A new chicken breading device and method of implementing the same

By designing a new type of chicken coating equipment, which uses components such as a support cylinder and a spiral conveyor belt, automated continuous production of chicken has been achieved. This solves the problems of low efficiency and uneven coating in the traditional coating process, and improves production efficiency and product quality.

CN122229205APending Publication Date: 2026-06-19FUJIAN SUNNER FOOD CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
FUJIAN SUNNER FOOD CO LTD
Filing Date
2026-05-08
Publication Date
2026-06-19

Smart Images

  • Figure CN122229205A_ABST
    Figure CN122229205A_ABST
Patent Text Reader

Abstract

This invention provides a novel chicken coating device and its implementation method, comprising a first support frame, an open slurry pool on the upper surface of the first support frame, a first motor at the center of the lower surface of the slurry pool, a first rotating shaft connected to the output end of the first motor, the first rotating shaft extending through the bottom surface of the slurry pool into the slurry pool, a support cylinder sleeved on the first rotating shaft, first support rods arranged in a ring around the center of the support cylinder on the upper side of the outer side of the support cylinder and connected by a first bearing, a chicken coating basket at the outer end of the lower surface of the first support rods, a U-shaped slider rotatably mounted at the end of the first support rods via a second bearing, and an annular guide rail on the upper surface of the slurry pool; this invention can achieve automatic feeding, uniform coating, efficient transfer, and continuous coating of chicken in one integrated process.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of food processing equipment technology, specifically to a novel chicken coating equipment and a method for implementing the equipment. Background Technology

[0002] In the deep processing of chicken, battering and coating are crucial steps in making fried chicken, chicken cutlets, and other products. Traditional chicken battering operations are mostly done manually or with simple soaking equipment, which has the following drawbacks: 1) Manual battering is inefficient, labor-intensive, and results in uneven batter thickness, affecting product quality consistency; 2) In existing battering equipment, the chicken is statically soaked in the batter tank, resulting in insufficient coating and easy sticking between pieces; 3) When transferring the batter to the coating process, manual retrieval or additional conveying devices are required, which can easily cause batter leakage and waste, and may damage the batter layer during the transfer; 4) The equipment has low integration, separating the battering and coating processes, resulting in poor production continuity. Summary of the Invention

[0003] In view of this, the purpose of this invention is to provide a new type of chicken coating equipment that can achieve automatic feeding, uniform coating, efficient transfer and continuous coating of chicken, thereby improving production efficiency and product quality.

[0004] To achieve the above objectives, the present invention provides the following technical solution: A novel chicken coating device includes a first support frame. The upper surface of the first support frame has an open slurry pool. A first motor is located at the center of the lower surface of the slurry pool. The output end of the first motor is connected to a first rotating shaft. The first rotating shaft extends through the bottom surface of the slurry pool into the pool. A support cylinder is sleeved on the first rotating shaft. A first support rod, connected via a first bearing, is arranged in a circular array around the center of the support cylinder on the upper outer side of the support cylinder. A chicken coating basket is located at the outer end of the lower surface of each support rod. A U-shaped slider is rotatably mounted on the end of each support rod via a second bearing. An annular guide rail is provided on the upper surface of the slurry pool, and the U-shaped slider is sleeved on the annular guide rail. Multiple second support rods for supporting the chicken coating basket are arranged at equal intervals on the lower outer surface of the support cylinder. The system includes a support rod, with the chicken placement and coating filter basket mounted on the second support rod. A feeding component is located at the rear end of the outer side of the slurry tank to transport the chicken to the chicken placement and coating filter basket. A transfer mechanism is located at the upper left end of the slurry tank to transfer the slurry-coated chicken to a coating equipment. A coating equipment for coating the chicken is located at the right rear of the slurry tank. A first motor drives the support cylinder to rotate, causing the first support rod in a circular array and the chicken placement and coating filter basket to revolve, allowing the filter basket to sequentially pass through the feeding, slurry dipping, and transfer stations, achieving continuous cyclical operation. The second support rod supports the filter basket from the bottom, ensuring its stability during revolve. A U-shaped slider cooperates with the circular guide rail to keep the first support rod horizontal during revolve, preventing the filter basket from tilting and causing the chicken to slip. The overall structure is compact, highly automated, and significantly improves coating efficiency.

[0005] As a preferred embodiment, the feeding component includes a feeding hopper, and a U-shaped support frame is provided at the upper end of the rear surface of the slurry tank. The feeding hopper is rotatably mounted between the two vertical plates of the U-shaped support frame via a second rotating shaft. A second motor for driving the second rotating shaft to rotate is provided on the U-shaped support frame. The outlet end of the feeding hopper is aligned vertically with the opening of the chicken-placed coating filter basket in the flipped state. The second motor drives the second rotating shaft to flip the feeding hopper, realizing quantitative and directional automatic feeding, avoiding the unevenness and labor intensity of manual feeding, and ensuring that the feeding position is accurate, guaranteeing that each filter basket obtains approximately the same amount of chicken.

[0006] As a preferred embodiment, the transfer mechanism includes a spiral conveyor belt. L-shaped support frames are evenly spaced on the left side of the upper surface of the first support frame. The spiral conveyor belt is located at the end of each L-shaped support frame. Support blocks are provided on the front surfaces of the left and right support plates of the spiral conveyor belt. An arc-shaped transfer plate is rotatably connected between the support blocks at both ends via a third rotating shaft. A third motor for driving the third rotating shaft is mounted on each support block. Filter holes are evenly spaced on the arc-shaped transfer plate. The spiral conveyor belt has a mesh-like structure. The spiral conveyor belt is positioned corresponding to the chicken-placed coating filter basket. The arc-shaped transfer plate receives the coated chicken poured out of the filter basket. The filter holes drain excess slurry, preventing slurry waste. The spiral conveyor belt allows the chicken to naturally tumble during transport, further draining the slurry and making the slurry distribution more even. The mesh-like structure also facilitates slurry dripping back.

[0007] As a preferred embodiment, a pressing block is provided at the rear end of the side of the first support rod, and the pressing block is perpendicular to the first support rod. The end of the horizontal plate of the L-shaped support frame in the middle is connected to a third support rod. The third support rod passes under the spiral curved conveyor belt and is fixed to the two support plates of the spiral curved conveyor belt by a connecting block. A fixing block is provided at the end of the third support rod, and the fixing block is perpendicular to the third support rod. A telescopic cylinder is embedded in the fixing block for pressing the pressing block to drive the chicken placed in the coating filter basket to flip. When the filter basket revolves to the transfer station, the telescopic cylinder automatically extends to press the pressing block, causing the first support rod to flip downward around the first bearing, thereby pouring the chicken in the filter basket onto the arc-shaped transfer plate to achieve automatic unloading. After unloading, the telescopic cylinder retracts, and the filter basket returns to a horizontal position under the action of gravity. The structure is ingenious and the operation is reliable.

[0008] As a preferred embodiment, the coating equipment includes a second support frame located to the right rear of the first support frame. The second support frame has an open-top support plate on its upper surface. A fourth motor is located in the center of the lower surface of the support plate. The output shaft of the fourth motor has an open-top coating tray at its end. A mesh belt conveyor is mounted on the coating tray. An arc-shaped guide plate is connected to the front end of the coating tray via a connecting rod, and the arc-shaped guide plate corresponds to the feed inlet of the mesh belt conveyor. The discharge end of the spiral conveyor corresponds to the coating tray. The coated chicken enters the rotating coating tray and is evenly coated with powder under centrifugal force and friction. The arc-shaped guide plate smoothly guides the coated chicken to the mesh belt conveyor, preventing accumulation and damage. The entire system achieves integrated assembly line operation of coating, transfer, coating, and output.

[0009] As a preferred embodiment, a discharge pipe is connected to the left end of the lower surface of the slurry tank, and a solenoid valve is installed on the discharge pipe. The bottom surface of the slurry tank is inclined downward from the middle to the outside, and the inclination angle is 5° to 15°. The inclined bottom surface facilitates the slurry to collect in the discharge pipe, and the solenoid valve can automatically control the discharge, which is convenient for cleaning and replacing slurry and reduces residual waste.

[0010] As a preferred embodiment, the basket for placing the chicken in the coating filter basket is a stainless steel mesh basket, with a positioning groove at the bottom that cooperates with the second support rod. The end of the second support rod is provided with a limiting protrusion to prevent the filter basket from slipping off. The positioning groove cooperates with the second support rod to prevent the filter basket from shifting radially during its revolution. The limiting protrusion prevents the filter basket from slipping off due to vibration or tilting, thus improving operational safety.

[0011] As a preferred embodiment, the support cylinder is fixed to the first rotating shaft by a key connection, the first support rod is fixedly connected to the outer ring of the first bearing, and the inner ring of the first bearing is sleeved on the support cylinder; the key connection ensures the synchronous rotation of the support cylinder and the first rotating shaft; the first support rod is connected to the support cylinder through the bearing, so that the first support rod can be independently rotated without affecting the rotational movement of the support cylinder, and the structure is reliable.

[0012] A method for implementing the above-mentioned novel chicken coating equipment includes the following steps: S1: Start the first motor to make the support cylinder drive the first support rod and the second support rod to rotate, and at the same time, the chicken to be coated is conveyed to each chicken placement filter basket through the feeding device. S2: The chicken is placed in the coating filter basket and rotates with the first support rod. It is immersed in the slurry in the slurry tank for coating. The U-shaped slider slides along the ring guide rail to keep the filter basket horizontal. S3: After the batter is applied, the chicken is placed in the batter filter basket and rotated to the transfer mechanism. The telescopic cylinder extends and presses the pressing block, causing the first support rod to rotate downward around the first bearing and pour the battered chicken onto the arc-shaped transfer plate. S4: The arc-shaped transfer plate flips upward under the drive of the third motor, sending the chicken to the spiral curved conveyor belt, where it is conveyed by the spiral and excess slurry is drained. S5: The spiral conveyor belt transports the battered chicken to the coating tray. The coating tray rotates under the drive of the fourth motor, so that the surface of the chicken is evenly coated with powder. After coating, the chicken is guided by the arc-shaped guide limit plate into the mesh belt output conveyor belt for output.

[0013] The overall beneficial effects of this method are as follows: it realizes fully automated continuous production from automatic feeding of chicken, circulating slurry, automatic unloading, slurry conveying, rotating coating with powder to finished product output, with each station working together and high production efficiency; the combination of filter basket revolution slurry and spiral curve conveyor belt slurry ensures that the slurry layer is uniform and of moderate thickness; the rotating coating with powder ensures that the powder is fully coated and the product quality is consistent.

[0014] Preferably, in step S2, the first motor drives the support cylinder to rotate at a speed of 8 to 15 revolutions per minute, and the coating time is 30 to 60 seconds; in step S5, the coating disc rotates at a speed of 20 to 40 revolutions per minute, and the coating time is 15 to 30 seconds.

[0015] Compared with existing technologies, the advantages of this solution are: by controlling the rotation speed and working time, it ensures that the coating is sufficient while avoiding excessive time that could cause the coating to fall off or the chicken to become too soft. The parameters have been verified by experiments and are applicable to most chicken nuggets, chicken cutlets and other products. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure in the first state of the present invention.

[0017] Figure 2 This is a schematic diagram of the structure in the second state of the present invention.

[0018] Figure 3 This is a side view of the present invention.

[0019] Figure 4 This is a top view of the present invention.

[0020] Figure 5 This is a schematic diagram of the slurry tank in its first state.

[0021] Figure 6 This is a schematic diagram of the second state of the slurry tank.

[0022] Figure 7 This is a sectional view along the AA direction.

[0023] Figure 8 This is a schematic diagram of the chicken placed in the battering basket in its first state.

[0024] Figure 9 This is a schematic diagram of the second state of chicken placed in the battering basket.

[0025] Figure 10 This is a flowchart of the method for implementing the present invention.

[0026] In the diagram: 1-First support frame; 2-Slurry tank; 3-First motor; 4-First rotating shaft; 5-Support cylinder; 6-First bearing; 7-First support rod; 8-Chicken meat placement and coating filter basket; 9-Second bearing; 10-U-shaped slider; 11-Annular guide rail; 12-Second support rod; 13-Feeding hopper; 14-U-shaped support frame; 15-Second rotating shaft; 17-Helical curve conveyor belt; 18-L-shaped support frame; 19-Support block; 20-Third rotating shaft; 21-Arc-shaped transfer plate; 22-Third motor; 23-Filter hole; 24-Pressing block; 25-Third support rod; 26-Connecting block; 27-Fixing block; 28-Telescopic cylinder; 29-Second support frame; 30-Supporting plate; 32-Coating plate; 33-Mesh belt output conveyor belt; 34-Connecting rod; 35-Arc-shaped guide limit plate; 36-Discharge pipe; 37-Solenoid valve. Detailed Implementation

[0027] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. Example 1

[0028] like Figures 1 to 9 As shown, a novel chicken coating device includes a first support frame 1, with a slurry tank 2, the upper surface of which is welded or bolted to the first support frame 1 and has an open upper surface. A first motor 3 (preferably a geared motor) is installed in the middle of the lower surface of the slurry tank 2. The output end of the first motor 3 is connected to a first rotating shaft 4 via a coupling. The first rotating shaft 4 passes through the bottom surface of the slurry tank 2 and extends upward into the interior of the slurry tank 2. A seal is provided between the first rotating shaft 4 and the bottom surface of the slurry tank 2 to prevent leakage.

[0029] A support cylinder 5 is keyed to the first rotating shaft 4 and can rotate synchronously with the first rotating shaft 4. Multiple first bearings 6 are arranged in a ring at the upper outer surface of the support cylinder 5, and a first support rod 7 is fixedly connected to the outer ring of each first bearing 6. A chicken placement and coating filter basket 8 (stainless steel mesh basket, 5-10mm aperture) is suspended from the lower outer end of the first support rod 7. A U-shaped slider 10 is rotatably connected to the end of the first support rod 7 via a second bearing 9. An annular guide rail 11 is fixed to the upper surface of the slurry pool 2, and the U-shaped slider 10 slides on the annular guide rail 11. Multiple second support rods 12 are welded at equal intervals to the lower outer side of the support cylinder 5. The second support rods 12 are located below the corresponding first support rods 7, and the bottom of the chicken placement and coating filter basket 8 is placed on the second support rods 12 for stable support.

[0030] The rear end of the outer side of the slurry tank 2 is equipped with a feeding component, including a feeding hopper 13. A U-shaped support frame 14 is welded to the upper end of the rear surface of the slurry tank 2. The feeding hopper 13 is rotatably mounted between the two vertical plates of the U-shaped support frame 14 via a second rotating shaft 15. A second motor (which can be a servo motor) is mounted on the U-shaped support frame 14. The output end of the second motor is connected to the second rotating shaft 15 via a coupling. The second motor drives the feeding hopper 13 to rotate around the second rotating shaft 15, causing the chicken pieces in the feeding hopper 13 to fall into the corresponding filter basket.

[0031] A transfer mechanism is provided at the left end of the slurry tank 2, including a spiral curved conveyor belt 17 (i.e., a spiral ascending or descending mesh belt conveyor). Multiple L-shaped support frames 18 are welded at equal intervals on the left side of the upper surface of the first support frame 1, with the ends of the L-shaped support frames 18 supporting the spiral curved conveyor belt 17. Support blocks 19 are welded or bolted to the front surfaces of the left and right support plates of the spiral curved conveyor belt 17. An arc-shaped transfer plate 21 is rotatably mounted between the left and right support blocks 19 via a third rotating shaft 20. A third motor 22 is mounted on the support blocks 19, driving the third rotating shaft 20 to rotate. Multiple filter holes 23 are provided on the arc-shaped transfer plate 21. The belt body of the spiral curved conveyor belt 17 is a stainless steel mesh structure, which allows excess slurry to fall downwards into the chicken placement coating filter basket 8, facilitating slurry recycling. The feed end of the spiral curved conveyor belt 17 corresponds to the discharge end of the chicken placement coating filter basket 8.

[0032] A pressing block 24 is vertically welded to the rear side of the first support rod 7. A third support rod 25 is connected to the end of the horizontal plate of the L-shaped support frame 18 in the middle. The third support rod 25 passes under the spiral conveyor belt 17 and is fixed to the two support plates of the spiral conveyor belt 17 by a connecting block 26. A fixing block 27 is vertically welded to the end of the third support rod 25. A telescopic cylinder 28 is embedded in the fixing block 27. When the piston rod of the telescopic cylinder 28 extends, it can press down on the pressing block 24, causing the first support rod 7 to rotate downward around the first bearing 6, thereby pouring out the chicken in the filter basket.

[0033] A powder coating device is located at the right rear of the slurry tank 2. This device includes a second support frame 29, on which a support plate 30 with an open upper surface is fixed. A fourth motor is installed in the center of the lower surface of the support plate 30. The output shaft of the fourth motor is connected upwards to the powder coating disc 32, which is located inside the support plate 30 with a gap between them for collecting scattered powder. A mesh belt conveyor 33 is installed on the powder coating disc 32. An arc-shaped guide limiting plate 35 is fixed to the front end of the powder coating disc 32 via a connecting rod 34. The outlet of the arc-shaped guide limiting plate 35 faces the inlet of the mesh belt conveyor 33. The outlet end of the spiral curved conveyor belt 17 is located above the powder coating disc 32.

[0034] A discharge pipe 36 is connected to the left end of the lower surface of the slurry tank 2, and a solenoid valve 37 is installed on the discharge pipe 36. The inner bottom surface of the slurry tank 2 slopes downward from the middle to the outside (left end) at an angle of 10°. The bottom of the chicken placement basket 8 is provided with a positioning groove that mates with the second support rod 12, and the end of the second support rod 12 is provided with a limiting protrusion. The support cylinder 5 is fixed to the first rotating shaft 4 by a flat key. The first support rod 7 is welded to the outer ring of the first bearing 6, and the inner ring of the first bearing 6 is interference-fitted onto the support cylinder 5. Example 2

[0035] Please see Figure 10 As shown, this embodiment provides a method for implementing the device described in Embodiment 1, and the specific operation is as follows: First, pour the prepared slurry into the slurry tank 2, ensuring the liquid level is high enough to submerge the chicken pieces in the filter baskets. Start the first motor 3, setting the speed to 10 rpm, causing the support cylinder 5 to rotate all the filter baskets. Simultaneously, the second motor activates, tilting the feeding hopper 13 so that the chicken pieces (approximately 200g per serving) fall into the filter basket directly opposite the feeding hopper outlet. This filter basket continues to rotate, passing through subsequent workstations in sequence.

[0036] The filter basket is immersed in the slurry tank 2, and the coating time is about 45 seconds. During this process, the U-shaped slider 10 slides along the annular guide rail 11 to ensure that the filter basket remains horizontal and the chicken is evenly coated with slurry.

[0037] After the filter basket is coated with slurry, it revolves to the left-hand transfer station. At this time, the telescopic cylinder 28 extends, the piston rod presses down on the pressing block 24, the first support rod 7 rotates downward around the first bearing 6, and the chicken pieces in the filter basket slide onto the arc-shaped transfer plate 21. The telescopic cylinder 28 retracts, and the filter basket returns to a horizontal position under the action of gravity.

[0038] The third motor 22 drives the arc-shaped transfer plate 21 to flip upward, sending the chicken pieces onto the spiral conveyor belt 17. The spiral conveyor belt 17 conveys the chicken pieces spirally upward at a low speed (about 5 meters / minute). During the conveying process, the chicken pieces naturally tumble, and excess slurry drips from the mesh belt holes back into the slurry pool 2 or collection tank.

[0039] Chicken nuggets fall from the discharge end of the spiral conveyor belt 17 into the coating tray 32, which is pre-filled with an appropriate amount of powder. A fourth motor drives the coating tray to rotate at a speed of 30 rpm, and the chicken nuggets tumble and coat with powder in the tray for about 20 seconds. After coating, the chicken nuggets move along the arc-shaped guide limit plate 35 under the action of centrifugal force and enter the mesh belt output conveyor belt 33 for output to the next process.

[0040] The entire process is carried out continuously in a cycle. Each batch of chicken pieces takes about 90 seconds from feeding to discharging. It can process about 200 kg of chicken per hour, which is more than 5 times more efficient than manual labor. The coating of batter and powder is also uniform and consistent.

[0041] It should be noted that the above embodiments are merely preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. A novel chicken coating equipment, characterized in that: Includes a first support frame (1), the upper surface of the first support frame (1) is provided with a slurry pool (2) with an open upper surface, the lower surface of the slurry pool (2) is provided with a first motor (3) in the middle, the output end of the first motor (3) is connected to a first rotating shaft (4), the first rotating shaft (4) extends through the bottom surface of the slurry pool (2) into the slurry pool (2), a support cylinder (5) is sleeved on the first rotating shaft (4), the upper outer surface of the support cylinder (5) is arranged in a ring with the center of the support cylinder (5) as the center, and a first support rod (7) is connected by a first bearing (6), the lower outer surface of the first support rod (7) is provided with a chicken placement and coating filter basket (8), and the end of the first support rod (7) is connected by a second bearing (9). The slurry tank (2) is equipped with a U-shaped slider (10) for rotation. The upper surface of the slurry tank (2) is equipped with an annular guide rail (11). The U-shaped slider (10) is sleeved on the annular guide rail (11). The lower end of the outer side of the support cylinder (5) is provided with multiple second support rods (12) for supporting the chicken placement slurry filter basket (8). The chicken placement slurry filter basket (8) is mounted on the second support rods (12). The rear end of the outer side of the slurry tank (2) is provided with a feeding component for conveying chicken to the chicken placement slurry filter basket (8). The upper left end of the slurry tank (2) is provided with a transfer mechanism for transferring the slurry-coated chicken to the coating equipment. The right rear of the slurry tank (2) is provided with a coating equipment for coating chicken.

2. The novel chicken coating equipment according to claim 1, characterized in that: The feeding component includes a feeding hopper (13), and a U-shaped support frame (14) is provided on the upper end of the rear surface of the slurry pool (2). The feeding hopper (13) is rotatably arranged between the two vertical plates of the U-shaped support frame (14) via a second rotating shaft (15). A second motor for driving the second rotating shaft (15) to rotate is provided on the U-shaped support frame (14). The outlet end of the feeding hopper (13) is aligned vertically with the opening of the chicken placement coating filter basket (8) in the flipped state.

3. The novel chicken coating equipment according to claim 1, characterized in that: The transfer mechanism includes a spiral curved conveyor belt (17). L-shaped support frames (18) are provided at equal intervals on the left side of the upper surface of the first support frame (1). The spiral curved conveyor belt (17) is provided at the end of the L-shaped support frame (18). Support blocks (19) are provided on the front surfaces of the left and right support plates of the spiral curved conveyor belt (17). An arc-shaped transfer plate (21) is provided between the support blocks (19) at the left and right ends via a third rotating shaft (20). A third motor (22) for driving the third rotating shaft (20) is provided on the support block (19). Filter holes (23) are provided at equal intervals on the arc-shaped transfer plate (21). The belt body of the spiral curved conveyor belt (17) is mesh-like. The spiral curved conveyor belt (17) is provided in correspondence with the chicken placement coating filter basket (8).

4. The novel chicken coating equipment according to claim 3, characterized in that: A pressing block (24) is provided at the rear end of the side of the first support rod (7), and the pressing block (24) is perpendicular to the first support rod (7). The end of the horizontal plate of the L-shaped support frame (18) in the middle is connected to a third support rod (25). The third support rod (25) passes under the spiral curved conveyor belt (17). The third support rod (25) is fixed to the two support plates of the spiral curved conveyor belt (17) by a connecting block (26). A fixing block (27) is provided at the end of the third support rod (25), and the fixing block (27) is perpendicular to the third support rod (25). A telescopic cylinder (28) is embedded on the fixing block (27) for pressing the pressing block (24) to drive the chicken placed in the coating filter basket (8) to flip.

5. The novel chicken coating equipment according to claim 3, characterized in that: The coating equipment includes a second support frame (29), which is located to the right rear of the first support frame (1). The second support frame (29) is provided with a support plate (30) with an open upper surface. A fourth motor is provided in the middle of the lower surface of the support plate (30). A coating plate (32) with an open upper surface is provided at the end of the output shaft of the fourth motor. A mesh belt output conveyor belt (33) is provided on the coating plate (32). An arc-shaped guide limiting plate (35) is connected to the front end of the coating plate (32) via a connecting rod (34). The arc-shaped guide limiting plate (35) is correspondingly provided with the feed port of the mesh belt output conveyor belt (33). The discharge end of the spiral curve conveyor belt (17) is correspondingly provided with the coating plate (32).

6. The novel chicken coating equipment according to claim 1, characterized in that: The lower surface of the slurry tank (2) is connected to the left end of the discharge pipe (36), and the discharge pipe (36) is equipped with a solenoid valve (37). The bottom surface of the slurry tank (2) is inclined downward from the middle to the outside, and the inclination angle is 5° to 15°.

7. The novel chicken coating equipment according to claim 1, characterized in that: The basket body of the chicken placed in the coating filter basket (8) is a stainless steel mesh basket, and its bottom is provided with a positioning groove that cooperates with the second support rod (12). The end of the second support rod (12) is provided with a limiting protrusion to prevent the filter basket from slipping off.

8. The novel chicken coating equipment according to claim 1, characterized in that: The support cylinder (5) is fixed to the first rotating shaft (4) by a key connection, the first support rod (7) is fixedly connected to the outer ring of the first bearing (6), and the inner ring of the first bearing (6) is sleeved on the support cylinder (5).

9. A method for implementing the novel chicken coating equipment according to any one of claims 1 to 8, characterized in that, Includes the following steps: S1: Start the first motor (3) to make the support cylinder (5) drive the first support rod (7) and the second support rod (12) to rotate, and at the same time, the chicken to be coated is conveyed to each chicken placement filter basket (8) through the feeding device. S2: The chicken is placed in the coating filter basket (8) and rotates with the first support rod (7). It is immersed in the slurry in the slurry pool (2) for coating. The U-shaped slider (10) slides along the ring guide rail (11) to keep the filter basket horizontal. S3: After the batter is applied, the chicken is placed in the batter filter basket (8) and rotated to the transfer mechanism. The telescopic cylinder (28) extends to press the pressing block (24), causing the first support rod (7) to rotate downward around the first bearing (6) and pour the battered chicken onto the arc-shaped transfer plate (21). S4: The arc-shaped transfer plate (21) flips upward under the drive of the third motor (22) to send the chicken to the spiral curved conveyor belt (17), where it is conveyed by the spiral and excess slurry is drained. S5: The spiral curve conveyor belt (17) transports the battered chicken to the coating tray (32). The coating tray (32) rotates under the drive of the fourth motor, so that the surface of the chicken is evenly coated with powder. After the coating is completed, it is guided by the arc-shaped guide limit plate (35) into the mesh belt output conveyor belt (33) for output.

10. The implementation method according to claim 9, characterized in that: In step S2, the first motor (3) drives the support cylinder (5) to rotate at a speed of 8 to 15 revolutions per minute, and the coating time is 30 to 60 seconds; in step S5, the coating disc (32) rotates at a speed of 20 to 40 revolutions per minute, and the coating time is 15 to 30 seconds.