Automatic stirring device
The design of the automatic mixing device solves the problems of poor quality and low efficiency in the construction of quick-setting and fast-drying materials, realizes automated mixing and output, and improves construction quality and efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG ORIENTAL YUHONG BUILDING MATERIALS LTD CO
- Filing Date
- 2025-02-17
- Publication Date
- 2026-05-19
AI Technical Summary
When quick-setting and fast-drying materials are used in existing building decoration, the construction quality is poor and the efficiency is low, mainly due to rough manual operation and large errors caused by human factors.
An automatic mixing device is provided, including a shell, a rotating component, a pushing component, and a stirring component. The rotating component drives the pushing and stirring components to rotate in tandem, thereby realizing the automatic mixing and output of materials and liquids, replacing manual operation, improving construction efficiency, and standardizing construction.
It automates material mixing and output, reduces errors caused by human factors, and improves construction quality and efficiency.
Smart Images

Figure CN224252577U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of material mixing technology, and in particular to an automatic mixing device. Background Technology
[0002] Currently, quick-setting and fast-drying materials are used in building decoration. These materials have the disadvantages of short working time and difficulty in reshaping. When using these materials to repair buildings, workers manually prepare small batches and then quickly apply and shape them. Existing manual construction methods are relatively crude, resulting in poor construction quality and low efficiency. Utility Model Content
[0003] To address the aforementioned technical problems, this application provides an automatic mixing device to replace existing manual operation, reduce errors caused by human factors, and improve construction efficiency and standardized construction.
[0004] This application provides an automatic stirring device, comprising: a housing having a feed inlet, a discharge outlet, and a liquid inlet, the liquid inlet being located at one axial end of the housing; a rotating component being located at the other axial end of the housing; a pushing component being located on the rotating component, including a power component and a pushing element, the power component being connected to the rotating component and the pushing element respectively; and a stirring component having one end located on the rotating component and the other end extending through the pushing element toward the discharge outlet.
[0005] In some optional embodiments, the pushing element is provided with a limiting hole, and the shape of the pushing element surrounding the limiting hole corresponds to the cross-sectional shape of the stirring plate.
[0006] In some alternative embodiments, a sealing ring is also included, disposed circumferentially on the pushing element along the stirring component.
[0007] In some optional embodiments, the rotating component includes a first driving element, a rotating plate, and a first flange. The first driving element is disposed in the housing, and the rotating plate has a first flange on its end face facing the first driving element. The output shaft of the first driving element is connected to the first flange.
[0008] In some optional embodiments, the power component includes a second drive element and a second flange. The second drive element is disposed on the end face of the rotating plate opposite to the first drive element, and the second flange is disposed on the end face of the pushing element facing the rotating plate. The output shaft of the second drive element is connected to the second flange.
[0009] In some alternative embodiments, the cross-sectional shape of the stirring component is "S", serpentine, or wavy.
[0010] In some optional embodiments, the power component includes a third drive element, a lead screw, and a coupling. The third drive element is disposed on the end face of the rotating plate opposite to the first drive element. The output shaft of the third drive element is connected to the lead screw via the coupling. The lead screw is rotatably connected to the pushing element.
[0011] In some alternative embodiments, the lead screw is provided with limiting plates at both ends of its axial direction.
[0012] In some alternative embodiments, the housing includes an extruder and a receptacle, the extruder being conical, the larger diameter end of the extruder being connected to the receptacle, and the smaller diameter end of the extruder being provided with a discharge port.
[0013] In some alternative embodiments, the pushing element includes a pusher plate and a protrusion, the protrusion being conical in shape, and the pusher plate having the same shape as the container projected axially onto the stirring member.
[0014] This application has at least the following technical advantages over the prior art:
[0015] This application provides an automatic mixing device, which includes a housing, a rotating component, a pushing component, and a stirring component. The housing is provided with a feed inlet, a discharge outlet, and a liquid inlet, with the liquid inlet located at one end of the housing's axial direction. Material enters the interior of the housing through the feed inlet, and liquid enters the housing through the liquid inlet. The rotating component is located at the other end of the housing's axial direction. The pushing component and the stirring component are both connected to the rotating component, and the rotating component drives the pushing component and the stirring component to rotate together. One end of the stirring component is located on the rotating component, and the other end of the stirring component extends through the pushing element toward the discharge outlet. The stirring component is used to mix and stir the material and liquid. The pushing component includes a power component and a pushing element. The power component is connected to both the rotating component and the pushing element, and the power component pushes the pushing element toward the discharge outlet, thereby pushing the mixed material out of the pushing outlet. This achieves automation of material mixing and output, improves construction efficiency and standardizes construction, replaces existing purely manual operations, and reduces errors caused by human factors. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of the automatic stirring device provided in the embodiments of this application;
[0017] Figure 2 This is a cross-sectional structural schematic diagram of the automatic stirring device provided in the embodiments of this application;
[0018] Figure 3 This is a schematic diagram of the internal structure of the housing of an automatic stirring device provided in one embodiment of this application;
[0019] Figure 4 yes Figure 3 A schematic cross-sectional view of the stirring component in the provided embodiment;
[0020] Figure 5 This is a schematic diagram of the internal structure of the housing of an automatic stirring device provided in another embodiment of this application;
[0021] Figure 6 yes Figure 4 A schematic diagram of the cross-sectional structure of the stirring component in the provided embodiment.
[0022] Explanation of reference numerals in the attached drawings: 1-Shell; 11-Inlet; 12-Outlet; 13-Liquid inlet; 14-Extrusion body; 15-Container; 16-Handle; 2-Rotating component; 21-First driving element; 22-Rotating plate; 23-First flange; 3-Pushing component; 31-Power component; 311-Second driving element; 312-Second flange; 313-Third driving element; 314-Lead screw; 315-Coupling; 316-Limiting plate; 32-Pushing element; 321-Push plate; 322-Protrusion; 4-Stirring component. Detailed Implementation
[0023] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0024] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.
[0025] Currently, quick-setting and fast-drying materials are used in building decoration. These materials have the disadvantages of short working time and difficulty in reshaping. When using these materials to repair buildings, workers manually prepare small batches and then quickly apply and shape them. Existing manual construction methods are relatively crude, resulting in poor construction quality and low efficiency.
[0026] The following is in conjunction with the accompanying drawings in the instruction manual. Figures 1-6 The automatic stirring device provided in this application is described in detail.
[0027] To address the aforementioned technical problems, this application provides an automatic mixing device to replace existing manual operation, reduce errors caused by human factors, and improve construction efficiency and standardized construction.
[0028] This application provides an automatic stirring device, which includes: a housing 1, having a feed inlet 11, a discharge outlet 12, and a liquid inlet 13, with the liquid inlet 13 located at one axial end of the housing 1; a rotating component 2, located at the other axial end of the housing 1; a pushing component 3, located on the rotating component 2, including a power component 31 and a pushing element 32, with the power component 31 connected to the rotating component 2 and the pushing element 32 respectively; and a stirring component 4, with one end located on the rotating component 2 and the other end extending through the pushing element 32 toward the discharge outlet 12.
[0029] Specifically, the automatic stirring device includes a housing 1, a rotating component 2, a pushing component 3, and a stirring component 4. The housing 1 is provided with a feed inlet 11, a discharge outlet 12, and a liquid inlet 13, with the liquid inlet 13 located at one axial end of the housing 1. Material enters the interior of the housing 1 through the feed inlet 11, and liquid enters the housing 1 through the liquid inlet 13. The rotating component 2 is located at the other axial end of the housing 1. The pushing component 3 and the stirring component 4 are both connected to the rotating component 2. The rotating component 2 drives the pushing component 3 and the stirring component 4 to rotate together. One end of the stirring component 4 is located on the rotating component 2, and the stirring component 4 is used for stirring. The other end of component 4 extends through the pushing element 32 toward the discharge port 12. The stirring component 4 is used to mix and stir the material and liquid. The pushing component 3 includes a power component 31 and a pushing element 32. The power component 31 is connected to the rotating component 2 and the pushing element 32 respectively. The power component 31 pushes the pushing element 32 toward the discharge port 12, thereby pushing the mixed material out of the discharge port 12, realizing the automation of material mixing and output, improving construction efficiency and standardized construction, replacing the existing pure manual operation, and reducing errors caused by human factors.
[0030] Furthermore, the housing 1 has an internal receiving space, through which the inlet 11, outlet 12, and liquid inlet 13 communicate. The housing 1 includes an extrusion body 14 and a receiving body 15. The extrusion body 14 is conical, and the receiving body 15 is cylindrical. The end of the extrusion body 14 with a larger diameter is connected to the receiving body 15, and the outlet 12 is located at the end of the extrusion body 14 with a smaller diameter. Optionally, the end of the extrusion body 14 with a larger diameter is threadedly connected to the receiving body 15. The port connecting the receiving body 15 and the extrusion body 14 is the inlet 11, through which material can enter. The outlet 12 has a higher pressure, which can increase the flow rate of the material. The inlet 11 and the liquid inlet 13 are located within the receiving body 15.
[0031] Optionally, the feed inlet 11 is provided with an on / off valve, and the material flow is adjusted by controlling the opening and closing of the valve. The housing 1 is also provided with a handle 16, which is disposed on the surface of the container 15.
[0032] In some optional embodiments, the pushing element 32 is provided with a limiting hole, and the shape of the pushing element 32 surrounding the limiting hole corresponds to the cross-sectional shape of the stirring component 4.
[0033] Specifically, there is a small gap between the surface of the limiting hole formed by the pushing element 32 and the outer surface of the stirring component 4. The limiting hole allows the stirring component 4 to pass through so that the stirring component 4 can stir the material and liquid. At the same time, when the power component 31 pushes the pushing element 32 to move towards the discharge port 12, it does not affect the operation of the pushing element 32, ensuring that the pushing element 32 can move forward or backward smoothly.
[0034] Furthermore, the pushing element 32 also includes a sealing ring, which is arranged around the circumference of the stirring component 4 on the pushing element 32 to prevent material from entering the area between the pushing element 32 and the rotating component 2 through the limiting hole during the stirring process, thus affecting the normal operation of the rotating component 2 and the pushing component 3.
[0035] Additionally, the pushing element 32 includes a pusher plate 321 and a protrusion 322. The protrusion 322 is conical in shape. The shape of the pusher plate 321 projected axially onto the stirring component 4 is the same as the shape of the container 15 projected axially onto the stirring component 4. The shape of the outer surface of the protrusion 322 is consistent with the shape of the inner surface of the extrusion body 14, and their sizes correspond, enabling the pushing element 32 to push the material inside the shell 1 to the discharge port 12 without any retention. The side of the pusher plate 321 contacts the inner surface of the container 15. During its movement, the pusher plate 321 scrapes off the residue on the inner surface of the container 15, preventing material from sticking to the inner surface of the container 15. In some optional embodiments, the rotating component 2 includes a first driving element 21, a rotating plate 22, and a first flange 23. The first driving element 21 is disposed on the shell 1, and the first flange 23 is disposed on the end face of the rotating plate 22 facing the first driving element 21. The output shaft of the first driving element 21 is connected to the first flange 23.
[0036] Specifically, the feed inlet 11 is located at one end of the housing 1, the first driving element 21 is located at the end of the housing 1 away from the feed inlet 11, the rotating plate 22 is located at the end close to the first driving element 21, and the pushing element 32 is located between the rotating plate 22 and the feed inlet 11. The first flange 23 is fixed to the rotating plate 22 by bolts. The first driving element 21 is a motor, which drives the rotating plate 22 to rotate clockwise or counterclockwise. The pushing component 3 and the stirring component 4 are both located on the rotating plate 22. During the rotation of the rotating plate 22, the pushing component 3 and the stirring component 4 rotate synchronously. During the clockwise or counterclockwise rotation, the stirring component 4 stirs the material inside the housing 1. The pushing component 3 includes a power component 31 and a pushing element 32. The power component 31 is located on the rotating plate 22 and drives the pushing element 32 to extend towards the discharge port 12, thereby pushing the material inside the housing 1 to the discharge port 12.
[0037] In some optional embodiments, the power component 31 includes a second drive element 311 and a second flange 312. The second drive element 311 is disposed on the end face of the rotating plate 22 facing away from the first drive element 21, and the second flange 312 is disposed on the end face of the pushing element 32 facing the rotating plate 22. The output shaft of the second drive element 311 is connected to the second flange 312.
[0038] Specifically, the second driving element 311 is a hydraulic cylinder, which is mounted on the rotating plate 22. The piston of the second driving element 311, the output shaft of the first driving element 21, and the central axis of the rotating plate 22 are aligned. The piston of the second driving element 311 is connected to the pushing element 32 via the second flange 312. The second driving element 311 drives the pushing element 32 to extend and retract axially in the housing 1 through its piston, thereby pushing the material inside the housing 1 to the discharge port 12 without any retention.
[0039] In some alternative embodiments, the cross-sectional shape of the stirring component 4 is “S”-shaped, serpentine, or wavy.
[0040] Specifically, the cross-sectional shape of the stirring component 4 is "S", serpentine, or wavy, which enables the materials to be mixed evenly, making the mixing of materials more comprehensive and thorough, thereby obtaining more accurate experimental results.
[0041] Furthermore, the first driving element 21 drives the rotating plate 22 to rotate clockwise or counterclockwise. The pushing component 3 and the stirring component 4 are both set on the rotating plate 22. During the rotation of the rotating plate 22, the pushing component 3 and the stirring component 4 rotate synchronously. During the clockwise or counterclockwise rotation of the stirring component 4, the material inside the shell 1 is stirred, thereby mixing the material and liquid evenly. The pushing component 3 includes a power component 31 and a pushing element 32. The power component 31 is set on the rotating plate 22. The power component 31 drives the pushing element 32 to extend towards the discharge port 12, thereby pushing the material inside the shell 1 to the discharge port 12, improving construction efficiency and standardizing construction, replacing the existing purely manual operation, and reducing errors caused by human factors.
[0042] In some optional embodiments, the power component 31 includes a third drive element 313, a lead screw 314, and a coupling 315. The third drive element 313 is disposed on the end face of the rotating plate 22 facing away from the first drive element 21. The output shaft of the third drive element 313 is connected to the lead screw 314 through the coupling 315. The lead screw 314 is rotatably connected to the pushing element 32.
[0043] Specifically, the third driving element 313 is a motor, which is mounted on the rotating plate 22. The output shaft of the third driving element 313, the output shaft of the first driving element 21, and the central axis of the rotating plate 22 are aligned. The third driving element 313 drives the lead screw 314 to rotate. During rotation, the lead screw 314 drives the pushing element 32 to move along the axial direction of the lead screw 314, thereby pushing the well-mixed material inside the shell 1 to the discharge port 12 without any retention. The material is then discharged through the discharge port 12.
[0044] In some optional embodiments, the power component 31 further includes a limiting plate 316, and the lead screw 314 is provided with limiting plates 316 at both ends of its own axial direction.
[0045] Specifically, limit plates 316 are provided at both ends of the lead screw 314 in the axial direction. The limit plates 316 limit the stroke that the pushing element 32 can move. The limit plates 316 are used to limit the pushing element 32 and prevent the pushing element 32 from moving out of the lead screw 314.
[0046] In some optional embodiments, the lead screw 314 is provided with a rotating nut, the pushing element 32 is provided with a through hole, the rotating nut is rotatably connected to the lead screw 314, and the rotating nut is welded to the surface of the pushing element 32 forming the through hole; or, the surface of the pushing element 32 forming the through hole is provided with a thread, and the pushing element 32 and the lead screw 314 are threadedly connected.
[0047] Specifically, the pushing element 32 is provided with a limiting hole, and the shape of the pushing element 32 surrounding the limiting hole corresponds to the cross-sectional shape of the stirring component 4. The stirring component 4 is a stirring rod with a circular cross-sectional shape. The first driving element 21 drives the rotating plate 22 to rotate clockwise or counterclockwise. Both the pushing component 3 and the stirring component 4 are disposed on the rotating plate 22. During the rotation of the rotating plate 22, the pushing component 3 and the stirring component 4 rotate synchronously. During the clockwise or counterclockwise rotation, the stirring component 4 stirs the material inside the shell 1, thereby mixing the material and liquid evenly. The pushing component 3 includes a power component 31 and a pushing element 32. The power component 31 is disposed on the rotating plate 22. The power component 31 drives the pushing element 32 to extend towards the discharge port 12, thereby pushing the material inside the shell 1 to the discharge port 12, improving construction efficiency and standardizing construction, replacing the existing purely manual operation, and reducing errors caused by human factors.
[0048] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
Claims
1. An automatic stirring device, characterized in that, include: The housing (1) is provided with a feed inlet (11), a discharge outlet (12) and a liquid inlet (13), wherein the liquid inlet (13) is located at one end of the housing (1) along the axial direction; A rotating component (2) is disposed at the other end of the housing (1) along its axial direction; A pushing component (3) is disposed on the rotating component (2) and includes a power component (31) and a pushing element (32). The power component (31) is connected to the rotating component (2) and the pushing element (32) respectively. The stirring component (4) is located at one end of the rotating component (2) and extends through the pushing element (32) toward one end of the discharge port (12).
2. The automatic stirring device according to claim 1, characterized in that, The pushing element (32) is provided with a limiting hole, and the shape of the pushing element (32) surrounding the limiting hole corresponds to the cross-sectional shape of the stirring component (4).
3. The automatic stirring device according to claim 2, characterized in that, It also includes a sealing ring disposed on the pushing element (32) along the circumference of the stirring component (4).
4. The automatic stirring device according to claim 1, characterized in that, The rotating component (2) includes a first driving element (21), a rotating plate (22) and a first flange (23). The first driving element (21) is disposed on the housing (1). The rotating plate (22) is provided with the first flange (23) facing the end face of the first driving element (21). The output shaft of the first driving element (21) is connected to the first flange (23).
5. The automatic stirring device according to claim 4, characterized in that, The power component (31) includes a second drive element (311) and a second flange (312). The second drive element (311) is disposed on the end face of the rotating plate (22) facing away from the first drive element (21). The second flange (312) is disposed on the end face of the pushing element (32) facing the rotating plate (22). The output shaft of the second drive element (311) is connected to the second flange (312).
6. The automatic stirring device according to claim 5, characterized in that, The cross-sectional shape of the stirring component (4) is "S", serpentine, or wavy.
7. The automatic stirring device according to claim 4, characterized in that, The power component (31) includes a third drive element (313), a lead screw (314), and a coupling (315). The third drive element (313) is disposed on the end face of the rotating plate (22) facing away from the first drive element (21). The output shaft of the third drive element (313) is connected to the lead screw (314) through the coupling (315). The lead screw (314) is rotatably connected to the push element (32).
8. The automatic stirring device according to claim 7, characterized in that, The lead screw (314) has limiting plates (316) at both ends of its own axial direction.
9. The automatic stirring device according to claim 1, characterized in that, The housing (1) includes an extrusion body (14) and a receiving body (15). The extrusion body (14) is conical. The end of the extrusion body (14) with a larger diameter is connected to the receiving body (15), and the end of the extrusion body (14) with a smaller diameter is provided with the discharge port (12).
10. The automatic stirring device according to claim 9, characterized in that, The pushing element (32) includes a push plate (321) and a protrusion (322). The protrusion (322) is conical in shape. The push plate (321) and the container (15) have the same shape when projected axially onto the stirring component (4).