move and adjust the position of the feeding pipe 6, enhancing the flexibility of the connection between the feeding pipe 6 and the hopper 1. When loading building auxiliary materials, the construction personnel can place the top plate 3 inside the top frame 2, and the two ends of the top plate 3 slide on both sides of the top frame 2 through the bearing groove 11. This design allows the top plate 3 to be easily put into or taken out of the top frame 2, enhancing the stability and flexibility of the connection between the top plate 3 and the top frame 2. The top plate 3 blocks the top opening of the hopper 1, preventing auxiliary materials from spilling during hoisting or transportation. When unloading is needed, the top plate 3 can be easily taken out of the top frame 2. Next, the construction personnel starts the drive motor 7. The drive motor 7 is fixedly connected to one side of the feeding pipe 6 by bolts, and its output shaft is transmissionally connected with one end of the spiral feeding shaft 10. One end of the spiral feeding shaft 10 is rotationally connected with the inner wall of the feeding pipe 6 through a rotating shaft, and the other end of the spiral feeding shaft 10 penetrates the side wall of the feeding pipe 6 through a bearing sleeve. When the drive motor 7 is started, it drives the spiral feeding shaft 10 to rotate inside the feeding pipe 6. The design of the spiral feeding shaft 10 allows it to effectively push the auxiliary materials in the feeding pipe 6, achieving continuous delivery of the auxiliary materials. As the spiral feeding shaft 10 rotates, the construction personnel opens the discharge valve 12, and the sand and other auxiliary materials in the hopper 1 begin to fall into the feeding pipe 6 and are transported to the room along the feeding pipe 6 under the push of the spiral feeding shaft 10. When the auxiliary materials are delivered to the designated location, the construction personnel can control the unloading of the auxiliary materials by operating the unloading valve 8. The unloading valve 8 is installed at the outlet of the feeding pipe 6, which can conveniently control the flow and unloading time of the auxiliary materials. During the entire working process, the power consumption of the drive motor 7 can be directly connected to the corresponding floor, ensuring the normal operation of the equipment.Meanwhile, the close cooperation of the funnel 1, the bottom plate 5, the feeding pipe 6, the driving motor 7, the spiral feeding shaft 10, the unloading valve 8, the top frame 2, the lifting ring 4, the top plate 3, the bearing groove 11, the discharge valve 12 and the handle 9 enables the entire material injection device to efficiently and stably complete the auxiliary material conveying task. This building auxiliary material injection device suitable for high floors has many beneficial effects. First, through the design of the lifting ring 4 and the top frame 2, the funnel 1 can be safely and stably lifted and moved to a high floor, avoiding auxiliary material spilling or equipment damage due to imbalance during lifting, and improving the safety of construction. Second, the design of the top plate 3 and the bearing groove 11 enhances the sealing of the funnel 1 during loading and transportation, reducing the waste of auxiliary materials and protecting the construction environment. The top plate 3 can be easily put into or taken out of the top frame 2, improving the convenience of operation. Third, the cooperation of the spiral feeding shaft 10 and the driving motor 7 enables the auxiliary material to be continuously and uniformly conveyed in the feeding pipe 6, improving the construction efficiency. The design of the discharge valve 12 makes the entry of auxiliary materials more controllable, and the unloading valve 8 facilitates the unloading of auxiliary materials. In addition, the design of the handle 9 enables construction personnel to conveniently move and adjust the position of the feeding pipe 6, enhancing the flexibility of the connection between the feeding pipe 6 and the funnel 1, and making the entire device more adaptable to different construction environments.
[0031] The basic principles, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements fall within the scope of the claimed present application. The scope of protection required by the present application is defined by the appended claims and their equivalents.
Claims
1. A building material injection device for high-rise buildings, comprising a hopper (1), characterized in that, The bottom of the hopper (1) is fixedly connected with a bottom plate (5) on both sides, and one side of the bottom of the hopper (1) is provided with a feeding pipe (6), both ends of the feeding pipe (6) penetrate through the two bottom plates (5), one side of the feeding pipe (6) is fixedly connected with a driving motor (7) through a bolt, and the inside of the feeding pipe (6) is rotatably connected with a spiral feeding shaft (10), one end of the spiral feeding shaft (10) penetrates through the side wall of the feeding pipe (6) and is in transmission connection with the output shaft of the driving motor (7), the inlet at the top side of the feeding pipe (6) is in communication with one side of the bottom of the hopper (1), and the outlet of the feeding pipe (6) is provided with a discharge valve (8). The top of the hopper (1) is communicated with a top frame (2), and the top of the top frame (2) is fixedly connected with a lifting ring (4) at four corners.
2. The building material injection device according to claim 1, wherein The inside of the top frame (2) is provided with a top plate (3), and both ends of the top plate (3) penetrate through the two sides of the top frame (2).
3. The building material injection device according to claim 2, wherein Both sides of the top frame (2) are provided with bearing grooves (11), and both ends of the top plate (3) penetrate through the two sides of the top frame (2) through the bearing grooves (11).
4. The building material injection device according to claim 1, wherein One end of the spiral feeding shaft (10) is rotatably connected between the rotating shaft and the inner wall of the feeding pipe (6), and the other end of the spiral feeding shaft (10) penetrates through the side wall of the feeding pipe (6) through a bearing sleeve.
5. The building material injection device according to claim 1, wherein The top inlet of the feeding pipe (6) is communicated with one side of the bottom of the hopper (1) through a discharge valve (12), and one end of the feeding pipe (6) is fixedly connected with a handle (9).