Multi-cavity fermentation mixing device for fermented strip-shaped jerky

By designing the mobile bin mechanism and circulating fermentation mechanism of the multi-cavity fermentation mixing device, the intelligent displacement of the meat strips in the three-dimensional space interacts with the medium, solving the problems of uneven temperature and humidity distribution and stacking and extrusion of the meat strips in the prior art, and improving the fermentation efficiency and product aesthetics.

CN120192829AActive Publication Date: 2025-06-24GUANGDONG ZHENMEI FOOD CO LTD
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Patent Information

Application Number
CN202510668023.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-06-24
Estimated Expiration
2045-05-23

AI Technical Summary

Technical Problem

The existing multi-cavity fermentation mixing device has a static layering layout in the processing of fermented strip jerky, resulting in uneven temperature and humidity distribution, and the plane laying process can easily cause meat strip stacking and extrusion, affecting fermentation uniformity and product form.

Method used

A multi-cavity fermentation and mixing device is designed, using a mobile bin mechanism and a circulating fermentation mechanism to realize the intelligent displacement of meat strips in three-dimensional space and interaction with the medium. Through the linkage control mechanism and the lifting control mechanism, the timing cycle and anti-stick function of the circulating fermentation mechanism are realized, and the meat strips are stacked, extruded and adhered.

Benefits of technology

The dynamic interaction of fermentation media is achieved, the uniformity of temperature and humidity distribution is improved, the fermentation efficiency and product shaping effect are improved, and the aesthetics of the product is improved.

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Abstract

The invention relates to the technical field of food processing, and discloses a multi-cavity fermentation mixing device for fermentation type strip-shaped jerky, the multi-cavity fermentation mixing device comprises a multi-cavity fermentation mixing mechanism, the interior of the multi-cavity fermentation mixing mechanism is slidably provided with two moving bin mechanisms, the middle position of each moving bin mechanism is connected with four circulating fermentation mechanisms, and the circulating fermentation mechanisms are connected with the multi-cavity fermentation mixing mechanism. According to the present invention, the first fixing column and the first control column drive the first control disc to rotate, such that the cyclic fermentation mechanisms perform the time sequence circulation during the fermentation process so as to dynamically circulate the meat strips during the fermentation process, such that the meat strips are subjected to the fermentation, and the fermentation efficiency is improved; meat strips are added to realize dynamic interaction of fermentation media, so that temperature and humidity are uniformly distributed, and the fermentation efficiency is improved; and through the operation of the circulating fermentation mechanism, the meat strips are prevented from being stacked and extruded, the phenomena of nonuniform permeation and local adhesion of the leavening agent are reduced, and the product shaping effect and the product attractiveness are improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of food processing, and particularly relates to a multi-chamber fermentation mixing device for strip-shaped dried meat. Background Art

[0002] Fermented strip-shaped dried meat is a characteristic category in traditional meat products in Taiwan, China. With its unique flavor, high nutritional value, and portable characteristics, it is widely favored by consumers of all ethnic groups. As a representative of ready-to-eat meat products, the fermentation and mixing link in its processing technology directly affects the product quality and appearance.

[0003] In the prior art, the multi-chamber fermentation mixing devices commonly used in the current industry usually adopt a planar laying operation mode: the meat strips are horizontally arranged on multiple layers of static support frames, and fermentation treatment is carried out through a fixed cavity structure; however, this traditional process has significant technical bottlenecks: firstly, the static layered layout results in the fixed spatial position of the meat strips, and the dynamic interaction of the fermentation medium cannot be achieved, resulting in uneven temperature and humidity distribution; secondly, the planar laying process easily causes stacking and extrusion of the meat strips, resulting in uneven penetration of the fermenting agent and local adhesion phenomena, which not only affect the fermentation uniformity, but also cause problems such as shape collapse and texture disorder in the finished product, seriously affecting the product shaping effect and commercial aesthetics.

[0004] Therefore, it is very necessary to invent a multi-chamber fermentation mixing device for fermented strip-shaped dried meat to solve the above problems. It can realize the intelligent displacement and medium interaction of the meat strips in three-dimensional space, and has important industrial upgrading significance for improving the product quality consistency and optimizing the appearance characteristics. Summary of the Invention

[0005] In view of the above problems, the present invention provides a multi-chamber fermentation mixing device for fermented strip-shaped dried meat to solve the problems set forth in the above background art.

[0006] To achieve the above object, the present invention provides the following technical solution: A multi-chamber fermentation mixing device for fermented strip-shaped dried meat, comprising a multi-chamber fermentation mixing mechanism, two moving bin mechanisms are slidably arranged inside the multi-chamber fermentation mixing mechanism, four circulating fermentation mechanisms are connected to the middle positions of the moving bin mechanisms, and anti-sticking mechanisms are fixedly arranged at the bottoms of the plurality of circulating fermentation mechanisms, wherein, The circulating fermentation mechanism includes a positioning frame, a plurality of fixing frames are fixedly arranged on both sides of the positioning frame, a plurality of driving sprockets are rotatably arranged at the tops of the plurality of fixing frames, a driving chain is meshed on the outer walls of the plurality of driving sprockets, a plurality of auxiliary sprockets are rotatably arranged at the bottoms of the plurality of fixing frames, the outer walls of the plurality of auxiliary sprockets are all meshed with the driving chain, a plurality of dust-proof discs are rotatably arranged at the bottom of the driving chain, and a plurality of suspension rings are fixedly arranged at the bottoms of the plurality of dust-proof discs; The anti-sticking mechanism includes a positioning gear. The bottom end of the positioning gear is fixedly provided with a first helical gear through a positioning shaft. The tooth surface of the first helical gear is meshed with a second helical gear. One end of the second helical gear is fixedly provided with a positioning disc. Anti-sticking strips are fixedly provided at both ends of the positioning disc.

[0007] Preferably, a limiting frame is fixedly provided on one side of one of the fixing frames. A driving gear is fixedly provided at the top end of one of the driving sprockets. The tooth surface of the driving gear is meshed with a connecting gear. The tooth surface of the connecting gear is meshed with the tooth surface of the positioning gear. One end of the bottom of the limiting frame is fixedly provided with a control frame. The second helical gear and the positioning disc rotate on both sides of the bottom of the control frame respectively.

[0008] Preferably, auxiliary frames are fixedly provided at the top ends of multiple positioning frames.

[0009] Preferably, the moving bin mechanism includes a moving base. One end of the top of the moving base is fixedly provided with a first moving frame. A second moving frame is fixedly provided on one side of the first moving frame. Universal wheels are fixedly provided on the four side edges of the bottom of the moving base. Positioning handles are fixedly provided at both ends of one side of the two second moving frames.

[0010] Preferably, the multi-chamber fermentation mixing mechanism includes a multi-chamber fermentation mixing tank. A gas furnace is fixedly provided at the middle position of the inner wall bottom of the multi-chamber fermentation mixing tank. Charcoal basin grooves are fixedly provided at both ends of the inner wall bottom of the multi-chamber fermentation mixing tank. A main circulation fan is fixedly provided at the middle position of the multi-chamber fermentation mixing tank. Charcoal basin fans are fixedly provided on both sides of the inner wall of the multi-chamber fermentation mixing tank. A control cabinet is fixedly provided on one side of the multi-chamber fermentation mixing tank. An exhaust fan is fixedly provided at the top end of the multi-chamber fermentation mixing tank. A temperature and humidity sensor is fixedly provided at the middle position of the top of the multi-chamber fermentation mixing tank. Protective doors are rotatably provided at both ends of one side of the multi-chamber fermentation mixing tank.

[0011] Preferably, a linkage control mechanism is connected to the inner wall of the multi-chamber fermentation mixing tank. The linkage control mechanism includes linkage gear columns rotating on both sides of the inner walls of the two second moving frames. The top ends of the four linkage gear columns all pass through the second moving frames and are fixedly provided with first control discs. First motors are fixedly provided at both ends of the top of the multi-chamber fermentation mixing tank. The output ends of the two first motors all pass through the multi-chamber fermentation mixing tank and are fixedly provided with first fixed columns. One end of the bottom of the two first fixed columns is fixedly provided with first control columns.

[0012] Preferably, control gears are fixedly provided at the top ends of multiple driving sprockets. The tooth surfaces of the multiple control gears are respectively meshed with the tooth surfaces of the two linkage gear columns.

[0013] Preferably, a lifting control mechanism is connected to the inner wall of the multi-chamber fermentation mixing tank. The lifting control mechanism includes three positioning lead screws rotatably disposed at the middle position of the first moving frame. At both ends of the inner walls of the two first moving frames, positioning rods are fixedly provided. Lifting frames are slidably disposed on the inner walls of the two first moving frames. The middle positions of the three lifting frames are respectively fixedly connected to one ends of three of the positioning frames, and one end of the other positioning frame is fixedly connected to the middle position of the top of the first moving frame. The top ends of the three positioning lead screws all pass through the first moving frame and are fixedly provided with a second control disk. At one end of the top of the multi-chamber fermentation mixing tank, six second motors are fixedly provided. The output ends of the six second motors all pass through the multi-chamber fermentation mixing tank and are fixedly provided with second fixed columns. The bottom ends of the plurality of second fixed columns are all fixedly provided with second control columns.

[0014] Preferably, sliding grooves are respectively formed on both sides of the bottom of the inner wall of the multi-chamber fermentation mixing tank. Both of the moving bases are slidably connected to the sliding grooves through universal wheels.

[0015] Preferably, an intelligent control panel is fixedly provided on one side of the multi-chamber fermentation mixing tank. The first motor and the second motor are both electrically connected to an external power supply through the intelligent control panel.

[0016] The technical effects and advantages of the present invention: In the present invention, the first fixed column and the first control column drive the first control disk to rotate, so that the cyclic fermentation mechanism performs a timing cycle during the fermentation process, enabling the meat strips to undergo a dynamic cycle during the fermentation process, increasing the dynamic interaction between the meat strips and the fermentation medium, resulting in uniform temperature and humidity distribution, and improving the fermentation efficiency; moreover, the operation of the cyclic fermentation mechanism avoids stacking and squeezing of the meat strips, reduces the phenomenon of uneven penetration of the fermentation agent and local adhesion, and improves the product shaping effect and commercial aesthetics. In the present invention, the control gear fixed to the top end of one of the driving sprockets rotates, so that the driving sprocket drives the driving chain to engage and transmit through the assistance of the auxiliary sprocket. The dust-proof disk connected to the bottom end of the driving chain drives the hanging ring to perform a cyclic transmission. The meat jerky to be fermented is independently hung on the corresponding hanging ring through the hook. The driving chain is cycled until the hanging ring is full, making the feeding of the multi-chamber fermentation mixing device more convenient, avoiding feeding into the interior of the fermentation device, and reducing the possibility of internal pollution of the fermentation device. In the present invention, the lifting frame threadedly connected to the bottom end of the corresponding positioning lead screw moves, so that the lifting frame drives the cyclic fermentation mechanism at the bottommost end to lift. By rotating the corresponding positioning lead screw in sequence, a plurality of cyclic fermentation mechanisms are driven to move downward from bottom to top, so that the height of the cyclic fermentation mechanism during feeding is controlled, avoiding the potential problem of muscle fatigue of the staff during the feeding process caused by too low height, and improving the feeding convenience.

[0017] In the present invention, the driving gear fixed at the top of one of the driving sprockets drives the positioning gear to engage and rotate through the connecting gear, so that the positioning gear drives the positioning shaft and the first helical gear to rotate through the limiting frame. Through the engagement of the first helical gear and the second helical gear, the second helical gear drives the positioning disk and the anti-sticking strip to rotate through the control frame. Through the coefficient adjustment of the driving gear, the connecting gear and the positioning gear, when the cyclic fermentation mechanism performs cycling, the anti-sticking strip just rotates in the cyclic gap between the two dust-proof disks, so that the anti-sticking strip separates adjacent meat strips to prevent sticking, avoiding sticking during feeding and fermentation of the meat strips, and also avoiding the reduction of fermentation efficiency caused by sticking, and increasing the cycling efficiency of the cyclic fermentation mechanism.

[0018] Other features and advantages of the present invention will be described in the following specification, and, in part, will be obvious from the specification, or will be understood by implementing the present invention. The objectives and other advantages of the present invention can be realized and obtained through the structures pointed out in the specification, the claims and the drawings. Brief Description of the Drawings

[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0020] Figure 1 It is a schematic diagram of the first state of the multi-chamber fermentation mixing device of the present invention; Figure 2 It is a schematic diagram of the second state of the multi-chamber fermentation mixing device of the present invention; Figure 3 It is a schematic diagram of the multi-chamber fermentation mixing mechanism of the present invention; Figure 4 It is a schematic diagram of the distribution of the mobile bin mechanism, the cyclic fermentation mechanism, the linkage control mechanism, the lifting control mechanism, and the anti-sticking mechanism of the present invention; Figure 5 It is a schematic diagram of the mobile bin mechanism of the present invention; Figure 6 It is a schematic diagram of the mobile bin mechanism of the present invention; Figure 7 It is a schematic diagram of the mobile bin mechanism of the present invention; Figure 8 It is a schematic diagram of the distribution of the mobile bin mechanism and the anti-sticking mechanism of the present invention; Figure 9 It is a schematic diagram of the mobile bin mechanism of the present invention; Figure 10 It is a schematic diagram of the anti-sticking mechanism of the present invention; Figure 11 It is a schematic diagram of the linkage control mechanism of the present invention; Figure 12 It is a schematic diagram of the lifting control mechanism of the present invention.

[0021] In the figure: 1. Multi-chamber fermentation mixing mechanism; 101. Multi-chamber fermentation mixing tank; 102. Protection door; 103. Control cabinet; 104. Sliding groove; 105. Charcoal basin groove; 106. Gas furnace; 107. Main circulation fan; 108. Charcoal basin fan; 109. Exhaust fan; 110. Temperature and humidity sensor; 2. Mobile bin mechanism; 201. First mobile rack; 202. Second mobile rack; 203. Mobile base; 204. Universal wheel; 205. Positioning handle; 3. Circulating fermentation mechanism; 301. Positioning frame; 302. Auxiliary frame; 303. Fixed frame; 304. Driving chain; 305. Driving sprocket; 306. Auxiliary sprocket; 307. Dust-proof disk; 308. Hanging ring; 4. Linkage control mechanism; 401. Linkage gear column; 402. Control gear; 403. First control disk; 404. First fixed column; 405. First control column; 406. First motor; 5. Lifting control mechanism; 501. Positioning lead screw; 502. Positioning rod; 503. Lifting frame; 504. Second control disk; 505. Second fixed column; 506. Second control column; 507. Second motor; 6. Anti-sticking mechanism; 601. Limit frame; 602. Driving gear; 603. Connecting gear; 604. Positioning gear; 605. Control frame; 606. Positioning disk; 607. Anti-sticking strip; 608. Positioning shaft; 609. First helical gear; 610. Second helical gear. Detailed implementation manners

[0022] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0023] The present invention provides a multi-chamber fermentation mixing device for fermented strip meat jerky as Figures 1-12 shown, which includes a multi-chamber fermentation mixing mechanism 1. Two mobile bin mechanisms 2 are slidably arranged inside the multi-chamber fermentation mixing mechanism 1. Four circulating fermentation mechanisms 3 are connected to the middle position of the mobile bin mechanism 2. Anti-sticking mechanisms 6 are fixedly arranged at the bottoms of the multiple circulating fermentation mechanisms 3. Among them, The cyclic fermentation mechanism 3 includes a positioning frame 301. On both sides of the positioning frame 301, a plurality of fixed frames 303 are fixedly arranged. At the top of the plurality of fixed frames 303, driving sprockets 305 are rotatably arranged. An endless drive chain 304 is meshed with the outer walls of the plurality of driving sprockets 305. At the bottom of the plurality of fixed frames 303, auxiliary sprockets 306 are rotatably arranged. The outer walls of the plurality of auxiliary sprockets 306 are all meshed with the endless drive chain 304. At the bottom of the endless drive chain 304, a plurality of dust-proof discs 307 are rotatably arranged. At the bottom of the plurality of dust-proof discs 307, suspension rings 308 are fixedly arranged. At the top of the plurality of positioning frames 301, auxiliary frames 302 are fixedly arranged. A linkage control mechanism 4 is connected to the inner wall of the multi-chamber fermentation mixing tank 101. The linkage control mechanism 4 includes linkage gear columns 401 rotatably arranged on both sides of the inner walls of the two second moving frames 202. At the top of the four linkage gear columns 401, first control discs 403 are fixedly arranged through the second moving frames 202. At both ends of the top of the multi-chamber fermentation mixing tank 101, first motors 406 are fixedly arranged. The output ends of the two first motors 406 pass through the multi-chamber fermentation mixing tank 101 and first fixed columns 404 are fixedly arranged. At one end of the bottom of the two first fixed columns 404, first control columns 405 are fixedly arranged. At the top of the plurality of driving sprockets 305, control gears 402 are fixedly arranged. The tooth surfaces of the plurality of control gears 402 are respectively meshed with the tooth surfaces of the two linkage gear columns 401. When the multi-chamber fermentation mixing device needs to be used, with the assistance of the positioning handle 205, the moving bin mechanism 2 in the multi-chamber fermentation mixing device is pulled out to Figure 2 the state shown, so that the plurality of second fixed columns 505 and second control columns 506 in the lifting control mechanism 5 are respectively in contact with the outer walls of the plurality of second control discs 504. At the same time, the first fixed column 404 and the first control column 405 in the linkage control mechanism 4 are respectively in contact with the outer walls of the first control discs 403 distributed inside the moving bin mechanism 2. By controlling the first motor 406 to work, the first fixed column 404 and the first control column 405 fixed to the output end of the first motor 406 rotate, so that the first control disc 403 in contact with the outer wall of the first control column 405 drives the linkage gear column 401 to rotate. Through meshing transmission, the control gear 402 fixed to the top of one of the driving sprockets 305 rotates, so that the driving sprocket 305 drives the endless drive chain 304 to perform meshing transmission with the assistance of the auxiliary sprocket 306. The dust-proof disc 307 connected to the bottom of the endless drive chain 304 drives the hanging ring 308 to perform cyclic transmission. The meat jerky to be fermented is independently suspended on the corresponding hanging ring 308 through a hook. The endless drive chain 304 is cycled until the hanging ring 308 is full, making the feeding of the multi-chamber fermentation mixing device more convenient, avoiding reaching into the interior of the fermentation device for feeding, and reducing the possibility of internal pollution of the fermentation device.

[0024] As a specific embodiment of the present invention, a lifting control mechanism 5 is connected to the inner wall of the multi-chamber fermentation mixing tank 101. The lifting control mechanism 5 includes three positioning lead screws 501 rotatably disposed at the middle position of the first moving frame 201. Positioning rods 502 are fixedly provided at both ends of the inner walls of the two first moving frames 201. Lifting frames 503 are slidably disposed on the inner walls of the two first moving frames 201. One ends of three of the lifting frames 503 are fixedly connected to one ends of three of the positioning frames 301 respectively, and one end of the other positioning frame 301 is fixedly connected to the middle position of the top of the first moving frame 201. The top ends of the three positioning lead screws 501 all pass through the first moving frame 201 and are fixedly provided with a second control disk 504. Six second motors 507 are fixedly provided at one end of the top of the multi-chamber fermentation mixing tank 101. The output ends of the six second motors 507 all pass through the multi-chamber fermentation mixing tank 101 and are fixedly provided with second fixing columns 505. Second control columns 506 are fixedly provided at the bottom ends of the plurality of second fixing columns 505; As Figure 7 As shown, the three positioning lead screws 501 are arranged side by side. The outer wall of the positioning lead screw 501 at the middle position is threadedly connected to the middle position of the topmost lifting frame 503. The positioning lead screws 501 on both sides are respectively threadedly connected to the middle lifting frame 503 and the bottommost lifting frame 503, and each lifting frame 503 does not contact the positioning lead screw 501 that is not threadedly connected. Both ends of the plurality of lifting frames 503 are inserted and connected to the two positioning rods 502; By controlling the corresponding second motor 507 to work, the lifting frame 503 threadedly connected to the bottom end of the corresponding positioning lead screw 501 is moved, so that the lifting frame 503 drives the bottommost circulating fermentation mechanism 3 to lift. Successively, through the rotation of the corresponding positioning lead screw 501, the plurality of circulating fermentation mechanisms 3 are driven to move downward from bottom to top, so that the height of the circulating fermentation mechanism 3 during feeding is controlled, avoiding the potential problem of causing muscle fatigue of the staff during the feeding process due to too low height, and improving the convenience of feeding.

[0025] As a specific embodiment of the present invention, the mobile bin mechanism 2 includes a mobile base 203. One end of the top of the mobile base 203 is fixedly provided with a first moving frame 201. A second moving frame 202 is fixedly provided on one side of the first moving frame 201. Four side edges of the bottom of the mobile base 203 are all fixedly provided with universal wheels 204. Positioning handles 205 are fixedly provided at both ends of one side of the two second moving frames 202; Push the mobile bin mechanism 2 into the interior of the multi-chamber fermentation mixing tank 101 through the universal wheels 204, as Figure 1In the shown state, close the protective door 102, and at the same time make the first control panel 403 outside the mobile bin mechanism 2 contact with the first fixed column 404 and the first control column 405, so that when the mobile bin mechanism 2 is inside the multi-chamber fermentation mixing tank 101, the first motor 406 can still drive the circulating fermentation mechanism 3 to rotate in a cycle conveniently; Fill the charcoal basin groove 105 with flavored charcoal and light it. Close the protective door 102, and control the start of the gas furnace 106, the charcoal basin fan 108 and the main circulation fan 107 through the control cabinet 103. Under the action of different heats generated by the gas furnace 106 and the charcoal basin groove 105, the strip-shaped meat jerky is blown by the different wind forces of the main circulation fan 107 and the charcoal basin fan 108 to produce a specific fermentation process; when the temperature and humidity sensor 110 detects that the temperature and humidity in the cabinet reach the process requirements, open the exhaust fan 109 to balance the temperature and humidity in the cabinet and complete the fermentation work; As a specific embodiment of the present invention, the multi-chamber fermentation mixing mechanism 1 includes a multi-chamber fermentation mixing tank 101. A gas furnace 106 is fixedly arranged at the middle position of the bottom inner wall of the multi-chamber fermentation mixing tank 101. Charcoal basin grooves 105 are fixedly arranged at both ends of the bottom inner wall of the multi-chamber fermentation mixing tank 101. A main circulation fan 107 is fixedly arranged at the middle position of the multi-chamber fermentation mixing tank 101. Charcoal basin fans 108 are fixedly arranged on both sides of the inner wall of the multi-chamber fermentation mixing tank 101. A control cabinet 103 is fixedly arranged on one side of the multi-chamber fermentation mixing tank 101. An exhaust fan 109 is fixedly arranged at the top of the multi-chamber fermentation mixing tank 101. A temperature and humidity sensor 110 is fixedly arranged at the middle position of the top of the multi-chamber fermentation mixing tank 101. Protective doors 102 are rotatably arranged at both ends of one side of the multi-chamber fermentation mixing tank 101; Sliding grooves 104 are formed on both sides of the bottom inner wall of the multi-chamber fermentation mixing tank 101, and both moving bases 203 are slidably connected with the sliding grooves 104 through universal wheels 204.

[0026] Drive the first control panel 403 to rotate through the first fixed column 404 and the first control column 405, so that the circulating fermentation mechanism 3 performs a time-sequence cycle during the fermentation process, so that the meat strips are dynamically circulated during the fermentation process, increasing the dynamic interaction of the meat strips with the fermentation medium, resulting in uniform temperature and humidity distribution and improving the fermentation efficiency; moreover, the operation of the circulating fermentation mechanism 3 avoids stacking and squeezing of the meat strips, reduces the phenomenon of uneven penetration of the fermentation agent and local adhesion, and improves the product shaping effect and the commercial aesthetics.

[0027] Such as Figure 10As shown, the anti-sticking mechanism 6 includes a positioning gear 604. The bottom end of the positioning gear 604 is fixedly provided with a first helical gear 609 through a positioning shaft 608. The tooth surface of the first helical gear 609 is meshed with a second helical gear 610. One end of the second helical gear 610 is fixedly provided with a positioning disk 606. Anti-sticking strips 607 are fixedly provided at both ends of the positioning disk 606; One side of one of the fixing frames 303 is fixedly provided with a limiting frame 601. The top end of one of the driving sprockets 305 is fixedly provided with a driving gear 602. The tooth surface of the driving gear 602 is meshed with a connecting gear 603. The tooth surface of the connecting gear 603 is meshed with the tooth surface of the positioning gear 604. One end of the bottom of the limiting frame 601 is fixedly provided with a control frame 605. The second helical gear 610 and the positioning disk 606 respectively rotate on both sides of the bottom of the control frame 605; When the cyclic fermentation mechanism 3 performs cycling, the driving gear 602 fixed to the top end of one of the driving sprockets 305 drives the positioning gear 604 to perform meshing rotation through the connecting gear 603, so that the positioning gear 604 passes through the limiting frame 601 to drive the positioning shaft 608 and the first helical gear 609 to rotate. Through the meshing of the first helical gear 609 and the second helical gear 610, the second helical gear 610 passes through the control frame 605 to drive the positioning disk 606 and the anti-sticking strips 607 to rotate. Through the coefficient adjustment of the driving gear 602, the connecting gear 603 and the positioning gear 604, when the cyclic fermentation mechanism 3 performs cycling, the anti-sticking strips 607 just rotate in the cyclic gap between the two dust-proof disks 307, so that the anti-sticking strips 607 separate adjacent meat strips to prevent sticking, avoid sticking during feeding and fermentation of the meat strips, and also avoid the reduction of fermentation efficiency caused by sticking, and increase the cycling efficiency of the cyclic fermentation mechanism 3.

[0028] The distribution of the first motor 406 and the second motor 507 is as Figure 3 and Figure 4 shown, so that the cyclic fermentation mechanism 3 is always cycled. Moreover, when the moving bin mechanism 2 moves to the outside for loading and unloading, a single cyclic fermentation mechanism 3 is controlled to lift through the lifting control mechanism 5. This setting method can avoid redundant motors being located inside the multi-chamber fermentation mixing tank 101, avoid oil fume interfering with the operation of the motors, increase the heat dissipation efficiency of the motors, and improve the service life of the motors; As a specific implementation manner of the present invention, an intelligent control panel is fixedly provided on one side of the multi-chamber fermentation mixing tank 101. The first motor 406 and the second motor 507 are both electrically connected to an external power supply through the intelligent control panel.

[0029] Although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A multi-chamber fermentation and mixing device for fermented strip pork jerky, comprising a multi-chamber fermentation and mixing mechanism (1), characterized in that: Inside the multi-chamber fermentation mixing mechanism (1), two moving bin mechanisms (2) are slidably arranged. Four circulating fermentation mechanisms (3) are connected to the middle positions of the moving bin mechanisms (2). At the bottom ends of the multiple circulating fermentation mechanisms (3), anti-sticking mechanisms (6) are fixedly arranged. Among them, The circulating fermentation mechanism (3) includes a positioning frame (301). On both sides of the positioning frame (301), a plurality of fixed frames (303) are fixedly arranged. At the tops of the plurality of fixed frames (303), driving sprockets (305) are rotatably arranged. On the outer walls of the plurality of driving sprockets (305), a driving chain (304) is meshed. At the bottom ends of the other plurality of fixed frames (303), auxiliary sprockets (306) are rotatably arranged. On the outer walls of the plurality of auxiliary sprockets (306), they are all meshed with the driving chain (304). At the bottom end of the driving chain (304), a plurality of dust-proof discs (307) are rotatably arranged. At the bottom ends of the plurality of dust-proof discs (307), suspension rings (308) are fixedly arranged; The anti-sticking mechanism (6) includes a positioning gear (604). At the bottom end of the positioning gear (604), a first helical gear (609) is fixedly arranged through a positioning shaft (608). The tooth surface of the first helical gear (609) is meshed with a second helical gear (610). At one end of the second helical gear (610), a positioning disc (606) is fixedly arranged. At both ends of the positioning disc (606), anti-sticking strips (607) are fixedly arranged.

2. The multi-chamber fermentation and mixing device for fermented strip-shaped dried meat according to claim 1, wherein: On one side of one of the fixed frames (303), a limit frame (601) is fixedly arranged. At the top end of one of the driving sprockets (305), a driving gear (602) is fixedly arranged. The tooth surface of the driving gear (602) is meshed with a connecting gear (603). The tooth surface of the connecting gear (603) is meshed with the tooth surface of the positioning gear (604). At one end of the bottom of the limit frame (601), a control frame (605) is fixedly arranged. The second helical gear (610) and the positioning disc (606) are respectively rotated on both sides of the bottom of the control frame (605).

3. The multi-chamber fermentation mixing device for fermented strip-shaped dried meat according to claim 1, characterized in that: At the top ends of the plurality of positioning frames (301), auxiliary frames (302) are fixedly arranged.

4. The multi-chamber fermentation and mixing device for fermented strip-shaped dried meat according to claim 1, characterized in that: The moving bin mechanism (2) includes a moving base (203). At one end of the top of the moving base (203), a first moving frame (201) is fixedly arranged. On one side of the first moving frame (201), a second moving frame (202) is fixedly arranged. At the four side edges of the bottom of the moving base (203), universal wheels (204) are fixedly arranged. At both ends of one side of the two second moving frames (202), positioning handles (205) are fixedly arranged.

5. The multi-chamber fermentation and mixing device for fermented strip-shaped dried meat according to claim 4, characterized in that: The multi-chamber fermentation mixing mechanism (1) includes a multi-chamber fermentation mixing tank (101). In the middle of the bottom inner wall of the multi-chamber fermentation mixing tank (101), a gas furnace (106) is fixedly installed. At both ends of the bottom inner wall of the multi-chamber fermentation mixing tank (101), charcoal basin grooves (105) are fixedly installed. In the middle position of the multi-chamber fermentation mixing tank (101), a main circulation fan (107) is fixedly installed. On both sides of the inner wall of the multi-chamber fermentation mixing tank (101), charcoal basin fans (108) are fixedly installed. On one side of the multi-chamber fermentation mixing tank (101), a control cabinet (103) is fixedly installed. On the top of the multi-chamber fermentation mixing tank (101), an exhaust fan (109) is fixedly installed. In the middle position of the top of the multi-chamber fermentation mixing tank (101), a temperature and humidity sensor (110) is fixedly installed. At both ends of one side of the multi-chamber fermentation mixing tank (101), protective doors (102) are rotatably installed.

6. The multi-chamber fermentation and mixing device for fermented strip-shaped dried meat according to claim 5, wherein: A linkage control mechanism (4) is connected to the inner wall of the multi-chamber fermentation mixing tank (101). The linkage control mechanism (4) includes linkage gear columns (401) rotatably installed on both sides of the inner walls of two second moving frames (202). At the top of each of the four linkage gear columns (401), a first control disk (403) is fixedly installed through the second moving frame (202). At both ends of the top of the multi-chamber fermentation mixing tank (101), first motors (406) are fixedly installed. The output ends of the two first motors (406) pass through the multi-chamber fermentation mixing tank (101) and are fixedly installed with first fixed columns (404). At one end of the bottom of each of the two first fixed columns (404), a first control column (405) is fixedly installed.

7. A multi-chamber fermentation mixing device for fermented strip-shaped dried meat according to claim 1, characterized in that: At the top of each of the multiple drive sprockets (305), a control gear (402) is fixedly installed. The tooth surfaces of the multiple control gears (402) are respectively meshed with the tooth surfaces of the two linkage gear columns (401).

8. A multi-chamber fermentation mixing device for fermented strip-shaped dried meat according to claim 6, characterized in that: A lifting control mechanism (5) is connected to the inner wall of the multi-chamber fermentation mixing tank (101). The lifting control mechanism (5) includes three positioning lead screws (501) rotatably installed in the middle position of the first moving frame (201). At both ends of the inner walls of the two first moving frames (201), positioning rods (502) are fixedly installed. Lifting frames (503) are slidably installed on the inner walls of the two first moving frames (201). One end of each of the three lifting frames (503) is fixedly connected to one end of three of the positioning frames (301) respectively. One end of the other positioning frame (301) is fixedly connected to the middle position of the top of the first moving frame (201). The top of each of the three positioning lead screws (501) passes through the first moving frame (201) and is fixedly installed with a second control disk (504). At one end of the top of the multi-chamber fermentation mixing tank (101), six second motors (507) are fixedly installed. The output ends of the six second motors (507) pass through the multi-chamber fermentation mixing tank (101) and are fixedly installed with second fixed columns (505). At the bottom end of each of the multiple second fixed columns (505), a second control column (506) is fixedly installed.

9. A multi-chamber fermentation and mixing device for fermented strip-shaped dried meat according to claim 5, characterized in that: Both sides of the bottom of the inner wall of the multi-chamber fermentation mixing tank (101) are provided with sliding grooves (104), and both of the moving bases (203) are slidably connected to the sliding grooves (104) through universal wheels (204).

10. A multi-chamber fermentation mixing device for fermented strip-shaped dried meat according to claim 8, characterized in that: One side of the multi-chamber fermentation mixing tank (101) is fixedly provided with an intelligent control panel, and both the first motor (406) and the second motor (507) are electrically connected to an external power supply through the intelligent control panel.

Citation Information

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