Mixing device and method for fusing effective components of bone fat protein

The defoaming component is driven to rotate by the second stirring member and the bubbles are broken and removed by the vacuum component, thereby solving the problem of bubble introduction during the stirring of bone fat protein raw materials and achieving a high-quality mixing effect.

CN120479261BActive Publication Date: 2025-09-19FUSHUN DUFENGXUAN FOOD
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Patent Information

Application Number
CN202510983342.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-17
Publication Date
2025-09-19
Estimated Expiration
2045-07-17

AI Technical Summary

Technical Problem

The existing technology introduces tiny bubbles during the stirring and dispersion process of bone fat protein raw materials, which affects the product quality.

Method used

The second stirring element is used to drive the defoaming component to rotate, and the vacuum component is combined to quickly break the bubbles and remove the air, ensuring a vacuum environment in the mixing tank and avoiding the residual of tiny bubbles.

Benefits of technology

The quality of bone fat protein is improved. Through the synergistic effect of the defoaming component and the vacuum component, it is ensured that there are no tiny bubbles in the mixing tank, thereby improving product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of food processing equipment, and in particular to a mixing device and method for fusing effective ingredients of bone lipoprotein, comprising a mixing tank, and further comprising: a vacuum pumping assembly, arranged on the side wall of the mixing tank; a stirring assembly, arranged inside the mixing tank, the stirring assembly comprising: a motor; a drive rod, the output end of the motor facing downward and connected to the first end of the drive rod; a first stirring member, arranged at the second end of the drive rod; a second stirring member, arranged in the middle of the drive rod; and a defoaming assembly, arranged on top of the second stirring member. When the present invention is in use, the second stirring member can drive the defoaming assembly to rotate together with it when rotating, the defoaming assembly quickly breaks the bubbles, and the vacuum pumping assembly removes the air, so that no tiny bubbles remain in the mixing tank, thereby improving the quality of the bone lipoprotein.
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Description

Technical Field

[0001] The present invention relates to the technical field of food processing equipment, and specifically relates to a mixing device and method for fusing effective components of bone fat protein. Background Art

[0002] Bone lipoprotein is an artificially extracted and synthesized active substance that can promote bone formation, increase bone density, and is beneficial to bone health. Animal connective tissues such as pig skin, fish skin, and pig trotters are rich in collagen and chondroitin, and are common raw materials for the extraction of bone lipoprotein. Bone soup can also supplement the nutrients needed for bones; high-protein foods such as chicken, fish, and eggs can provide raw materials for bone cell synthesis. The use of mixing equipment can produce bone lipoprotein, supplement bone lipoprotein, and combine it with diet adjustment and exercise to jointly maintain bone health. The shortcoming of the existing technology is that during the stirring and dispersion process of the bone lipoprotein raw material, air will inevitably be introduced to form tiny bubbles, which will reduce the quality of the bone lipoprotein. Summary of the Invention

[0003] The purpose of the present invention is to provide a mixing device and method for integrating the effective ingredients of bone fat protein. When the second stirring member rotates, it can drive the defoaming component to rotate together. The defoaming component quickly breaks the bubbles, and the vacuum component removes the air. No tiny bubbles will remain in the mixing tank, thereby improving the quality of bone fat protein.

[0004] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: In the first technical solution, a mixing device for fusing effective ingredients of bone fat protein includes a mixing tank, and also includes: a vacuum pumping component, which is arranged on the side wall of the mixing tank; a stirring component, which is arranged inside the mixing tank, and the stirring component includes: a motor; a driving rod, the output end of the motor is downward and connected to the first end of the driving rod; a first stirring member, which is arranged at the second end of the driving rod; a second stirring member, which is arranged in the middle of the driving rod; and a defoaming member, which is arranged on the top of the second stirring member.

[0005] In the first technical solution, preferably, a plurality of radially distributed first stirring paddles are provided at the bottom of the driving rod, and the plurality of first stirring paddles are all connected to the first stirring member, and a plurality of radially distributed second stirring paddles are provided in the middle of the driving rod, and the plurality of second stirring paddles are all connected to the second stirring member.

[0006] In the first technical solution, preferably, the first stirring paddle and the second stirring member are arranged in reverse.

[0007] In the first technical solution, preferably, the first stirring member includes a first connecting ring, a plurality of stirring rods are provided at the bottom of the first connecting ring, and the second stirring member includes a second connecting ring, a plurality of third stirring paddles are provided at the bottom of the second connecting ring.

[0008] In the first technical solution, preferably, the first stirring member further includes a plurality of liquid separating members, and the plurality of liquid separating members are all provided on the side wall of the first connecting ring and are distributed at equal intervals.

[0009] In the first technical solution, preferably, there are several defoaming components, which are distributed radially. The defoaming components include: a support column, which is fixed on the top surface of the second connecting ring; a pull rope, the two ends of which are respectively connected to the support column and the driving rod; and several collision blocks, all of which are arranged on the pull rope.

[0010] In the first technical solution, preferably, a protrusion is provided in the middle of the driving rod, the first end of the pull rope is connected to the protrusion, and the height of the first end of the pull rope is lower than the height of the second end.

[0011] In the first technical solution, preferably, a plurality of convex rings are provided on the outer side wall of the collision block, and an extrusion groove is formed between two adjacent convex rings, and the diameter of the collision block close to the support column side is larger than the diameter of the collision block close to the driving rod side.

[0012] In the first technical solution, preferably, the vacuum pumping assembly includes: an annular box, which is arranged above the defoaming assembly, and a vent is provided on the side wall of the annular box, and the vent is arranged inside the mixing tank; an annular liquid blocking member, which is arranged inside the annular box; a vent pipe, which is arranged on the top of the annular box, and the interior of the vent pipe is connected to the interior of the annular box, and the annular liquid blocking member is arranged between the vent and the vent pipe.

[0013] In the second technical solution, a method for using a mixing device for fusing effective ingredients of bone fat protein is provided, using the mixing device for fusing effective ingredients of bone fat protein as described in the first technical solution, comprising: step 1, adding raw materials of several effective ingredients of bone fat protein into the mixing tank; step 2, adding water into the mixing tank, and connecting the vent pipe to the output end of the external exhaust device; step 3, the stirring component is operated, and the motor drives the first stirring member, the second stirring member and several defoaming components to rotate together through the driving rod, so that the raw materials and water are mixed together, and the bubbles in the water are broken up and move upward, when the bubbles pass through the defoaming component, the pull rope produces elastic deformation, and several collision blocks collide with each other to break the bubbles; step 4, the external exhaust device is operated, and the air in the mixing tank is first sucked into the annular box through the vent hole, and the annular liquid blocking member can prevent the liquid in the mixing tank from entering the vent pipe; step 5, the air in the annular box is discharged to the outside of the mixing tank through the vent pipe, ensuring that a vacuum environment continues to exist in the mixing tank when the stirring component is operating.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] (1) When the present invention is in use, the second stirring member can drive the defoaming component to rotate together with it, the defoaming component quickly breaks the bubbles, and the vacuum component extracts the air. No tiny bubbles will remain in the mixing tank, thereby improving the quality of bone fat protein.

[0016] (2) The defoaming components consist of several support columns, pull cords, and collision blocks. The pull cords are elastic, allowing the collision blocks to oscillate freely in three-dimensional space. When large bubbles in the water rise between two adjacent defoaming components, the collision blocks collide upon contact, breaking the bubbles and facilitating the removal of air by the vacuum assembly.

[0017] (3) The vacuum pump assembly includes an annular box, an annular liquid barrier, and several vent tubes. The annular liquid barrier is located between the vent hole and the vent tubes. The annular liquid barrier acts as a barrier, preventing liquid from entering the vent tubes. Therefore, liquid is not drawn into the vacuum pump, thus protecting the external vacuum device. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is an axonometric drawing of the present invention;

[0019] Figure 2 It is a front cross-sectional view of the present invention;

[0020] Figure 3 for Figure 2 Enlarged view of point A in the middle;

[0021] Figure 4 for Figure 2 Enlarged view of point B in the middle;

[0022] Figure 5 This is an axonometric view of the stirring assembly of the present invention;

[0023] Figure 6 This is an axonometric view of the motor and drive rod in the present invention;

[0024] Figure 7 This is an axonometric view of the first stirring member of the present invention;

[0025] Figure 8 It is an axonometric view of the liquid separation component in the present invention;

[0026] Figure 9 is an axonometric view of the second stirring member in the present invention;

[0027] Figure 10 It is an axonometric view of the defoaming component in the present invention.

[0028] Reference numerals include:

[0029] 1-mixing tank, 2-vacuum assembly, 21-annular box, 211-vent, 22-annular liquid blocking member, 221-first annular plate, 222-second annular plate, 23-ventilation pipe, 3-stirring assembly, 31-motor, 32-drive rod, 321-first stirring paddle, 322-second stirring paddle, 323-protrusion, 33-first stirring member, 331-first connecting ring, 332-stirring rod, 333-liquid separating member, 3331-liquid pushing plate, 33311-liquid inlet, 3332-first guide plate, 3333-second guide plate, 34-second stirring member, 341-second connecting ring, 342-third stirring paddle, 35-defoaming assembly, 351-support column, 352-pull rope, 353-collision block, 3531-convex ring, 3532-extrusion groove. DETAILED DESCRIPTION

[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0031] See also Figure 1-10The present invention provides a technical solution: a mixing device for fusing the active ingredients of bone lipoprotein, comprising a mixing tank 1, a vacuum assembly 2, and a stirring assembly 3. The stirring assembly 3 includes a motor 31, a drive rod 32, a first stirring element 33, a second stirring element 34, and a defoaming assembly 35. The mixing tank 1 has a raw material inlet at the top and a discharge outlet at the bottom. After the raw materials for fusing bone lipoprotein and water are added to the mixing tank 1, the motor 31 rotates the drive rod 32, which in turn rotates the first and second stirring elements 33, 34, ensuring thorough mixing of the raw materials and water in the mixing tank 1. Tiny bubbles in the water gradually rise to the surface under the stirring of the first and second stirring elements 33, 34, forming larger bubbles that break when they pass through the defoaming assembly 35. After the raw material inlet and discharge outlet are sealed, the vacuum assembly 2 removes the air from the mixing tank 1, creating a vacuum state. This eliminates any tiny bubbles and improves the quality of the bone lipoprotein after production.

[0032] Example 1

[0033] See also Figure 1-6 , a plurality of first stirring paddles 321 are provided at the bottom of the driving rod 32, and a plurality of second stirring paddles 322 are provided in the middle of the driving rod 32. Both the first stirring paddle 321 and the second stirring paddle 322 can rotate together with the driving rod 32, and play an auxiliary role in stirring the raw material of bone fat protein. The first stirring paddle 321 is connected to the first stirring member 33, so that the first stirring member 33 can rotate together with the driving rod 32. The second stirring paddle 322 is connected to the second stirring member 34, so that the second stirring member 34 can rotate together with the driving rod 32. The first stirring paddle 321 and the second stirring member 34 are arranged in reverse, so that the raw materials can be quickly diffused in the water, thereby improving the mixing efficiency.

[0034] Example 2

[0035] See also Figure 1-9 The first stirring member 33 includes a first connecting ring 331 and a plurality of stirring rods 332, and the second stirring member 34 includes a second connecting ring 341 and a plurality of third stirring paddles 342. When the driving rod 32 drives the first stirring member 33 to rotate, the first connecting ring 331 drives the plurality of stirring rods 332 to rotate, and the second connecting ring 341 drives the plurality of third stirring paddles 342 to rotate. The plurality of stirring rods 332 quickly stir the raw materials at the bottom of the mixing tank 1, causing the raw materials to move upward in the water, and then the third stirring paddles 342 continue to stir the raw materials that move to the middle of the mixing tank 1. The diameter of the second connecting ring 341 is larger than the diameter of the first connecting ring 331, ensuring that the raw materials and water are fully mixed together, and that the tiny bubbles in the water can quickly merge into large bubbles and float up under the action of stirring.

[0036] See also Figure 1-9The first stirring member 33 also includes a plurality of liquid separating members 333, which are fixedly connected to the first connecting ring 331. The liquid separating member 333 includes a liquid pushing plate 3331, a first guide plate 3332 and a second guide plate 3333. The first guide plate 3332 and the second guide plate 3333 are both arc-shaped plates, and the first guide plate 3332 and the second guide plate 3333 are both arranged on the same side of the liquid inlet 33311 and face oppositely. The liquid pushing plate 3331 is provided with a liquid inlet 33311, and the first end of the first guide plate 3332 and the first end of the second guide plate 3333 are both arranged in the middle of the liquid inlet 33311, and the first end of the first guide plate 3332 and the second end of the second guide plate 3333 are respectively located above and below the first connecting ring 331.

[0037] See also Figure 1-9 When the first stirring member 33 rotates along with the driving rod 32, a portion of the raw material and liquid rotates under the push of the liquid pushing plate 3331, and the other portion of the raw material and liquid enters the liquid inlet 33311 and contacts the first guide plate 3332 and the second guide plate 3333. Since the first guide plate 3332 and the second guide plate 3333 are oriented in different directions, these portions of the raw material and liquid will be guided to different positions, with a portion moving downward and being stirred and mixed by a number of stirring rods 332. The other portion moves upward and is stirred and mixed by the third stirring paddle 342. The opening diameter of the liquid inlet 33311 close to one end of the first guide plate 3332 and the second guide plate 3333 is smaller, so the raw material and water will be accelerated when passing through the liquid inlet 33311, thereby speeding up the efficiency of mixing the raw material and water at different positions.

[0038] Example 3

[0039] See also Figure 1-10 The defoaming components 35 comprise a plurality of support columns 351, a pull cord 352, and a plurality of collision blocks 353. When the second stirring member 34 rotates along with the drive rod 32, it also drives the defoaming components 35 to rotate. In this embodiment, the pull cord 352 is an elastic cord, so the collision blocks 353 can swing freely in three-dimensional space. When large bubbles in the water float between two adjacent defoaming components 35, the collision blocks 353 collide upon contact, breaking the large bubbles and facilitating the removal of air by the vacuum assembly 2.

[0040] See also Figure 1-10The driving rod 32 has a protrusion 323 in the middle, and the first end of the pull cord 352 is connected to the protrusion 323. The first end of the pull cord 352 is lower than the second end. The bottom of the protrusion 323 has an inclined guide surface. Once bubbles move below the protrusion 323, they follow the guide surface and move below the defoaming assembly 35. In this embodiment, the defoaming assembly 35 is tilted to ensure that bubbles of different heights can be broken.

[0041] See also Figure 1-10 , a plurality of convex rings 3531 are provided on the outer wall of the collision block 353, and an extrusion groove 3532 is formed between two adjacent convex rings 3531. When the two collision blocks 353 are in contact, the convex ring 3531 on one of the collision blocks 353 will enter the extrusion groove 3532 on the other collision block 353. Through the cooperation of the convex ring 3531 and the extrusion groove 3532, it is ensured that the movement of large bubbles can be broken. The diameter of the collision block 353 close to the side of the support column 351 is larger than the diameter of the collision block 353 close to the side of the driving rod 32. Since the plurality of defoaming components 35 are distributed radially, the volumes of the plurality of collision blocks 353 on the same pull rope 352 increase successively in the direction close to the inner wall of the mixing tank 1. It can ensure that the gap between two adjacent defoaming components 35 is always small, and large bubbles will not move to the top of the defoaming component 35.

[0042] Example 4

[0043] See also Figure 1-10 The vacuum assembly 2 includes an annular box 21 and a plurality of vent pipes 23. The sidewall of the annular box 21 is provided with vent holes 211. In this embodiment, the external air extraction device includes an air pump and an annular air supply pipe. After the vent pipes 23 are connected to the annular air supply pipe, the air pump operates to extract air. The air in the mixing tank 1 will first enter the annular box 21 and then be discharged to the outside of the mixing tank 1 through the vent pipes 23.

[0044] See also Figure 1-10 The vacuum pump assembly 2 further includes an annular liquid barrier 22, which is disposed between the vent hole 211 and the vent pipe 23. When the vacuum pump is pumping, liquid droplets splashing from the mixing tank 1 may be sucked into the annular box 21 through the vent hole 211. The annular liquid barrier 22 acts as a barrier, preventing liquid from entering the vent pipe 23. Therefore, liquid is prevented from being sucked into the vacuum pump, thereby protecting the external vacuum device.

[0045] See also Figure 1-10The annular liquid blocking member 22 includes a first annular plate 221 and a second annular plate 222. The first annular plate 221 is fixedly connected to the top inner wall of the annular box 21. The second annular plate 222 is arranged on the side away from the vent hole 211. The vent pipe 23 is arranged above the second annular plate 222. When liquid droplets are sucked into the annular box 21, they will first be blocked by the first annular plate 221 and then slide down to the bottom of the annular box 21. Due to the continuous suction of the vacuum pump, the liquid droplets in the annular box 21 may be sucked up a second time. At this time, the liquid droplets will be blocked by the second annular plate 222 and slide down again to the bottom of the annular box 21. A drain pipe and a sealing plug are provided at the bottom of the annular box 21. When the entire mixing process of the fused bone lipoprotein is completed, the raw material input port and the discharge port are ventilated first, then the vacuum pump is turned off and the sealing plug is pulled out. The liquid in the annular box 21 can be discharged through the drain pipe, and the mixed liquid can be discharged through the discharge port.

[0046] See also Figure 1-10 The method of use of the present invention includes: step 1, adding a number of raw materials of bone fat protein effective ingredients into the mixing tank 1. Step 2, adding water into the mixing tank 1, and connecting the vent pipe 23 to the output end of the external exhaust device. Step 3, the stirring component 3 works, and the motor 31 drives the first stirring member 33, the second stirring member 34 and the several defoaming components 35 to rotate together through the driving rod 32, so that the raw materials and water are mixed together, and the bubbles in the water are broken up and move upward. When the bubbles pass through the defoaming component 35, the pull rope 352 produces elastic deformation, and the several collision blocks 353 collide with each other to break the bubbles. Step 4, the external exhaust device works, and the air in the mixing tank 1 is first sucked into the annular box 21 through the vent hole 211, and the annular liquid blocking member 22 can prevent the liquid in the mixing tank 1 from entering the vent pipe 23. Step 5, the air in the annular box 21 is discharged to the outside of the mixing tank 1 through the vent pipe 23 to ensure that when the stirring component 3 is working, there is a continuous vacuum environment in the mixing tank 1.

[0047] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0048] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A mixing device for fusing effective ingredients of bone fat protein, comprising a mixing tank, characterized in that: Also includes: A vacuum pumping assembly is provided on the side wall of the mixing tank; A stirring assembly is provided inside the mixing tank, and the stirring assembly includes: Motor; a driving rod, wherein the output end of the motor faces downward and is connected to the first end of the driving rod; a first stirring member, disposed at the second end portion of the driving rod; a second stirring member, disposed in the middle of the driving rod; a defoaming component, disposed on top of the second stirring member; The first stirring member includes a first connecting ring, a plurality of stirring rods are provided at the bottom of the first connecting ring, and the second stirring member includes a second connecting ring, a plurality of third stirring paddles are provided at the bottom of the second connecting ring; There are several defoaming components, which are distributed radially. The defoaming components include: a support column, fixedly arranged on the top surface of the second connecting ring; A pull rope, with both ends of the pull rope connected to the support column and the drive rod respectively; A plurality of collision blocks are arranged on the pull rope; A protrusion is provided in the middle of the driving rod, the first end of the pull rope is connected to the protrusion, and the height of the first end of the pull rope is lower than the height of the second end; A plurality of convex rings are provided on the outer side wall of the collision block, and an extrusion groove is formed between two adjacent convex rings. The diameter of the collision block close to the support column is larger than the diameter of the collision block close to the driving rod.

2. The mixing device for fusing bone fat protein effective ingredients according to claim 1, characterized in that: The bottom of the driving rod is provided with a plurality of radially distributed first stirring paddles, and the plurality of first stirring paddles are all connected to the first stirring member. The middle of the driving rod is provided with a plurality of radially distributed second stirring paddles, and the plurality of second stirring paddles are all connected to the second stirring member.

3. The mixing device for fusing bone fat protein effective components according to claim 2, characterized in that: The first stirring paddle and the second stirring member are arranged in reverse order.

4. The mixing device for fusing bone fat protein effective components according to claim 1, characterized in that: The first stirring member further includes a plurality of liquid separating members, and the plurality of liquid separating members are all arranged on the side wall of the first connecting ring and are distributed at equal intervals.

5. The mixing device for fusing bone fat protein effective components according to claim 1, characterized in that: The vacuum assembly comprises: An annular box is provided above the defoaming assembly, and a vent hole is provided on the side wall of the annular box, and the vent hole is provided inside the mixing tank; An annular liquid blocking member is arranged inside the annular box; A vent pipe is arranged on the top of the annular box, the interior of the vent pipe is communicated with the interior of the annular box, and the annular liquid blocking member is arranged between the vent hole and the vent pipe.

6. A method for using a mixing device for fusing bone fat protein effective components, using the mixing device for fusing bone fat protein effective components according to claim 5, characterized in that: include: Step 1: adding a number of raw materials of bone fat protein effective ingredients into the mixing tank; Step 2: Add water into the mixing tank and connect the vent pipe to the output end of the external air extraction device; Step 3: The stirring assembly is in operation. The motor drives the first stirring member, the second stirring member, and the plurality of defoaming members to rotate together through the driving rod, so that the raw material and water are mixed together, and the bubbles in the water are broken up and move upward. When the bubbles pass through the defoaming assembly, the pull rope is elastically deformed, and the plurality of collision blocks collide with each other, breaking the bubbles. Step 4: The external air extraction device is activated, and the air in the mixing tank is firstly drawn into the annular box through the vent hole, and the annular liquid blocking member can prevent the liquid in the mixing tank from entering the vent pipe; Step 5: The air in the annular box is discharged to the outside of the mixing tank through the vent pipe to ensure that a vacuum environment continues to exist in the mixing tank when the stirring assembly is working.

Citation Information

Patent Citations

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