Aseptic vacuum homogenization emulsification system

By introducing scraping and stirring mechanisms into the vacuum homogenizing emulsification system, the problem of material residue on the inner wall of the containing tank is solved, and a more efficient emulsification reaction effect is achieved.

CN120502256BActive Publication Date: 2025-10-10TIANFU TECH (LISHUI) CO LTD +1
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Patent Information

Application Number
CN202511001216.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-21
Publication Date
2025-10-10
Estimated Expiration
2045-07-21

AI Technical Summary

Technical Problem

The material in the emulsification tank is easy to stick to the side wall of the pot, affecting the effect of the emulsification reaction.

Method used

A sterile vacuum homogenizing emulsification system is designed, which adopts a scraping mechanism and a stirring mechanism, including a scraper and a stirring blade. The system is rotated by a driving component to scrape off the material on the inner wall of the trough, and a folding tube and a locking component are used to prevent material residue.

Benefits of technology

It effectively avoids the residue of materials on the inner wall of the containing tank, improves the time and effect of the emulsification reaction, and ensures the efficient progress of the emulsification process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of emulsification systems, and discloses a sterile vacuum homogenization emulsification system which comprises a support frame and a machine frame, the support frame is provided with a water-phase tank for processing water-phase materials and an oil-phase tank for processing oil-phase materials, the machine frame is provided with an emulsification tank for emulsifying the water-phase materials and the oil-phase materials, the emulsification tank comprises a cylinder body, a cover body is arranged above the cylinder body, an accommodating groove is formed in an end face of the cylinder body facing the cover body, a scraping mechanism for scraping the inner wall of the accommodating groove is arranged on the cover body; the scraping mechanism comprises an operating rod rotatably connected to the cover body, an operating piece is arranged on the outer circumferential surface of the operating rod, an operating strip is arranged on the side of the operating piece away from the operating rod, a scraping piece is arranged on the side of the operating strip away from the operating rod, the end face of the scraping piece away from the operating strip is attached to the inner wall of the accommodating groove, and a second driving assembly for driving the operating rod to rotate is arranged on the cover body, so that the emulsification effect is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of emulsification systems, and in particular to an aseptic vacuum homogenizing emulsification system. Background Art

[0002] A vacuum homogenizer is a complete set of equipment that integrates mixing, dispersing, homogenizing, and emulsifying functions. It is widely used in the pharmaceutical, daily chemical, food, and chemical industries. The working principle of a vacuum homogenizer is to mix and heat the materials in a pre-treatment pot before sucking them into the main pot through vacuum. The materials then undergo hundreds of thousands of hydraulic shearing, centrifugal extrusion, and impact tearing events per minute within the narrow gap between the stator and rotor, ultimately forming a bubble-free, smooth, and stable emulsion.

[0003] The emulsification system in the related art includes a water phase tank, an oil phase tank and an emulsification tank. The water phase tank conveys the mixed water phase material into the emulsification tank, and the oil phase tank conveys the mixed oil phase material into the emulsification tank. The emulsification tank emulsifies the water phase material and the oil phase material.

[0004] During the emulsification process of the emulsification tank, the material tends to adhere to the side wall of the pot, affecting the effect of the emulsification reaction. Summary of the Invention

[0005] In order to improve the emulsification effect of the emulsification system, the present application provides a sterile vacuum homogenizing emulsification system.

[0006] This application provides a sterile vacuum homogenizing emulsification system, which adopts the following technical solutions:

[0007] An aseptic vacuum homogenizing emulsification system comprises a support frame and a frame, wherein the support frame is provided with a water phase tank for processing a water phase material and an oil phase tank for processing an oil phase material, the frame is provided with an emulsification tank for emulsifying the water phase material and the oil phase material, the emulsification tank is provided with a first feed port and a second feed port, the first feed port is provided with a first conveying pipe connected to the discharge port of the water phase tank, the second feed port is provided with a second conveying pipe connected to the discharge port of the oil phase tank; the emulsification tank comprises a barrel, the barrel A cover body is provided above the cover body, a receiving groove is provided on the end surface of the cylinder facing the cover body, and a scraping mechanism for scraping the inner wall of the receiving groove is provided on the cover body; the scraping mechanism includes an operating rod rotatably connected to the cover body, an operating piece is provided on the outer circumferential surface of the operating rod, an operating strip is provided on the side of the operating piece away from the operating rod, a scraper is provided on the side of the operating strip away from the operating rod, and the end surface of the scraper away from the operating strip is in contact with the inner wall of the receiving groove, and a second driving component for driving the operating rod to rotate is provided on the cover body.

[0008] By adopting the technical scheme, first, the water-phase tank pre-mixes different water-phase materials, the oil-phase tank pre-mixes different oil-phase materials, the water-phase tank delivers the water-phase materials into the emulsification tank, and the oil-phase tank delivers the oil-phase materials into the emulsification tank. The emulsification tank mixes the water-phase materials and the oil-phase materials. The second driving assembly is started, and the second driving assembly drives the operating rod, the operating strip and the scraper to rotate together. The scraper scrapes the materials on the inner wall of the containing groove, so that the materials are not easily left on the inner wall of the containing groove, thereby avoiding that the residual materials affect the emulsification reaction time and effect.

[0009] Optionally, the operating pieces and the operating strips are both provided with two, the two operating pieces and the two operating strips are both distributed in a circumferential array around the axis of the operating rod, the scraper is provided with a plurality of, the plurality of scrapers are distributed in an array along the length direction of the operating strip, and the scrapers on the two operating strips are distributed in an interlaced manner.

[0010] By adopting the technical scheme, when the scraping structure is working, all the scrapers can scrape most of the area in the containing groove, thereby reducing the probability of the materials being left on the inner wall of the containing groove.

[0011] Optionally, the end face of the operating strip towards the operating rod is provided with a second stirring blade.

[0012] By adopting the technical scheme, the second driving assembly drives the operating rod, the operating piece and the operating strip to rotate together. The operating strip drives the scraper to scrape the materials on the inner wall of the containing groove, and at the same time, the operating strip drives the second stirring blade to rotate around the axis of the operating rod, thereby improving the flow speed of the materials in the containing groove and accelerating the mixing of the materials in the containing groove.

[0013] Optionally, the rack comprises a fixed frame located above the emulsification tank, a fixed cavity is formed in the fixed frame, a fixed cylinder is arranged outside the operating rod on the side of the cover body away from the barrel, and the fixed cylinder is inserted into the fixed frame on the side away from the cover body. The second driving assembly comprises a second motor arranged on the lower inner wall of the fixed cavity and a fixed block arranged on the inner wall of the fixed cylinder. The output shaft of the second motor is inserted into the fixed cylinder, a driving bevel gear is sleeved on the output shaft of the second motor, a fixed hole capable of allowing the operating rod to pass through is formed in the end face of the fixed block towards the cover body, a driven bevel gear is rotatably connected to the end face of the fixed block towards the driving bevel gear, and the driving bevel gear and the driven bevel gear are in meshing engagement.

[0014] By adopting the technical scheme, the second motor drives the driving bevel gear to rotate. Since the driving bevel gear and the driven bevel gear are in meshing engagement, the driving bevel gear drives the driven bevel gear and the operating rod to rotate together. Then, the operating rod drives the scraper and the second stirring blade to rotate, thereby realizing the scraping process and the stirring process.

[0015] Optionally, a stirring mechanism for stirring the material is provided on the cover body, an operating hole is provided on the end face of the operating rod, the stirring mechanism includes a stirring rod rotatably connected to the operating hole, a stirring assembly is provided on the stirring rod, the stirring assembly includes a sleeve mounted outside the stirring rod, a first stirring blade is provided on the outer circumferential surface of the sleeve, a first driving assembly for driving the stirring rod to rotate is provided on the cover body, and a locking assembly connecting the sleeve and the stirring rod is provided between the sleeve and the stirring rod.

[0016] By adopting the above technical solution, the first driving component drives the stirring rod to rotate, and the stirring rod drives the sleeve and the first stirring blade to rotate through the locking component, so that the first stirring blade rotates around the axis of the stirring rod, thereby increasing the flow rate of the material in the containing tank and accelerating the mixing of the material in the containing tank.

[0017] Optionally, a first protective component is provided outside the sleeve, and the first protective component includes a first folding tube that is sleeved on the outside of the stirring rod, one end of the first folding tube is connected to the outer circumferential surface of the sleeve, the first folding tube includes a first movable ring portion, and the inner wall of the first movable ring portion is provided with a first magnetic ring block, and the stirring rod is externally connected with a mounting ring block located above the sleeve, and the lower end face of the mounting ring block is provided with a second locking iron piece that can cooperate with the first magnetic ring block.

[0018] By adopting the above technical solution, the first folding tube is unfolded, the first magnetic ring block is matched with the second iron sheet, and the first folding tube is connected to the mounting ring block, so that the material is not easy to enter the first folding tube, and then the material is not easy to enter the gap between the stirring rod and the shaft sleeve, thereby avoiding material residue and affecting the emulsification effect; in addition, the first folding tube has a small displacement and vibration during the rotation of the stirring rod, which can avoid material residue on the outer surface of the first folding tube.

[0019] Optionally, a countersunk groove is provided on the outer circumferential surface of the sleeve, a through-hole is provided on the bottom wall of the countersunk groove, a locking groove aligned with the through-hole is provided on the outer circumferential surface of the stirring rod, and the locking assembly includes a locking bolt on the sleeve, and the rod portion of the locking bolt is threadedly connected to the locking groove; the inner diameter of the first movable ring portion is the same as the outer diameter of the mounting ring block, and the inner wall of the first movable ring portion is provided with a first locking block that can be inserted into the countersunk groove.

[0020] By adopting the technical scheme, the shaft sleeve is sleeved on the stirring rod, the locking groove is aligned with the through hole, the rod of the locking bolt is threaded into the locking groove through the counterbore groove and the through hole, the head of the locking bolt abuts against the bottom wall of the counterbore groove until the shaft sleeve is connected and fixed with the stirring rod; the head of the locking bolt is inserted into the counterbore groove, thereby hiding the head of the locking bolt; when the first locking block is inserted into the counterbore groove, the first folding pipe is blocked to the counterbore groove, the material in the emulsifying tank is not easy to enter into the counterbore groove, the probability of the material remaining in the counterbore groove is reduced, and the residual material does not affect the emulsification effect.

[0021] Optionally, the lower end surface of the shaft sleeve is provided with a first locking iron sheet matched with the first magnetic ring block.

[0022] By adopting the technical scheme, the first magnetic ring block is matched with the first locking iron sheet in the upper stirring assembly by unfolding the first folding pipe in the lower stirring assembly, a protection area is formed in the first folding pipe, and the material is not easy to enter into the first folding pipe.

[0023] Optionally, the inner wall of the first movable ring part is provided with a first ring hook part located above the first magnetic ring block, the first ring hook part is deformable, and the outer circumferential surface of the mounting ring block is provided with a first locking ring groove for inserting the first ring hook part.

[0024] By adopting the technical scheme, when the first ring hook part is inserted into the first locking ring groove, the first movable ring part is not easy to be separated from the mounting ring block, and the sealing performance between the first folding pipe and the mounting ring block is improved.

[0025] Optionally, the mounting ring block is provided with a first positioning assembly for locking the first ring hook portion, the inner circumferential surface of the mounting ring block is provided with a first storage ring groove located below the first locking ring groove, the lower inner wall of the first locking ring groove is provided with a first insertion hole connected to the first storage ring groove, the first positioning assembly includes two first positioning plates arranged on the lower inner wall of the first locking ring groove, a first positioning rod penetrated in the first positioning hole and a first insertion rod penetrated in the first insertion hole, the upper end of the first positioning rod is provided with a first positioning block located in the first locking ring groove, and a first card hole for inserting the first positioning block is provided below the first ring hook portion, and the first positioning rod is away from The cam is secured to the upper and lower portions of the first support rail and is secured to the lower portion of the first support rail when the cam is engaged with the first support rail.

[0026] By adopting the above technical solution, when the first folding tube is unfolded and connected to the mounting ring block, the first ring hook is inserted into the first locking ring groove, and at the same time, the first magnetic ring block drives the first insertion rod to rise, so that the first insertion rod drives the first force-bearing part to rotate, so that the first hook and the first positioning rod are no longer hooked and matched, and the first positioning spring drives the first positioning rod to rise, so that the first positioning block is inserted into the first clamping hole, thereby locking the first ring hook.

[0027] In summary, this application includes at least one of the following beneficial technical effects:

[0028] 1. First, the water phase tank pre-mixes different water phase materials, and the oil phase tank pre-mixes different oil phase materials. The water phase tank then transfers the water phase materials to the emulsification tank, and the oil phase tank then transfers the oil phase materials to the emulsification tank. The emulsification tank mixes the water phase materials with the oil phase materials. The second drive assembly is activated, driving the operating rod, operating bar, and scraper to rotate together. The scraper scrapes the material on the inner wall of the tank, preventing the material from remaining on the inner wall of the tank, thereby preventing the residual material from affecting the emulsification reaction time and effect.

[0029] 2. The first folding tube and the second folding tube are provided to prevent the material from entering the gap between the sleeve and the stirring rod and the locking groove, so that the emulsification effect is not easily reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0031] Figure 1 is a schematic structural diagram of Example 1;

[0032] Figure 2 It is along Figure 1 Cross-sectional view along line AA;

[0033] Figure 3 is a schematic diagram of the partial structure highlighting the first supporting member in Example 1;

[0034] Figure 4 It is along Figure 1 Cross-sectional view along the midline BB;

[0035] Figure 5 is a partial cross-sectional view highlighting the scraping mechanism in Example 1;

[0036] Figure 6 yes Figure 4 A magnified schematic diagram of part C;

[0037] Figure 7 This is a top view highlighting the emulsification tank structure in Example 2;

[0038] Figure 8 In Example 2, Figure 7 Cross-sectional view along the mid-DD line;

[0039] Figure 9 In Example 2, Figure 8 Enlarged view of part E in the middle;

[0040] Figure 10 In Example 2, Figure 7 Partial cross-sectional view along the FF line.

[0041] 1. Support frame; 11. Support plate; 111. First through hole; 112. Second through hole; 12. Support rod; 2. Frame; 21. Fixed platform; 22. Fixed rod; 23. Fixed column; 24. Fixed frame; 241. Fixed cavity; 25. Lifting member; 251. Lifting cylinder; 3. Water phase tank; 31. First support member; 311. First support seat; 312. First support block; 313. First support frame; 32. First tank body; 33. First shell; 331. First cavity; 34. First cover body; 341. First storage cavity; 35. First mixing mechanism; 351. First mixing disk; 352. First mixing blade; 353. First mixing motor; 4. Oil phase tank; 41. Second support member; 411. 4. Second support seat; 412. Second support block; 413. Second support frame; 42. Second tank body; 43. Second shell; 431. Second cavity; 44. Second cover; 441. Second storage cavity; 45. Second mixing mechanism; 451. Second mixing disk; 452. Second mixing blade; 453. Second mixing motor; 5. Emulsifying tank; 51. Cylinder body; 511. Receiving groove; 512. Rotating rod; 52. Cover; 521. Fixing cylinder; 5211. Fixing hole; 522. First delivery pipe; 523. Second delivery pipe; 53. Heating shell; 531. Heating cavity; 54. Insulation cover; 541. Insulation cavity; 6. Stirring mechanism; 61. Stirring rod; 611. Locking groove; 612. Mounting ring block; 6121 , groove; 6122, first locking ring groove; 6123, first storage ring groove; 6124, first positioning groove; 6125, first positioning hole; 6126, first jack; 613, support ring block; 62, stirring assembly; 621, shaft sleeve; 6211, countersunk groove; 6212, perforation; 6213, second locking ring groove; 622, first stirring blade; 623, locking assembly; 6231, locking bolt; 63, first drive assembly; 631, first motor; 64, grinding assembly; 641, stator; 642, rotor; 7, scraper mechanism; 711, operating rod; 712, operating piece; 713, operating bar; 714, scraper; 715, second drive assembly; 7151, fixing block; 7152, active bevel gear 7153, driven bevel gear; 7154, second motor; 716, second stirring blade; 8, first protective assembly; 81, first folding tube; 811, first folding portion; 812, first fixed ring portion; 813, first movable ring portion; 814, first ring hook portion; 8141, first clamping hole; 82, first magnetic ring block; 83, first locking iron sheet; 84, second locking iron sheet; 85, first storage iron sheet; 86, first positioning assembly; 861, first positioning plate; 862, first rotating shaft; 863, first rotating rod; 8631, first hook portion; 8632, first force-bearing portion; 864, first positioning rod; 865, first positioning block; 866, first positioning spring; 867, first insertion rod; 868, first stopper;869, first mounting spring; 87, second positioning assembly; 9, second protective assembly; 91, second folding tube; 911, second folding portion; 912, second fixed ring portion; 913, second movable ring portion; 914, second hook portion; 92, second magnetic ring block; 93, second storage iron sheet. DETAILED DESCRIPTION

[0042] The following is combined with Figure 1-10 This application is described in further detail.

[0043] Example 1

[0044] This embodiment discloses a sterile vacuum homogenizing emulsification system. Figure 1 , a sterile vacuum homogenizing emulsification system, including a support frame 1, a frame 2, an emulsification tank 5, a water phase tank 3 and an oil phase tank 4.

[0045] Reference Figure 1 The water phase tank 3 and the oil phase tank 4 are both arranged on the support frame 1. The water phase tank 3 is used to process the water phase material, and the oil phase module is used to process the oil phase material.

[0046] Reference Figure 1 and Figure 2 The support frame 1 includes a support plate 11 and support rods 12. Multiple support rods 12 are provided, each fixedly connected to the lower end surface of the support plate 11. The upper end surface of the support plate 11 defines a first through-hole 111 and a second through-hole 112. The first through-hole 111 allows the water phase tank 3 to pass through, and the second through-hole 112 allows the oil phase tank 4 to pass through.

[0047] Reference Figure 3 The water phase tank 3 is provided with three first support members 31. There are three first support members 31, and the three first support members 31 are distributed in a circular array around the vertical center axis of the water phase tank 3.

[0048] Reference Figure 3 The first support member 31 includes a first support seat 311, a first support block 312 and a first support frame 313. The first support block 312 is fixedly connected to the outer circumference of the water phase tank 3. The first support frame 313 is fixedly connected to the lower end surface of the first support block 312.

[0049] Reference Figure 3 The first support base 311 is fixedly connected to the upper end surface of the support plate 11. The first support base 311 has a first notch formed on one side along the circumference of the first through hole 111. The first notch is adapted to accommodate the first support frame 313. The first support frame 313 is inserted into the first notch, and the first support block 312 is supported on the first support base 311, thereby mounting the water phase tank 3 on the first support base 311.

[0050] Reference Figure 2 The water phase tank 3 includes a first tank body 32, a first shell 33, and a first cover 34. The first shell 33 is fixedly connected to the outer surface of the first tank body 32, and the first shell 33 surrounds the first tank body 32. The inner wall of the first shell 33 and the outer surface of the first tank body 32 enclose a first cavity 331. The first cavity 331 is filled with a heating medium. In this application, the heating medium can be hot water. In other embodiments, the heating medium can also be other heating media such as thermal oil.

[0051] Reference Figure 2 The first cover 34 is fixedly connected to the outer surface of the first tank 32 and surrounds the first tank 32. The first cover 34 is disposed outside the first shell 33. The outer surface of the first shell 33, the outer surface of the first tank 32, and the inner wall of the first cover 34 together form a first storage cavity 341. The first storage cavity 341 is filled with a thermal insulation material, which is made of aluminum silicate in this application.

[0052] Reference Figure 2 A first mixing mechanism 35 is provided at the bottom of the first tank body 32 , and the first mixing mechanism 35 is used to mix the aqueous phase material in the first tank body 32 .

[0053] Reference Figure 2 The first mixing mechanism 35 includes a first mixing disc 351, a first mixing blade 352, and a first mixing motor 353. The housing of the first mixing motor 353 is fixedly connected to the bottom of the first tank 32. The output shaft of the first mixing motor 353 is inserted into the first tank 32, and the axis of the output shaft of the first mixing motor 353 forms a certain angle with the vertical centerline of the first tank 32.

[0054] Reference Figure 2 The first mixing disk 351 is fixedly connected to the output shaft of the first mixing motor 353. A plurality of first mixing blades 352 are provided. Some of the first mixing blades 352 are fixedly connected to the end surface of the first mixing disk 351 away from the first mixing motor 353, while another portion of the first mixing blades 352 are fixedly connected to the end surface of the first mixing disk 351 close to the first mixing motor 353. The plurality of first mixing blades 352 are distributed in a circular array around the axis of the first mixing disk 351.

[0055] Reference Figure 3 The oil phase tank 4 is provided with three second support members 41. There are three second support members 41, and the three second support members 41 are distributed in a circular array around the vertical center axis of the oil phase tank 4.

[0056] Reference Figure 3The second support 41 comprises a second support seat 411, a second support block 412 and a second support frame 413. The second support block 412 is fixedly connected with the outer circumferential surface of the oil phase tank 4. The second support frame 413 is fixedly connected with the lower end surface of the second support block 412.

[0057] With reference to Figure 3 The second support seat 411 is fixedly connected with the upper end surface of the support plate 11. The second support seat 411 is provided with a second notch along one side of the second through hole 112 in the circumferential direction. The second notch can allow the second support frame 413 to be inserted. The second support frame 413 is inserted into the second notch, and the second support block 412 is supported on the second support seat 411, so that the oil phase tank 4 can be installed on the second support seat 411.

[0058] With reference to Figure 2 The oil phase tank 4 comprises a second tank body 42, a second shell 43 and a second cover body 44. The second shell 43 is fixedly connected to the outer surface of the second tank body 42, and the second shell 43 surrounds the second tank body 42. The inner wall of the second shell 43 and the outer surface of the second tank body 42 form a second cavity 431. The second cavity 431 is filled with a heating medium. In other embodiments, the heating medium can also be a heat-conducting oil or other heating medium.

[0059] With reference to Figure 2 The second cover body 44 is fixedly connected to the outer surface of the second tank body 42, and the second cover body 44 surrounds the second tank body 42. The second cover body 44 is arranged outside the second shell 43. The outer surface of the second shell 43, the outer surface of the second tank body 42 and the inner wall of the second cover body 44 form a second storage cavity 441. The second storage cavity 441 is filled with a heat preservation material, and the heat preservation material is made of aluminum silicate.

[0060] With reference to Figure 2 The bottom of the second tank body 42 is provided with a second mixing mechanism 45, which is used to mix the oil phase material in the first tank body 32.

[0061] With reference to Figure 2 The second mixing mechanism 45 comprises a second mixing disc 451, a second mixing blade 452 and a second mixing motor 453. The housing of the second mixing motor 453 is fixedly connected with the bottom of the second tank body 42, the output shaft of the second mixing motor 453 is inserted into the second tank body 42, and the axis of the output shaft of the second mixing motor 453 forms a certain angle with the vertical center line of the second tank body 42.

[0062] With reference to Figure 2The second mixing disk 451 is fixedly connected to the output shaft of the second mixing motor 453. A plurality of second mixing blades 452 are provided, each of which is fixedly connected to the end face of the second mixing disk 451 away from the second mixing motor 453. Some second mixing blades 452 are fixedly connected to the end face of the second mixing disk 451 away from the second mixing motor 453, while another portion of the second mixing blades 452 are fixedly connected to the end face of the first mixing disk 451 closer to the second mixing motor 453. The plurality of second mixing blades 452 are distributed in a circular array around the axis of the second mixing disk 451.

[0063] Reference Figure 4 The frame 2 includes a fixed platform 21, a fixed rod 22, a fixed column 23, a fixed frame 24 and a lifting member 25. A plurality of fixed rods 22 are provided, and the fixed rods 22 are all fixedly connected to the lower end surface of the fixed platform 21.

[0064] Reference Figure 4 There are two fixing columns 23, and both fixing columns 23 are fixedly connected to the upper end surface of the fixing platform 21. The fixing frame 24 is located above the fixing columns 23. A fixing cavity 241 is defined in the fixing frame 24.

[0065] Reference Figure 4 The lifting member 25 is disposed within the fixed column 23 and is used to drive the fixed column 23 to move upward and downward. The lifting member 25 includes a lifting cylinder 251. The lifting cylinder 251 is disposed within the fixed column 23. The piston rod of the lifting cylinder 251 passes through the fixed column 23 and is fixedly connected to the lower end surface of the fixed frame 24.

[0066] Reference Figure 4 The emulsification tank 5 is provided between the two fixed columns 23 and is used for mixing the oil phase and the water phase. The emulsification tank 5 comprises a barrel 51, a cover 52, a heating shell 53 and a heat-insulating cover 54.

[0067] Reference Figure 4 The upper end surface of the cylinder 51 is provided with a receiving groove 511. Two rotating rods 512 are fixedly connected to the outer circumference of the cylinder 51. The two rotating rods 512 are symmetrically distributed about the axis of the cylinder 51. The two rotating rods 512 are each rotatably connected to one cylinder 51.

[0068] Reference Figure 4 The heating shell 53 is fixedly connected to the outer surface of the cylinder 51 and surrounds the cylinder 51. The inner wall of the heating shell 53 and the outer surface of the cylinder 51 form a heating cavity 531. The heating cavity 531 is filled with a heating medium. In this application, the heating medium can be hot water. In other embodiments, the heating medium can also be other heating media such as thermal oil.

[0069] Reference Figure 4The heat-insulating cover 54 is fixedly connected to the outer surface of the cylinder 51 and surrounds the cylinder 51. The heat-insulating cover 54 is arranged outside the heating shell 53. The outer surface of the heating shell 53, the outer surface of the cylinder 51, and the inner wall of the heat-insulating cover 54 together form a heat-insulating cavity 541. The heat-insulating cavity 541 is filled with a heat-insulating material, which is made of aluminum silicate in this application.

[0070] Reference Figure 4 The cover 52 is used to seal the accommodating groove 511, and the cover 52 is fixedly connected to the bottom of the fixing frame 24. The lifting cylinder 251 drives the cover 52 to rise, so that the accommodating groove 511 can be opened.

[0071] Reference Figure 4 The end of the cover 52 away from the cylinder 51 is fixedly connected to the fixing cylinder 521. The end of the fixing cylinder 521 away from the cover 52 is inserted into the fixing cylinder 521. The end surface of the fixing block 7151 facing the cover 52 is provided with a fixing hole 5211.

[0072] Reference Figure 1 The cover 52 is provided with a first feed port and a second feed port. The first feed port is connected to a first delivery pipe 522, the end of which, away from the cover 52, is in communication with the discharge port of the water phase tank 3. The aqueous phase material mixed in the water phase tank 3 can be transported to the emulsification tank 5 through the first delivery pipe 522. The second feed port is connected to a second delivery pipe 523, the end of which, away from the cover 52, is in communication with the discharge port of the oil phase tank 4. The oil phase material mixed in the oil phase tank 4 can be transported to the emulsification tank 5 through the second delivery pipe 523.

[0073] Reference Figure 4 The cover 52 is provided with a stirring mechanism 6 and a scraping mechanism 7. The stirring mechanism 6 is used to mix the water phase material and the oil phase material in the containing tank 511.

[0074] Reference Figure 5 and Figure 6 The stirring mechanism 6 includes a stirring rod 61, a stirring assembly 62, and a first driving assembly 63. The stirring rod 61 is rotatably connected to the cover 52. Two stirring assemblies 62 are provided, and the two stirring assemblies 62 are distributed along the axis direction of the stirring rod 61. In other embodiments, the stirring assemblies 62 are provided in three, four, or other quantities.

[0075] Reference Figure 5 and Figure 6 The stirring assembly 62 includes a sleeve 621, a first stirring blade 622, and a locking assembly 623. The sleeve 621 is sleeved on the outside of the first stirring rod 61. The locking assembly 623 is used to connect the sleeve 621 to the first stirring rod 61. The locking assembly 623 includes a locking bolt 6231.

[0076] Reference Figure 6 The outer circumferential surface of the shaft sleeve 621 is provided with a countersunk groove 6211, and the bottom wall of the countersunk groove 6211 is provided with a through-hole 6212. A locking groove 611 is provided on the circumferential surface of the stirring rod 61. The locking groove 611 can be threadedly connected to a locking bolt 6231. The locking bolt 6231 passes through the countersunk groove 6211 and the through-hole 6212 and is threadedly connected to the locking groove 611, thereby securing the shaft sleeve 621 to the stirring rod 61.

[0077] Reference Figure 5 and Figure 6 The first stirring blades 622 are provided with two, and the two first stirring blades 622 are fixedly connected to the outer circumferential surface of the shaft sleeve 621, and the two first stirring blades 622 are circumferentially distributed around the axis of the shaft sleeve 621. The first stirring blades 622 are arranged obliquely. In other embodiments, the first stirring blades 622 are provided with three, four, or other numbers.

[0078] Reference Figure 4 and Figure 5 The first drive assembly 63 is disposed on the fixed cylinder 521 and is used to drive the first stirring rod 61 to rotate. The first drive assembly 63 includes a first motor 631, which is fixedly connected to the end surface of the fixed cylinder 521 away from the cover 52, and the output shaft of the first motor is fixedly connected to the stirring rod 61.

[0079] Reference Figure 4 and Figure 5 The scraping mechanism 7 is used to scrape the inner wall of the accommodating groove 511. The scraping mechanism 7 includes an operating rod 711, an operating piece 712, an operating bar 713, a scraping piece 714 and a second driving assembly 715.

[0080] Reference Figure 4 and Figure 5 An operating hole is provided at the end of the operating rod 711, and the operating rod 711 is sleeved outside the stirring rod 61. Two operating pieces 712 are provided, and both operating pieces 712 are fixedly connected to the outer circumferential surface of the operating rod 711, and the two operating pieces 712 are circumferentially distributed around the axis of the operating rod 711.

[0081] Reference Figure 4 and Figure 5 Two operating bars 713 are provided, each fixedly connected to an operating piece 712. The operating bars 713 are located on the side of the operating piece 712 away from the operating rod 711. Each operating bar 713 is provided with a plurality of scrapers 714, which are arranged in an array along the length of the operating bar 713. The scrapers 714 on the two operating bars 713 are arranged in an alternating manner. The end surface of the scraper 714 away from the operating bar 713 is in contact with the inner wall of the receiving groove 511.

[0082] Reference Figure 4and Figure 5 The end surface of the operating strip 713 facing the operating rod 711 is fixedly connected to a plurality of second stirring blades 716, and the plurality of second stirring blades 716 are along the length direction of the operating strip 713. The second stirring blades 716 are arranged obliquely.

[0083] Reference Figure 4 The second driving assembly 715 is disposed on the fixed cylinder 521 and is used to drive the operating rod 711 to rotate. The second driving assembly 715 includes a fixed block 7151, a driving bevel gear 7152, a driven bevel gear 7153 and a second motor 7154.

[0084] Reference Figure 4 The fixing block 7151 is fixedly connected to the inner wall of the fixing hole 5211. The fixing block 7151 is provided with a punching hole for the operating rod 711 and the stirring rod 61 to pass through. The driven bevel gear 7153 is rotatably connected to the upper end surface of the fixing block 7151 and is sleeved on the outside of the operating rod 711.

[0085] Reference Figure 4 The housing of the second motor 7154 is fixedly connected to the lower inner wall of the fixed cavity 241. The output shaft of the second motor 7154 is inserted into the fixed cylinder 521 and is located above the fixed block 7151. The driving bevel gear 7152 is sleeved onto the output shaft of the second motor 7154. The driving bevel gear 7152 and the driven bevel gear 7153 mesh with each other.

[0086] Reference Figure 3 and Figure 4 The bottom wall of the stirring rod 61 is provided with a grinding assembly 64 for grinding the material. The grinding assembly 64 includes a stator 641 and a rotor 642 .

[0087] Reference Figure 3 and Figure 4 The stator 641 is annular and has a discharge hole defined on its outer circumference. The ends of the two operating bars 713, distal from the operating piece 712, are fixedly connected to the circumference of the stator 641. The rotor 642 is rotatably connected to the lower end of the stirring rod 61. A feed trough is defined on its outer circumference and extends upward through the rotor 642.

[0088] Reference Figure 3 and Figure 4 The rotation speed of the stirring rod 61 is different from the rotation speed of the operating rod 711, that is, the rotation speed of the rotor 642 is different from the rotation speed of the stator 641. The stator 641 and the rotor 642 cooperate to grind the material between them, making the material particles smaller and accelerating the emulsification process.

[0089] The implementation principle of embodiment 1 is that the water phase material is first placed in the water phase tank 3, the first mixing motor 353 is started, the first mixing disc 351 and the first mixing blade 352 are rotated, the water phase material in the water phase tank 3 is mixed, and the mixed water phase material is transported to the emulsification tank 5 through the first feeding pipe; the oil phase material is placed in the oil phase tank 4, the second mixing motor 453 is started, the second mixing disc 451 and the second mixing blade 452 are rotated, the oil phase material in the oil phase tank 4 is mixed, and the mixed oil phase material is transported to the emulsification tank 5 through the second feeding pipe; secondly, the first motor 631 and the second motor 7154 on the emulsification tank 5 are both started, the first motor 631 drives the stirring rod 61 and the first stirring blade 622 to rotate, the second motor 7154 drives the operating rod 711, the operating sheet 712, the operating strip 713, the scraping sheet 714 and the second stirring blade 716 to rotate together, wherein the rotation of the first stirring blade 622 and the second stirring blade 716 can accelerate the mixing degree of the water phase material and the oil phase material in the emulsification tank 5, and the scraping sheet 714 scrapes the inner wall of the containing groove 511 to avoid material residues on the inner wall of the containing groove 511.

[0090] Embodiment 2

[0091] With reference to Figure 7 and Figure 8 , the difference between this embodiment and embodiment 1 is that the stirring rod 61 is sleeved with a mounting ring block 612, and the mounting ring block 612 is located above all the stirring assemblies 62. The shaft sleeve 621 is provided with a first protection assembly 8, which can connect the shaft sleeve 621 with the mounting ring block 612 above it, or connect the shaft sleeve 621 with the shaft sleeve 621 above it.

[0092] With reference to Figure 9 , the first protection assembly 8 includes a first folding pipe 81, a first magnetic ring block 82, a first locking iron sheet 83, a second locking iron sheet 84 and a first storage iron sheet 85. The first folding pipe 81 includes a first folding portion 811, a first fixed ring portion 812, a first movable ring portion 813 and a first ring hook portion 814 which are integrally formed.

[0093] With reference to Figure 9 , the first fixed ring portion 812 is located below the first folding portion 811. The first fixed ring portion 812 is fixedly connected with the outer circumferential surface of the shaft sleeve 621.

[0094] With reference to Figure 9The first movable ring portion 813 is located above the first folding portion 811. The inner diameters of the first fixed ring portion 812, the inner diameters of the first movable ring portion 813, the outer diameters of the mounting ring block 612, and the outer diameters of the shaft sleeve 621 are all identical. A first locking block is fixedly connected to the inner wall of the first movable ring portion 813. The first locking block can be inserted into the countersunk groove 6211. A groove 6121 is defined on the outer circumference of the mounting ring block 612, into which the first locking block can be inserted.

[0095] Reference Figure 9 , the first magnetic ring block 82 is fixedly connected to the inner circumference of the first movable ring portion 813. The first locking iron piece 83 is fixedly connected to the lower end surface of the mounting ring block 612. The first locking iron piece 83 can be magnetically matched with the first magnetic ring block 82. When the two are matched, the first folding portion 811 is in an unfolded state. The first receiving iron piece 85 is fixedly connected to the upper end surface of the shaft sleeve 621. The first receiving iron piece 85 can be magnetically matched with the first magnetic ring block 82. When the two are matched, the first folding portion 811 is in a folded state.

[0096] Reference Figure 9 The first hook portion 814 is fixedly connected to the inner circumference of the first movable ring portion 813, and the first hook portion 814 is located above the first magnetic ring block 82. The first hook portion 814 is deformable.

[0097] Reference Figure 9 A first locking ring groove 6122 is provided on the outer circumferential surface of the mounting ring block 612 , and the first locking ring groove 6122 can be used for the first ring hook portion 814 to be inserted.

[0098] Reference Figure 9 and Figure 10 The mounting ring block 612 is provided with three first positioning assemblies 86 , which are arranged in an array circumferentially around the axis of the mounting ring block 612 . The first positioning assemblies 86 are used to lock the first hook portion 814 .

[0099] Reference Figure 9 and Figure 10 The inner circumference of the mounting ring block 612 defines a first storage groove 6123, which is located below the first locking ring groove 6122. The lower inner wall of the first locking ring groove 6122 defines three first positioning grooves 6124, which are arranged in a circumferential array around the axis of the mounting ring block 612. A first positioning hole 6125 is defined in the bottom wall of the first positioning groove 6124. The lower inner wall of the mounting ring block 612 defines three first insertion holes 6126, which are arranged in a circumferential array around the axis of the mounting ring block 612.

[0100] Reference Figure 10The first positioning assembly 86 includes a first positioning plate 861 , a first rotating shaft 862 , a first rotating rod 863 , a first positioning rod 864 , a first positioning block 865 , a first positioning spring 866 and a first inserting rod 867 .

[0101] Reference Figure 9 and Figure 10 Two first positioning blocks 865 are provided, and both first positioning blocks 865 are fixedly connected to the lower inner wall of the first storage ring groove 6123. The first insertion hole 6126 and the first positioning hole 6125 are both located between the two first positioning blocks 865. The first rotating shaft 862 is rotatably connected between the two first positioning blocks 865.

[0102] Reference Figure 9 and Figure 10 The first positioning rod 864 is disposed within the first positioning hole 6125 and is located on the side of the first rotating shaft 862 facing the first positioning hole 6125. A first positioning block 865 is fixedly connected to the upper end surface of the first positioning rod 864. The edge of the first positioning block 865 away from the first positioning rod 864 is provided with a first chamfer. The first positioning block 865 is movable within the first positioning groove 6124 and the first locking ring groove 6122. A first locking hole 8141 is defined on the lower end surface of the first hook portion 814, into which the first positioning block 865 can be inserted.

[0103] Reference Figure 10 The first end of the first positioning rod 864, which is away from the first rotating rod 863, is fixedly connected to the first stopper 868. The first positioning spring 866 is in a compressed state, with one end of the first positioning spring 866 abutting against the lower inner wall of the first storage ring groove 6123, and the other end of the first positioning spring 866 abutting against the first stopper 868. The first positioning rod 864 has a first engaging groove defined on the side facing the first rotating rod 863.

[0104] Reference Figure 10 The first rotating rod 863 is sleeved outside the first rotating shaft 862. A first hook portion 8631 is provided on the side of the first rotating rod 863 facing the first positioning rod 864. The first hook portion 8631 is located below the first rotating shaft 862. The first hook portion 8631 can be inserted into the first slot and can be hooked and engaged with the first positioning rod 864. A first force-bearing portion 8632 is provided on the side of the first rotating rod 863 away from the first positioning rod 864. The first force-bearing portion 8632 is located below the second rotating shaft and directly above the first insertion hole 6126.

[0105] Reference Figure 10A first mounting spring 869 is provided between the two first positioning blocks 865. The first mounting spring 869 is in a compressed state. One end of the first mounting spring 869 abuts against the lower inner wall of the first storage ring groove 6123, and the other end of the first mounting spring 869 abuts against the first hook 8631.

[0106] Reference Figure 10 The first insertion rod 867 is inserted into the first insertion hole 6126 and is located on a side of the first rotating rod 863 away from the first positioning rod 864. The first force-bearing portion 8632 is located on the path of the first insertion rod 867 moving upward.

[0107] Reference Figure 9 and Figure 10 When the first locking iron piece 83 is magnetically engaged with the first magnetic ring block 82, the lower end surface of the first insertion rod 867 abuts against the upper end surface of the first magnetic ring block 82, the first hook portion 8631 is not hooked and engaged with the first positioning rod 864, the upper end surface of the first ring hook portion 814 abuts against the upper inner wall of the first locking ring groove 6122, and the first positioning block 865 is inserted into the first clamping hole 8141.

[0108] Reference Figure 9 The second locking iron piece 84 is fixedly connected to the lower end surface of the sleeve 621. When the first magnetic ring block 82 cooperates with the second locking spring piece, the first folding portion 811 is in an unfolded state.

[0109] Reference Figure 9 and Figure 10 A second locking ring groove 6213 is provided on the outer circumference of the shaft sleeve 621, and the first ring hook 814 can be inserted into the second locking ring groove 6213. A second storage ring groove is provided on the inner circumference of the mounting ring block 612, and the second storage ring groove is located below the second locking ring groove 6213. Three second positioning grooves are provided on the lower inner wall of the second locking ring groove 6213, and the three second positioning grooves are distributed in a circumferential array around the axis of the shaft sleeve 621. A second positioning hole is provided on the bottom wall of the second positioning groove. Three second jacks are provided on the lower inner wall of the mounting ring block 612, and the three second jacks are distributed in a circumferential array around the axis of the shaft sleeve 621.

[0110] Reference Figure 9 The shaft sleeve 621 is provided with three second positioning components 87 , which are arranged in a circumferential array around the axis of the shaft sleeve 621 . The second positioning components 87 are used to lock the second hook portion 914 .

[0111] Reference Figure 9The outer circumference of the sleeve 621 defines a second storage ring groove, located below the second locking ring groove 6213. The lower inner wall of the second storage ring groove defines three second positioning grooves, arranged circumferentially around the axis of the sleeve 621. A second positioning hole is defined in the bottom wall of the second positioning groove. The lower inner wall of the sleeve 621 defines three second insertion holes, arranged circumferentially around the axis of the sleeve 621.

[0112] Reference Figure 9 The second positioning assembly 87 includes a second positioning plate, a second rotating shaft, a second rotating rod, a second positioning rod, a second positioning block, a second positioning spring and a second insertion rod.

[0113] Reference Figure 9 Two second positioning blocks are provided, and both second positioning blocks are fixedly connected to the lower inner wall of the second storage ring groove. The second insertion hole and the second positioning hole are both located between the two second positioning blocks. The second rotating shaft is rotatably connected between the two second positioning blocks.

[0114] Reference Figure 9 The second positioning rod is inserted into the second positioning hole and is located on the side of the second rotating shaft facing the second positioning hole. The second positioning block is fixedly connected to the upper end surface of the second positioning rod. The edge of the second positioning block facing away from the second positioning rod is defined by a second chamfer. The second positioning block is movable within the second positioning groove and the second locking ring groove 6213. The lower end surface of the second ring hook 914 is defined by a second latching hole into which the second positioning block can be inserted.

[0115] Reference Figure 9 The second positioning rod has a second stopper fixedly connected to one end thereof away from the second rotating rod. The second positioning spring is in a compressed state, with one end of the second positioning spring abutting against the lower inner wall of the second storage ring groove, and the other end of the second positioning spring abutting against the second stopper. A second retaining groove is defined on the side of the second positioning rod facing the second rotating rod.

[0116] Reference Figure 9 The second rotating rod is sleeved outside the second rotating shaft. A second hook is provided on the side of the second rotating rod facing the second positioning rod. The second hook is located below the second rotating shaft. The second hook can be inserted into the second slot and can be hooked and engaged with the second positioning rod. The second rotating rod has a second force-bearing portion on the side away from the second positioning rod. The second force-bearing portion is located below the second rotating shaft and directly above the second insertion hole.

[0117] Reference Figure 9 A second mounting spring is provided between the two second positioning blocks. The second mounting spring is in a compressed state. One end of the second mounting spring abuts against the lower inner wall of the second storage ring groove, and the other end of the second mounting spring abuts against the second hook.

[0118] Reference Figure 9 The second insertion rod is inserted into the second insertion hole and is located on a side of the second rotating rod away from the second positioning rod. The second force-bearing portion is located on a path for the second insertion rod to move upward.

[0119] Reference Figure 9 When the second locking iron piece 84 is magnetically engaged with the second magnetic ring block 92, the lower end surface of the second insertion rod abuts against the upper end surface of the second magnetic ring block 92, the second hook portion is not hooked with the second positioning rod, the upper end surface of the second ring hook portion 914 abuts against the upper inner wall of the second locking ring groove 6213, and the second positioning block is inserted into the second card hole.

[0120] Reference Figure 9 The stirring rod 61 is connected to a support ring block 613, which is located between the rotor 642 and the shaft sleeve 621. The support ring block 613 is provided with a second protective assembly 9. The second protective assembly 9 includes a second folding tube 91, a second magnetic ring block 92 and a second receiving iron sheet 93.

[0121] Reference Figure 9 The second folding tube 91 includes an integrally formed second folding portion 911, a second fixed ring portion 912, a second movable ring portion 913, and a second hook portion 914. The second fixed ring portion 912 is located below the second folding portion 911. The second fixed ring portion 912 is fixedly connected to the outer circumference of the support ring block 613.

[0122] Reference Figure 9 The second movable ring portion 913 is located above the second folding portion 911. The inner diameters of the second fixed ring portion 912, the second movable ring portion 913, the outer diameters of the support ring block 613, and the outer diameters of the shaft sleeve 621 are all the same. A second locking block is fixedly connected to the inner wall of the second movable ring portion 913. The second locking block can be inserted into the countersunk groove 6211.

[0123] Reference Figure 9 When the second locking iron piece 84 is magnetically engaged with the second magnetic ring block 92, the upper end surface of the second ring hook 914 abuts against the upper inner wall of the second locking ring groove 6213, the lower end surface of the second insertion rod abuts against the lower inner wall of the second give way groove, and the second insertion block is inserted into the second card hole.

[0124] The implementation principle of Example 2 is as follows: the first folding tube 81 is driven to unfold, the first movable ring portion 813 is sheathed outside the mounting ring block 612, the first ring hook portion 814 is deformed and finally inserted into the first locking ring groove 6122, the first magnetic ring block 82 contacts the first insertion rod 867 during the upward movement, the first magnetic ring block 82 drives the first insertion rod 867 upward, the first insertion rod 867 drives the first force-bearing portion 8632 to move, causing the first rotating rod 863 and the first hook portion 8631 to rotate, thereby releasing the first hook portion 8631 from the first positioning rod 864, the first positioning spring 866 drives the first positioning rod 864 upward, causing the first positioning block 865 to insert into the first locking hole 8141, and the first positioning block 865 to lock the first ring hook portion 814. Similarly, the first folding tube 81 is connected to the shaft sleeve 621.

[0125] Unless otherwise defined, the technical or scientific terms used in this application shall have the usual meanings understood by persons of ordinary skill in the field to which this application belongs. The words "first", "second", "third" and similar terms used in the specification and claims of this application do not indicate any order, quantity or importance, but are only used to distinguish different components. Words such as "one" or "a" do not indicate a quantity limitation, but rather indicate the existence of at least one. Words such as "include" or "comprise" mean that the elements or objects appearing before "include" or "comprises" cover the elements or objects listed after "include" or "comprises" and their equivalents, and do not exclude other elements or objects. "Up", "down", "left", "right" and the like are only used to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0126] The above description is only a preferred embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent replacements, improvements, etc. made within the design concept of the present application should be included in the scope of protection of the present application.

Claims

1. A sterile vacuum homogenizing emulsification system, characterized by: The invention comprises a support frame (1) and a frame (2), wherein the support frame (1) is provided with a water phase tank (3) for processing a water phase material and an oil phase tank (4) for processing an oil phase material, and the frame (2) is provided with an emulsification tank (5) for emulsifying the water phase material and the oil phase material, and the emulsification tank (5) is provided with a first feed port and a second feed port, the first feed port is provided with a first conveying pipe (522) connected to the discharge port of the water phase tank (3), and the second feed port is provided with a second conveying pipe (523) connected to the discharge port of the oil phase tank (4); the emulsification tank (5) comprises a barrel (51), a cover (52) is provided above the barrel (51), and a container is provided on the end face of the barrel (51) facing the cover (52). A slot (511) is provided, and a scraping mechanism (7) for scraping the inner wall of the slot (511) is provided on the cover (52); the scraping mechanism (7) comprises an operating rod (711) rotatably connected to the cover (52); an operating piece (712) is provided on the outer circumferential surface of the operating rod (711); an operating bar (713) is provided on the side of the operating piece (712) away from the operating rod (711); a scraping blade (714) is provided on the side of the operating bar (713) away from the operating rod (711); an end surface of the scraping blade (714) away from the operating bar (713) is in contact with the inner wall of the slot (511); and a second driving component (715) for driving the operating rod (711) to rotate is provided on the cover (52); The cover (52) is provided with a stirring mechanism (6) for stirring the material, an operating hole is provided on the end surface of the operating rod (711), the stirring mechanism (6) includes a stirring rod (61) rotatably connected to the operating hole, the stirring rod (61) is provided with a stirring assembly (62), the stirring assembly (62) includes a shaft sleeve (621) sleeved outside the stirring rod (61), a first stirring blade (622) is provided on the outer circumferential surface of the shaft sleeve (621), a first driving assembly (63) for driving the stirring rod (61) to rotate is provided on the cover (52), and a locking assembly (623) is provided between the shaft sleeve (621) and the stirring rod (61) to connect the two; A first protective assembly (8) is provided outside the shaft sleeve (621), and the first protective assembly (8) includes a first folding tube (81) sleeved on the outside of the stirring rod (61), one end of the first folding tube (81) is connected to the outer circumferential surface of the shaft sleeve (621), and the first folding tube (81) includes a first movable ring portion (813), and the inner wall of the first movable ring portion (813) is provided with a first magnetic ring block (82), and the outer surface of the stirring rod (61) is connected to a mounting ring block (612) located above the shaft sleeve (621), and the lower end surface of the mounting ring block (612) is provided with a second locking iron piece (84) capable of cooperating with the first magnetic ring block (82); The outer circumferential surface of the shaft sleeve (621) is provided with a countersunk groove (6211), the bottom wall of the countersunk groove (6211) is provided with a through hole (6212), the outer circumferential surface of the stirring rod (61) is provided with a locking groove (611) aligned with the through hole (6212), the locking assembly (623) comprises a locking bolt (6231) on the shaft sleeve (621), the rod portion of the locking bolt (6231) is threadedly connected to the locking groove (611); the inner diameter of the first movable ring portion (813) is the same as the outer diameter of the mounting ring block (612), and the inner wall of the first movable ring portion (813) is provided with a first locking block capable of being inserted into the countersunk groove (6211); The lower end surface of the shaft sleeve (621) is provided with a first locking iron piece (83) that cooperates with the first magnetic ring block (82); The inner wall of the first movable ring portion (813) is provided with a first ring hook portion (814) located above the first magnetic ring block (82), and the first ring hook portion (814) is deformable. The outer circumferential surface of the mounting ring block (612) is provided with a first locking ring groove (6122) for the first ring hook portion (814) to be inserted; The mounting ring block (612) is provided with a first positioning assembly (86) for locking the first ring hook portion (814); the inner circumferential surface of the mounting ring block (612) is provided with a first storage ring groove (6123) located below the first locking ring groove (6122); the lower inner wall of the first locking ring groove (6122) is provided with a first insertion hole (6126) connected to the first storage ring groove (6123); the first positioning assembly (86) includes a first locking ring groove (6122) provided on the lower inner wall thereof. Two first positioning plates (861), a first positioning rod (864) passing through the first positioning hole (6125) and a first insertion rod (867) passing through the first insertion hole (6126), the upper end of the first positioning rod (864) is provided with a first positioning block (865) located in the first locking ring groove (6122), and a first card hole (8141) for inserting the first positioning block (865) is provided below the first ring hook (814), and the first positioning rod (864) is away from the first locking ring groove (6122). A first stopper (868) is provided on one side outside a rotating rod (863), a first positioning spring (866) is provided between the two first positioning plates (861), the first positioning spring (866) is in a compressed state, one end of the first positioning spring (866) abuts against the lower inner wall of the first storage ring groove (6123), the other end of the first positioning spring (866) abuts against the first stopper (868), and the first rotating rod (863) is rotatably connected between the two first positioning plates (861). ), the first rotating rod (863) is provided with a first hook portion (8631) on the side facing the first positioning rod (864) and capable of hooking and cooperating with the first positioning rod (864), the first rotating rod (863) is provided with a first force-bearing portion (8632) on the side away from the first positioning rod (864), the first force-bearing portion (8632) is located on the path of the upward movement of the first insertion rod (867), and the first insertion rod (867) can drive the first hook portion (8631) to unlock the first positioning rod (864).

2. The aseptic vacuum homogenizing emulsification system according to claim 1, characterized in that: There are two operating pieces (712) and two operating bars (713), and the two operating pieces (712) and the two operating bars (713) are arranged in a circumferential array around the axis of the operating rod (711). There are multiple scraping pieces (714), and the multiple scraping pieces (714) are arranged in an array along the length direction of the operating bar (713). The scraping pieces (714) on the two operating bars (713) are staggered.

3. The aseptic vacuum homogenizing emulsification system according to claim 1, characterized in that: The end surface of the operating strip (713) facing the operating rod (711) is provided with a second stirring blade (716).

4. The aseptic vacuum homogenizing emulsification system according to claim 1, characterized in that: The frame (2) includes a fixed frame (24) located above the emulsifying tank (5), a fixed cavity (241) is provided in the fixed frame (24), a fixed cylinder (521) is provided on the side of the cover (52) away from the cylinder (51) and is sleeved on the outside of the operating rod (711), and the side of the fixed cylinder (521) away from the cover (52) is inserted into the fixed frame (24); the second driving component (715) includes a second motor (7154) provided on the lower inner wall of the fixed cavity (241) and a fixed block (7154) provided on the inner wall of the fixed cylinder (521). 7151), the output shaft of the second motor (7154) is inserted into the fixed cylinder (521), the output shaft of the second motor (7154) is connected to the outer shell of the output shaft of the second motor (7154), the end surface of the fixed block (7151) facing the cover body (52) is provided with a fixing hole (5211) for allowing the operating rod (711) to pass through, the end surface of the fixed block (7151) facing the driving bevel gear (7152) is rotatably connected to the driven bevel gear (7153), and the driving bevel gear (7152) and the driven bevel gear (7153) are meshed with each other.

Citation Information

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