Extraction and separation integrated machine and method for preparing collagen products for beauty

Through the design of the integrated extraction and separation machine for dynamically changing the liquid level and agitating fluid, the problem of insufficient contact between enzymes and raw materials during collagen extraction is solved, and more efficient dissolution and filtration are achieved, ensuring the purity and uniformity of the product.

CN120399875BActive Publication Date: 2025-09-02江苏必杰生物医药有限公司
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Patent Information

Application Number
CN202510896546.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-01
Publication Date
2025-09-02
Estimated Expiration
2045-07-01

AI Technical Summary

Technical Problem

In the prior art, the solution is prone to concentration gradient during collagen extraction, resulting in static stratification, insufficient contact between the enzyme and the raw material, and the dissolution and extraction rate is low.

Method used

An extraction and separation machine for beauty preparation is adopted, including a constant temperature shell, power rod, extraction mechanism, page turning assembly and spoiler assembly. By dynamically changing the liquid level and agitation of the fluid, it promotes full contact between the enzyme and the raw material, and breaks the static layering in the solution through the page turning assembly and spoiler assembly.

Benefits of technology

It improves the dissolution speed and efficiency of collagen, ensures a more thorough filtration effect and the purity of the final product, reduces the risk of filter membrane blockage, and improves product uniformity and quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an all-in-one extraction and separation machine and method for preparing collagen products for beauty use, which relates to the technical field of extraction and separation, and includes a constant temperature shell, a power rod is provided at the middle of the upper end of the constant temperature shell, an electric push rod is provided at the upper end of the power rod, and an extraction mechanism for extracting collagen from a raw material solution is provided at the bottom of the power rod. The up and down reciprocating motion of the extraction tube in the present invention changes the liquid level inside the constant temperature shell, causing the pressure of each layer of liquid level to change accordingly. The dynamic pressure change allows the filter membrane to filter under different hydraulic pressures, avoiding the filtration bottleneck under a single pressure condition. The page turning component and the spoiler component squeeze the raw material, causing the pressure of each layer of liquid level inside the constant temperature shell to change. The continuous squeezing action not only helps to break the concentration gradient in the solution, but also promotes the flow of materials on the surface of the filter membrane, reduces the risk of blockage, and ensures a more thorough filtration effect.
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Description

Technical Field

[0001] The present invention relates to the technical field of extraction and separation, and in particular to an all-in-one extraction and separation machine and method for preparing collagen products for beauty use. Background Art

[0002] Collagen products used in the beauty industry are typically extracted from animal sources, such as fish skin, pig skin, or cattle bones, as these sources are rich in collagen. The extraction and separation machine used to prepare these products is a highly specialized piece of equipment that integrates multiple steps to efficiently extract and purify collagen from the raw material.

[0003] For example, patent document CN205832677U, titled "Filter Extraction Tank," addresses the problem that existing extraction tanks only have a filter screen at the slag discharge door, which can easily become clogged over time. The filter extraction tank comprises a tank body, a slag discharge door at the bottom of the tank body, a first filter screen disposed within the tank body corresponding to the slag discharge door, and a second filter screen disposed within the inner wall of the tank body. The liquid medicine is first filtered through the second filter screen before passing through the first filter screen, reducing the chance of the first filter screen becoming clogged, making it less prone to clogging and providing a good performance.

[0004] For example, the patent document with publication number CN104841160B is named an extraction tank. The invention has a large bottom opening and does not form a bridge when discharging slag, which improves work efficiency; the honeycomb jacket on the tank body is arranged in sections, which has high heat exchange efficiency, saves energy, reduces production costs, and is more flexible in feeding amount. The corresponding honeycomb jacket can be turned on for heating according to different solvent amounts to prevent boiling and dry pot sticking.

[0005] However, during the above-mentioned extraction process, the internal solution is prone to produce a concentration gradient, resulting in static stratification in the solution, insufficient contact between the enzyme and the raw material, and a low rate of material exchange between each liquid level layer, resulting in a low rate of collagen dissolution and extraction. Therefore, the present application provides an all-in-one extraction and separation machine and method for preparing collagen products for beauty use to meet the needs. Summary of the Invention

[0006] The purpose of this application is to provide an all-in-one extraction and separation machine and method for preparing collagen products for beauty use, which can effectively solve the problems raised in the above-mentioned background technology.

[0007] To achieve the above objectives, the present application provides the following technical solutions: an all-in-one extraction and separation machine for preparing collagen products for beauty use, comprising a constant temperature shell, a power rod provided at the middle portion of the upper end of the constant temperature shell, an electric push rod provided at the upper end of the power rod, an extraction mechanism provided at the bottom of the power rod for extracting collagen from a raw material solution, a page turning component and a flow disturbance component provided at the upper and bottom portions of the outer surface of the extraction mechanism for stirring the fluid to promote collagen dissolution, respectively, a sealing component provided at the bottom of the constant temperature shell for cooperating with the extraction mechanism to change the raw material liquid level inside the constant temperature shell to promote collagen extraction;

[0008] The extraction mechanism includes an extraction component for extracting collagen and an installation component for promoting collagen dissolution. The extraction components are provided in multiple numbers and are installed inside the installation component. The bottom of the installation component is provided with a support component that cooperates with the sealing component to adjust the raw material liquid level height inside the constant temperature shell. The inner wall of the constant temperature shell is provided with several cleaning components for cleaning blockages on the surface of the extraction component.

[0009] The sealing assembly includes a bottom shell and a clamping ring. The bottom shell is installed at the bottom of the constant temperature shell. A clamping frame is provided inside the bottom shell. A rubber ring is provided inside the clamping frame. A rubber cone is provided at the bottom of the rubber ring. A clamping edge is provided at the upper end of the rubber cone. The clamping ring is clamped on the outside of the rubber ring and locked inside the clamping frame.

[0010] Among them, the installation component includes an extraction tube, which is installed at the bottom of the power rod. The outer surface of the extraction tube is provided with forward blades and reverse blades. A weighing rod is provided inside the extraction tube. The outer surface of the weighing rod is provided with multiple support pipe parts installed on the inner wall of the extraction tube.

[0011] The reverse blade is located below the forward blade, and the forward blade and the reverse blade have opposite inclination angles.

[0012] Wherein, the extraction component includes two mounting rings, a filter membrane is fixedly installed between the two mounting rings, and the two mounting rings are both arranged on the inner wall of the bottom pipe.

[0013] Wherein, the support assembly includes a bottom pipe and a discharge pipe, the bottom pipe is fixedly mounted on the bottom of the outer surface of the support pipe member, and a clamping groove ring is provided at the bottom of the bottom pipe;

[0014] The upper end of the discharge pipe is provided with a push cone ring, and the outer surface of the discharge pipe is provided with a valve;

[0015] The clamping edge is located inside the clamping groove ring, and the pushing cone ring is docked at the bottom of the clamping edge and fastened to the installation position of the clamping edge by bolts. The pushing cone ring is conical and is used to support the rubber cone and share the pressure borne by the rubber cone.

[0016] In which, the page-turning assembly includes a mounting frame, and a plurality of mounting grooves distributed in a circular array are opened at the upper end of the mounting frame, and support rods are arranged inside the mounting grooves, and the plurality of support rods are evenly divided into two parts, and the outer surface of each support rod is rotatably installed with two upper and lower pieces, the upper and lower pieces are staggered, and the opening and closing angles of each two upper and lower pieces are opposite, and the outer surface of the mounting frame is provided with a plurality of upper spacers and lower spacers distributed in a circular array, and the upper spacer is located on the upper part of the lower spacer to limit the closing angle of the upper spacer, and the lower spacer is used to limit the closing angle of the lower spacer, and the mounting frame is fixedly mounted on the outer surface of the extraction tube, and the mounting frame is located on the upper part of the parallel blade.

[0017] The cleaning assembly includes a frame fixedly mounted on the inner wall of the constant temperature shell. The inner wall of the frame is provided with a brush edge, and the position of the brush edge relative to the filter membrane is used to clean blockages on the outer surface of the filter membrane.

[0018] Among them, the spoiler assembly includes an arc ring and a flap ring. The outer surface of the arc ring is provided with a ring edge, and the outer surface of the ring edge is provided with a plurality of leakage holes distributed in a ring shape. The upper end of the flap ring is provided with a plurality of ribs distributed in a ring shape. The interior of the flap ring is provided with a plurality of seepage holes distributed in a ring array, and the seepage hole is located between every two ribs. The arc ring is fixedly installed on the outer surface of the extraction pipe, and the arc ring is located below the reverse blade.

[0019] The present invention also provides an operating method for an all-in-one extraction and separation machine for preparing a cosmetic collagen product. The operating method is as follows:

[0020] S1. Pour the raw material liquid into the constant temperature shell from the feed port. The electric push rod drives the power rod to reciprocate up and down. A load-bearing cylinder supporting the weight of the electric push rod is provided on the outside of the power rod for the reciprocating motion of the power rod. The power rod drives the installation component, the extraction component and the support component to reciprocate up and down in the constant temperature shell. The installation component stirs the raw material inside the constant temperature shell to mix the enzyme with the raw material and promote the dissolution of collagen.

[0021] S2. When the support assembly moves, it also causes the sealing assembly to partially deform. The movement of the mounting assembly causes the solution inside the constant temperature shell to surge up and down. The flip assembly and the spoiler assembly move synchronously with the movement of the mounting assembly, accelerating the solution surge and promoting the reaction between the enzyme and the raw material.

[0022] S3. When the reaction of the original liquid inside the constant temperature shell reaches the specified time, the valve inside the support component is opened, and the dissolved collagen is extracted and filtered through the extraction component and then discharged through the support component. As the installation component reciprocates, the cleaning component cleans the blockage on the surface of the extraction component.

[0023] In summary, the technical effects and advantages of the present invention are:

[0024] 1. The reciprocating up and down motion of the extraction tube in the present invention changes the liquid level inside the constant temperature shell, causing the pressure of each layer of liquid to change accordingly. This dynamic pressure change allows the filter membrane to filter under different hydraulic pressures, avoiding the filtration bottleneck under single pressure conditions. The flip assembly and the spoiler assembly squeeze the raw material, causing the pressure of each layer of liquid inside the constant temperature shell to change. The continuous squeezing action not only helps to break the concentration gradient in the solution, but also promotes the flow of materials on the surface of the filter membrane, reducing the risk of clogging and ensuring a more thorough filtration effect. As the liquid level changes and the pressure of each layer is adjusted, the collagen and other components in the solution are able to better contact the filter membrane, enhancing the mass transfer process, improving the filter membrane's selective separation ability for the target component, and ensuring the purity of the final product.

[0025] 2. When the extraction tube in the present invention drives the installation frame to move up and down, the upward and downward flaps are continuously expanded and closed, so that the raw materials circulate back and forth in each installation groove. The dynamic change breaks the static stratification in the solution, enhances the mixing effect between the raw materials, and promotes full contact between the enzyme and the raw materials. When the arc ring squeezes the raw materials downward, its arc design cooperates with the ribs to guide the raw materials to be discharged upward along the inner wall of the flap ring, increasing the flow path length of the raw materials and forming a strong squeezing and surging effect, which helps to break the agglomeration phenomenon in the raw materials and make the protein easier to dissolve. As the installation frame moves up and down, the raw materials are continuously squeezed, surged and flow out through the flow channel. The continuous dynamic process reduces the possibility of material accumulation on the surface of the extraction component. The expansion and closing action of the upward and downward flaps, as well as the squeezing action of the arc ring and the flap ring, ensure that all raw materials can be fully processed, reduce the problem of excessive local concentration, and improve the uniformity and quality of the final product. In addition, this design is particularly suitable for processing high-viscosity collagen material stock solution, can overcome greater resistance, and ensure that the material always maintains good fluidity during the processing process.

[0026] 3. In the present invention, when the weighing rod moves up and down, it drives the support pipe, bottom pipe, and slot ring to move in turn, and then the clamping edge and the push cone ring move upward synchronously, causing the rubber cone to deform in the constant temperature shell. The change from a convex cone to an inverted cone changes the liquid level of the internal raw material. The dynamic liquid level change helps to break the static stratification and promote the exchange of substances between different liquid level layers. The reciprocating motion of the installation component cooperates with the page turning component and the spoiler component to stir the stock solution of different liquid level layers inside the constant temperature shell, ensuring full contact between the enzyme and the raw material, significantly improving the speed and efficiency of the enzymatic hydrolysis reaction, and by changing the liquid level, the raw material is evenly treated at different heights, avoiding the problem of excessive local concentration and promoting more thorough collagen dissolution. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative work.

[0028] Figure 1 It is a schematic diagram of the three-dimensional structure of the extraction and separation machine;

[0029] Figure 2 It is a sectional view of the three-dimensional structure of the extraction and separation integrated machine;

[0030] Figure 3 It is a cross-sectional view of the local three-dimensional connection structure of the extraction and separation integrated machine;

[0031] Figure 4 Schematic diagram of the three-dimensional connection structure of the sealing component;

[0032] Figure 5 It is a schematic diagram of the local three-dimensional connection structure of the sealing component;

[0033] Figure 6 Schematic diagram of the three-dimensional connection structure of the rubber cone;

[0034] Figure 7 It is a cross-sectional view of the three-dimensional connection structure of the rubber cone;

[0035] Figure 8 A schematic diagram of the three-dimensional connection structure of the extraction mechanism, the page turning component and the spoiler component;

[0036] Figure 9 This is a schematic diagram of the first-person perspective three-dimensional connection structure of the page turning component;

[0037] Figure 10 This is a schematic diagram of the second perspective three-dimensional connection structure of the page turning component;

[0038] Figure 11 This is a schematic diagram of the third-person perspective three-dimensional connection structure of the page turning component;

[0039] Figure 12 This is a schematic diagram of the fourth perspective three-dimensional connection structure of the page turning component;

[0040] Figure 13 A cross-sectional view of the three-dimensional connection structure of the cleaning component;

[0041] Figure 14 A schematic diagram of the three-dimensional connection structure of the extraction mechanism and the spoiler component;

[0042] Figure 15 Schematic diagram of the three-dimensional connection structure of the extraction mechanism;

[0043] Figure 16 It is a cross-sectional view of the three-dimensional connection structure of the extraction mechanism;

[0044] Figure 17 A sectional view of the three-dimensional connection structure of the installation component;

[0045] Figure 18 A cross-sectional view of the three-dimensional connection structure of the support assembly;

[0046] Figure 19 It is a cross-sectional view of the three-dimensional connection structure of the extraction mechanism;

[0047] Figure 20 Schematic diagram of the three-dimensional connection structure of the spoiler component;

[0048] Figure 21 It is a cross-sectional view of the three-dimensional connection structure of the spoiler component.

[0049] Figure: 1. Electric push rod; 2. Power rod; 3. Constant temperature shell; 4. Page turning assembly; 41. Mounting frame; 42. Upper spacer; 44. Mounting slot; 45. Upward flap; 46. Support rod; 47. Downward flap; 48. Lower spacer; 5. Extraction mechanism; 51. Mounting assembly; 511. Forward blade; 512. Reverse blade; 513. Extraction tube; 514. Support tube; 515. Weighing rod; 52. Extraction assembly; 521. Mounting ring; 522. Filter membrane ; 53. Support assembly; 531. Bottom tube; 532. Groove ring; 533. Push cone ring; 534. Discharge pipe; 535. Valve; 6. Cleaning assembly; 61. Frame; 62. Brush edge; 7. Spoiler assembly; 71. Arc ring; 72. Ring edge; 73. Leakage hole; 74. Wake-up ring; 75. Seepage hole; 76. Rib; 8. Sealing assembly; 81. Bottom shell; 82. Rubber cone; 83. Snap ring; 84. Frame; 85. Rubber ring; 86. Snap edge. DETAILED DESCRIPTION

[0050] 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.

[0051] Example 1, Reference Figures 1 to 21The illustrated integrated extraction and separation machine for preparing collagen products for beauty use comprises a constant temperature housing 3, a power rod 2 being provided at the middle of the upper end of the constant temperature housing 3, an electric push rod 1 being provided at the upper end of the power rod 2, an extraction mechanism 5 for extracting collagen from a raw material solution being provided at the bottom of the power rod 2, a page turning component 4 and a flow disturbance component 7 being provided on the upper and bottom of the outer surface of the extraction mechanism 5, respectively, for stirring the fluid to promote collagen dissolution, and a sealing component 8 being provided at the bottom of the constant temperature housing 3 to cooperate with the extraction mechanism 5 to change the raw material liquid level height inside the constant temperature housing 3 to promote collagen extraction;

[0052] The extraction mechanism 5 includes an extraction component 52 for extracting collagen and an installation component 51 for promoting collagen dissolution. The extraction component 52 is provided in multiple numbers and is installed inside the installation component 51. The bottom of the installation component 51 is provided with a support component 53 that cooperates with the sealing component 8 to adjust the raw material liquid level height inside the constant temperature shell 3. The inner wall of the constant temperature shell 3 is provided with several cleaning components 6 for cleaning blockages on the surface of the extraction component 52.

[0053] It is worth noting that the raw material liquid is poured into the feed port of the constant temperature shell 3, and the electric push rod 1 drives the power rod 2 to reciprocate up and down, and a load-bearing cylinder supporting the weight of the electric push rod 1 is provided on the outside of the power rod 2 for reciprocating motion. The power rod 2 drives the installation component 51, the extraction component 52 and the support component 53 to reciprocate up and down in the constant temperature shell 3. The installation component 51 stirs the raw material inside the constant temperature shell 3 to mix the enzyme with the raw material and promote the dissolution of collagen.

[0054] Among them, the electric push rod 1 drives the power rod 2 to move up and down in the constant temperature shell 3, so that the installation component 51 can stir the original liquid inside the constant temperature shell, which helps to break the concentration gradient in the solution and make the enzyme fully contact with the raw material, thereby significantly improving the dissolution rate and efficiency of collagen.

[0055] When the support assembly 53 moves, it also causes the sealing assembly 8 to partially deform. The installation assembly 51 moves up and down to stir the solution inside the constant temperature shell 3. The leaf turning assembly 4 and the spoiler assembly 7 move synchronously with the movement of the installation assembly 51, accelerating the stirring of the solution and promoting the reaction between the enzyme and the raw material.

[0056] Among them, as the installation component 51 moves, the page turning component 4 and the spoiler component 7 move synchronously, further intensifying the turbulence of the solution, which not only increases the turbulence inside the solution, but also ensures that the enzyme is more evenly distributed in the entire reaction system, promoting a more thorough chemical reaction.

[0057] When the reaction of the original liquid inside the constant temperature shell 3 reaches the specified time, the valve 535 inside the support component 53 is opened, and the dissolved collagen is extracted and filtered through the extraction component 52 and then discharged through the support component 53. As the installation component 51 reciprocates, the cleaning component 6 cleans the blockage on the surface of the extraction component 52.

[0058] Since all operations are performed within the constant temperature housing 3, the reaction temperature can be precisely controlled. The extraction assembly 52 is responsible for extracting the dissolved collagen from the solution and discharging it through the support assembly 53. At the same time, the cleaning assembly 6 automatically removes blockages formed on the surface of the extraction assembly as the mounting assembly 51 moves, ensuring a continuous and efficient filtration process.

[0059] Embodiment 2: Based on the embodiment 1, a mounting assembly 51 , a page turning assembly 4 and a spoiler assembly 7 are provided. This embodiment provides a further technical solution for the mounting assembly 51 , the support assembly 53 , the page turning assembly 4 and the spoiler assembly 7 .

[0060] The mounting assembly 51 includes an extraction tube 513, which is installed at the bottom of the power rod 2. The outer surface of the extraction tube 513 is provided with a forward blade 511 and a reverse blade 512. The interior of the extraction tube 513 is provided with a weighing rod 515. The outer surface of the weighing rod 515 is provided with a plurality of support pipe members 514 installed on the inner wall of the extraction tube 513. The reverse blade 512 is located below the forward blade 511.

[0061] It is worth noting that when the power rod 2 moves up and down, it will also drive the extraction tube 513 to move back and forth, and the support pipe 514 and the weighing rod 515 are used to support the extraction tube 513, so that the extraction tube 513 can withstand a larger reciprocating motion intensity. Because the viscosity of the collagen material liquid is relatively large, it will encounter greater resistance during the pushing process. When the extraction tube 513 moves, the forward blade 511 and the reverse blade 512 will also move back and forth. Because the blade inclination angles of the forward blade 511 and the extraction tube 513 are opposite, when the forward blade 511 and the reverse blade 512 cut into the raw material and move back and forth, the sealing component 8 changes the liquid level of the raw material inside the constant temperature shell 3, causing the raw material to sink and float up and down in the stirring of the forward blade 511 and the reverse blade 512, thereby promoting the dissolution of protein.

[0062] Among them, when the forward blade 511 and the reverse blade 512 cut into the raw material and move up and down, due to their opposite inclination angles, different flow directions are generated in the liquid. The bidirectional flow mode breaks the original stable state of the liquid flow, enhances the turbulence inside the solution, and makes the enzyme contact with the raw material more sufficient, thereby accelerating the dissolution process of collagen.

[0063] Since the collagen material liquid has a high viscosity, it will encounter greater resistance during the pushing process. The design of the support pipe 514 and the weighing rod 515 ensures that the extraction tube 513 can withstand a greater reciprocating motion intensity, ensuring the stability and reliability of the equipment when processing high-viscosity materials.

[0064] In conjunction with the action of the sealing assembly 8, the up and down movement of the extraction tube 513 changes the liquid level inside the constant temperature shell 3, causing the raw materials to float up and down under the stirring of the forward blade 511 and the reverse blade 512, which promotes the dissolution of protein and reduces the problem of local excessive concentration. The continuous stirring action of the forward blade 511 and the reverse blade 512 helps to maintain a good dispersion state of the solution, prevent the formation of sediment and reduce the bubbles generated during the extraction process.

[0065] The page turning assembly 4 includes a mounting frame 41. The upper end of the mounting frame 41 is provided with a plurality of mounting slots 44 distributed in a circular array. Each mounting slot 44 is provided with a support rod 46. The plurality of support rods 46 are evenly divided into two parts. Two upward-turning pieces 45 and downward-turning pieces 47 are rotatably mounted on the outer surface of each support rod 46. The upward-turning pieces 45 and downward-turning pieces 47 are staggered, and the opening and closing angles of each pair of upward-turning pieces 45 and downward-turning pieces 47 are opposite.

[0066] Among them, when the extraction tube 513 reciprocates up and down, it will also drive the installation frame 41 to move up and down. When the installation frame 41 moves upward, the upward piece 45 is subjected to the downward resistance brought by the raw material, so that the upward piece 45 rotates on the outer surface of the support rod 46 and expands to block the installation groove 44. When the downward resistance of the raw material is encountered, the lower piece 47 will close and will stop rotating after being restricted by the lower spacer 48. As the installation frame 41 reciprocates up and down, the upper piece 45 and the lower piece 47 are continuously expanded and closed, so that the raw material flows back and forth in each installation groove 44.

[0067] The outer surface of the mounting frame 41 is provided with a plurality of upper spacers 42 and lower spacers 48 distributed in a circular array, and the upper spacer 42 is located above the lower spacer 48 to limit the closing angle of the upper flap 45, and the lower spacer 48 is used to limit the closing angle of the lower flap 47. The mounting frame 41 is fixedly mounted on the outer surface of the extraction tube 513, and the mounting frame 41 is located above the blade 511. The specific movement diagram of the page turning assembly 4 is as follows: Figures 9 to 12 shown.

[0068] The spoiler assembly 7 includes an arc ring 71 and a flap ring 74. The outer surface of the arc ring 71 is provided with a ring edge 72, and the outer surface of the ring edge 72 is provided with a plurality of leakage holes 73 distributed in a ring shape. The upper end of the flap ring 74 is provided with a plurality of ribs 76 distributed in a ring shape. The interior of the flap ring 74 is provided with a plurality of seepage holes 75 distributed in a ring array, and the seepage hole 75 is located between every two ribs 76. The arc ring 71 is fixedly installed on the outer surface of the extraction pipe 513, and the arc ring 71 is located below the reverse blade 512.

[0069] When the extraction tube 513 reciprocates up and down, it drives the arc ring 71 to move. When the arc ring 71 squeezes the raw material downward, due to the arc design of the arc ring 71, the squeezed raw material will be guided by the ribs 76 and adhere to the inner wall of the lift ring 74 to be discharged upward. The arc shape of the ring edge 72 also guides the flow of the raw material, and some of the raw liquid will be squeezed out through the seepage hole 75.

[0070] The diameter of the tilting ring 74 is smaller than the inner wall diameter of the constant temperature shell 3. When the tilting ring 74 squeezes the raw material downward, the raw material will also be discharged upward from the gap between the tilting ring 74 and the inner wall of the constant temperature shell 3 along the outer wall of the tilting ring 74 according to the design of the arc shape of the tilting ring 74, and some of the raw materials will be squeezed along the inner wall of the tilting ring 74 into the lower part of the arc ring 71, and then discharged after the movement of the arc ring 71 and the ribs 76. When the arc ring 71 moves upward, the raw material will be guided by the tilting ring 74 and the ribs 76 and then flow out along the upward flow channel, so that the raw material located at the moved position of the arc ring 71 and the tilting ring 74 promotes the dissolution of collagen through up and down squeezing and surging.

[0071] Among them, when the extraction tube 513 drives the installation frame 41 to move up and down, the upward and downward pieces 45 and the downward and downward pieces 47 are continuously expanded and closed, so that the raw materials flow back and forth in each installation groove 44. The dynamic changes break the static stratification in the solution, enhance the mixing effect between the raw materials, and promote the full contact between the enzyme and the raw materials.

[0072] When the arc ring 71 squeezes the raw materials downward, its arc design cooperates with the ribs 76 to guide the raw materials to be discharged upward along the inner wall of the lift ring 74, increasing the flow path length of the raw materials and forming a strong squeezing and surging effect, which helps to break up the agglomeration in the raw materials and make the protein easier to dissolve.

[0073] As the mounting frame 41 moves up and down, the raw materials are continuously squeezed, surged and flow out through the flow channel. The continuous dynamic process reduces the possibility of material accumulation on the surface of the extraction component. The expansion and closing actions of the upper and lower flaps 45 and 47, as well as the squeezing action of the arc ring 71 and the flap ring 74, ensure that all raw materials can be fully processed, reduce the problem of excessive local concentration, and improve the uniformity and quality of the final product. In addition, this design is particularly suitable for processing high-viscosity collagen material concentrates, and can overcome greater resistance to ensure that the material always maintains good fluidity during the processing process.

[0074] Embodiment 3: Based on the support assembly 53, sealing assembly 8 and extraction assembly 52 proposed in embodiment 1, this embodiment provides a further technical solution for the support assembly 53, sealing assembly 8 and extraction assembly 52.

[0075] The support assembly 53 includes a bottom tube 531 and a discharge tube 534. The bottom tube 531 is fixedly mounted on the bottom of the outer surface of the support tube 514. A groove ring 532 is provided at the bottom of the bottom tube 531.

[0076] A push cone ring 533 is provided at the upper end of the discharge pipe 534, and a valve 535 is provided on the outer surface of the discharge pipe 534;

[0077] The clamping edge 86 is located inside the clamping groove ring 532, and the pushing cone ring 533 is docked at the bottom of the clamping edge 86 and fastened to the installation position of the clamping edge 86 by bolts. The pushing cone ring 533 is conical and is used to support the rubber cone 82 to share the pressure borne by the rubber cone 82.

[0078] It is worth noting that when the weighing rod 515 moves up and down, it will drive the support pipe member 514 to move, and the movement of the support pipe member 514 will drive the bottom pipe 531 to move, and the movement of the bottom pipe 531 will drive the groove ring 532 to move, and it is fastened between the clamping edge 86 and the push cone ring 533. When the groove ring 532 moves, it will drive the clamping edge 86 and the push cone ring 533 to move upward synchronously. When the raw material liquid is first poured into the constant temperature shell 3, the valve 535 is in a closed state at this time. The reciprocating movement of the installation component 51 cooperates with the page turning component 4 and the spoiler component 7 to stir the raw liquid in different liquid level layers inside the constant temperature shell 3 for enzymatic hydrolysis. When the collagen is dissolved for the specified time, the valve 535 is opened.

[0079] The sealing assembly 8 includes a bottom shell 81 and a snap ring 83. The bottom shell 81 is installed at the bottom of the constant temperature shell 3. A snap frame 84 is provided inside the bottom shell 81. A rubber ring 85 is provided inside the snap frame 84. A rubber cone 82 is provided at the bottom of the rubber ring 85. A metal wire is provided inside the rubber cone 82 to enhance the strength of the rubber cone 82. A snap edge 86 is provided at the upper end of the rubber cone 82. The snap ring 83 is clamped on the outside of the rubber ring 85 and locked inside the snap frame 84.

[0080] It is worth noting that when the clamping edge 86 reciprocates up and down, the clamping edge 86 will drive the rubber cone 82 to deform, and when the rubber cone 82 deforms with the movement of the clamping edge 86, the rubber cone 82 will deform into the shape of a convex cone and an inverted cone as shown in FIG. Figure 18 As shown, when the rubber cone 82 is deformed and convex, the rubber cone 82 penetrates into the interior of the thermostatic shell 3. At this time, the raw material liquid level inside the thermostatic shell 3 will be pushed, squeezed and lifted by the convex rubber cone 82. When the rubber cone 82 is deformed into an inverted cone shape, the rubber cone 82 extends from the interior of the thermostatic shell 3, thereby causing the raw material liquid level inside the thermostatic shell 3 to drop. The push cone ring 533 is in the shape of a ring cone and can support the upward deformed rubber cone 82, and bear the pressure driven by the liquid inside the thermostatic shell 3 when the rubber cone 82 deforms upward.

[0081] Among them, when the weighing rod 515 moves up and down, it drives the support pipe 514, the bottom pipe 531, and the groove ring 532 to move in turn, and then the clamping edge 86 and the push cone ring 533 move upward synchronously, causing the rubber cone 82 to deform in the constant temperature shell 3. The change from a convex cone to an inverted cone changes the liquid level of the internal raw material. The dynamic liquid level change helps to break the static stratification and promote material exchange between different liquid level layers.

[0082] The reciprocating motion of the mounting assembly 51 cooperates with the page-turning assembly 4 and the spoiler assembly 7 to stir the stock liquid at different liquid level layers inside the constant temperature shell 3, ensuring sufficient contact between the enzyme and the raw material, significantly improving the speed and efficiency of the enzymatic hydrolysis reaction, and by changing the liquid level, the raw material is evenly processed at different heights, avoiding the problem of excessive local concentration and promoting more thorough collagen dissolution.

[0083] The extraction assembly 52 includes two mounting rings 521 , between which a filter membrane 522 is fixedly mounted. Both mounting rings 521 are provided on the inner wall of the bottom tube 531 .

[0084] It is worth noting that after the collagen inside the constant temperature shell 3 is dissolved, the valve 535 is opened to extract the collagen in the original liquid inside the constant temperature shell 3 through the filter membrane 522. The filter membrane 522 is a semi-permeable membrane filter or other filter membrane in the prior art. Since it does not belong to the innovative technology of the present invention, it will not be described here.

[0085] When the filter membrane 522 filters collagen, the liquid level inside the constant temperature shell 3 is changed by the up and down reciprocating motion of the extraction tube 513, and the raw materials are squeezed by the page turning component 4 and the spoiler component 7, so that the pressure of the liquid level of each layer inside the constant temperature shell 3 will also change accordingly, so that the filter membrane 522 is continuously squeezed during filtration and is filtered under different hydraulic pressures.

[0086] Among them, the up and down reciprocating motion of the extraction tube 513 changes the liquid level inside the constant temperature shell 3, causing the pressure of each layer of liquid level to change accordingly. The dynamic pressure change enables the filter membrane 522 to filter under different hydraulic pressures, avoiding the filtration bottleneck under a single pressure condition. The page turning component 4 and the spoiler component 7 squeeze the raw material, causing the pressure of each layer of liquid level inside the constant temperature shell 3 to change. The continuous squeezing effect not only helps to break the concentration gradient in the solution, but also promotes the flow of materials on the surface of the filter membrane 522, reduces the risk of blockage, and ensures a more thorough filtration effect.

[0087] As the liquid level changes and the pressure of each layer is adjusted, the collagen and other components in the solution are able to better contact the filter membrane 522, thereby enhancing the mass transfer process, improving the selective separation ability of the filter membrane for the target components, and ensuring the purity of the final product.

[0088] The cleaning assembly 6 includes a frame 61 , which is fixedly mounted on the inner wall of the constant temperature shell 3 . The inner wall of the frame 61 is provided with a brush edge 62 , which is positioned relative to the filter membrane 522 to clean blockages on the outer surface of the filter membrane 522 .

[0089] When the filter membrane 522 reciprocates up and down along with the extraction tube 513 , the brush edge 62 continuously cleans the blockage on the surface of the filter membrane 522 , thereby increasing the filtering effect of the filter membrane 522 .

[0090] This example also provides an operating method for an all-in-one extraction and separation machine for preparing collagen products for beauty. The specific operating method is as follows:

[0091] S1. Pour the raw material liquid into the constant temperature shell 3 from the feed port. The electric push rod 1 drives the power rod 2 to reciprocate up and down. A load-bearing cylinder supporting the weight of the electric push rod 1 is provided on the outside of the power rod 2 for reciprocating movement. The power rod 2 drives the installation component 51, the extraction component 52 and the support component 53 to reciprocate up and down in the constant temperature shell 3. The installation component 51 stirs the raw material inside the constant temperature shell 3 to mix the enzyme with the raw material and promote the dissolution of collagen.

[0092] S2. When the support assembly 53 moves, it also causes the sealing assembly 8 to partially deform. The installation assembly 51 moves up and down, stirring the solution inside the constant temperature shell 3. The leaf turning assembly 4 and the spoiler assembly 7 move synchronously with the movement of the installation assembly 51, accelerating the stirring of the solution and promoting the reaction between the enzyme and the raw material.

[0093] S3. When the reaction of the original liquid inside the constant temperature shell 3 reaches the specified time, the valve 535 inside the support component 53 is opened, and the dissolved collagen is extracted and filtered through the extraction component 52 and then discharged through the support component 53. As the installation component 51 reciprocates, the cleaning component 6 cleans the blockage on the surface of the extraction component 52.

[0094] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An all-in-one extraction and separation machine for preparing collagen products for beauty, comprising a constant temperature shell (3), a power rod (2) being provided at the middle of the upper end of the constant temperature shell (3), and an electric push rod (1) being provided at the upper end of the power rod (2), characterized in that: The bottom of the power rod (2) is provided with an extraction mechanism (5) for extracting collagen from the raw material liquid, and the upper and bottom of the outer surface of the extraction mechanism (5) are respectively provided with a page turning component (4) and a flow disturbance component (7) for stirring the fluid to promote the dissolution of the collagen, and the bottom of the constant temperature shell (3) is provided with a sealing component (8) for cooperating with the extraction mechanism (5) to change the raw material liquid level height inside the constant temperature shell (3) to promote the extraction of collagen; The extraction mechanism (5) includes an extraction component (52) for extracting collagen and a mounting component (51) for promoting collagen dissolution. The extraction components (52) are provided in plurality and are mounted inside the mounting component (51). The bottom of the mounting component (51) is provided with a support component (53) for cooperating with a sealing component (8) to adjust the height of the raw material liquid level inside the constant temperature shell (3). The inner wall of the constant temperature shell (3) is provided with a plurality of cleaning components (6) for cleaning blockages on the surface of the extraction component (52). The sealing assembly (8) includes a bottom shell (81) and a snap ring (83), the bottom shell (81) is installed at the bottom of the thermostatic shell (3), a snap frame (84) is provided inside the bottom shell (81), a rubber ring (85) is provided inside the snap frame (84), a rubber cone (82) is provided at the bottom of the rubber ring (85), a snap edge (86) is provided at the upper end of the rubber cone (82), and the snap ring (83) is clamped on the outside of the rubber ring (85) and locked inside the snap frame (84); The mounting assembly (51) includes an extraction tube (513), the extraction tube (513) being mounted on the bottom of the power rod (2), the outer surface of the extraction tube (513) being provided with a forward blade (511) and a reverse blade (512), the interior of the extraction tube (513) being provided with a weighing rod (515), the outer surface of the weighing rod (515) being provided with a plurality of supporting tube members (514) mounted on the inner wall of the extraction tube (513); The extraction assembly (52) includes two mounting rings (521), a filter membrane (522) is fixedly mounted between the two mounting rings (521), and both mounting rings (521) are arranged on the inner wall of the bottom tube (531); The page turning assembly (4) includes a mounting frame (41), the upper end of the mounting frame (41) is provided with a plurality of mounting grooves (44) distributed in a circular array, and the interior of the mounting grooves (44) is provided with support rods (46), the plurality of support rods (46) are evenly divided into two parts, and the outer surface of each support rod (46) is respectively rotatably mounted with two upward-turning pieces (45) and downward-turning pieces (47), the upward-turning pieces (45) and downward-turning pieces (47) are staggered, and every two upward-turning pieces (45) and downward-turning pieces (47) are staggered. The opening and closing angles of the lower warping pieces (47) are opposite to each other. The outer surface of the mounting frame (41) is provided with a plurality of upper spacers (42) and lower spacers (48) distributed in a ring array, and the upper spacer (42) is located above the lower spacer (48) to limit the closing angle of the upper warping piece (45). The lower spacer (48) is used to limit the closing angle of the lower warping piece (47). The mounting frame (41) is fixedly mounted on the outer surface of the extraction pipe (513), and the mounting frame (41) is located above the blade (511). The spoiler assembly (7) includes an arc ring (71) and a flap ring (74). The outer surface of the arc ring (71) is provided with a ring edge (72), and the outer surface of the ring edge (72) is provided with a plurality of leakage holes (73) distributed in an annular shape. The upper end of the flap ring (74) is provided with a plurality of ribs (76) distributed in an annular shape. The interior of the flap ring (74) is provided with a plurality of seepage holes (75) distributed in an annular array, and the seepage hole (75) is located between every two ribs (76). The arc ring (71) is fixedly mounted on the outer surface of the extraction pipe (513), and the arc ring (71) is located below the reverse blade (512).

2. The all-in-one extraction and separation machine for preparing collagen products for beauty use according to claim 1, characterized in that: The reverse blade (512) is located below the forward blade (511), and the blade inclination angles of the forward blade (511) and the reverse blade (512) are opposite.

3. The all-in-one extraction and separation machine for preparing collagen products for beauty use according to claim 1, characterized in that: The support assembly (53) comprises a bottom tube (531) and a discharge tube (534); the bottom tube (531) is fixedly mounted on the bottom of the outer surface of the support tube member (514); and a groove ring (532) is provided at the bottom of the bottom tube (531); A push cone ring (533) is provided at the upper end of the discharge pipe (534), and a valve (535) is provided on the outer surface of the discharge pipe (534); The clamping edge (86) is located inside the clamping groove ring (532), and the pushing cone ring (533) is docked at the bottom of the clamping edge (86) and fastened to the installation position of the clamping edge (86) by bolts. The pushing cone ring (533) is conical and is used to support the rubber cone (82) and share the pressure borne by the rubber cone (82).

4. The all-in-one extraction and separation machine for preparing collagen products for beauty use according to claim 1, characterized in that: The cleaning assembly (6) comprises a frame (61), the frame (61) being fixedly mounted on the inner wall of the constant temperature shell (3), the inner wall of the frame (61) being provided with a brush edge (62), the brush edge (62) being positioned relative to the filter membrane (522) for cleaning blockages on the outer surface of the filter membrane (522).

5. An operating method for an extraction and separation machine for preparing a collagen product for beauty, applicable to the extraction and separation machine for preparing a collagen product for beauty as claimed in any one of claims 1 to 4, characterized in that: The specific operation method is as follows: S1. The raw material liquid is poured into the feed port of the constant temperature shell (3). The electric push rod (1) drives the power rod (2) to move up and down, and a bearing cylinder supporting the weight of the electric push rod (1) is provided on the outside of the power rod (2) to provide the power rod (2) with reciprocating motion. The power rod (2) drives the installation component (51), the extraction component (52) and the support component (53) to move up and down in the constant temperature shell (3). The installation component (51) stirs the raw material inside the constant temperature shell (3) so that the enzyme and the raw material are mixed to promote the dissolution of collagen. S2. When the support component (53) moves, the sealing component (8) is also partially deformed, and the installation component (51) moves up and down to stir the solution inside the constant temperature shell (3), while the flip component (4) and the spoiler component (7) move synchronously with the movement of the installation component (51), accelerating the stirring of the solution and promoting the reaction between the enzyme and the raw material; S3. When the reaction of the stock solution inside the constant temperature shell (3) reaches the specified time, the valve (535) inside the support component (53) is opened, and the dissolved collagen is extracted and filtered through the extraction component (52) and then discharged through the support component (53). As the installation component (51) reciprocates, the cleaning component (6) cleans the blockage on the surface of the extraction component (52).

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