Concrete vibrating, stirring and discharging device in alpine region

By introducing a protective shell, a vibrating inner tank, and a mixing device into the concrete feeding device, and utilizing a reversible motor and a rubber column and ring structure, the problems of clogging and high noise in the concrete feeder are solved, achieving convenient operation and reduced noise.

CN223890250UActive Publication Date: 2026-02-10HEILONGJIANG COLLEGE OF CONSTR
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Patent Information

Application Number
CN202520480709.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-02-10
Estimated Expiration
2035-03-18

AI Technical Summary

Technical Problem

Existing concrete feeders are prone to clogging and generate significant noise when vibrating, affecting operational efficiency.

Method used

A concrete vibration mixing and feeding device for high-altitude and cold regions was designed. It adopts a protective shell, a vibrating inner liner and a mixing device. It utilizes a bidirectional uniform speed motor and a rubber column and rubber ring structure to reduce the collision between the inner liner and the shell, prevent blockage and reduce noise.

Benefits of technology

It enables the removal of concrete without the need for auxiliary tools, preventing blockages, reducing noise, and improving operational convenience.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223890250U_ABST
Patent Text Reader

Abstract

A concrete vibrating, stirring and discharging device in an alpine region belongs to the technical field of building concrete discharging and is characterized by comprising a protective shell and a stirring device inserted in the circle center of the upper surface of the protective shell, and a vibrating inner container is inserted in the circle center of the middle inside the protective shell 1; an oscillation main machine is connected to the middle between the oscillation inner container and the protective shell, a discharging valve is connected to the circle center of the lower surface of the oscillation inner container, a plurality of fixed supporting legs are evenly distributed and connected to the peripheral edge of the lower surface of the protective shell, and a feeding pipeline is connected to the left edge of the upper surface of the protective shell; a worker can discharge concrete without using an auxiliary tool during discharging, the concrete can be prevented from blocking the discharging opening during discharging, and collision between the inner container and the shell can be reduced and noise can be reduced when the stirring tank vibrates.
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Description

Technical fields:

[0001] This utility model belongs to the technical field of concrete feeding equipment, specifically relating to a concrete vibration mixing and feeding device for high-altitude and cold regions. Background technology:

[0002] Existing concrete discharge devices are prone to clogging the discharge port during discharge due to the viscous nature of concrete. This requires workers to use auxiliary tools to clear the discharge port. Furthermore, the collision between the inner liner and the outer shell during vibration generates significant noise, making operation inconvenient and reducing work efficiency. Utility Model Content:

[0003] The purpose of this invention is to enable workers to discharge concrete without the need for auxiliary tools, prevent concrete from clogging the discharge port during discharge, reduce noise by minimizing the collision between the inner liner and outer shell during mixing tank vibration, and facilitate worker operation. The technical solution is as follows:

[0004] A concrete vibration mixing and feeding device for high-altitude and cold regions, characterized in that: it includes a protective outer shell 1 and a mixing device 2 inserted at the center of the upper surface of the protective outer shell 1; a vibrating inner liner 3 is inserted at the center of the inner shell 1; a vibrating host 4 is connected between the vibrating inner liner 3 and the protective outer shell 1; a discharge valve 5 is connected to the center of the lower surface of the vibrating inner liner 3; several fixed support legs 6 are evenly distributed around the perimeter of the lower surface of the protective outer shell 1; and a feed pipe 7 is connected to the left edge of the upper surface of the protective outer shell 1. The protective shell 1 includes an outer tank 1-1, a through hole 1-2, a feed inlet 1-3, and a discharge outlet 1-4. The through hole 1-2 is located at the center of the upper surface of the outer tank 1-1. The feed inlet 1-3 is located at the left edge of the upper surface of the outer tank 1-1. The discharge outlet 1-4 is located at the center of the lower surface of the outer tank 1-1. The feed pipe 7 is connected to the outer edge of the upper surface of the feed inlet 1-3. The stirring device 2 includes a motor 2-1, a rotating shaft 2-2, a stirring column 2-3, and a spiral shaft 2-4. The rotating shaft 2-4 is connected to the center of the rotating end of the lower surface of the motor 2-1. -2, several stirring columns 2-3 are symmetrically and evenly distributed vertically on the side surface of the rotating shaft 2-2. A spiral shaft 2-4 is connected to the center of the lower surface of the rotating shaft 2-2. The rotating shaft 2-2 is inserted through the through hole 1-2. The motor 2-1 is connected to the outer edge of the upper surface of the through hole 1-2. The spiral shaft 2-4 is inserted through the center of the inner surface of the discharge port 1-4. The motor 2-1 is a bidirectional uniform speed motor that rotates in both directions. The vibrating inner liner 3 includes an inner tank 3-1, rubber columns 3-2, a discharge pipe 3-3, and a rubber ring 3-4. Several rubber columns 3-2 are evenly distributed vertically around the outer surface of the inner tank 3-1. A discharge pipe 3-3 is connected to the center of the lower surface of the inner tank 3-1. A rubber ring 3-4 is inserted into the middle of the outer surface of the discharge pipe 3-3. The inner tank 3-1 is inserted into the outer tank 1-1. The rotating shaft 2-2 is inserted into the inner tank 3-1. The spiral shaft 2-4 is inserted into the discharge pipe 3-3. The discharge pipe 3-3 is inserted through the outlet 1-4. The vibrating host 4 is connected between the inner tank 3-1 and the outer tank 1-1.

[0005] The beneficial effects of this utility model are: workers can discharge concrete without the need for auxiliary tools, and it can prevent concrete from blocking the discharge port during discharge. When the mixing tank vibrates, it can reduce the collision between the inner liner and the outer shell and reduce noise, making it convenient for workers to operate and use. Attached image description:

[0006] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0007] Figure 2 This is a schematic diagram of the protective shell 1 of this utility model;

[0008] Figure 3 This is a schematic diagram of the structure of the stirring device 2 of this utility model;

[0009] Figure 4 This is a schematic diagram of the structure of the oscillating inner liner 3 of this utility model;

[0010] In the diagram: 1. Protective outer shell; 2. Stirring device; 3. Vibrating inner tank; 4. Vibrating main unit; 5. Discharge valve; 6. Fixed support leg; 7. Feed pipe; 8. Outer tank 1-1; 9. Through hole 1-2; 10. Inlet 1-3; 11. Outlet 1-4; 12. Motor 2-1; 23. Rotating shaft 2-2; 24. Stirring column 2-3; 25. Spiral shaft 2-4; 16. Inner tank 3-1; 37. Glue column 3-2; 38. Discharge pipe 3-3; 39. Glue ring 3-4. Detailed implementation method:

[0011] Reference Figures 1-4The concrete vibration mixing and feeding device for high-altitude and cold regions is characterized by comprising: a protective outer shell 1 and a mixing device 2 inserted at the center of the upper surface of the protective outer shell 1; a vibrating inner liner 3 inserted at the center of the inner shell 1; a vibrating host 4 connected between the vibrating inner liner 3 and the protective outer shell 1; a discharge valve 5 connected to the center of the lower surface of the vibrating inner liner 3; several fixed support legs 6 evenly distributed around the perimeter of the lower surface of the protective outer shell 1; and a feed pipe 7 connected to the left edge of the upper surface of the protective outer shell 1. The protective outer shell 1 includes an outer tank 1-1, a through hole 1-2, a feed inlet 1-3, and a discharge outlet 1-4. The through hole 1-2 is located at the center of the upper surface of the outer tank 1-1. The feed inlet 1-3 is located at the left edge of the upper surface of the outer tank 1-1. The discharge outlet 1-4 is located at the center of the lower surface of the outer tank 1-1. The feed pipe 7 is connected to the outer edge of the upper surface of the feed inlet 1-3. The stirring device 2 includes a motor 2-1, a rotating shaft 2-2, a stirring column 2-3, and a spiral shaft 2-4. The rotating shaft is connected to the center of the rotating end of the lower surface of the motor 2-1. 2-2, several stirring columns 2-3 are symmetrically and evenly distributed vertically on the side surface of the rotating shaft 2-2. A spiral shaft 2-4 is connected to the center of the lower surface of the rotating shaft 2-2. The rotating shaft 2-2 is inserted through and into the through hole 1-2. The motor 2-1 is connected to the outer edge of the upper surface of the through hole 1-2. The spiral shaft 2-4 is inserted through and into the center of the discharge port 1-4. The motor 2-1 is a bidirectional, uniform speed motor that rotates in both directions. The vibrating inner tank 3 includes an inner tank 3-1, rubber columns 3-2, a discharge pipe 3-3, and a rubber ring 3-4. Several rubber columns 3-2 are evenly distributed vertically around the outer surface of the inner tank 3-1. A discharge pipe 3-3 is connected to the center of the lower surface of the inner tank 3-1. A rubber ring 3-4 is inserted into the middle of the outer surface of the discharge pipe 3-3. The inner tank 3-1 is inserted into the outer tank 1-1. The rotating shaft 2-2 is inserted into the inner tank 3-1. The spiral shaft 2-4 is inserted into the discharge pipe 3-3. The discharge pipe 3-3 is inserted through the outlet 1-4. The vibrating host 4 is connected between the inner tank 3-1 and the outer tank 1-1.

[0012] In use, the operator first injects concrete into the inner tank 3-1 of the vibrating inner liner 3 through the feed pipe 7 and the feed port 1-3 on the protective shell 1. Then, the operator starts the motor 2-1 on the mixing device 2, which drives the mixing column 2-3 to rotate through the rotating shaft 2-2, thus mixing the concrete. At the same time, the operator starts the vibrating host 4 to vibrate the inner tank 3-1. Meanwhile, the rubber column 3-2 between the outer tank 1-1 and the inner tank 3-1 and the rubber ring 3-4 between the discharge pipe 3-3 and the discharge port 1-4 buffer and reduce noise by reducing the collision between the inner tank 3-1 and the outer tank 1-1. Finally, after the mixing and vibration are completed, the operator opens the discharge valve 5 and reverses the motor 2-1 to make the spiral shaft 2-4 rotate in the discharge pipe 3-3 to discharge the concrete.

[0013] Of course, the above description is not intended to limit the present utility model, and the present utility model is not limited to the examples given above. Any changes, modifications, additions or substitutions made by those skilled in the art within the scope of the present utility model should also fall within the protection scope of the present utility model.

Claims

1. A concrete vibration mixing and feeding device for high-altitude and cold regions, characterized in that: It includes a protective shell (1) and a stirring device (2) inserted at the center of the upper surface of the protective shell (1). A vibrating inner liner (3) is inserted at the center of the inner liner (1). A vibrating host (4) is connected between the vibrating inner liner (3) and the protective shell (1). A discharge valve (5) is connected at the center of the lower surface of the vibrating inner liner (3). Several fixed support legs (6) are evenly distributed around the edges of the lower surface of the protective shell (1). A feed pipe (7) is connected to the left edge of the upper surface of the protective shell (1).

2. The concrete vibration mixing and feeding device for high-altitude and cold regions according to claim 1, characterized in that: The protective shell (1) includes an outer tank (1-1), a through hole (1-2), a feed inlet (1-3), and a discharge outlet (1-4). The outer tank (1-1) has a through hole (1-2) at the center of its upper surface, a feed inlet (1-3) at the left edge of its upper surface, and a discharge outlet (1-4) at the center of its lower surface. The feed pipe (7) is connected to the outer edge of the upper surface of the feed inlet (1-3).

3. The concrete vibration mixing and feeding device for high-altitude and cold regions according to claim 2, characterized in that: The stirring device (2) includes a motor (2-1), a rotating shaft (2-2), stirring columns (2-3), and a spiral shaft (2-4). The rotating shaft (2-2) is connected to the center of the rotating end of the lower surface of the motor (2-1). Several stirring columns (2-3) are symmetrically and evenly distributed vertically on the side surface of the rotating shaft (2-2). The spiral shaft (2-4) is connected to the center of the lower surface of the rotating shaft (2-2). The rotating shaft (2-2) is inserted through the through hole (1-2). The motor (2-1) is connected to the outer edge of the upper surface of the through hole (1-2). The spiral shaft (2-4) is inserted through the center of the discharge port (1-4). The motor (2-1) is a bidirectional uniform speed motor that rotates in both directions.

4. The concrete vibration mixing and feeding device for high-altitude and cold regions according to claim 3, characterized in that: The vibrating inner tank (3) includes an inner tank (3-1), rubber columns (3-2), a discharge pipe (3-3), and a rubber ring (3-4). Several rubber columns (3-2) are evenly distributed vertically around the outer surface of the inner tank (3-1). The discharge pipe (3-3) is connected to the center of the lower surface of the inner tank (3-1). A rubber ring (3-4) is inserted in the middle of the outer surface of the discharge pipe (3-3). The inner tank (3-1) is inserted into the outer tank (1-1). The rotating shaft (2-2) is inserted into the inner tank (3-1). The spiral shaft (2-4) is inserted into the discharge pipe (3-3). The discharge pipe (3-3) is inserted through the outlet (1-4). The vibrating host (4) is connected between the inner tank (3-1) and the outer tank (1-1).