A vertical agitator

CN224640850UActive Publication Date: 2026-08-18HENAN ZHENGJIA ENERGY ENVIRONMENTAL PROTECTION CO LTD
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Patent Information

Application Number
CN202521919643.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-05
Publication Date
2026-08-18
Estimated Expiration
2035-09-05

AI Technical Summary

Technical Problem

[0004]上述中的相关技术方案存在以下缺陷:在搅拌工作进行时,使用人员需要多次竖直滑动搅拌机机体,从而移动和搬运装有物料的容器,造成不便,工作效率较低

Benefits of technology

1.通过在滑动平台上设置搅拌机机体,使搅拌机机体能够通过滑动平台在地面滑移,从而方便将搅拌机机体滑移至容器上侧,通过将搅拌杆与驱动轴可拆卸连接,使用人员能够先将搅拌杆插入容器内,然后将搅拌杆连接在驱动轴上,使搅拌机机体带动搅拌杆转动,达到搅拌容器内物料的效果,在搅拌工作过程中,无需竖直移动搅拌机机体,使搅拌杆能够方便快速从容器内取出;

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Abstract

The application relates to a vertical stirrer, belonging to the field of stirrers, which comprises a stirrer body, a sliding platform and a stirring rod, the sliding platform comprises a bottom plate, a plurality of universal wheels and a vertical rod, the bottom plate is horizontally arranged, the plurality of universal wheels are rotationally connected to the lower side of the bottom plate, the vertical rod is vertically arranged on the bottom plate, the stirrer body is installed on the vertical rod, a driving shaft is arranged on the stirrer body, and the stirring rod is detachably connected to the driving shaft. The application has the effect of reducing the steps of vertically moving the stirrer body.
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Description

Technical Field

[0001] This application relates to the field of mixers, and more particularly to a vertical mixer. Background Technology

[0002] Agitators are widely used in the production of chemical products such as polyacrylamide. By using agitators, solid or liquid materials can be mixed evenly, thereby increasing the product reaction rate and improving the quality of chemical products.

[0003] Existing industrial mixers include a mixer body, a sliding platform, and a mixing rod. The sliding platform is equipped with casters, allowing it to slide on the ground. A vertical pole is mounted on the sliding platform, with the mixer body slidably connected to the pole, and the mixing rod rotatably connected to the mixer body. Users place a container filled with materials on the sliding platform and adjust the vertical position of the mixer body to allow the mixing rod to fall vertically into the container, thus mixing the materials.

[0004] The aforementioned technical solutions have the following drawbacks: during the mixing process, the user needs to slide the mixer body vertically multiple times to move and transport the container containing the material, which is inconvenient and results in low work efficiency. Utility Model Content

[0005] To reduce the number of steps required to vertically move the mixer body, this application provides a vertical mixer.

[0006] The vertical mixer provided in this application adopts the following technical solution: A vertical mixer includes a mixer body, a sliding platform, and a stirring rod. The sliding platform includes a base plate, multiple casters, and a vertical rod. The base plate is horizontally positioned, and the multiple casters are rotatably connected to the underside of the base plate. The vertical rod is vertically positioned on the base plate. The mixer body is mounted on the vertical rod, and a drive shaft is provided on the mixer body. The stirring rod is detachably connected to the drive shaft.

[0007] By adopting the above technical solution, the mixer body is set on a sliding platform, allowing it to slide on the ground. This facilitates the movement of the mixer body onto the container. By detachably connecting the stirring rod to the drive shaft, the user can first insert the stirring rod into the container, then connect it to the drive shaft, causing the mixer body to rotate the stirring rod and achieve the effect of mixing the materials in the container. During the mixing process, there is no need to move the mixer body vertically, allowing the stirring rod to be easily and quickly removed from the container.

[0008] Optionally, one end of the stirring rod is connected to a threaded cylinder, and the other end is connected to multiple blades, with the threaded cylinder threadedly connected to the drive shaft.

[0009] By adopting the above technical solution, a threaded cylinder is provided on the stirring rod, which can be threadedly connected to the drive shaft, thereby making the stirring rod and the drive shaft detachably connected.

[0010] Optionally, the drive shaft is provided with a snap-fit ​​assembly, which includes a mounting plate, a spring and a sleeve. The mounting plate is fixed on the drive shaft, the spring is sleeved on the drive shaft, one end of the spring is fixed on the mounting plate and the other end is fixed on the sleeve, and the sleeve has a shaped hole for inserting into the shaped hole.

[0011] By adopting the above technical solution, by setting a snap-fit ​​component on the drive shaft, the sleeve is slidably connected to the outside of the drive shaft. After the user connects the threaded cylinder to the drive shaft, the sleeve can slide and fit over the threaded cylinder. By setting the outer ring of the threaded cylinder cross-section to a polygon, the threaded cylinder can snap with the sleeve, thereby reducing the probability of the stirring rod disengaging from the drive shaft when stirring materials. The user slides the sleeve, causing the sleeve to compress the spring and move upward, which can disengage the sleeve from the threaded cylinder. At this time, the user can turn the threaded cylinder and disassemble the stirring rod.

[0012] Optionally, a slider is connected to the mixer body, a vertical rod passes through the slider, a fixing bolt is provided on the slider, the fixing bolt passes through the slider and is threadedly connected to the slider, and the end of the fixing bolt is used to abut against the vertical rod.

[0013] By adopting the above technical solution, a slider is installed on the mixer body and slidably connected to the upright. By tightening the fixing bolts, the user can make the mixer body slide vertically along the upright, thus facilitating the user to adjust the height of the mixer body from the ground.

[0014] Optionally, a barrel is provided on the lower side of the mixer body, and a sliding plate is provided at the bottom of the barrel body. The sliding plate is horizontally positioned, and multiple wheels are rotatably connected to the lower side of the sliding plate.

[0015] By adopting the above technical solution, and by setting the bucket on the sliding plate, the user can pour the material into the bucket. After the material in the bucket is mixed evenly, the user can move the bucket by sliding the plate, thereby improving work efficiency.

[0016] Optionally, the sliding plate is positioned higher than the base plate.

[0017] By adopting the above technical solution, when the user slides the mixer body, the base plate can slide to the underside of the sliding plate. At this time, the mixer body is located on the upper side of the barrel. After the mixing is completed, the user slides the mixer body and the barrel separately, improving work efficiency.

[0018] Optionally, a snap-fit ​​cylinder is installed on the sliding plate, and the cylinder body is disposed inside the snap-fit ​​cylinder.

[0019] By adopting the above technical solution, and by setting a snap-fit ​​cylinder on the sliding plate so that the snap-fit ​​cylinder is snapped into the bottom of the barrel, the probability of the barrel sliding horizontally can be reduced when the material in the barrel is being stirred.

[0020] Optionally, the snap-fit ​​cylinder is equipped with multiple snap-fit ​​bolts, which penetrate the snap-fit ​​cylinder and are threadedly connected to it.

[0021] By adopting the above technical solution, multiple locking bolts are installed on the locking cylinder, and the locking bolts are threaded onto the locking cylinder. The length direction of each locking bolt points towards the center of the locking cylinder. By screwing the locking bolts, the user can move the locking bolts and make the ends of the locking bolts abut against the barrel body, thereby fixing the barrel body and reducing the chance of the barrel body rotating inside the locking cylinder.

[0022] In summary, the beneficial technical effects of this application are as follows: 1. By setting the mixer body on the sliding platform, the mixer body can slide on the ground, making it easy to slide the mixer body onto the top of the container. By detachably connecting the stirring rod to the drive shaft, the user can first insert the stirring rod into the container, and then connect the stirring rod to the drive shaft, so that the mixer body drives the stirring rod to rotate, achieving the effect of stirring the materials in the container. During the stirring process, there is no need to move the mixer body vertically, so the stirring rod can be easily and quickly removed from the container. 2. By setting a snap-fit ​​assembly on the drive shaft, the sleeve is slidably connected to the outside of the drive shaft. After the user connects the threaded cylinder to the drive shaft, the sleeve can slide and fit over the threaded cylinder. By setting the outer ring of the threaded cylinder cross-section to a polygon, the threaded cylinder can snap with the sleeve, thereby reducing the probability of the stirring rod disengaging from the drive shaft when stirring materials. The user slides the sleeve, causing the sleeve to compress the spring and move upward, which can disengage the sleeve from the threaded cylinder. At this time, the user can turn the threaded cylinder and disassemble the stirring rod. 3. By installing multiple snap-fit ​​bolts on the snap-fit ​​cylinder, the snap-fit ​​bolts are threaded onto the snap-fit ​​cylinder. The length direction of each snap-fit ​​bolt points towards the center of the snap-fit ​​cylinder. By turning the snap-fit ​​bolts, the user can move the snap-fit ​​bolts and make the ends of the snap-fit ​​bolts abut against the cylinder body, thereby fixing the cylinder body and reducing the chance of the cylinder body rotating inside the snap-fit ​​cylinder. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.

[0024] Figure 2 This is a schematic diagram of the structure of the mixer body according to an embodiment of this application.

[0025] Figure 3 This is a schematic diagram of the structure of the snap-fit ​​component according to an embodiment of this application.

[0026] Reference numerals: 1. Mixer body; 11. Drive shaft; 12. Fixing bolt; 13. Slider; 2. Sliding platform; 21. Base plate; 22. Caster wheel; 23. Upright pole; 3. Mixing rod; 31. Threaded cylinder; 32. Blade; 4. Snap-fit ​​assembly; 41. Mounting plate; 42. Spring; 43. Sleeve; 431. Irregular hole; 5. Barrel body; 51. Sliding plate; 52. Wheel body; 53. Snap-fit ​​cylinder; 531. Snap-fit ​​bolt. Detailed Implementation

[0027] The present application will be further described in detail below with reference to the accompanying drawings.

[0028] This application discloses a vertical mixer, as shown in the embodiments below. Figure 1 and Figure 2 The mixer comprises a mixer body 1, a sliding platform 2, and a stirring rod 3. The mixer body 1 is fixed on the sliding platform 2. A drive shaft 11 is rotatably connected to the mixer body 1, and the drive shaft 11 is vertically positioned on the lower side of the mixer body 1. The stirring rod 3 is vertically positioned and detachably connected to the drive shaft 11. The sliding platform 2 includes a base plate 21, multiple casters 22, and uprights 23. The base plate 21 is horizontally positioned, the casters 22 are positioned on the lower side of the base plate 21, and the uprights 23 are vertically positioned on the base plate 21. The mixer body 1 is mounted on the uprights 23. A container containing materials can be placed on the base plate 21, with the mixer body 1 positioned above the container. By inserting the stirring rod 3 into the container and connecting the stirring rod 3 to the drive shaft 11, the user can drive the stirring rod 3 to rotate and mix the materials. During use, there is no need to vertically move the mixer body 1 or the container, improving the efficiency of removing the stirring rod 3 from the container.

[0029] Reference Figure 1 A slider 13 is fixed on the mixer body 1, and a vertical rod 23 passes through the slider 13. The slider 13 is slidably connected to the vertical rod 23. A fixing bolt 12 is provided on the slider 13. The fixing bolt 12 passes through the slider 13 and is threadedly connected to the slider 13. The fixing bolt 12 abuts against the vertical rod 23, so that the mixer body 1 can be fixed at different positions on the vertical rod 23, thereby facilitating the adjustment of the position of the mixer body 1 and enabling the mixer body 1 to mix materials in containers of different depths.

[0030] Reference Figure 2 and Figure 3 One end of the stirring rod 3 is connected to a threaded cylinder 31, and the other end is fixedly connected to a blade 32. The threaded cylinder 31 is coaxially connected to the stirring rod 3 and is used for detachable connection with the drive shaft 11. The drive shaft 11 is threaded, and the threaded cylinder 31 can be sleeved on the drive shaft 11 and connected by the thread.

[0031] Reference Figure 3 The outer contour of the threaded cylinder 31 is a regular hexagonal structure. A snap-fit ​​assembly 4 is provided on the drive shaft 11. The snap-fit ​​assembly 4 includes a mounting plate 41, a spring 42, and a sleeve 43. The mounting plate 41 is fixed to the drive shaft 11, and the spring 42 is sleeved on the outside of the drive shaft 11. One end of the spring 42 is fixed to the mounting plate 41, and the other end is fixed to the sleeve 43. The sleeve 43 is sleeved on the outside of the drive shaft 11. A shaped hole 431 is provided on the sleeve 43. The shaped hole 431 is a through hole, and its cross-sectional shape is the same as the outer contour of the threaded cylinder 31. When the stirring rod 3 is connected to the drive shaft 11, the sleeve 43 is sleeved on the outside of the threaded cylinder 31 by the spring 42, thereby snapping the sleeve 43 onto the threaded cylinder 31. When the stirring rod 3 stirs materials such as colloids, the resistance experienced by the stirring rod 3 is relatively large, and the stirring rod 3 is prone to rotation relative to the drive shaft 11, thus causing the stirring rod 3 to loosen or fall off the drive shaft 11. By providing a snap-fit ​​assembly 4 on the drive shaft 11, the sleeve 43 is snapped onto the stirring rod 3, thus fixing the stirring rod 3 relative to the drive shaft 11 and reducing the likelihood of the stirring rod 3 falling off the drive shaft 11 during material mixing. When it is necessary to remove the stirring rod 3, the user slides the sleeve 43, causing the sleeve 43 to compress the spring 42 and disengage the sleeve 43 from the threaded cylinder 31. At this time, the user can then unscrew the threaded cylinder 31 and disengage the stirring rod 3 from the drive shaft 11.

[0032] Reference Figure 1 A bucket 5 is located below the mixer body 1, and the bucket 5 is used to hold materials. A sliding plate 51 is provided on the lower side of the bucket 5. The sliding plate 51 is horizontally positioned, and multiple wheels 52 are provided at the bottom of the sliding plate 51. A snap-fit ​​cylinder 53 is provided on the upper surface of the sliding plate 51, and the bucket 5 is placed in the snap-fit ​​cylinder 53. When mixing materials, this reduces the probability of the bucket 5 sliding horizontally on the sliding plate 51. Multiple snap-fit ​​bolts 531 are provided on the snap-fit ​​cylinder 53. The snap-fit ​​bolts 531 are horizontally positioned, pass through the snap-fit ​​cylinder 53, and are threadedly connected to the snap-fit ​​cylinder 53. When the user installs the bucket 5 in the snap-fit ​​cylinder 53, the probability of the bucket 5 rotating in the snap-fit ​​cylinder 53 is reduced by the snap-fit ​​bolts 531 abutting against the bucket 5, which facilitates the mixing of materials in the bucket 5.

[0033] Reference Figure 1 The height of the sliding plate 51 is higher than that of the base plate 21. By sliding the sliding platform 2, the user can insert the base plate 21 into the lower side of the sliding plate 51, so that the mixer body 1 is located above the barrel 5. After the mixing is completed, the user can slide the sliding platform 2 and the sliding plate 51 respectively, thereby improving the processing efficiency.

[0034] The implementation principle of this application embodiment is as follows: by setting a sliding platform 2 on the mixer body 1, the user can move the mixer body 1 through the sliding platform 2. By detachably connecting the stirring rod 3 to the drive shaft 11, the user can first insert the stirring rod 3 into the container and then connect the stirring rod 3 to the drive shaft 11. During the stirring operation, there is no need to move the mixer body 1 and the bucket 5, which is convenient to use. By setting a snap-fit ​​component 4 on the drive shaft 11, the probability of the stirring rod 3 disengaging from the drive shaft 11 when rotating can be reduced.

[0035] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A vertical mixer, characterized in that: The mixer includes a mixer body (1), a sliding platform (2) and a stirring rod (3). The sliding platform (2) includes a base plate (21), multiple casters (22) and a vertical rod (23). The base plate (21) is horizontally set, and the multiple casters (22) are rotatably connected to the underside of the base plate (21). The vertical rod (23) is vertically set on the base plate (21). The mixer body (1) is mounted on the vertical rod (23). A drive shaft (11) is set on the mixer body (1), and the stirring rod (3) is detachably connected to the drive shaft (11). The stirring rod (3) is connected to a threaded cylinder (31) at one end and to multiple blades (32) at the other end. The threaded cylinder (31) is threadedly connected to the drive shaft (11). The drive shaft (11) is provided with a snap-fit ​​assembly (4), which includes a mounting plate (41), a spring (42) and a sleeve (43). The mounting plate (41) is fixed on the drive shaft (11), and the spring (42) is sleeved on the drive shaft (11). One end of the spring (42) is fixed on the mounting plate (41), and the other end is fixed on the sleeve (43). The sleeve (43) has a shaped hole (431), and the threaded sleeve (31) is used to insert into the shaped hole (431).

2. A vertical mixer according to claim 1, characterized in that: The mixer body (1) is connected to a slider (13), and a vertical rod (23) passes through the slider (13). A fixing bolt (12) is provided on the slider (13). The fixing bolt (12) passes through the slider (13) and is threadedly connected to the slider (13). The end of the fixing bolt (12) is used to abut against the vertical rod (23).

3. A vertical mixer according to claim 1, characterized in that: The mixer body (1) has a barrel (5) on its lower side, and a sliding plate (51) is provided at the bottom of the barrel (5). The sliding plate (51) is horizontally arranged, and multiple wheels (52) are rotatably connected to the lower side of the sliding plate (51).

4. A vertical mixer according to claim 3, characterized in that: The sliding plate (51) is positioned higher than the base plate (21).

5. A vertical mixer according to claim 4, characterized in that: A snap-fit ​​cylinder (53) is installed on the sliding plate (51), and the barrel body (5) is set inside the snap-fit ​​cylinder (53).

6. A vertical mixer according to claim 5, characterized in that: The snap-fit ​​cylinder (53) is equipped with a plurality of snap-fit ​​bolts (531), which pass through the snap-fit ​​cylinder (53) and are threadedly connected to the snap-fit ​​cylinder (53).