Spirulina beverage preparation equipment with multi-stage rotational flow homogenization

By utilizing the centrifugal force and shearing action of a multi-stage vortex homogenizer, combined with a temperature-controlled reflux mechanism, the problems of uneven cell dispersion and low cell wall breakage rate in spirulina beverage preparation have been solved. This has enabled the full release and uniform dispersion of nutrients in spirulina beverages, thereby improving nutrient absorption efficiency.

CN121016580APending Publication Date: 2025-11-28AGRI INST OF AGRI JIANGXI PROVINCE
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Patent Information

Application Number
CN202511226331.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

Existing spirulina beverage preparation equipment cannot effectively disperse spirulina cells during the mixing process, resulting in a low cell wall breakage rate and an inability to fully release effective active ingredients, thus affecting the absorption of nutrients.

Method used

The spirulina beverage preparation equipment employs a multi-stage swirling homogenization system, including a primary swirling component and a secondary swirling component. Through the cooperation of centrifugal force, shearing teeth, and stirring rods, it achieves multiple diversions, swirling, and impacts of spirulina cells. Combined with a temperature-controlled reflux mechanism, it controls the temperature and rotation speed to ensure the full release and uniform dispersion of effective ingredients.

Benefits of technology

This process achieves complete disruption of spirulina cells, full release and uniform dispersion of active ingredients, improves the absorption efficiency of nutrients in spirulina beverages, avoids raw material residues and microbial contamination, and ensures beverage quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a multi-stage rotational flow homogenizing spirulina beverage preparation device, and belongs to the field of beverage preparation, the multi-stage rotational flow homogenizing spirulina beverage preparation device comprises a raw material supporting mechanism, one side of the raw material supporting mechanism is provided with a multi-stage rotational flow mechanism, and the multi-stage rotational flow mechanism comprises a first-stage rotational flow assembly, a dispersion mechanism and a second-stage rotational flow assembly; a temperature control backflow mechanism is mounted on the surface of the second-stage rotational flow assembly, and the first-stage rotational flow assembly comprises two centrifugal cylinders; through cooperative use of the devices, raw materials, water and other materials of the spirulina beverage are conveyed into the corresponding centrifugal cylinders, and based on mutual cooperation of the multiple centrifugal cylinders and the shearing teeth, multi-time flow division, rotational flow and impact of the raw materials are achieved, multi-stage rotational flow homogenization is achieved, spirulina cells are broken, effective components are fully released, and the effect of the spirulina beverage is achieved. Meanwhile, various components in the beverage are uniformly dispersed, so that spirulina cells in the spirulina beverage are broken more thoroughly, and effective active components in the raw materials of the spirulina beverage are released more thoroughly.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of beverage preparation, in particular to a spirulina beverage preparation equipment with multi-stage rotational flow homogenization. BACKGROUND

[0002] Spirulina beverage is a beverage made of spirulina as raw material. Spirulina has the characteristics of high protein, low fat, low sugar and low cholesterol, and contains various vitamins, minerals, trace elements, chlorophyll, phycocyanin, polysaccharides and other nutrients. The amino acids contained in spirulina are complete. In addition, spirulina also contains important polysaccharides that can improve the body's immunity and have auxiliary effects on various diseases such as hypertension, heart disease, diabetes, etc. Due to the rich nutritional ingredients of spirulina, spirulina beverage has significant effects on regulating immunity, supplementing nutrition and auxiliary reducing blood lipids.

[0003] In the preparation process of spirulina beverage, spirulina beverage preparation equipment is needed for processing. In the existing spirulina beverage preparation equipment, the spirulina beverage raw materials are generally sent from the storage tank to the stirring tank by the conveying pump for preliminary mixing, and then the mixed materials enter the homogenization system. Under the high-speed rotation of the rotational flow homogenizer, the materials are divided, rotated and impacted to realize rotational flow homogenization, so that the spirulina cells are broken and the effective ingredients are released to obtain the final spirulina beverage which is then packaged.

[0004] However, in the existing spirulina beverage preparation equipment, only the stirring tank is used to stir and mix the spirulina beverage raw materials, which cannot uniformly disperse the cells of the spirulina beverage raw materials while keeping a low cell wall breaking rate. Therefore, the effective active ingredients in the spirulina beverage raw materials cannot be released more thoroughly, resulting in that the nutritional ingredients in the prepared spirulina beverage cannot be absorbed by the human body as much as possible, and the nutrition of the spirulina beverage is reduced.

[0005] Therefore, the present application provides a spirulina beverage preparation equipment with multi-stage rotational flow homogenization to solve the above problems. SUMMARY

[0006] The present application provides a spirulina beverage preparation equipment with multi-stage rotational flow homogenization to solve the above problems.

[0007] To achieve the above-mentioned purpose, the present application provides the following technical solution: a spirulina beverage preparation equipment with multi-stage rotational flow homogenization, comprising a raw material supporting mechanism, a multi-stage rotational flow mechanism is installed on one side of the raw material supporting mechanism, the multi-stage rotational flow mechanism comprises a first-stage rotational flow assembly, a dispersion mechanism and a second-stage rotational flow assembly, a temperature control backflow mechanism is installed on the surface of the second-stage rotational flow assembly; The primary cyclone assembly comprises two centrifugal cylinders, and the surfaces of the centrifugal cylinders are provided with moving rings corresponding to the centrifugal cylinders; The primary cyclone assembly further comprises arc-shaped plates fixedly connected to the upper surfaces of the moving rings in an annular array, the surfaces of the arc-shaped plates are attached with push rods, one end of the push rods is fixedly connected with a connecting piece, the outer arc surfaces of the arc-shaped plates are fixedly connected with sliding rods which are slidingly connected with the pretreatment box and the homogenizing box, and the surfaces of the sliding rods are fixedly connected with return springs which are fixedly connected with the pretreatment box and the homogenizing box.

[0008] As a preferred technical solution of the present application, the primary cyclone assembly further comprises a pretreatment box and a homogenizing box fixedly connected with the raw material supporting mechanism, the two centrifugal cylinders are rotatably connected to the interiors of the pretreatment box and the homogenizing box, the pretreatment box and the homogenizing box are fixedly connected, the inner arc surfaces of the moving rings are fixedly connected with cleaning tooth blocks in an annular array, and the opposite sides of every two adjacent cleaning tooth blocks are fixedly connected with cleaning blocks fixedly connected with the moving rings.

[0009] As a preferred technical solution of the present application, the dispersion mechanism comprises mounting rings fixedly connected to the interiors of the pretreatment box and the homogenizing box in a path array, the inner arc surfaces of the mounting rings are fixedly connected with shear teeth corresponding to the cleaning tooth blocks and the cleaning blocks, the hole diameters of the two centrifugal cylinders are different, and the connecting part of the pretreatment box and the homogenizing box is fixedly connected with a flow guide ring corresponding to one of the centrifugal cylinders.

[0010] As a preferred technical solution of the present application, the secondary cyclone assembly comprises a cyclone box fixedly connected to the lower surface of the homogenizing box, a driving rod rotatably connected to the interiors of the pretreatment box and the homogenizing box is rotatably connected to the interior of the cyclone box through a bearing seat, the connecting piece is fixedly connected with the driving rod, one end of the driving rod is fixedly connected with a driving motor fixedly connected with the pretreatment box through the pretreatment box, the surface of the driving rod is fixedly connected with a threaded rod rotatably connected to the interior of the cyclone box, and the surface of the threaded rod is fixedly connected with a stirring rod corresponding to the cyclone box.

[0011] As a preferred technical solution of the present application, the secondary cyclone assembly further comprises an extrusion plate slidingly connected to the interior of the cyclone box and slidingly connected with the threaded rod, two threaded blocks corresponding to the threaded rod are slidingly connected to the interior of the extrusion plate, the outer arc surfaces of the threaded blocks are fixedly connected with electric push rods fixedly connected with the extrusion plate, and the threaded blocks are threadedly connected with the threaded rod based on the pressure of the electric push rods.

[0012] As a preferred technical solution of the present application, the secondary cyclone assembly further comprises a limiting rod fixedly connected to the upper surface of the extrusion plate in a ring array and slidingly connected with the cyclone box body, the surface of the limiting rod is fixedly connected with a spring assembly fixedly connected with the cyclone box body, the surface of the extrusion plate is provided with a flow-through groove in a ring array and in communication with the cyclone box body, and the two centrifugal cylinders are fixedly connected with the driving rod.

[0013] As a preferred technical solution of the present application, the secondary cyclone assembly further comprises a connecting rod slidingly connected inside the flow-through groove and fixedly connected with the cyclone box body, one end of the connecting rod is fixedly connected with a sealing block corresponding to the flow-through groove, the extrusion plate corresponds to the stirring rod, the cyclone box body is in communication with the homogenizing box body, and the lower surface of the cyclone box body is fixedly connected with a discharge pipe in a ring array and on the surface of which an electromagnetic valve is mounted.

[0014] As a preferred technical solution of the present application, the temperature control reflux mechanism comprises a reflux pipeline fixedly connected to the lower surface of the cyclone box body, the surface of the reflux pipeline is fixedly connected with an electric valve, one end of the reflux pipeline is in communication with the pretreatment box body, the reflux pipeline corresponds to the other centrifugal cylinder, and the inner side wall of the cyclone box body is fixedly connected with a laser particle size analyzer connected with the electric valve through radio.

[0015] As a preferred technical solution of the present application, the temperature control reflux mechanism further comprises a cooling plate fixedly connected to the outer arc surfaces of the homogenizing box body and the cyclone box body in a ring array and internally provided with cooling liquid, the surface of the cooling plate is fixedly connected with a partition plate corresponding to the cooling plate, and the surface of the partition plate is fixedly connected with a limiting assembly fixedly connected with the raw material supporting mechanism.

[0016] As a preferred technical solution of the present application, the raw material supporting mechanism comprises a supporting frame fixedly connected with the limiting assembly, the surface of the supporting frame is fixedly connected with a plurality of storage tanks in communication in a rectangular array, the surfaces of two of the storage tanks are jointly fixedly connected with a feed pipe, and one end of the feed pipe is fixedly connected with a water pump with an output end in communication with the pretreatment box body.

[0017] Beneficial effects: based on the cooperation of the primary cyclone assembly and the secondary cyclone assembly, the water pump is started, and the raw materials of spirulina beverage and water and other materials are delivered to the corresponding centrifugal cylinders. Through the cooperation of the driving motor and the driving rod, the raw materials entering the centrifugal cylinder generate centrifugal force, so that the raw materials pass through the centrifugal cylinder and hit on the shear teeth. The raw materials are subjected to primary strong shearing and collision, and the cell wall is broken and the particles are refined. Based on the cooperation of the plurality of centrifugal cylinders and shear teeth, the raw materials are subjected to multiple diversion, cyclone and impact, realizing multi-stage cyclone homogenization, breaking spirulina cells, releasing effective components, and uniformly dispersing various components in the beverage, so that the spirulina cells in the spirulina beverage are broken more thoroughly, and the effective active ingredients in the spirulina beverage raw materials are released more thoroughly, so that the nutrients in the prepared spirulina beverage are absorbed by the human body as much as possible. Based on the cooperation of the primary cyclone assembly and the dispersion mechanism, when the driving rod rotates, the connecting piece and the pushing rod rotate inside the pretreatment box and the homogenization box, the arc-shaped plate and the moving ring move downward, the cleaning tooth block and the cleaning block clean the gap between the shear teeth and the shear teeth and the installation ring, reduce the residue of the raw materials, avoid the breeding of microorganisms due to the residue of the raw materials, and cooperate with the existing sterilization equipment to sterilize the existing microorganisms, so as to avoid the pollution of the subsequent spirulina beverage production batch, and through the cooperation of the reset spring and the sliding rod, after the pushing rod and the arc-shaped plate are separated, based on the elastic force of the reset spring, the cleaning tooth block and the cleaning block are automatically reset, facilitating the cleaning of the shear teeth for multiple times. Based on the structure of the secondary cyclone assembly, after the spirulina beverage raw materials are centrifuged and broken, they fall into the cyclone box, and the stirring rod is driven to rotate by the driving rod to stir the raw materials. At the same time, based on the electric push rod, the threaded blocks are close to each other, the threaded blocks are screwed with the threaded rods, so that the threaded blocks drive the extrusion plates to move inside the cyclone box, and the sealing blocks seal the flow-through grooves, so that the movement of the extrusion plates increases the pressure inside the cyclone box. Based on the pressure and the rotation of the stirring rod, the spirulina cells are broken, and the spirulina raw materials are mixed more uniformly. Based on the setting of temperature control reflux mechanism and other structures, in the preparation process of spirulina beverage through the first and second rotary flow assemblies, the temperature inside the homogenizing box and rotary flow box is controlled through the cooperation of cooling liquid and isolation plate, and the speed of the driving motor is controlled to adjust the speed of the driving rod and centrifugal cylinder, and the speed is adjusted synchronously according to the temperature condition, so that the temperature and speed of the spirulina beverage during preparation are more matched, and the friction between the centrifugal cylinder, cleaning tooth block, cleaning block and shear teeth due to too fast speed is avoided, which generates heat and affects the quality of the prepared spirulina beverage, and the temperature of the spirulina beverage raw material is controlled through different temperature control, so that the spirulina beverage is not too thick due to temperature and adheres to the inner wall of the homogenizing box, which affects the homogenization during the preparation of spirulina beverage; BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 Structure diagram of the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 2 Structure diagram of the multi-stage rotary flow homogenizing spirulina beverage preparation equipment from the second perspective; Figure 3 Structure diagram of the raw material supporting mechanism and the first rotary flow assembly in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 4 Structure diagram of the first rotary flow assembly in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 5 Structure diagram of the first rotary flow assembly and the second rotary flow assembly in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 6 Structure diagram of the centrifugal cylinder, cleaning tooth block and mounting ring in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 7 Structure diagram of the moving ring, arc plate and cleaning tooth block in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 8 Structure diagram of the second rotary flow assembly in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 9 Structure diagram of the second rotary flow assembly and temperature control reflux mechanism in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment; Figure 10 Structure diagram of the multi-stage rotary flow homogenizing spirulina beverage preparation equipment Figure 9 Enlarged structure diagram of position A in the multi-stage rotary flow homogenizing spirulina beverage preparation equipment.

[0019] In the drawings: 1, raw material support mechanism; 101, support frame; 102, storage tank; 103, feed pipe; 104, water pump; 2, primary cyclone assembly; 201, pretreatment box; 202, homogenization box; 203, centrifugal cylinder; 204, moving ring; 205, cleaning tooth block; 206, cleaning block; 207, arc plate; 208, push rod; 209, connecting piece; 210, sliding rod; 211, return spring; 3, secondary cyclone assembly; 301, flow box; 302, drive rod; 303, threaded rod; 304, stirring rod; 305, extrusion plate; 306, threaded block; 307, limiting rod; 308, spring assembly; 309, flow channel; 310, connecting rod; 311, sealing block; 312, discharge pipe; 313, drive motor; 4, temperature control reflux mechanism; 401, reflux pipeline; 402, electric valve; 403, laser particle size analyzer; 404, cooling plate; 405, isolation plate; 406, limiting assembly; 5, dispersion mechanism; 501, mounting ring; 502, shear tooth; 503, flow guide ring. DETAILED DESCRIPTION

[0020] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0021] The present application provides a multi-stage cyclone homogenization spirulina beverage preparation equipment, as shown in Figures 1-10 three embodiments are provided: Embodiment 1

[0022] The multi-stage cyclone homogenization spirulina beverage preparation equipment comprises a raw material support mechanism 1, a multi-stage cyclone mechanism is installed on one side of the raw material support mechanism 1, the multi-stage cyclone mechanism comprises a primary cyclone assembly 2, a dispersion mechanism 5 and a secondary cyclone assembly 3, and a temperature control reflux mechanism 4 is installed on the surface of the secondary cyclone assembly 3; The primary cyclone assembly 2 further comprises a pretreatment box 201 and a homogenization box 202 fixedly connected with the raw material support mechanism 1, two centrifugal cylinders 203 are respectively rotatably connected inside the pretreatment box 201 and the homogenization box 202, the pretreatment box 201 and the homogenization box 202 are fixedly connected, the inner arc surface of the moving ring 204 is fixedly connected with the cleaning tooth blocks 205 in an annular array, and each two adjacent cleaning tooth blocks 205 have a cleaning block 206 fixedly connected with the moving ring 204 on the opposite side; The pretreatment box 201 and the homogenization box 202 are used for grading and multi-stage homogenization treatment of spirulina beverage; The cleaning tooth block 205 and the cleaning block 206 are used for cleaning the shearing teeth 502 and the mounting ring 501. The primary cyclone assembly 2 comprises two centrifugal cylinders 203, and the surfaces of the centrifugal cylinders 203 are provided with moving rings 204 corresponding to the centrifugal cylinders 203; The centrifugal cylinder 203 is used for generating centrifugal force for the spirulina beverage raw material. The moving ring 204 is used for driving the cleaning tooth block 205 and the cleaning block 206. The primary cyclone assembly 2 further comprises arc-shaped plates 207 fixedly connected to the upper surfaces of the moving rings 204 in an annular array, the surfaces of the arc-shaped plates 207 are attached with push rods 208, one end of the plurality of push rods 208 is fixedly connected with a connecting piece 209, the outer arc surfaces of the plurality of arc-shaped plates 207 are fixedly connected with sliding rods 210 slidingly connected with the pretreatment box 201 and the homogenizing box 202, respectively, and the surfaces of the plurality of sliding rods 210 are fixedly connected with return springs 211 fixedly connected with the pretreatment box 201 and the homogenizing box 202, respectively. The arc-shaped plates 207 are used for moving the moving rings 204 by the push rods 208. The push rods 208 and the connecting piece 209 are used for driving the arc-shaped plates 207. The sliding rods 210 and the return springs 211 are used for automatically resetting the moving rings 204 after the push rods 208 are separated from the arc-shaped plates 207. The dispersion mechanism 5 comprises mounting rings 501 fixedly connected to the interiors of the pretreatment box 201 and the homogenizing box 202 in a path array, respectively, the inner arc surfaces of the mounting rings 501 are fixedly connected with shearing teeth 502 corresponding to the cleaning tooth block 205 and the cleaning block 206 in an annular array, the two centrifugal cylinders 203 have different hole diameters, and the connecting part of the pretreatment box 201 and the homogenizing box 202 is fixedly connected with a flow guide ring 503 corresponding to one of the centrifugal cylinders 203. The mounting rings 501 are used for mounting the shearing teeth 502. The shearing teeth 502 are used for crushing the cells of the spirulina beverage raw material impacting on the surfaces of the shearing teeth 502. The flow guide ring 503 is used for guiding the spirulina beverage raw material after the initial crushing to flow into the corresponding centrifugal cylinder 203. Specifically, after the spirulina beverage raw materials enter the centrifugal cylinder 203 in the pretreatment box 201, the secondary cyclone assembly 3 drives the centrifugal cylinder 203 to rotate, so that the spirulina beverage raw materials generate centrifugal force and pass through the centrifugal cylinder 203, so that the spirulina beverage raw materials impact on the shearing teeth 502 and are broken, at the same time, the secondary cyclone assembly 3 drives the connecting piece 209 to rotate, so that the push rod 208 slides on the surface of the arc-shaped plate 207, based on the shape of the arc-shaped plate 207, the push rod 208 pushes the arc-shaped plate 207 and the moving ring 204 to move downward, so that the cleaning tooth block 205 and the cleaning block 206 move on the surface of the shearing teeth 502 and the mounting ring 501 to clean the surface of the two, avoid the raw materials to breed microorganisms due to residues, and pollute the subsequent batches of spirulina beverage production; Through the cooperation of the reset spring 211 and the sliding rod 210, and the circular motion of the push rod 208, the push rod 208 is separated from the arc-shaped plate 207, and the moving ring 204 is no longer pushed, so that the moving ring 204 is automatically reset by the elastic force of the reset spring 211, and the cleaning tooth block 205 and the cleaning block 206 are also reset, which not only can clean the shearing teeth 502 for multiple times, but also facilitates the secondary driving of the cleaning tooth block 205 and the cleaning block 206. Based on the cooperation of the plurality of centrifugal cylinders 203 and the shearing teeth 502, the raw materials are subjected to multiple diversion, cyclone and impact, realizing multi-stage cyclone homogenization, breaking the spirulina cells, fully releasing the effective components, and uniformly dispersing various components in the beverage, so that the spirulina cells in the spirulina beverage are broken more completely, and the effective active components in the spirulina beverage raw materials are released more completely.

[0023] In the embodiment two, based on the embodiment one, further, the secondary cyclone assembly 3 comprises a cyclone box 301 fixedly connected to the lower surface of the homogenization box 202, a driving rod 302 rotatably connected to the inside of the pretreatment box 201 and the homogenization box 202 is rotatably connected in the inside of the cyclone box 301 through a bearing seat, the connecting piece 209 is fixedly connected with the driving rod 302, one end of the driving rod 302 penetrates the pretreatment box 201 and is fixedly connected with a driving motor 313 fixedly connected with the pretreatment box 201, the surface of the driving rod 302 is fixedly connected with a threaded rod 303 rotatably connected to the inside of the cyclone box 301, and the surface of the threaded rod 303 is fixedly connected with a stirring rod 304 corresponding to the cyclone box 301; The cyclone box 301 is used for further mixing of the broken raw materials. The driving rod 302 is used for driving the centrifugal cylinder 203 and the connecting piece 209. The driving motor 313 is used for driving the driving rod 302 to rotate. The threaded rod 303 is used to drive the stirring rod 304 to rotate. The stirring rod 304 is used to mix the broken spirulina beverage raw materials more fully. The secondary cyclone assembly 3 further comprises an extrusion plate 305 which is slidingly connected to the inside of the cyclone box 301 and slidingly connected with the threaded rod 303, the inside of the extrusion plate 305 slidingly connected with two threaded blocks 306 corresponding to the threaded rod 303, the outer arc surface of the threaded block 306 fixedly connected with the electric push rod fixedly connected with the extrusion plate 305, the threaded block 306 threadedly connected with the threaded rod 303 based on the pressure of the electric push rod; The extrusion plate 305 is used to adjust the pressure inside the cyclone box 301. The threaded block 306 is used to threadedly connect the extrusion plate 305 with the threaded rod 303. The electric push rod is used to drive the threaded block 306 to fit with the threaded rod 303. The secondary cyclone assembly 3 further comprises a limiting rod 307 which is fixedly connected to the upper surface of the extrusion plate 305 and slidingly connected with the cyclone box 301 in a ring array, the surface of the limiting rod 307 fixedly connected with the spring assembly 308 fixedly connected with the cyclone box 301, the surface of the extrusion plate 305 ring arrayed with the flow-through groove 309 which is in communication with the cyclone box 301, and the two centrifugal cylinders 203 fixedly connected with the drive rod 302; The limiting rod 307 and the spring assembly 308 are used to automatically reset the extrusion plate 305. The flow-through groove 309 is used for the broken raw materials to enter the cyclone box 301. The secondary cyclone assembly 3 further comprises a connecting rod 310 which is slidingly connected to the inside of the flow-through groove 309 and fixedly connected with the cyclone box 301, one end of the connecting rod 310 fixedly connected with the sealing block 311 corresponding to the flow-through groove 309, the extrusion plate 305 corresponding to the stirring rod 304, the cyclone box 301 in communication with the homogenizing box 202, and the lower surface of the cyclone box 301 fixedly connected with the discharge pipe 312 which is surface-mounted with the electromagnetic valve in a ring array; The connecting rod 310 is used to install the sealing block 311. The sealing block 311 is used to seal the extrusion plate 305. The discharge pipe 312 is used to discharge the spirulina beverage prepared by homogenizing mixing. Specifically, based on the circulation groove 309, the raw materials after multiple crushing are transported into the cyclone box 301, the threaded rod 303 and the stirring rod 304 are driven to rotate by the driving rod 302, the raw materials are stirred and mixed, the electric push rod is started to make the two corresponding threaded blocks 306 close to each other, the threaded blocks 306 are screwed with the threaded rod 303, the threaded rod 303 is rotated to drive the threaded blocks 306 and the extrusion plate 305 to move downward, the sealing block 311 is inserted into the inside of the circulation groove 309, the extrusion plate 305 is sealed, the pressure in the cyclone box 301 is increased, and based on the rotation of the stirring rod 304, the broken spirulina cells are mixed more uniformly. After the raw materials are mixed, the electric push rod is started to drive the threaded blocks 306 to reset, the extrusion plate 305 is no longer connected with the threaded rod 303, the extrusion plate 305 is automatically reset by the elastic force of the spring assembly 308, the sealing block 311 is separated from the circulation groove 309, and the raw materials enter the cyclone box 301 through the circulation groove 309.

[0024] In example three, based on example one and example two, further, the raw material supporting mechanism 1 comprises a support frame 101 fixedly connected with the limiting assembly 406, and the surface of the support frame 101 is fixedly connected with a plurality of communicating storage tanks 102 in a rectangular array, wherein the surfaces of two storage tanks 102 are fixedly connected with a feeding pipe 103, and one end of the feeding pipe 103 is fixedly connected with a water pump 104 with an output end communicating with the pretreatment box 201. The support frame 101 is used to support the storage tank 102 and the primary cyclone assembly 2. The storage tank 102 is used to store raw materials and water. The feeding pipe 103 is used to deliver various raw materials into the pretreatment box 201. The water pump 104 is used to drive the raw materials. The temperature control backflow mechanism 4 comprises a backflow pipeline 401 fixedly connected to the lower surface of the cyclone box 301, the surface of the backflow pipeline 401 is fixedly connected with an electric valve 402, one end of the backflow pipeline 401 communicates with the pretreatment box 201, the backflow pipeline 401 corresponds to another centrifugal cylinder 203, and the inner side wall of the cyclone box 301 is fixedly connected with a laser particle size analyzer 403 connected with the electric valve 402 by wireless radio; The backflow pipeline 401 is used to backflow the substandard beverage into the pretreatment box 201. The electric valve 402 is used to control the opening and closing of the backflow pipeline 401. The laser particle size analyzer 403 is used to detect the particle size of the spirulina beverage. The temperature control reflux mechanism 4 further comprises cooling plates 404 fixedly connected to the outer arc surfaces of the homogenizing box 202 and the cyclone box 301 respectively and internally provided with cooling liquid, the surfaces of the cooling plates 404 are fixedly connected with isolation plates 405 corresponding to the cooling plates 404, and the surfaces of the isolation plates 405 are fixedly connected with limiting assemblies 406 fixedly connected with the raw material supporting mechanism 1; The cooling plates 404 are used for controlling the temperature in the homogenizing box 202 and the cyclone box 301. The isolation plates 405 are used for avoiding the influence of the temperature of the external environment on the cooling plates 404. The limiting assemblies 406 are used for connecting the homogenizing box 202 and the cyclone box 301 with the supporting frame 101. The temperature in the homogenizing box 202 and the cyclone box 301 is controlled through the cooperation of the cooling liquid and the isolation plates 405, the speed of the driving motor 313 is controlled to adjust the speed of the driving rod 302 and the centrifugal cylinder 203, and the speed is adjusted synchronously according to the temperature condition, so that the temperature and the speed are more suitable for the preparation of the spirulina beverage, the excessive friction between the centrifugal cylinder 203, the cleaning tooth block 205, the cleaning block 206 and the shearing teeth 502 caused by the excessively high speed is avoided, and the quality of the prepared spirulina beverage is not affected.

[0025] The above is only the preferred specific implementation of the present application, but the protection scope of the present application is not limited to this, any person skilled in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.

Claims

1. A multi-stage vortex homogenizing spirulina beverage preparation device, characterized in that: It includes a raw material support mechanism (1), and a multi-stage swirling mechanism is installed on one side of the raw material support mechanism (1). The multi-stage swirling mechanism includes a first-stage swirling component (2), a dispersing mechanism (5), and a second-stage swirling component (3). A temperature control reflux mechanism (4) is installed on the surface of the second-stage swirling component (3). The first-stage cyclone assembly (2) includes two centrifuge tubes (203), and each centrifuge tube (203) has a moving ring (204) corresponding to the centrifuge tube (203) on its surface. The first-stage vortex assembly (2) also includes an arc-shaped plate (207) fixedly connected to the upper surface of the moving ring (204) in a ring array. The surface of the arc-shaped plate (207) is attached to a push rod (208). One end of several push rods (208) is fixedly connected to a connector (209). The outer arc surfaces of several arc-shaped plates (207) are respectively fixedly connected to sliding rods (210) that are slidably connected to the pretreatment box (201) and the homogenizing box (202). The surfaces of several sliding rods (210) are respectively fixedly connected to return springs (211) that are fixedly connected to the pretreatment box (201) and the homogenizing box (202).

2. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 1, characterized in that: The first-stage cyclone assembly (2) also includes a pretreatment box (201) and a homogenizing box (202) fixedly connected to the raw material support mechanism (1). The two centrifuge tubes (203) are respectively rotatably connected inside the pretreatment box (201) and the homogenizing box (202). The pretreatment box (201) and the homogenizing box (202) are fixedly connected. The inner arc surface of the moving ring (204) is fixedly connected with cleaning teeth (205) in a ring array. Each pair of adjacent cleaning teeth (205) is fixedly connected with a cleaning block (206) fixedly connected to the moving ring (204) on their opposite sides.

3. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 2, characterized in that: The dispersing mechanism (5) includes mounting rings (501) fixedly connected in a path array to the interior of the pretreatment box (201) and the homogenizing box (202). The inner arc surface of the mounting ring (501) is fixedly connected in a ring array with shearing teeth (502) corresponding to the cleaning teeth (205) and the cleaning block (206). The two centrifuge tubes (203) have different apertures. The connection between the pretreatment box (201) and the homogenizing box (202) is fixedly connected with a guide ring (503) corresponding to one of the centrifuge tubes (203).

4. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 2, characterized in that: The secondary cyclone assembly (3) includes a cyclone box (301) fixedly connected to the lower surface of the homogenizing box (202). Inside the cyclone box (301), a drive rod (302) is rotatably connected to the pretreatment box (201) and the homogenizing box (202) via a bearing seat. The connector (209) is fixedly connected to the drive rod (302). One end of the drive rod (302) passes through the pretreatment box (201) and is fixedly connected to a drive motor (313) fixedly connected to the pretreatment box (201). A threaded rod (303) is fixedly connected to the surface of the drive rod (302) and is rotatably connected to the inside of the cyclone box (301). A stirring rod (304) corresponding to the cyclone box (301) is fixedly connected to the surface of the threaded rod (303).

5. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 4, characterized in that: The secondary cyclone assembly (3) further includes an extrusion plate (305) slidably connected inside the cyclone box (301) and slidably connected to the threaded rod (303). The extrusion plate (305) has two threaded blocks (306) slidably connected inside, corresponding to the threaded rod (303). The outer arc surface of the threaded block (306) is fixedly connected to an electric push rod that is fixedly connected to the extrusion plate (305). The threaded block (306) is threadedly connected to the threaded rod (303) based on the pressure of the electric push rod.

6. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 5, characterized in that: The secondary cyclone assembly (3) further includes a limiting rod (307) fixedly connected in a ring array to the upper surface of the extrusion plate (305) and slidably connected to the cyclone box (301). The surface of the limiting rod (307) is fixedly connected to a spring assembly (308) fixedly connected to the cyclone box (301). The surface of the extrusion plate (305) is provided with a flow groove (309) in a ring array that communicates with the cyclone box (301). Both centrifuge cylinders (203) are fixedly connected to the drive rod (302).

7. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 6, characterized in that: The secondary cyclone assembly (3) further includes a connecting rod (310) that is slidably connected inside the flow channel (309) and fixedly connected to the cyclone box (301). One end of the connecting rod (310) is fixedly connected to a sealing block (311) corresponding to the flow channel (309). The extrusion plate (305) corresponds to the stirring rod (304). The cyclone box (301) is connected to the homogenizing box (202). The lower surface of the cyclone box (301) is fixedly connected in a ring array to a discharge pipe (312) with a surface-mounted solenoid valve.

8. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 4, characterized in that: The temperature-controlled reflux mechanism (4) includes a reflux pipe (401) fixedly connected to the lower surface of the cyclone chamber (301). An electric valve (402) is fixedly connected to the surface of the reflux pipe (401). One end of the reflux pipe (401) is connected to the pretreatment chamber (201). The reflux pipe (401) corresponds to another centrifuge (203). A laser particle size analyzer (403) is fixedly connected to the inner wall of the cyclone chamber (301) and is connected to the electric valve (402) via radio.

9. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 8, characterized in that: The temperature control reflux mechanism (4) further includes a cooling plate (404) arranged in a ring array and fixedly connected to the outer arc surface of the homogenizing box (202) and the vortex box (301) respectively, and the cooling plate (404) is provided with coolant inside. The surface of the cooling plate (404) is fixedly connected to an isolation plate (405) corresponding to the cooling plate (404), and the surface of the isolation plate (405) is fixedly connected to a limiting component (406) fixedly connected to the raw material support mechanism (1).

10. The multi-stage vortex homogenizing spirulina beverage preparation equipment according to claim 8, characterized in that: The raw material support mechanism (1) includes a support frame (101) fixedly connected to the limiting component (406). The surface of the support frame (101) is fixedly connected to a number of interconnected storage tanks (102) in a rectangular array. The surfaces of two of the storage tanks (102) are fixedly connected to a feed pipe (103). One end of the feed pipe (103) is fixedly connected to a water pump (104) whose output end is connected to the pretreatment box (201).