Automatic section cutting equipment for marinated duck neck production
By designing an automated braised duck neck production and cutting equipment, the problems of low efficiency and poor uniformity of traditional manual cutting are solved, and efficient, uniform cutting and simple maintenance are achieved, which are suitable for modern production needs.
Patent Information
- Application Number
- CN202510166446.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the production of traditional braised duck necks, the cutting steps rely on manual operations, which are low efficiency and uniformity difficult to ensure, and maintenance and cleaning are cumbersome, making it difficult to meet the needs of modern production.
An automatic segment cutting device including a base, mounting frame, rotary shaft roller, outer shaft sleeve, placement assembly, segment cutting assembly and feeding assembly is designed, and automatic segment cutting and conveying of the duck neck is realized through mechanical transmission and intelligent control system.
It improves production efficiency and product quality, reduces labor intensity, achieves cutting uniformity and efficiency, and simplifies the maintenance and cleaning of equipment.
Smart Images

Figure CN119924356A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of food processing, in particular to automatic segmenting equipment for producing braised duck necks. Background Art
[0002] As a popular snack food, the production process of braised duck neck includes pickling, braising, cutting, packaging and other links. In the traditional production process, the duck neck cutting step usually relies on manual operation. This manual cutting method is not only inefficient and labor-intensive, but also difficult to ensure the uniformity of cutting, which directly affects the quality of the product and the consumer experience. Especially in large-scale production, the manual cutting method cannot meet the needs of high-speed, stable and precise production, and an automated equipment is urgently needed to solve this problem.
[0003] Most of the existing cutting equipment are simple in design and single in function, making it difficult to achieve fully automated operation. In addition, problems such as duck neck slippage and inaccurate cutting are prone to occur during the processing. In addition, the maintenance and cleaning of the existing equipment are relatively cumbersome, affecting production efficiency and hygiene standards. Therefore, it is of great practical significance to develop a braised duck neck production and cutting equipment that can achieve automation, precise cutting and easy maintenance.
[0004] The present invention aims to provide an automatic segmenting device for producing braised duck necks, so as to solve the above-mentioned problems in the prior art, improve production efficiency and product quality, reduce labor intensity, and meet the needs of modern production. Summary of the invention
[0005] In view of the above-mentioned deficiencies in the prior art, the object of the present invention is to provide an automatic segmenting equipment for the production of braised duck necks which has high production efficiency, uniform cutting, reduced labor intensity and improved product quality.
[0006] The technical solution adopted by the present invention to achieve the above-mentioned purpose is: an automatic segmenting equipment for producing braised duck necks, including a base, a mounting frame, a rotating shaft roller, an outer shaft shell, a placement component, a segmenting component, and a feeding component. The upper end of the base is fixedly connected to two groups of relatively arranged mounting frames for providing support and fixation for other components. The rotating shaft rollers are fixedly connected between the mounting frames for providing rotational support movement for other components. The rotating shaft rollers are rotatably connected to the outer shaft shell, which is used in conjunction with the rotating shaft rollers to drive other components to rotate. The outer shaft shell is embedded with a A plurality of placement components are connected, which are used to place duck necks to be cut into segments. A segmentation component is fixedly connected to the mounting frame, and the segmentation component is arranged opposite to the placement component on one side of the upper end of the outer shaft sleeve shell. The segmentation component is used to segment the duck necks in the placement component. The placement component at the other end of the upper end of the outer shaft sleeve shell is arranged opposite to the guide tube, and the guide tube is used to guide the unsegmented duck necks into the placement component. The guide tube is fixedly connected to one end of the feeding component, and the feeding component is located on one side of the outer shaft sleeve shell. The feeding component is used to transport the unsegmented duck necks into the guide tube; During specific operation, the feeding component transports the duck neck into the guide tube, and places the duck neck in the placement component along the guide tube. Then the outer shaft sleeve rotates on the rotating shaft roller, so that the placement component and the segmentation component are arranged relatively to each other, and the duck neck is evenly segmented by the segmentation component. Then the outer shaft sleeve continues to rotate, and the segmented duck neck in the placement component is poured out by gravity.
[0007] In one embodiment, one end of the outer shaft sleeve is fixedly connected to a transmission gear, and the transmission gear is also rotatably connected to one end of the rotating shaft roller. The transmission gear is meshingly connected to a driving gear, and the driving gear is connected to the rotating shaft of a driving motor. The driving motor is fixedly connected to one side of one set of mounting frames.
[0008] In one embodiment, the placement component includes a material placement box, a material clamping plate, a sliding block, a hook rod, a scissor-type rotating frame, a movable frame, a movable rod, and an adjusting wheel. The outer peripheral side surface of the outer shaft sleeve is provided with a mounting groove, and the material placement box is fixedly connected to the groove of the mounting groove. Slide groove openings are provided on both sides of the lower end of the material placement box, and a sliding block is slidably connected in the slide groove opening. The opposite side of the sliding block is respectively fixedly connected with a material clamping plate, and the material clamping plate is relatively movably connected in the material placement box. Sliding sleeve holes are respectively provided on the separated sides of the sliding block, and one end of the hook rod is slidably connected to the sliding sleeve hole. A spring hole is provided at one end of the hook rod opposite to the sliding sleeve hole, and the sliding sleeve is connected in the spring hole. There is a tensioning spring, one end of the tensioning spring is in conflict with the bottom of the sliding sleeve hole, and the other end of the hook rod is movably connected to the bottom of the material box, and guide groove openings are respectively opened on the two inner side walls of the mounting groove, and the bent parts of the hook rod are slidably connected in the guide groove openings respectively, and the bent parts of the hook rod are fixedly connected with a guide rod, and a guide hole is opened in the guide groove opening, and the guide rod is slidably connected in the guide hole, and the other end of the hook rod is rotatably connected to the scissors-type rotating frame respectively, and the other end of the scissors-type rotating frame is slidably connected in the movable frame, and a movable rod is fixedly connected to the middle part of the lower end of the movable frame, and the other end of the movable rod is rotatably connected to an adjusting wheel, and the adjusting wheel is transmission connected to the rotating shaft roller.
[0009] In one embodiment, an annular groove is provided on the outer peripheral side of the rotating shaft roller, and the adjusting wheel is rollingly connected in the annular groove. The cross section of the annular groove is formed by connecting an arc segment and an inner concave segment end to end.
[0010] The cam is connected to the upper and lower parts of the U-shaped frame by the spring, and the cam is connected to the lower part of the U-shaped frame by the spring.
[0011] In one embodiment, a plurality of cutting grooves are formed on the clamping plate, and two sides of the cutting blade are slidably connected in the cutting grooves respectively.
[0012] In one embodiment, connecting rods are fixedly connected to the relative inner walls of the U-shaped fixing frame, and infrared transmitters are fixedly connected to the ends of the connecting rods. Infrared receivers are fixedly connected to the outer shaft sleeves at both ends of the material box, and the infrared transmitter and infrared receiver are arranged opposite to each other.
[0013] In one of the embodiments, the feeding assembly includes a belt conveyor, a mounting frame, a rotating shaft, a material baffle plate, a rotating block, a rotating rod, an electric telescopic rod, and a material sensor (reflective photoelectric sensor). A mounting frame is fixedly connected to a base on one side of the mounting frame, and a plurality of belt conveyors arranged side by side are fixedly connected in the mounting frame. A rotating shaft is rotatably connected in the mounting frame above the belt conveyor, and a plurality of material baffle plates are fixedly connected on the rotating shaft. The material baffle plates are respectively located on the belt conveyor, and one end of the rotating shaft is fixedly connected to the rotating block after passing through the mounting frame. A rotating rod is fixedly connected to one side of the rotating block, and a U-shaped rotating shaft frame is rotatably connected to the end of the rotating rod, and one end of the U-shaped rotating shaft frame is fixedly connected to the electric telescopic rod, and the other end of the electric telescopic rod is rotatably connected to one side of the mounting frame. A material sensor is fixedly connected to the mounting frame on one side of the material baffle plate.
[0014] In one of the embodiments, a material receiving box is provided on the base on the other side of the mounting frame, and the material receiving box is located on one side of the lower end of the outer shaft sleeve shell, and two sets of relatively parallel sliding guide rails are fixedly connected to the lower end of the material receiving box, and a sliding rail groove is opened on the upper end of the base, and the sliding guide rail is slidably connected in the sliding rail groove, and carrying handles are fixedly connected to both ends of the material receiving box.
[0015] Beneficial effects of the present invention: 1. Improve production efficiency: This equipment reduces the need for manual operation through the automated cutting process, greatly improving production efficiency. Compared with traditional manual cutting, the automated equipment can complete the cutting task stably and efficiently, meeting the needs of large-scale production; 2. High cutting uniformity: The cutting components in the equipment are used in conjunction with the outer shaft sleeve to ensure the stability and uniformity of the duck neck during the cutting process. Through precise mechanical control, the length of the cut duck neck segments is consistent, and the quality is more guaranteed; 3. Reduce labor intensity: Using automated equipment instead of manual operation not only reduces the labor intensity of workers, but also reduces fatigue and potential safety risks caused by manual operation, and improves the working environment; 4. Improve product quality: Through precise mechanical cutting, irregular cutting and damage caused by manual operation are avoided, the appearance and quality of the product are guaranteed, and the scrap rate is also reduced; 5. Easy to maintain and clean: The equipment is reasonably designed, the connection and coordination between the components are simple, easy to disassemble and clean, with low maintenance cost, in line with food production hygiene standards, and ensure the cleanliness of the production environment; 6. Intelligent control: The equipment is equipped with an infrared transmitter and receiver, which realizes the precise positioning of the material box and the cutting component, ensures the accuracy and stability of the cutting operation, and the intelligent control system improves the convenience and reliability of operation; 7. High safety: Through mechanical transmission and intelligent control system, manual intervention is reduced, the risk of operator misoperation is reduced, and the safety of the overall production process is improved; In summary, the present invention not only has significant improvements in ease of operation, production efficiency and product quality, but also shows obvious advantages in reducing labor intensity, improving safety and facilitating equipment maintenance, and is suitable for the needs of modern braised duck neck production. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a front perspective structural schematic diagram of the present invention; Figure 2 It is a schematic diagram of the side-view stereoscopic structure of the present invention; Figure 3 It is a schematic diagram of the cross-sectional connection structure of the outer shaft sleeve shell of the present invention; Figure 4 for Figure 3 Schematic diagram of the detailed structure of the A1 part; Figure 5 for Figure 4 Schematic diagram of the detailed structure of the A2 part; Figure 6 This is a schematic diagram of the connection structure of the segment cutting assembly of the present invention; Figure 7 It is a schematic diagram of the cross-sectional connection structure of the chute block of the present invention; Figure 8 It is a schematic diagram of the structure of the feeding assembly of the present invention.
[0017] In the figure: 1 base, 2 mounting frame, 3 rotating shaft roller, 4 outer shaft shell, 5 placement component, 6 cutting component, 7 feeding component, 8 guide tube, 101 transmission gear, 102 driving gear, 103 driving motor, 201 material box, 202 clamping plate, 203 sliding block, 204 hook rod, 205 scissor-type rotating frame, 206 movable frame, 207 movable rod, 208 adjusting wheel, 209 mounting groove, 210 sliding sleeve hole, 211 spring hole, 212 tensioning spring, 213 guide groove, 214 annular groove, 215 guide rod, 216 guide Hole, 301 U-shaped fixing frame, 302 slide box, 303 slide block, 304 pressure block, 305 cutting blade, 306 compression spring, 307 telescopic cylinder, 308 sliding guide rod, 309 sliding sleeve, 310 connecting rod, 311 infrared transmitter, 312 infrared receiver, 401 belt conveyor, 402 mounting fixing frame, 403 rotating shaft, 404 material baffle plate, 405 rotating block, 406 rotating rod, 407 electric telescopic rod, 408 material sensor, 501 receiving box, 502 sliding guide rail, 503 sliding rail groove, 504 handle. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0019] See also Figure 1-8 , an automatic segmenting equipment for producing braised duck necks, comprising a base 1, a mounting frame 2, a rotating shaft roller 3, an outer shaft shell 4, a placing component 5, a segmenting component 6, and a feeding component 7. The upper end of the base 1 is fixedly connected with two sets of mounting frames 2 arranged opposite to each other, which are used to provide support and fixation for other components. The rotating shaft roller 3 is fixedly connected between the mounting frames 2 to provide rotational support movement for other components. The rotating shaft roller 3 is rotatably connected with the outer shaft shell 4, which is used in conjunction with the rotating shaft roller 3 to drive other components to rotate. The outer shaft shell 4 is embedded and connected with a plurality of placing components. Component 5 is used to place the duck neck to be cut into segments. A segmentation component 6 is fixedly connected to the mounting frame 2. The segmentation component 6 is arranged opposite to the placement component 5 on one side of the upper end of the outer shaft sleeve 4. The segmentation component 6 is used to segment the duck neck in the placement component 5. The placement component 5 at the other end of the upper end of the outer shaft sleeve 4 is arranged opposite to the guide pipe 8. The guide pipe 8 is used to guide the unsegmented duck neck into the placement component 5. The guide pipe 8 is fixedly connected to one end of the feeding component 7. The feeding component 7 is located on one side of the outer shaft sleeve 4. The feeding component 7 is used to transport the unsegmented duck neck into the guide pipe 8; During specific operation, the feeding component 7 conveys the duck neck into the guide tube 8, and places the duck neck in the placement component 5 along the guide tube 8. Then, the outer shaft sleeve 4 rotates on the rotating shaft roller 3, so that the placement component 5 and the segmentation component 6 are arranged relative to each other, and the duck neck is evenly segmented by the segmentation component 6. Then, the outer shaft sleeve 4 continues to rotate, and the segmented duck neck in the placement component 5 is poured out by gravity.
[0020] See also Figure 1 and Figure 2 In one embodiment, one end of the outer shaft casing 4 is fixedly connected to a transmission gear 101, and the transmission gear 101 is also rotatably connected to one end of the rotating shaft roller 3. The transmission gear 101 is meshingly connected to a driving gear 102, and the driving gear 102 is connected to the rotating shaft of a driving motor 103. The driving motor 103 is fixedly connected to one side of one group of mounting frames 2. When in use, the driving motor 103 drives the driving gear 102 to rotate, and the driving gear 102 drives the transmission gear 101 to rotate, and the outer shaft casing 4 is driven to rotate on the rotating shaft roller 3 through the transmission gear 101.
[0021] See also Figure 3-5In one embodiment, the placement component 5 includes a material box 201, a clamping plate 202, a sliding block 203, a hook rod 204, a scissor-type rotating frame 205, a movable frame 206, a movable rod 207, and an adjusting wheel 208. The outer peripheral side of the outer shaft sleeve 4 is provided with a mounting groove 209, and the slot of the mounting groove 209 is fixedly connected to the material box 201. Slide grooves are provided on both sides of the lower end of the material box 201, and the sliding block 203 is slidably connected in the slide groove. The opposite side of the block 203 is respectively fixedly connected with a clamping plate 202, and the clamping plate 202 is relatively movably connected in the material box 201. The separated side of the sliding block 203 is respectively provided with a sliding hole 210, one end of the hook rod 204 is slidably connected in the sliding hole 210, and one end of the hook rod 204 opposite to the sliding hole 210 is provided with a spring hole 211, and the spring hole 211 is connected with a tension spring 212 in the sliding sleeve, and one end of the tension spring 212 is connected to the bottom of the sliding hole 210. The other end of the hook rod 204 is movably connected to the bottom of the material box 201, and the two inner side walls of the mounting groove 209 are respectively provided with guide slots 213, and the bent portion of the hook rod 204 is respectively slidably connected in the guide slots 213, and the bent portion of the hook rod 204 is fixedly connected with a guide rod 215, and a guide hole 216 is provided in the guide slot 213, and the guide rod 215 is slidably connected in the guide hole 216, and the other end of the hook rod 204 is respectively connected to the scissor-type rotating frame 20 5 is rotatably connected, the other end of the scissor-type rotating frame 205 is slidably connected to the movable frame 206, the middle part of the lower end of the movable frame 206 is fixedly connected with a movable rod 207, the other end of the movable rod 207 is rotatably connected with an adjusting wheel 208, and the adjusting wheel 208 is transmission-connected with the rotating shaft roller 3; an annular groove 214 is provided on the outer peripheral side of the rotating shaft roller 3, and the adjusting wheel 208 is rollingly connected in the annular groove 214, and the cross section of the annular groove 214 is formed by connecting a circular arc segment and an inner concave segment end to end; In the present invention, the concave section of the annular groove 214 is arranged toward the segmentation component 6. The specific operation is that first, the material box 201 is arranged opposite to the material guide tube 8 under the rotation of the outer shaft sleeve 4. At this time, the feeding component 7 transports the duck neck to be processed into the material box 201, and the duck neck is located between the two sets of clamping plates 202. Then the outer shaft sleeve 4 continues to rotate until the material box 201 and the segmentation component 6 are arranged opposite to each other. At this time, the adjusting wheel 208 rolls along the arc section to the concave section. During this process, the adjusting wheel 208 pulls the movable rod 207 toward the center. The movable rod 207 drives the movable frame 206 to slide toward the bottom along the mounting groove 209. The scissor-type rotating frame 205 is rotated through the movable frame 206. The scissor-type rotating frame 205 drives the hook rods 204 to move toward each other respectively. The other end of the hook rod 204 drives the clamping plate 202 to clamp and fix the duck neck, so that the relatively bent duck neck is pressed straight. When the segmentation operation is performed, the uniformity of the segmentation can be improved.
[0022] See also Figure 6In one embodiment, the cutting assembly 6 includes a U-shaped fixing frame 301, a slide box 302, a slide block 303, a pressing block 304, a cutting blade 305, a compression spring 306, a telescopic cylinder 307, and a sliding guide rod 308. The two ends of the U-shaped fixing frame 301 are respectively fixedly connected to the mounting frame 2, and the middle part of the U-shaped fixing frame 301 is fixedly connected with the telescopic cylinder 307. The top rod of the telescopic cylinder 307 passes through the U-shaped fixing frame 301 and is fixedly connected to the middle part of the slide box 302. The slide boxes 302 on both sides of the telescopic cylinder 307 are respectively fixedly connected with sliding guides. The rod 308 and the U-shaped fixing frame 301 are respectively fixedly connected with a sliding sleeve 309, the sliding guide rod 308 is connected to the sliding sleeve 309, the sliding guide rod 308 is connected to the sliding sleeve 309, the sliding slot block 303 is connected to the sliding slot box 302, the lower end of the sliding slot block 303 is fixedly connected to the pressing block 304, the pressing block 304 is plugged and connected to the material box 201, and the sliding slot block 303 and the pressing block 304 are connected to a plurality of cutting blades 305, one end of the cutting blade 305 is fixedly connected to the inside of the sliding slot box 302, and a plurality of guide slot holes are provided on the sliding slot block 303 opposite to the sliding slot box 302, and the bottom of the guide slot hole is fixed The fixed connection is provided with a compression spring 306, and the other end of the compression spring 306 is fixedly connected to the slide box 302. When the material box 201 is relatively arranged with the cutting component 6, the telescopic cylinder 307 is started, and the telescopic cylinder 307 drives the slide box 302 to move toward the material box 201, and the slide box 302 drives the slide block 303 and the pressing block 304 to move toward the material box 201. In this process, the pressing block 304 first enters the material box 201 and moves relatively along the two sets of clamping plates 202 until the pressing plate presses the duck neck between the clamping plates 202, and further The duck neck is straightened, and then the telescopic cylinder 307 continues to push the slide box 302 to move. The compression spring 306 between the slide box 302 and the slide block 303 is compressed, and at the same time drives the cutting blade 305 to move downward. The cutting blade 305 slides relatively in the slide block 303 and the pressing block 304, and cuts the duck neck. After the cutting is completed, the telescopic cylinder 307 contracts, and first, under the action of the compression spring 306, the cutting blade 305 is reset. After that, the slide box 302 drives the slide block 303 and the pressing block 304 to leave the material box 201.
[0023] In one embodiment, a plurality of cutting grooves are formed on the clamping plate 202 , and two sides of the cutting blade 305 are slidably connected in the cutting grooves respectively to prevent the clamping plate 202 from blocking the cutting blade 305 .
[0024] In one embodiment, connecting rods 310 are fixedly connected to the relative inner walls of the U-shaped fixing frame 301, and infrared transmitters 311 are fixedly connected to the ends of the connecting rods 310. Infrared receivers 312 are fixedly connected to the outer shaft sleeves 4 at both ends of the material box 201, and the infrared transmitter 311 and the infrared receiver 312 are arranged opposite to each other to achieve precise positioning of the material box 201 and the cutting assembly 6.
[0025] See also Figure 8 In one embodiment, the feeding assembly 7 includes a belt conveyor 401, a mounting frame 402, a rotating shaft 403, a material baffle plate 404, a rotating block 405, a rotating rod 406, an electric telescopic rod 407, and a material sensor 408 (a reflective photoelectric sensor). The mounting frame 402 is fixedly connected to the base 1 on one side of the mounting frame 2, and a plurality of belt conveyors 401 arranged side by side are fixedly connected in the mounting frame 402. A rotating shaft 403 is rotatably connected in the mounting frame 402 above the belt conveyor 401, and a plurality of material baffle plates 404 are fixedly connected to the rotating shaft 403. The material baffle plates 404 are respectively located on the belt conveyor 401. One end of the rotating shaft 403 passes through the mounting frame 402 and is fixedly connected to the rotating block 405. A rotating rod 406 is fixedly connected to one side of the rotating block 405. The end of the rotating rod 406 The end is rotatably connected to a U-shaped rotating shaft frame, one end of the U-shaped rotating shaft frame is fixedly connected to an electric telescopic rod 407, and the other end of the electric telescopic rod 407 is rotatably connected to one side of the mounting bracket 402, and a material sensor 408 is fixedly connected to the mounting bracket 402 on one side of the baffle plate 404. In specific work, the transmission process of the duck neck is realized by the belt conveyor 401. When the duck neck passes through the material sensor 408, the position of the duck neck can be detected, and then the duck neck is intercepted and adjusted by the baffle plate 404, and then the electric telescopic rod 407 drives the rotating rod 406 and the rotating block 405 to rotate, and the rotating block 405 drives the rotating shaft 403 and the baffle plate 404 to flip upward. At this time, the duck neck is transported to the guide pipe 8 by the belt conveyor 401, and the duck neck slides downward along the guide pipe 8, and finally slides into the material box 201.
[0026] See also Figure 2 In one embodiment, a material receiving box 501 is provided on the base 1 on the other side of the mounting frame 2. The material receiving box 501 is located on one side of the lower end of the outer shaft sleeve 4. Two sets of relatively parallel slide rails 502 are fixedly connected to the lower end of the material receiving box 501. A slide rail groove 503 is opened at the upper end of the base 1. The slide rail 502 is slidably connected in the slide rail groove 503. Handles 504 are fixedly connected to both ends of the material receiving box 501. The material receiving box 501 is relatively slidably connected to the base 1 through the slide rail groove 503. After the duck neck is cut into sections, the outer shaft sleeve 4 Continue to rotate along the rotating shaft roller 3. During this process, the adjusting wheel 208 rolls from the concave section to the arc section, and drives the movable rod 207 to move upward. The movable rod 207 drives the movable frame 206 to move upward. The movable frame 206 drives the hook rod 204 to move to both sides through the scissor-type rotating frame 205. The hook rod 204 drives the sliding block 203 and the clamping plate 202 to move to both sides respectively, so that the clamping plate 202 releases the clamped duck neck, and then the material box 201 tilts downward, thereby dumping the internal duck neck into the receiving box 501.
[0027] It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above and that the invention can be implemented in other specific forms without departing from the spirit or essential features of the invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description, and it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be included in the invention. Any reference numeral in a claim should not be considered as limiting the claim to which it relates.
[0028] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
Claims
1. An automatic segmenting device for producing braised duck necks, comprising a base (1), a mounting frame (2), a rotating shaft roller (3), an outer shaft casing (4), a placement component (5), a segmenting component (6), and a feeding component (7), characterized in that: The upper end of the base (1) is fixedly connected to two sets of mounting frames (2) arranged opposite to each other, and used to provide support and fixation for other components; a rotating shaft roller (3) is fixedly connected between the mounting frames (2) and used to provide rotational support movement for other components; an outer shaft sleeve (4) is rotatably connected to the rotating shaft roller (3) and used in conjunction with the rotating shaft roller (3) to drive other components to perform rotational movement; a plurality of placement components (5) are embedded and connected to the outer shaft sleeve (4) and used to place duck necks to be cut; a segmentation component (6) is fixedly connected to the mounting frame (2); the segmentation component (6) The component (6) is arranged relative to the placement component (5) on one side of the upper end of the outer shaft sleeve (4); the segmentation component (6) is used to segment the duck necks in the placement component (5); the placement component (5) on the other end of the upper end of the outer shaft sleeve (4) is arranged relative to the guide tube (8); the guide tube (8) is used to guide the unsegmented duck necks into the placement component (5); the guide tube (8) is fixedly connected to one end of the feeding component (7); the feeding component (7) is located on one side of the outer shaft sleeve (4); the feeding component (7) is used to transport the unsegmented duck necks into the guide tube (8).
2. The automatic segmenting equipment for producing braised duck neck according to claim 1, characterized in that: One end of the outer shaft housing (4) is fixedly connected to a transmission gear (101), and the transmission gear (101) is also rotationally connected to one end of the rotating shaft roller (3). The transmission gear (101) is meshingly connected to a driving gear (102), and the driving gear (102) is connected to the rotating shaft of a driving motor (103). The driving motor (103) is fixedly connected to one side of one set of mounting frames (2).
3. The automatic segmenting equipment for producing braised duck neck according to claim 1, characterized in that: The placement assembly (5) comprises a material placement box (201), a material clamping plate (202), a sliding block (203), a hook rod (204), a scissor-type rotating frame (205), a movable frame (206), a movable rod (207), and an adjusting wheel (208); a mounting groove (209) is provided on the outer peripheral side surface of the outer shaft sleeve (4); the material placement box (201) is fixedly connected to the groove opening of the mounting groove (209); and sliding groove openings are provided on both sides of the lower end of the material placement box (201); and a sliding groove opening is slidably connected to the sliding groove opening. A sliding block (203), wherein the opposite side of the sliding block (203) is respectively fixedly connected with a clamping plate (202), and the clamping plate (202) is relatively movably connected in the material box (201), and the separated side of the sliding block (203) is respectively provided with a sliding sleeve hole (210), and one end of the curved hook rod (204) is slidably connected in the sliding sleeve hole (210), and one end of the curved hook rod (204) opposite to the sliding sleeve hole (210) is provided with a spring hole (211), and the sliding sleeve is connected in the spring hole (211). A tension spring (212) is provided, one end of the tension spring (212) is in conflict with the bottom of the sliding sleeve hole (210), the other end of the hook rod (204) is movably connected to the bottom of the material placement box (201), the two inner side walls of the installation groove (209) are respectively provided with guide slots (213), the bent portions of the hook rod (204) are respectively slidably connected in the guide slots (213), the bent portions of the hook rod (204) are fixedly connected to a guide rod (215), and the guide slots (213) are provided with guide slots (213) to move the material placement box (201) and the guide slots (201) are respectively provided with guide slots (213). The guide rod (215) is slidably connected in the guide hole (216); the other end of the hook rod (204) is rotatably connected to the scissor-type rotating frame (205); the other end of the scissor-type rotating frame (205) is slidably connected to the movable frame (206); a movable rod (207) is fixedly connected to the middle part of the lower end of the movable frame (206); the other end of the movable rod (207) is rotatably connected to an adjusting wheel (208); and the adjusting wheel (208) is drivingly connected to the rotating shaft roller (3).
4. The automatic segmenting equipment for producing braised duck neck according to claim 3 is characterized by: An annular groove (214) is provided on the outer peripheral side surface of the rotating shaft roller (3), and the regulating wheel (208) is rollingly connected in the annular groove (214). The cross section of the annular groove (214) is formed by connecting an arc segment and an inner concave segment end to end.
5. The automatic segmenting equipment for producing braised duck neck according to claim 4, characterized in that: The cutting assembly (6) comprises a U-shaped fixing frame (301), a slide box (302), a slide block (303), a pressing block (304), a cutting blade (305), a compression spring (306), a telescopic cylinder (307), and a sliding guide rod (308). The two ends of the U-shaped fixing frame (301) are respectively fixedly connected to the mounting frame (2). The middle part of the U-shaped fixing frame (301) is fixedly connected to the telescopic cylinder (307). The top rod of the telescopic cylinder (307) passes through the U-shaped fixing frame (301) and is fixedly connected to the middle part of the slide box (302). The slide boxes (302) on both sides of the telescopic cylinder (307) are respectively fixedly connected to the sliding guide rods (308). The U-shaped fixing frame (301) is respectively fixedly connected to the sliding sleeves ( 309), the sliding guide rod (308) is slidably connected in the sliding sleeve (309), a sliding groove block (303) is slidably connected in the sliding groove box (302), a pressing block (304) is fixedly connected at the lower end of the sliding groove block (303), and the pressing block (304) is plugged into the material placement box (201), a plurality of cutting blades (305) are slidably connected in the sliding groove block (303) and the pressing block (304), one end of the cutting blade (305) is fixedly connected to the inside of the sliding groove box (302), a plurality of guide slot holes are opened on the sliding groove block (303) opposite to the sliding groove box (302), a compression spring (306) is fixedly connected to the bottom of the guide slot hole, and the other end of the compression spring (306) is fixedly connected to the sliding groove box (302).
6. The automatic segmenting equipment for producing braised duck neck according to claim 5, characterized in that: The clamping plate (202) is provided with a plurality of cutting grooves, and two sides of the cutting blade (305) are respectively slidably connected in the cutting grooves.
7. The automatic segmenting equipment for producing braised duck neck according to claim 6, characterized in that: Connecting rods (310) are fixedly connected to the opposite inner side walls of the U-shaped fixing frame (301), and infrared transmitters (311) are fixedly connected to the ends of the connecting rods (310). Infrared receivers (312) are fixedly connected to the outer shaft casings (4) at both ends of the material placement box (201), and the infrared transmitter (311) and the infrared receiver (312) are arranged opposite to each other.
8. The automatic segmenting equipment for producing braised duck neck according to claim 1, characterized in that: The feeding assembly (7) comprises a belt conveyor (401), a mounting frame (402), a rotating shaft (403), a material blocking plate (404), a rotating block (405), a rotating rod (406), an electric telescopic rod (407), and a material sensor (408). The mounting frame (402) is fixedly connected to a base (1) on one side of the mounting frame (2), and a plurality of belt conveyors (401) arranged side by side are fixedly connected to the mounting frame (402). The mounting frame (402) above the belt conveyor (401) is rotatably connected to a rotating shaft (403), and a plurality of material blocking plates (404) are fixedly connected to the rotating shaft (403). The baffle plates (404) are respectively located on the belt conveyor (401); one end of the rotating shaft (403) passes through the mounting frame (402) and is fixedly connected to the rotating block (405); one side of the rotating block (405) is fixedly connected to a rotating rod (406); the end of the rotating rod (406) is rotatably connected to a U-shaped rotating shaft frame; one end of the U-shaped rotating shaft frame is fixedly connected to an electric telescopic rod (407); the other end of the electric telescopic rod (407) is rotatably connected to one side of the mounting frame (402); and a material sensor (408) is fixedly connected to the mounting frame (402) on one side of the baffle plate (404).
9. The automatic segmenting equipment for producing braised duck neck according to claim 1, characterized in that: A material receiving box (501) is provided on the base (1) on the other side of the mounting frame (2), and the material receiving box (501) is located on one side of the lower end of the outer shaft sleeve (4). Two sets of relatively parallel guide rails (502) are fixedly connected to the lower end of the material receiving box (501), and a guide rail groove (503) is provided at the upper end of the base (1). The guide rail (502) is slidably connected in the guide rail groove (503). Both ends of the material receiving box (501) are respectively fixedly connected to carrying handles (504).