Nanometer amino acid chelated calcium stirrer capable of adjusting stirring strength
By introducing scrapers and a liquid circulation structure into the nano-amino acid chelated calcium mixer, the problems of fixed mixing intensity and blind spots in traditional mixers have been solved, enabling flexible adjustment of mixing intensity and uniform mixing of materials, thus improving product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2026-03-31
AI Technical Summary
Traditional nano-amino acid chelated calcium mixers cannot easily adjust the mixing intensity in real time according to production needs, resulting in mixing blind spots that lead to uneven material mixing and affect the consistency and stability of product quality.
A nano-amino acid chelated calcium mixer with adjustable stirring intensity was designed. By setting up a scraper and a liquid circulation structure, the material attached to the inner wall of the mixer is scraped off and returned to the mixer. The mixing effect is enhanced by combining various types of mixing plates.
It enables flexible adjustment of stirring intensity, eliminates stirring blind spots, improves the uniformity of material mixing and the consistency of product quality, and reduces material waste.
Smart Images

Figure CN224057163U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of nano-amino acid chelated calcium production technology, specifically a nano-amino acid chelated calcium mixer with adjustable stirring intensity. Background Technology
[0002] Nano-amino acid chelated calcium utilizes the principle of cavitation collapse to fully emulsify and disperse aspartic amino acids and calcium hydroxide, achieving nano-fragmentation with a particle size of 20-80 nanometers. This allows it to be directly absorbed by the villi cells of the small intestine without the need for calcium-binding protein transport, thus providing sufficient supply for absorption and utilization by various tissues in the body, such as bone tissue, nervous system, and muscle tissue. A mixer is used during the production process of nano-amino acid chelated calcium.
[0003] Traditional nano-amino acid chelated calcium mixers typically rely solely on a central stirring shaft to mix various materials. This single stirring method has several limitations. During the production of nano-amino acid chelated calcium, the required stirring intensity varies at different stages. Traditional stirring shafts rely solely on a fixed motor speed for stirring, making it difficult to adjust the stirring intensity in real time according to production needs. Furthermore, the single stirring method easily creates blind zones within the mixer, preventing some areas from fully participating in the mixing process. These insufficiently mixed areas may result in uneven material mixing, leading to inconsistent product quality and affecting product consistency and stability. To address these issues, we have proposed a nano-amino acid chelated calcium mixer with adjustable stirring intensity. Summary of the Invention
[0004] To overcome the shortcomings of the prior art, this utility model provides a nano-amino acid chelated calcium mixer with adjustable stirring intensity. It can scrape off the material in the blind area and return it for reprocessing, avoiding material waste. At the same time, the stirring intensity is further enhanced by the liquid passing through the mixer twice.
[0005] To achieve the above objectives, a nano-amino acid chelated calcium mixer with adjustable stirring intensity is designed, comprising a mixing tank, a tank cover, a stirring shaft passing through the center of the top of the tank cover, the stirring shaft being inserted into the mixing tank, a first stirring plate surrounding the stirring shaft, the first stirring plate and the second stirring plate being alternately arranged, a limiting ring extending inside the tank cover, a toothed ring being attached to the bottom of the limiting ring, the toothed ring meshing with a gear, a connecting plate being welded below the toothed ring, a scraper being vertically welded to the connecting plate, the scraper being in close contact with the inner wall of the mixing tank, and a circulation structure being provided on the outside of the mixing tank.
[0006] The described circulation structure includes a return pipe, a suction pipe, and a liquid pump. The return pipe is connected to the side wall of the mixing tank, and the suction pipe is located at the bottom of the mixing tank. The return pipe and the suction pipe are connected by the liquid pump.
[0007] The interface between the reflux pipe and the mixing tank is provided with a first metal mesh, the interface between the suction pipe and the mixing tank is provided with a second metal mesh, and the bottom of the suction pipe is provided with a discharge pipe.
[0008] The first stirring plate is set perpendicular to the stirring shaft, and the second stirring plate is connected to the stirring shaft at an angle. Both the first stirring plate and the second stirring plate are provided with three petals.
[0009] The top of the stirring shaft is connected to a first motor, and the top of the gear is connected to a second motor.
[0010] The gear ring is an internal gear ring structure, with the gear meshing with the gear ring inside.
[0011] The mixing tank is equipped with a discharge pipe at the bottom and a support leg at the bottom outside.
[0012] A controller is provided on one side of the support leg, and the controller is connected to the first motor and the second motor through wires.
[0013] Compared with the prior art, this utility model is equipped with two mixing mechanisms. The first mixing mechanism rotates the scraper to scrape off the material adhering to the inner wall of the mixer, allowing the material to return to the mixing body and participate in the mixing. At the same time, the rotation direction of the scraper is opposite to the rotation direction of the mixing shaft, which will generate a strong shearing effect. The second mixing mechanism can use a liquid pump to send the bottom liquid to the top of the mixer. The liquid will fall back to the bottom of the mixer under the action of gravity, which will accelerate the diffusion and mixing reaction of the substances and enhance the mixing intensity. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of the present invention. Figure 1 .
[0015] Figure 2 This is a magnified view of a portion of the gear structure.
[0016] Figure 3 This is a schematic diagram of the structure of the present invention. Figure 2 .
[0017] Figure 4 This is an isometric drawing of the present invention.
[0018] Figure 5 This is a perspective view of the present invention.
[0019] See Figures 1 to 51 is the mixing tank, 2 is the support leg, 3 is the discharge pipe, 4 is the controller, 5.1 is the first mixing plate, 5.2 is the second mixing plate, 6 is the mixing shaft, 7 is the tank cover, 8 is the first motor, 9 is the second motor, 10 is the gear ring, 11 is the limit ring, 12 is the gear, 13 is the connecting plate, 14 is the scraper, 15 is the return pipe, 16 is the liquid pump, 17 is the suction pipe, 18 is the discharge pipe, 19 is the first metal mesh, and 20 is the second metal mesh. Detailed Implementation
[0020] The present invention will be further described below with reference to the accompanying drawings.
[0021] like Figure 1 As shown, a tank cover 7 is provided on top of the mixing tank 1, and a stirring shaft 6 is inserted through the center of the top of the tank cover 7. The mixing tank 1 is the main container used to contain and stir nano-amino acid chelated calcium materials. The stirring shaft 6 is inserted into the mixing tank 1, and stirring plates 5.1 and 5.2 are arranged around the stirring shaft 6, with stirring plates 5.1 and 5.2 arranged alternately. Figure 2 As shown, a limiting ring 11 extends inside the tank cover 7. A toothed ring 10 is attached to the bottom of the limiting ring 11. The toothed ring 10 meshes with the gear 12. A connecting plate 13 is welded below the toothed ring 10. A scraper 14 is vertically welded to the connecting plate 13. The scraper 14 is in close contact with the inner wall of the mixing tank 1. A circulation structure is provided on the outside of the mixing tank 1.
[0022] like Figure 3 , 4 As shown, the circulation structure includes a return pipe 15, a suction pipe 17, and a liquid pump 16. The return pipe 15 is connected to the side wall of the mixing tank 1, and the suction pipe 17 is provided at the bottom of the mixing tank 1. The return pipe 15 and the suction pipe 17 are connected by the liquid pump 16.
[0023] like Figure 5 As shown, a first metal mesh 19 is provided at the interface between the return pipe 15 and the mixing tank 1, and a second metal mesh 20 is provided at the interface between the suction pipe 17 and the mixing tank 1. A discharge pipe 18 is provided at the bottom of the suction pipe 17. The suction pipe 17 draws material from the bottom of the mixing tank 1 to the return pipe 15. Power is provided by the liquid pump 16 to drive the material circulation. The return pipe 15 sends the material back into the mixing tank 1 for reprocessing. The first metal mesh 19 and the second metal mesh 20 filter impurities in the return pipe 15 and the suction pipe 17 respectively to prevent clogging.
[0024] The first stirring plate 5.1 is set perpendicularly to the stirring shaft 6, and the second stirring plate 5.2 is inclinedly connected to the stirring shaft 6. The first stirring plate 5.1 and the second stirring plate 5.2 are each provided with three petals. The first stirring plate 5.1 provides radial stirring force to disperse the material, and the stirring shaft 6 provides axial stirring force to enhance the mixing of the material from top to bottom.
[0025] The top of the stirring shaft 6 is connected to a first motor 8, which drives the stirring shaft 6 to rotate, thereby rotating the first stirring plate 5.1 and the second stirring plate 5.2 to achieve the core stirring function. The top of the gear 12 is connected to a second motor 9, which drives the gear 12 to rotate, thereby rotating the gear ring 10 to achieve the cleaning function of the scraper 14 on the inner wall of the mixing tank 1.
[0026] The gear ring 10 has an internal gear ring structure, and the gear 12 meshes with the gear ring 10 inside.
[0027] The bottom of the mixing tank 1 is equipped with a discharge pipe 3, which is used to discharge the mixed material. The bottom of the mixing tank 1 is equipped with a support leg 2, which maintains the stability of the equipment.
[0028] A controller 4 is provided on one side of the support leg 2. The controller 4 is connected to the first motor 8 and the second motor 9 through wires.
[0029] The implementation process of this utility model is as follows: The speed parameters of the first motor 8 and the second motor 9 are set by the controller 4. The first motor 8 drives the stirring shaft 6 to rotate, which drives the stirring plate 5.1 and the stirring plate 5.2 to mix the material radially and axially. The second motor drives the gear 12 to rotate, which drives the gear ring 10 to rotate in the opposite direction. The connecting plate 13 makes the scraper 14 stick to the inside to scrape off the residual material and eliminate blind spots. Then, the liquid pump 16 is started to draw the bottom material from the suction pipe 17 and send it back to the mixing tank 1 through the return pipe 15. The material falls again under the action of gravity and is stirred again to further enhance the uniformity. After the stirring is completed, the material is discharged and collected through the discharge pipe 3. The residual material in the circulation system is cleaned through the discharge pipe 18.
Claims
1. A nano-amino acid chelated calcium blender with adjustable stirring intensity, comprising a stirring tank, characterized in that: The stirring tank (1) is provided with a tank cover (7) above, a stirring shaft (6) is provided through the center of the tank cover (7), the stirring shaft (6) is inserted into the inside of the stirring tank (1), a stirring plate one (5.1) and a stirring plate two (5.2) are circumferentially arranged on the stirring shaft (6), the stirring plate one (5.1) and the stirring plate two (5.2) are alternately arranged, a limiting ring (11) is extended inside the tank cover (7), a gear ring (10) is protrudingly hung on the bottom of the limiting ring (11), the gear ring (10) is meshed with a gear (12), the gear ring (10) is welded with a connecting plate (13) below, the connecting plate (13) is vertically welded with a scraper (14), the scraper (14) is tightly attached to the inner wall of the stirring tank (1), and a circulating structure is arranged outside the stirring tank (1).
2. The adjustable intensity nanocalcium chelate mixer of claim 1, wherein: The circulating structure comprises a reflux pipe (15), a material suction pipe (17) and a liquid pump (16), the reflux pipe (15) is connected to the side wall of the stirring tank (1), the material suction pipe (17) is arranged at the bottom of the stirring tank (1), and the reflux pipe (15) and the material suction pipe (17) are communicated through the liquid pump (16).
3. The adjustable intensity nanocalcium chelate mixer of claim 2, wherein: The interface between the reflux pipe (15) and the stirring tank (1) is provided with a first metal mesh (19), the interface between the material suction pipe (17) and the stirring tank (1) is provided with a second metal mesh (20), and the bottom of the material suction pipe (17) is provided with a discharge pipe (18).
4. The adjustable intensity nanocalcium chelate mixer of claim 1, wherein: The stirring plate one (5.1) is vertically arranged on the stirring shaft (6), the stirring plate two (5.2) is obliquely connected to the stirring shaft (6), and the stirring plate one (5.1) and the stirring plate two (5.2) are respectively provided with three petals.
5. The adjustable intensity nanocalcium chelate mixer of claim 1, wherein: The top end of the stirring shaft (6) is connected with a first motor (8), and the top of the gear (12) is connected with a second motor (9).
6. The adjustable intensity nanocalcium chelate mixer of claim 1, wherein: The gear ring (10) is an internal gear ring structure, and the gear (12) is meshed with the gear ring (10) inside.
7. The adjustable intensity nanocalcium chelate mixer of claim 1, wherein: The inside bottom of the stirring tank (1) is provided with a discharge pipe (3), and the outside bottom of the stirring tank (1) is provided with a supporting leg (2).
8. The adjustable intensity nanocalcium chelate mixer of claim 7, wherein: The supporting leg (2) is provided with a controller (4) on one side, and the controller (4) is connected with the first motor (8) and the second motor (9) through wires.