Enzymolysis device and enzymolysis method for food preparation

Through the design of the driving mechanism and splicing mechanism, the problem of uneven adhesion and mixing of materials in the enzymatic lysis device is solved, uniform stirring of materials in the tank and convenient connection of pipelines is achieved, and the enzymatic lysis effect and working efficiency are improved.

CN120366045APending Publication Date: 2025-07-25LANZHOU INST OF ANIMAL SCI & VETERINARY PHARMA OF CAAS
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510481104.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

In the existing enzymatic lysis device, the rotation of the paddle causes the material to adhere to the tank wall, causing waste and uneven mixing, affecting the enzymatic lysis effect.

Method used

The driving mechanism is used to drive the stirring and anti-attachment mechanism, including the mounting frame, motor, rotating shaft, slide barrel and scraper. The rotation and up and down movement of the stirring sheet are achieved through the coordination of the slide chute and the oblique chute, and the rapid connection and disassembly of the pipes are achieved by combining the splicing mechanism.

Benefits of technology

Effectively prevent materials from adhering to the tank wall, improve mixing uniformity, reduce waste, and improve enzymatic lysis efficiency, simplify the pipeline connection process, and reduce workload.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120366045A_ABST
    Figure CN120366045A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of enzymolysis devices, and discloses an enzymolysis device for food preparation and an enzymolysis method.The enzymolysis device comprises an enzymolysis tank, a driving mechanism is arranged at the top of the enzymolysis tank and provides driving force, and a stirring anti-adhesion mechanism is arranged outside the driving mechanism and used for preventing material blockage; the device comprises an enzymolysis tank and a stirring anti-adhesion mechanism, materials are prevented from being attached to the inner wall of the enzymolysis tank, a splicing mechanism is arranged at the bottom of the enzymolysis tank, the stirring anti-adhesion mechanism is driven by a driving mechanism to move, a pipeline is conveniently connected through the splicing mechanism, the driving mechanism comprises a mounting frame, and the bottom of the mounting frame is fixedly connected to the top of the enzymolysis tank. The stirring anti-adhesion mechanism is driven by the driving mechanism to operate, material waste can be avoided, stirring blades can be driven to rotate while the stirring blades and the mounting rod can be driven to move up and down, so that stirring in the vertical direction is increased, materials in the tank are mixed more uniformly, and the enzymolysis effect is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of enzymatic hydrolysis devices, and specifically to an enzymatic hydrolysis device and an enzymatic hydrolysis method for food preparation. Background Art

[0002] The stirring enzymatic hydrolysis tank is one of the enzymatic hydrolysis devices in the food preparation process. It is usually a fully enclosed vertical structure with heating, cooling, and heat preservation functions. Its inner surface is mirror-polished with a low roughness. The paddle forms are diverse, such as frame type, anchor type, propeller type, paddle type, turbine type, etc. The stirring speed can be selected as a fixed speed or configured with stepless speed regulation and frequency conversion speed regulation according to needs.

[0003] In the existing stirring enzymatic hydrolysis tank, only the paddle rotates in the tank. This leads to the adhesion of materials to the inner wall of the enzymatic hydrolysis tank during the rotation of the paddle, resulting in waste of materials. At the same time, the paddle can only rotate and cannot move in other directions, resulting in insufficient mixing and affecting the enzymatic hydrolysis effect. Summary of the Invention

[0004] Aiming at the deficiencies of the prior art, the present invention provides an enzymatic hydrolysis device and an enzymatic hydrolysis method for food preparation, which solve the problems that in the existing enzymatic hydrolysis device, only the paddle rotates, resulting in the inability to scrape off the materials attached to the tank wall, causing waste of materials, and the blades cannot move in other directions, resulting in affecting the enzymatic hydrolysis effect.

[0005] To achieve the above objectives, the present invention is realized through the following technical solutions: An enzymatic hydrolysis device for food preparation includes an enzymatic hydrolysis tank. A driving mechanism is provided at the top of the enzymatic hydrolysis tank, and the driving mechanism provides the driving force. A stirring anti-adhesion mechanism is arranged outside the driving mechanism, and the stirring anti-adhesion mechanism is used to prevent material blockage and at the same time prevent materials from adhering to the inner wall of the enzymatic hydrolysis tank. A splicing mechanism is arranged at the bottom of the enzymatic hydrolysis tank. The driving mechanism drives the stirring anti-adhesion mechanism to move, and the splicing mechanism is used to facilitate the connection of pipelines.

[0006] Preferably, the driving mechanism includes an installation frame. The bottom of the installation frame is fixedly connected to the top of the enzymatic hydrolysis tank. A motor is fixedly connected to the top of the installation frame. The output end of the motor is fixedly connected to a rotating shaft. Two sliding bars are fixedly connected to the outside of the rotating shaft. A sliding cylinder is sleeved on the outside of the rotating shaft. A dredging rod is fixedly connected to the bottom of the sliding cylinder. Two sliding grooves are opened inside the sliding cylinder. The sliding bars are slidably connected inside the sliding grooves. A fixed disk is fixedly connected to the top end of the outside of the sliding cylinder. A driving plate is fixedly connected to the bottom of the fixed disk. A fixed sleeve is fixedly connected to the top of the enzymatic hydrolysis tank. An inclined groove is opened inside the fixed sleeve. The driving plate is arranged inside the inclined groove.

[0007] Preferably, the stirring anti-adhesion mechanism includes a mounting sleeve and two scraping plates. The middle of the mounting sleeve is fixedly connected to the outside of the sliding cylinder. A plurality of stirring blades are fixedly connected to the outside of the mounting sleeve. One side of two of the stirring blades away from the mounting sleeve is fixedly connected to a mounting rod. The side of the mounting rod away from the sliding cylinder is fixedly connected to a fixing plate. A plurality of fixing cylinders are fixedly connected to the side of the fixing plate away from the mounting sleeve. A limiting ring is slidably connected inside the fixing cylinder. One side of the limiting ring away from the fixing plate is fixedly connected to a connecting rod. A pressing spring is fixedly connected between the inside of the connecting rod and the inside of the fixing cylinder. One side of a plurality of the connecting rods away from the fixing plate is respectively fixedly connected to one side of the two scraping plates close to the mounting sleeve.

[0008] Preferably, the splicing mechanism includes a valve. The top of the valve is fixedly connected to the bottom of the enzymolysis tank. A communicating pipe is fixedly connected to the bottom of the valve. A splicing sleeve is fixedly connected to the bottom of the communicating pipe. Two installation grooves are formed inside the bottom end of the splicing sleeve. Two engaging holes are formed in the bottom of the splicing sleeve. A splicing pipe is arranged inside the splicing sleeve. Two splicing blocks are fixedly connected to the outside of the splicing pipe. A return spring is arranged inside the splicing block. A limiting ring is slidably connected inside the splicing block. A clamping head is fixedly connected to the bottom of the limiting ring. The clamping head is engaged with the engaging hole. The splicing block is engaged with the inside of the installation groove.

[0009] Preferably, a stabilizing frame is sleeved outside the sliding cylinder. The outer periphery of the stabilizing frame is fixedly connected to the inside of the top end of the enzymolysis tank.

[0010] Preferably, one end of the connecting rod penetrates through the fixing cylinder, and the scraping plate is close to the inner wall of the enzymolysis tank.

[0011] Preferably, one end of the return spring is fixedly connected to the inside of the splicing block, and the other end of the return spring is fixedly connected to the inside of the clamping head.

[0012] Preferably, a heat preservation cavity is formed inside the enzymolysis tank, and a plurality of support legs are fixedly connected to the bottom end outside the enzymolysis tank.

[0013] Preferably, a feed pipe is fixedly connected to the top of the enzymolysis tank, and a sealing cover is threadedly connected to the top of the feed pipe.

[0014] An enzymolysis method for an enzymolysis device for food preparation, according to the enzymolysis device for food preparation as claimed in claim 1, characterized in that it includes the following steps:

[0015] Step 1: Wash, crush, grind, and perform solid-liquid metering on the material to be enzymolyzed, and put the processed material into the inside of the enzymolysis tank;

[0016] Step 2: Start the driving mechanism, and use the driving mechanism to drive the stirring anti-adhesion mechanism to move while stirring, so that the materials are fully mixed;

[0017] Step 3: Use the splicing mechanism to connect the pipeline, and control the opening and closing of the bottom end of the enzymolysis tank to facilitate the discharge of materials.

[0018] The present invention provides an enzymolysis device and an enzymolysis method for food preparation. It has the following beneficial effects:

[0019] 1. In the present invention, the driving mechanism drives the stirring anti-adhesion mechanism to operate, which can scrape the materials on the tank wall to avoid material waste. At the same time, when driving the stirring blades to rotate, it can also drive the stirring blades and the mounting rods to move up and down, thereby increasing the agitation in the vertical direction, making the materials in the tank more evenly mixed, and improving the enzymolysis effect.

[0020] 2. In the present invention, the splicing mechanism can facilitate the connection between the enzymolysis tank and the pipeline, thus facilitating the discharge of materials. Moreover, it is not necessary to use flanges and bolts for pipeline connection, and at the same time, the corrosion of bolts is avoided. Therefore, the efficiency of pipeline connection is improved, and the workload of the staff is reduced. Brief Description of the Drawings

[0021] Figure 1 is a three-dimensional view of the present invention;

[0022] Figure 2 is a structural schematic diagram of the stirring anti-adhesion mechanism in the present invention;

[0023] Figure 3 is a structural schematic diagram of the fixed sleeve in the present invention;

[0024] Figure 4 is a structural schematic diagram of the slide bar in the present invention;

[0025] Figure 5 is a structural schematic diagram of the dredging rod in the present invention;

[0026] Figure 6 is a structural schematic diagram of the limiting ring in the present invention;

[0027] Figure 7 is a structural schematic diagram of the installation groove in the present invention;

[0028] Figure 8 is a structural schematic diagram of the splicing block in the present invention.

[0029] Among them, 1. Enzymolysis tank; 2. Driving mechanism; 201. Mounting frame; 202. Motor; 203. Rotating shaft; 204. Slide bar; 205. Slide cylinder; 206. Cleaning rod; 207. Chute; 208. Fixed disk; 209. Driving plate; 210. Fixed sleeve; 211. Inclined groove; 212. Stabilizing frame; 3. Stirring anti-adhesion mechanism; 301. Mounting sleeve; 302. Stirring blade; 303. Mounting rod; 304. Fixed plate; 305. Fixed cylinder; 306. Limiting ring; 307. Connecting rod; 308. Tightening spring; 309. Scraper; 4. Splicing mechanism; 401. Valve; 402. Connecting pipe; 403. Splicing sleeve; 404. Mounting groove; 405. Engaging hole; 406. Splicing pipe; 407. Splicing block; 408. Return spring; 409. Limiting ring; 410. Clamping head; 5. Insulation cavity; 6. Support leg; 7. Feed pipe; 8. Sealing cover. Specific embodiments

[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0031] Please refer to the attached Figure 1 - attached Figure 8 , the embodiment of the present invention provides an enzymolysis device for food preparation, including an enzymolysis tank 1. A driving mechanism 2 is arranged at the top of the enzymolysis tank 1. The driving mechanism 2 provides a driving force. A stirring anti-adhesion mechanism 3 is arranged outside the driving mechanism 2. The stirring anti-adhesion mechanism 3 is used to prevent the material from being blocked and prevent the material from adhering to the inner wall of the enzymolysis tank 1. A splicing mechanism 4 is arranged at the bottom of the enzymolysis tank 1. The driving mechanism 2 is used to drive the stirring anti-adhesion mechanism 3 to move. The splicing mechanism 4 is used to facilitate the connection of pipelines. An insulation cavity 5 is opened inside the enzymolysis tank 1. A plurality of support legs 6 are fixedly connected to the outer bottom end of the enzymolysis tank 1. A feed pipe 7 is fixedly connected to the top of the enzymolysis tank 1. A sealing cover 8 is threadedly connected to the top of the feed pipe 7.

[0032] The driving mechanism 2 includes a mounting frame 201 which can provide a mounting position. The bottom of the mounting frame 201 is fixedly connected to the top of the enzymatic hydrolysis tank 1. A motor 202 is fixedly connected to the top of the mounting frame 201, and the motor 202 can provide power. The output end of the motor 202 is fixedly connected to a rotating shaft 203. Two sliding bars 204 are fixedly connected to the outside of the rotating shaft 203. A sliding cylinder 205 is sleeved on the outside of the rotating shaft 203. A dredging rod 206 is fixedly connected to the bottom of the sliding cylinder 205. Two sliding grooves 207 are formed inside the sliding cylinder 205. The rotating shaft 203 can rotate under the drive of the motor 202 and can drive the sliding cylinder 205 to rotate through the cooperation of the sliding bars 204 and the sliding grooves 207. The sliding bars 204 are slidably connected inside the sliding grooves 207. A fixed disk 208 is fixedly connected to the outer top of the sliding cylinder 205, and the fixed disk 208 provides a mounting position. A driving plate 209 is fixedly connected to the bottom of the fixed disk 208. A fixed sleeve 210 is fixedly connected to the top of the enzymatic hydrolysis tank 1. An inclined groove 211 is formed inside the fixed sleeve 210. The driving plate 209 is arranged inside the inclined groove 211. After the driving plate 209 rotates inside the inclined groove 211, it can drive the fixed disk 208 to move up and down. A stabilizing frame 212 is sleeved on the outside of the sliding cylinder 205, and the stabilizing frame 212 can maintain the movement stability of the sliding cylinder 205. The outer circumference of the stabilizing frame 212 is fixedly connected to the inner top of the enzymatic hydrolysis tank 1. Unscrew the sealing cover 8 from the top of the feed pipe 7, and put the material to be enzymatically hydrolyzed into the enzymatic hydrolysis tank 1 through the feed pipe 7. Start the motor 202. The output end of the motor 202 rotates to drive the rotating shaft 203 to rotate. After the rotating shaft 203 rotates, it drives the sliding bars 204 to rotate. After the sliding bars 204 rotate, they can drive the sliding cylinder 205 to rotate through the sliding grooves 207. After the sliding cylinder 205 rotates, it can drive the fixed disk 208 to rotate. The fixed disk 208 rotates to drive the driving plate 209 to rotate. Since the driving plate 209 is arranged inside the inclined groove 211 inside the fixed sleeve 210, when the driving plate 209 rotates from the lower part of the inclined groove 211 to the upper part of the inclined groove 211, it can drive the driving plate 209 and the fixed disk 208 to move upward. The fixed disk 208 drives the sliding cylinder 205 to move upward. After the sliding cylinder 205 moves upward, it drives the dredging rod 206 to move upward. When the driving plate 209 moves from the upper part to the lower part of the inclined groove 211, it will drive the sliding cylinder 205 to move downward, and then drive the dredging rod 206 to move downward. Therefore, the sliding cylinder 205 can drive the stirring anti-adhesion mechanism 3 to rotate and can also drive the stirring anti-adhesion mechanism 3 to move up and down. When the dredging rod 206 moves up and down, it can play a role in dredging.

[0033] The stirring anti - adhesion mechanism 3 includes a mounting sleeve 301 and two scraping plates 309. The middle of the mounting sleeve 301 is fixedly connected to the outside of the sliding cylinder 205. A plurality of stirring vanes 302 are fixedly connected to the outside of the mounting sleeve 301. The mounting sleeve 301 provides a mounting position, and the stirring vanes 302 can stir the materials inside the enzymolysis tank 1 and also play a mounting role. One side of two stirring vanes 302 away from the mounting sleeve 301 is fixedly connected with a mounting rod 303. The mounting rod 303 provides a mounting position. One side of the mounting rod 303 away from the sliding cylinder 205 is fixedly connected with a fixing plate 304. The fixing plate 304 provides a mounting position. One side of the fixing plate 304 away from the mounting sleeve 301 is fixedly connected with a plurality of fixing cylinders 305. The fixing cylinders 305 provide a mounting space. A limiting ring 306 is slidably connected inside the fixing cylinder 305. One side of the limiting ring 306 away from the fixing plate 304 is fixedly connected with a connecting rod 307. A pressing spring 308 is fixedly connected between the inside of the connecting rod 307 and the inside of the fixing cylinder 305. One side of a plurality of connecting rods 307 away from the fixing plate 304 is respectively fixedly connected to one side of two scraping plates 309 close to the mounting sleeve 301. One end of the connecting rod 307 penetrates through the fixing cylinder 305, and the scraping plate 309 is closely attached to the inner wall of the enzymolysis tank 1. When the sliding cylinder 205 rotates, it can drive the mounting sleeve 301 to rotate. After the mounting sleeve 301 rotates, it can drive the stirring vanes 302 to rotate. After the stirring vanes 302 rotate, they can stir the raw materials inside the enzymolysis tank 1. When the stirring vanes 302 rotate, they can drive the mounting rod 303 to rotate. After the mounting rod 303 rotates, it can drive the fixing plate 304 to rotate. After the fixing plate 304 rotates, it can drive the fixing cylinder 305, the limiting ring 306, the connecting rod 307 and the pressing spring 308 to rotate, and then drive the scraping plate 309 to rotate. By the rotation of the scraping plate 309, the inner wall of the enzymolysis tank 1 can be cleaned, thus preventing raw materials from adhering to the enzymolysis tank 1 and affecting the enzymolysis effect.

[0034] The splicing mechanism 4 includes a valve 401 which can control the outflow of materials. The top of the valve 401 is fixedly connected to the bottom of the enzymolysis tank 1. The bottom of the valve 401 is fixedly connected with a communicating pipe 402 which can play a connecting role. The bottom of the communicating pipe 402 is fixedly connected with a splicing sleeve 403. The inner bottom end of the splicing sleeve 403 is provided with two installation grooves 404. The bottom of the splicing sleeve 403 is provided with two engaging holes 405. A splicing pipe 406 is arranged inside the splicing sleeve 403. Two splicing blocks 407 are fixedly connected to the outside of the splicing pipe 406. After the splicing blocks 407 are placed into the installation grooves 404, they can connect the pipes. A return spring 408 is arranged inside the splicing blocks 407. A limiting ring 409 is slidably connected inside the splicing blocks 407 which can play a limiting role. The bottom of the limiting ring 409 is fixedly connected with a clamping head 410 which is engaged with the engaging hole 405. The engagement of the clamping head 410 and the engaging hole 405 can prevent the splicing pipe 406 from reversing. The splicing blocks 407 are engaged with the inside of the installation grooves 404. One end of the return spring 408 is fixedly connected inside the splicing blocks 407, and the other end of the return spring 408 is fixedly connected inside the clamping head 410. When connecting the pipes, first align the two splicing blocks 407 with the openings of the two installation grooves 404 and insert the splicing blocks 407 into the openings of the installation grooves 404. At this time, rotate the splicing pipe 406 which drives the splicing blocks 407 to rotate, so as to rotate the splicing blocks 407 into the installation grooves 404. When the splicing blocks 407 rotate into the installation grooves 404, they can squeeze the clamping head 410, so that the clamping head 410 drives the limiting ring 409 to move into the return spring 408 and compress the return spring 408. When the clamping head 410 rotates into the engaging hole 405, the return spring 408 pushes the clamping head 410 to move downward, so as to realize the engagement of the clamping head 410 and the engaging hole 405. When disassembling the splicing pipe 406, rotate the splicing pipe 406 in the reverse direction, so as to squeeze the clamping head 410 into the splicing blocks 407 again, thus releasing the engagement of the clamping head 410 and the engaging hole 405. When the splicing blocks 407 move to the notch of the installation grooves 404, the splicing blocks 407 can be pulled out from the inner notch of the installation grooves 404, and then the disassembly of the splicing pipe 406 can be realized.

[0035] An enzymolysis method for an enzymolysis device used in food preparation includes the following steps:

[0036] Step 1: Clean, crush, grind, and measure the solid-liquid ratio of the materials to be enzymolyzed, and put the processed materials into the enzymolysis tank 1.

[0037] Step 2: Start the driving mechanism 2, and use the driving mechanism 2 to drive the stirring anti-adhesion mechanism 3 to stir and move at the same time, so that the materials are fully mixed.

[0038] Step 3: Use the splicing mechanism 4 to connect the pipelines and control the opening and closing of the bottom end of the enzymatic hydrolysis tank 1 to facilitate the discharge of materials.

[0039] Working principle: Unscrew the sealing cover 8 from the top of the feed pipe 7, put the material to be enzymatically hydrolyzed into the interior of the enzymatic hydrolysis tank 1 through the feed pipe 7, start the motor 202, the output end of the motor 202 rotates to drive the rotating shaft 203 to rotate. After the rotating shaft 203 rotates, it drives the slide bar 204 to rotate. After the slide bar 204 rotates, it can drive the sliding cylinder 205 to rotate through the sliding groove 207. After the sliding cylinder 205 rotates, it can drive the fixed disk 208 to rotate. The fixed disk 208 rotates to drive the driving plate 209 to rotate. Since the driving plate 209 is arranged in the inclined groove 211 inside the fixed sleeve 210, when the driving plate 209 rotates from the lower part of the inclined groove 211 to the upper part of the inclined groove 211, it can drive the driving plate 209 and the fixed disk 208 to move upward. The fixed disk 208 drives the sliding cylinder 205 to move upward. After the sliding cylinder 205 moves upward, it drives the dredging rod 206 to move upward. When the driving plate 209 moves from the upper part to the lower part of the inclined groove 211, it will drive the sliding cylinder 205 to move downward, and then drive the dredging rod 206 to move downward. Therefore, the sliding cylinder 205 can drive the stirring anti-adhesion mechanism 3 to rotate and also drive the stirring anti-adhesion mechanism 3 to move up and down. When the dredging rod 206 moves up and down, it can play a dredging role;

[0040] When the sliding cylinder 205 rotates, it can drive the mounting sleeve 301 to rotate. After the mounting sleeve 301 rotates, it can drive the stirring piece 302 to rotate. After the stirring piece 302 rotates, it can stir the raw materials inside the enzymatic hydrolysis tank 1. When the stirring piece 302 rotates, it can drive the mounting rod 303 to rotate. After the mounting rod 303 rotates, it can drive the fixing plate 304 to rotate. After the fixing plate 304 rotates, it can drive the fixed cylinder 305, the limiting ring 306, the connecting rod 307 and the pressing spring 308 to rotate, and then drive the scraping plate 309 to rotate. Through the rotation of the scraping plate 309, the inner wall of the enzymatic hydrolysis tank 1 can be cleaned, so as to prevent the raw materials from adhering to the enzymatic hydrolysis tank 1 and affecting the enzymatic hydrolysis effect;

[0041] When connecting the pipes, first align the two splicing blocks 407 with the openings of the two installation grooves 404, and insert the splicing block 407 into the opening of the installation groove 404. At this time, rotate the splicing pipe 406, and the splicing pipe 406 drives the splicing block 407 to rotate, so as to rotate the splicing block 407 into the interior of the installation groove 404. When the splicing block 407 rotates into the interior of the installation groove 404, it can squeeze the chuck 410, so that the chuck 410 drives the limiting ring 409 to move into the interior of the return spring 408 and compress the return spring 408. When the chuck 410 rotates into the engaging hole 405, under the action of the return spring 408, it pushes the chuck 410 to move downward, so as to realize the engagement between the chuck 410 and the engaging hole 405. When disassembling the splicing pipe 406, rotate the splicing pipe 406 in the reverse direction, so that the chuck 410 can be squeezed into the interior of the splicing block 407 again, thereby releasing the engagement between the chuck 410 and the engaging hole 405. When the splicing block 407 moves to the notch of the installation groove 404, the splicing block 407 can be pulled out from the inner notch of the installation groove 404, and then the disassembly of the splicing pipe 406 can be realized.

[0042] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An enzymatic hydrolysis device for food preparation, comprising an enzymatic hydrolysis tank (1), characterized in that, A driving mechanism (2) is provided at the top of the enzymatic hydrolysis tank (1). The driving mechanism (2) provides the driving force. A stirring anti-adhesion mechanism (3) is provided outside the driving mechanism (2). The stirring anti-adhesion mechanism (3) is used to prevent the material from being blocked and at the same time prevent the material from adhering to the inner wall of the enzymatic hydrolysis tank (1). A splicing mechanism (4) is provided at the bottom of the enzymatic hydrolysis tank (1). The driving mechanism (2) is used to drive the stirring anti-adhesion mechanism (3) to move, and the splicing mechanism (4) is used to conveniently connect the pipeline.

2. The enzymatic hydrolysis device for food preparation according to claim 1, characterized in that, The driving mechanism (2) includes a mounting frame (201). The bottom of the mounting frame (201) is fixedly connected to the top of the enzymatic hydrolysis tank (1). A motor (202) is fixedly connected to the top of the mounting frame (201). The output end of the motor (202) is fixedly connected to a rotating shaft (203). Two sliding strips (204) are fixedly connected to the outside of the rotating shaft (203). A sliding cylinder (205) is sleeved on the outside of the rotating shaft (203). A dredging rod (206) is fixedly connected to the bottom of the sliding cylinder (205). Two sliding grooves (207) are opened on the inner side of the sliding cylinder (205). The sliding strips (204) are slidably connected to the inside of the sliding grooves (207). A fixed disk (208) is fixedly connected to the top end of the outside of the sliding cylinder (205). A driving plate (209) is fixedly connected to the bottom of the fixed disk (208). A fixed sleeve (210) is fixedly connected to the top of the enzymatic hydrolysis tank (1). An inclined groove (211) is opened in the fixed sleeve (210). The driving plate (209) is arranged inside the inclined groove (211).

3. The enzymatic hydrolysis device for food preparation according to claim 2, characterized in that, The stirring anti-adhesion mechanism (3) includes a mounting sleeve (301) and two scraping plates (309). The middle of the mounting sleeve (301) is fixedly connected to the outside of the sliding cylinder (205). A plurality of stirring vanes (302) are fixedly connected to the outside of the mounting sleeve (301). Mounting rods (303) are fixedly connected to one side of two of the stirring vanes (302) away from the mounting sleeve (301). A fixing plate (304) is fixedly connected to the side of the mounting rod (303) away from the sliding cylinder (205). A plurality of fixing cylinders (305) are fixedly connected to the side of the fixing plate (304) away from the mounting sleeve (301). A limiting ring (306) is slidably connected to the inside of the fixing cylinder (305). A connecting rod (307) is fixedly connected to the side of the limiting ring (306) away from the fixing plate (304). A pressing spring (308) is fixedly connected between the inside of the connecting rod (307) and the inside of the fixing cylinder (305). The sides of the plurality of connecting rods (307) away from the fixing plate (304) are respectively fixedly connected to one side of the two scraping plates (309) close to the mounting sleeve (301).

4. The enzymatic hydrolysis device for food preparation according to claim 1, wherein The splicing mechanism (4) includes a valve (401). The top of the valve (401) is fixedly connected to the bottom of the enzymolysis tank (1). The bottom of the valve (401) is fixedly connected to a connecting pipe (402). The bottom of the connecting pipe (402) is fixedly connected to a splicing sleeve (403). Two installation grooves (404) are opened inside the bottom end of the splicing sleeve (403). Two engaging holes (405) are opened at the bottom of the splicing sleeve (403). A splicing pipe (406) is arranged inside the splicing sleeve (403). Two splicing blocks (407) are fixedly connected to the outer part of the splicing pipe (406). A return spring (408) is arranged inside the splicing block (407). A limiting ring (409) is slidably connected inside the splicing block (407). The bottom of the limiting ring (409) is fixedly connected to a clamping head (410). The clamping head (410) is engaged with the engaging hole (405). The splicing block (407) is engaged with the inside of the installation groove (404).

5. The enzymatic hydrolysis device for food preparation according to claim 2, wherein, A stabilizing frame (212) is sleeved outside the sliding cylinder (205). The outer circumference of the stabilizing frame (212) is fixedly connected to the inside of the top end of the enzymolysis tank (1).

6. The enzymatic hydrolysis device for food preparation according to claim 3, characterized in that, One end of the connecting rod (307) penetrates through the fixed cylinder (305). The scraping plate (309) is closely attached to the inner wall of the enzymolysis tank (1).

7. The enzymatic hydrolysis device for food preparation according to claim 4, characterized in that, One end of the return spring (408) is fixedly connected to the inside of the splicing block (407). The other end of the return spring (408) is fixedly connected to the inside of the clamping head (410).

8. An enzymatic hydrolysis device for food preparation according to claim 1, characterized in that, A heat preservation cavity (5) is opened inside the enzymolysis tank (1). A plurality of support legs (6) are fixedly connected to the outer bottom end of the enzymolysis tank (1).

9. The enzymatic hydrolysis device for food preparation according to claim 1, characterized in that, A feed pipe (7) is fixedly connected to the top of the enzymolysis tank (1). A sealing cover (8) is threadedly connected to the top of the feed pipe (7).

10. A method for enzymatic hydrolysis of an enzymatic hydrolysis device for food preparation, according to the enzymatic hydrolysis device for food preparation described in claim 1, characterized in that, It includes the following steps: Step 1: Clean, crush, grind, and perform solid-liquid metering on the material to be enzymolyzed, and put the processed material into the inside of the enzymolysis tank (1). Step 2: Start the driving mechanism (2), and use the driving mechanism (2) to drive the stirring and anti-adhesion mechanism (3) to move while stirring, so that the materials are fully mixed. Step 3: Use the splicing mechanism (4) to connect the pipeline, and control the opening and closing of the bottom end of the enzymolysis tank (1) to facilitate the discharge of the material.