Processing and mixing device for pill products and boiled products
By using Mianmian ice made of boiled ingredients in the production of pill products, the problem of moisture control of meat paste is solved, the nutrition and taste of pill products is improved, and a stable production process is achieved.
Patent Information
- Application Number
- CN202422316526.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-20
AI Technical Summary
In the production of existing pill products, it is difficult to balance the moisture control of meat paste, resulting in taste and adhesion problems, affecting the quality of pill products.
Use boiled ingredients to make ice cubes and crush them into scattered ice. Add them to the meat paste through a special crushed ice component to ensure evenly distributed moisture and maintain the chewyness and adhesion of the meat. Use spiral leaves to transport and adjust the meat paste ingredients through the deflector.
It improves the nutritional composition and taste of pill products, ensures that the meat paste does not affect adhesion during processing, and achieves uniform distribution of moisture and stable production of pill products.
Smart Images

Figure CN223094645U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of manufacturing equipment for pill products, and particularly relates to a processing and mixing device for pill products and decocted products. Background Technique
[0002] In the current production process of pill products, few merchants make meat into minced meat by manual pounding. The pounded pills themselves have a better taste. However, in order to improve the production speed, the meat can only be made into minced meat by stirring and crushing. However, if such made minced meat is to be made into pills, if the water content is too low, it will cause the meat to taste tough and not conducive to chewing. If the water content is slightly higher, it will cause insufficient adhesiveness between the meats, and the meat will form a spread and cannot be made into a pill shape. Content of the Utility Model
[0003] To solve the above technical problems, the utility model provides a processing and mixing device for pill products and decocted products. In order to keep more water in the pill products without causing the meat to form a spread, the ingredients in different proportions are decocted and then made into ice cubes, and then the ice cubes are crushed and mixed into the pill products with a low water content, which not only increases the water content ratio of the pill products but also does not cause the meat to form a spread, maintaining the taste and improving the nutritional components of the pill products at the same time.
[0004] To achieve the above purpose, the technical solution adopted by the utility model is:
[0005] A processing and mixing device for pill products and decocted products, comprising a conveying cylinder, a conveying component and an ice crushing component. The conveying cylinder is a horizontally arranged hollow cylindrical structure. There is a discharge port at the front end of the conveying cylinder, and a feed port and a feeding port penetrating the inner cavity are arranged at the upper end of the conveying cylinder. The conveying component includes a spiral blade and a driving motor. The driving motor is arranged on the outer side wall at the rear end of the conveying cylinder. The output end of the driving motor penetrates the conveying cylinder and is connected to the end of the spiral blade. The spiral blade rotates around the axis of the conveying cylinder under the drive of the driving motor. The ice crushing component is arranged above the feeding port and points to the spiral blade.
[0006] The ice crushing assembly includes a feeding cylinder, a guiding cylinder, a rotating blade, a rotating motor and a gear. The feeding cylinder is connected to the feeding port through the guiding cylinder. The guiding cylinder has a hollow interior, runs through from top to bottom and has a structure that is smaller at the top and larger at the bottom. The feeding cylinder is a cylindrical structure with an upward opening. A ice crushing opening is provided at the bottom of the feeding cylinder, and ice crushing knives are provided in the ice crushing opening. The rotating blade includes a rotating column, a driving ring and two rotating half blades. The two rotating half blades are connected to the rotating column and rotate downward and are symmetric with each other with the rotating column as the symmetry center. Driving rings are provided on the outer contours of the upper ends of the two rotating half blades, and driving teeth are provided on the outer side walls of the driving rings. An extension plate is connected to the upper end surface of the feeding cylinder, the rotating motor is arranged on the extension plate, the output end of the rotating motor penetrates downward through the extension plate and is connected to the gear, and the gear meshes with the driving teeth through a driving opening on the driving ring; A rotating column extending upward is provided at the bottom of the inner cavity of the feeding cylinder, a rotating hole is provided on the rotating column, and the rotating hole is matched with the rotating column; A number of convex columns are provided on the lower end surface of the rotating half blade, and the convex columns point to the ice crushing opening.
[0007] For the processing and mixing device of pill products and decocted products adopting this structure, the function of the conveying cylinder is to drive the spiral blade to rotate through the driving motor thereon, and convey the already pulverized meat paste fed from the feeding port towards the feeding port. Both the feeding port and the feeding port are upward openings, which is convenient for the material to be guided from top to bottom under the action of gravity. Then, in order to improve the nutritional richness of the meat paste of the finished pill products and to increase its water content under the condition of less meat moisture, during the production process of goose meatballs, first, edible water, specific proportions of ingredients such as galangal and soybeans, and goose bones are simmered over a low heat until the essence comes out, then cooled, filtered, and made into ice cubes. If the ice cubes are directly pulverized and added to the meat paste, because there are some large ice cubes that are not completely pulverized in the pulverized ice cubes, adding such ice cubes to the meat paste will not only not change the water content of the meat paste, but also affect the subsequent pill-making process. In addition, the pulverized ice cubes will have different thicknesses, resulting in tiny ice cubes melting quickly in a short time. After melting into water and adding it to the meat paste, it will cause the water content of the meat paste to increase and lose its shaping ability.
[0008] Therefore, after the ice cubes are crushed into the state of snow ice, they are immediately added to the meat paste. Being wrapped in the meat paste can not only ensure that the snow ice remains in its original ice state, but also ensure that the crushed ice has the same size, without affecting the subsequent pill-making process. Therefore, a crushed ice component is provided at the feeding port to introduce the ice cubes into the feeding cylinder. A crushed ice knife is provided at the bottom of the feeding cylinder. The crushed ice knife is arranged in the radial direction at the bottom of the feeding cylinder and the cutting edge is perpendicular to the radial direction of the bottom of the feeding cylinder. If the ice cubes make a circular motion in the feeding cylinder in the direction of the cutting edge of the crushed ice knife, the ice cubes can be continuously scraped by the crushed ice knife during the circumferential rotation, and the ice cubes are crushed into snow ice. The made snow ice will enter the guiding cylinder. The guiding cylinder has a structure that is smaller at the top and larger at the bottom. Therefore, the falling snow ice will not adhere to the inner side wall of the guiding cylinder, avoiding melting into water and flowing into the feeding port due to wall sticking. In order to enable the ice cubes to rotate circumferentially, a rotating blade is provided. The rotating blade is composed of a rotating column, a driving ring and two rotating half blades. The two rotating half blades are connected to the rotating column and rotate downward and are symmetric with each other with the rotating column as the center of symmetry. There is an inlet gap at the upper ends of the two rotating blades, and the lower ends are openings facing the bottom of the feeding cylinder. The rotating half blades are spiral. When the rotating blade rotates continuously, the ice cubes will be introduced and continuously pressed down by the rotating half blades. The rotating direction of the rotating blade is opposite to the cutting edge direction of the crushed ice knife. Therefore, when the rotating blade rotates, not only can the ice cubes be made into snow ice, but also ice cubes can be continuously introduced into the rotating blade from the upper end. In addition, several convex columns are provided on the lower end surface of the rotating half blade. The convex columns pointing to the crushing opening can hold the ice cubes to ensure that the ice cubes will not move upward when being driven to rotate. In order to ensure the rotation stability of the rotating blade, a rotating column extending upward is provided at the bottom of the feeding cylinder. A rotating hole matching the rotating column is provided on the rotating column. The rotating blade can rotate smoothly on the rotating column. More preferably, the rotating hole can be set as a structure that penetrates upward. After the rotating column is fitted in the rotating hole, it extends upward and penetrates the rotating hole, and a screw hole is provided on the upper end surface of the rotating column. By locking a screw into the screw hole, the up and down movement space of the rotating column can be restricted.
[0009] The rotating blade can only maintain the production of snow ice for the boiled product when driven. Therefore, the installation position of the rotating motor cannot be at the upper and lower ends of the rotating blade. Therefore, a driving ring is provided on the outer contour at the upper ends of the two rotating half blades. Driving teeth are provided on the outer side wall of the driving ring. The rotating motor is arranged on the extension plate on the upper end surface of the feeding cylinder. The output end of the rotating motor penetrates the extension plate downward and meshes with a gear rotating at the bottom of the extension plate. The other end of the gear meshes with the driving teeth. Therefore, when the driving motor is started, the driving teeth can be driven to rotate through the transmission of the gear, thereby driving the rotation of the rotating blade. The fed ice cubes can be locked in the flange at the upper end of the extension plate through the guiding cylinder. When necessary, the guiding cylinder can be wrapped with heat insulation cotton to avoid the melting of the ice cubes.
[0010] Further, a flow guide plate is provided in the inner cavity of the conveying cylinder. The flow guide plate is connected to the upper wall of the inner cavity of the conveying cylinder and inclines towards the discharge port.
[0011] Compared with the prior art, the advantages of the present utility model are as follows: By adding the shaved ice made from the boiled ice cubes into the minced meat that has been pulverized, and adding the shaved ice when the minced meat is driven by the spiral blade through the feeding port, the shaved ice is wrapped in the minced meat. In this way, the water content of the meat quality of the minced meat itself will not increase, and its chewiness can still be maintained. However, the shaved ice remains in the minced meat and will not be mixed with the minced meat, which will not affect the adhesiveness of the minced meat, but still retains the soup of the boiled product. While improving the nutritional content of the ball products, when eating such balls, there will be juice in the mouth with one bite, which can also enhance the taste. The boiled products can be boiled with different ratios according to different needs, and the ball products can also use materials such as goose meat, pork, beef, etc. according to requirements. The transmission of the minced meat and the addition of the shaved ice of this device can effectively mix the two and then enter the next process for production. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model 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 only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0013] Figure 1 is a perspective view of the present utility model;
[0014] Figure 2 is an exploded view of the present utility model;
[0015] Figure 3 is a top view of the present utility model;
[0016] Figure 4 is the Figure 3 A-A cross-sectional view of the present utility model;
[0017] Figure 5 is a bottom perspective view of the feeding cylinder and the guiding cylinder of the present utility model;
[0018] Figure 6 is a top perspective view of the feeding cylinder and the guiding cylinder of the present utility model;
[0019] Figure 7 is a bottom perspective view of the rotating blade of the present utility model.
[0020] Wherein: 1. conveying cylinder; 11. discharge port; 12. feed port; 13. feeding port; 14. deflector; 2. conveying assembly; 21. spiral blade; 22. driving motor; 3. ice crushing assembly; 31. feed cylinder; 311. ice crushing port; 312. ice crushing knife; 313. extension plate; 314. rotating column; 32. guiding cylinder; 33. rotating blade; 331. rotating column; 3311. rotating hole; 332. driving ring; 3321. driving tooth; 3322. driving port; 333. rotating half blade; 3331. convex column; 34. rotating motor; 35. gear. Detailed implementation manner
[0021] To make the objectives, technical solutions and advantages of the present utility model clearer, the technical solutions of the present utility model will be described clearly and completely below. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope protected by the present utility model.
[0022] The following will describe the detailed implementation manner of the present utility model in conjunction with the drawings:
[0023] As Figure 1-7 shown, a processing and mixing device for pill products and decocted products includes a conveying cylinder 1, a conveying assembly 2 and an ice crushing assembly 3. The conveying cylinder 1 is a horizontally placed and hollow cylindrical structure. The front end of the conveying cylinder 1 is provided with a discharge port 11. The upper end of the conveying cylinder 1 is provided with a feed port 12 and a feeding port 13 that penetrate the inner cavity. The conveying assembly 2 includes a spiral blade 21 and a driving motor 22. The driving motor 22 is arranged on the outer side wall of the rear end of the conveying cylinder 1. The output end of the driving motor 22 penetrates the conveying cylinder 1 and is connected to the end of the spiral blade 21. The spiral blade 21 rotates around the axis of the conveying cylinder 1 as the rotation center under the drive of the driving motor 22. The ice crushing assembly 3 is arranged above the feeding port 13 and points to the spiral blade 21.
[0024] The ice crushing assembly 3 includes a feeding cylinder 31, a guiding cylinder 32, a rotating blade 33, a rotating motor 34 and a gear 35. The feeding cylinder 31 is connected to the feeding port 13 through the guiding cylinder 32. The guiding cylinder 32 has a hollow interior, runs through from top to bottom and has a smaller upper part and a larger lower part. The feeding cylinder 31 has a tubular structure with an upward opening. A crushing opening 311 is provided at the bottom of the feeding cylinder 31, and a crushing knife 312 is provided in the crushing opening 311. The rotating blade 33 includes a rotating column 331, a driving ring 332 and two rotating half blades 333. The two rotating half blades 333 are connected to the rotating column 331 and rotate downward and are symmetric with each other with the rotating column 331 as the symmetry center. A driving ring 332 is provided on the outer contour of the upper ends of the two rotating half blades 333, and driving teeth 3321 are provided on the outer side wall of the driving ring 332. An extension plate 313 is connected to the upper end surface of the feeding cylinder 31. The rotating motor 34 is arranged on the extension plate 313. The output end of the rotating motor 34 penetrates downward through the extension plate 313 and is connected to the gear 35. The gear 35 meshes with the driving teeth 3321 through a driving opening 3322 on the driving ring 332. A rotating column 314 extending upward is provided at the bottom of the inner cavity of the feeding cylinder 31. A rotating hole 3311 is provided on the rotating column 331, and the rotating hole 3311 is matched with the rotating column 314. A plurality of convex columns 3331 are provided on the lower end surface of the rotating half blade 333, and the convex columns 3331 point to the crushing opening 311.
[0025] Further, a flow guiding plate 14 is provided in the inner cavity of the conveying cylinder 1. The flow guiding plate 14 is connected to the upper wall of the inner cavity of the conveying cylinder 1 and is inclined toward the discharge port 11.
[0026] The working mode of the present utility model is described as follows:
[0027] For the processing and mixing device of pill products and decocted products with this structure, the function of the conveying cylinder 1 is to drive the spiral blade 21 to rotate through the driving motor 22 thereon, and convey the already crushed meat paste fed from the feeding port 12 in the direction of the feeding port 13. Both the feeding port 12 and the feeding port 13 have upward openings, which is convenient for the material to be guided from top to bottom under the action of gravity. Then, in order to improve the nutritional richness of the finished pill product meat paste and to increase its water content in the case of less meat moisture, during the production process of goose meatballs, first boil the edible water, specific proportions of galangal, soybeans and other ingredients with goose bones over a slow fire until the essence comes out, then cool, filter, and then make ice cubes. If the ice cubes are directly crushed and added to the meat paste, there will be some large ice cubes that are not completely crushed in the crushed ice cubes. Adding such ice cubes to the meat paste will not only not change the water content of the meat paste, but also affect the subsequent pill-making process. In addition, the crushed ice cubes will have different thicknesses, resulting in small ice cubes melting quickly in a short time. After melting into water and adding it to the meat paste, it will cause the water content of the meat paste to increase and lose the ability to be shaped.
[0028] Therefore, after the ice cubes are crushed into the state of shaved ice, they are immediately added to the meat puree. Being wrapped in the meat puree not only ensures that the shaved ice remains in its original icy state, but also ensures that the size of the crushed ice is consistent, which will not affect the subsequent pill-making process. Therefore, the ice crushing assembly 3 provided on the feeding port 13 guides the ice cubes into the feeding barrel 31. The bottom of the feeding barrel 31 is provided with an ice crushing knife 312. The ice crushing knife 312 is arranged in the radial direction of the bottom of the feeding barrel 31 and the blade is perpendicular to the radial direction of the bottom of the feeding barrel 31. If the ice cubes make a circular motion in the feeding barrel 31 facing the blade direction of the ice crushing knife 312, the ice cubes can rotate in the circumferential direction. During the movement, the ice is continuously scraped by the ice-crushing blade 312, and the ice is crushed into slushy ice. The slushy ice will enter the guide cylinder 32. The guide cylinder 32 is a structure that is small at the top and large at the bottom. Therefore, the fallen slushy ice will not adhere to the inner wall of the guide cylinder 32, so as to avoid melting into water and flowing into the feeding port 13 due to hanging on the wall. In order to allow the ice to rotate in a circumferential direction, a rotating blade 33 is provided. The rotating blade 33 is composed of a rotating column 331, a driving ring 332 and two rotating half blades 333. The two rotating half blades 333 are connected to the rotating column 331 and rotate downward with the rotating column 331 as the symmetry center. The two rotating blades 33 The upper end is provided with an entry notch, and the lower end is an opening toward the bottom of the feed barrel 31, and the spiral rotating half blade 333, when the rotating blade 33 continues to rotate, the ice cubes will be introduced into the rotating half blade 333 and continuously pressed down, and the rotation direction of the rotating blade 33 is opposite to the direction of the blade edge of the ice crushing knife 312, so when the rotating blade 33 rotates, not only can the ice cubes be kept made into shaved ice, but the ice cubes can also be continuously introduced into the rotating blade 33 from the upper end, and a plurality of convex columns 3331 are provided on the lower end surface of the rotating half blade 333, and the convex columns 3331 pointing to the ice crushing port 311 can clamp the ice cubes to ensure that the ice cubes are driven to rotate In order to ensure the rotational stability of the rotating blade 33, an upwardly extending rotating column 314 is provided at the bottom of the feed barrel 31, and a rotating hole 3311 cooperating with the rotating column 314 is provided on the rotating column 331. The rotating blade 33 can rotate smoothly on the rotating column 314. More preferably, the rotating hole 3311 can be set as an upwardly penetrating structure, and the rotating column 314 is engaged in the rotating hole 3311 and then extends upward to pass through the rotating hole 3311, and a screw hole is provided on the upper end surface of the rotating column 314. By locking a screw in the screw hole, the up and down movement space of the rotating column 331 can be limited.
[0029] The rotating blades 33 can maintain the shaved ice when they are driven, so the setting position of the rotating motor 34 cannot be at the upper and lower ends of the rotating blades 33. Therefore, a driving ring 332 is set on the outer contour of the upper ends of the two rotating half blades 333, and a driving tooth 3321 is provided on the outer wall of the driving ring 332. The rotating motor 34 is set on the extension plate 313 on the upper end surface of the feeding barrel 31. The output end of the rotating motor 34 penetrates downward through the extension plate 313 and meshes with the gear 35 rotating at the bottom of the extension plate 313. The other end of the gear 35 meshes with the driving tooth 3321. Therefore, when the driving motor 22 is started, the driving tooth 3321 can be driven to rotate through the transmission of the gear 35, thereby driving the rotation of the rotating blades 33. The fed ice cubes can be locked in the flange at the upper end of the extension plate 313 through the guide barrel. If necessary, the guide barrel can be wrapped with thermal insulation cotton to prevent the ice cubes from melting.
[0030] The guide plate 14 added in the inner cavity of the conveying cylinder 1 has a downwardly extending structure. Since the added shaved ice is at the upper end, it will be kept at the upper end position in the conveying cylinder 1 for horizontal transmission under the transmission of the spiral blade 21. If the pill making process is entered at this time, half of the meat will have shaved ice added and the other half will not. Therefore, the guide plate 14 is set at the upper end of the inner cavity of the conveying cylinder 1, and the meat paste carrying shaved ice at the upper end will be transmitted downward so that it is wrapped in the meat paste at the lower end, so that the meat paste sent out of the discharge port 11 is pure meat paste on the outside and meat paste wrapped with shaved ice on the inside, so the pill making effect will be better in the subsequent pill making process.
[0031] The beneficial effect of the utility model is that by adding shaved ice crushed by boiled ice cubes into the crushed meat paste, the shaved ice is added when the meat paste is driven by the spiral blade 21 through the feeding port 13, so that the shaved ice is wrapped in the meat paste, then the water content of the meat paste itself will not increase, and its chewiness can still be maintained, but the shaved ice remains in the meat paste and will not be mixed with the meat paste, and will not affect the adhesion of the meat paste, but retains the soup of the boiled product, while improving the nutritional content of the meatball products. When eating such meatballs, the mouth is full of juice when bitten, and the taste can also be improved. The boiled products can be boiled in different proportions according to different needs, and the meatball products can also use goose meat, pork, beef and other materials according to needs. The meat paste transmission and the addition of shaved ice of the device can effectively mix the two and enter the next process for production.
[0032] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; 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 recorded in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A processing and mixing device for pill products and decocted products, characterized in that: It includes a conveying cylinder, a transporting component and an ice crushing component. The conveying cylinder is a horizontally placed and hollow cylindrical structure. The front end of the conveying cylinder is provided with a discharge port. The upper end of the conveying cylinder is provided with a feed port and a feeding port that penetrate the inner cavity. The transporting component includes a spiral blade and a driving motor. The driving motor is arranged on the outer side wall of the rear end of the conveying cylinder. The output end of the driving motor penetrates the conveying cylinder and is connected to the end of the spiral blade. The spiral blade rotates around the axis of the conveying cylinder as the rotation center under the drive of the driving motor. The ice crushing component is arranged above the feeding port and points to the spiral blade.
2. The processing and mixing device for pill products and decocted products according to claim 1, characterized in that: The ice crushing component includes a feed cylinder, a guiding cylinder, a rotating blade, a rotating motor and a gear. The feed cylinder is connected to the feeding port through the guiding cylinder. The guiding cylinder is a structure that is hollow inside, penetrates up and down, and is smaller at the top and larger at the bottom. The feed cylinder is a cylindrical structure with an upward opening. The bottom of the feed cylinder is provided with an ice crushing port, and an ice crushing knife is arranged in the ice crushing port. The rotating blade includes a rotating column, a driving ring and two rotating half blades. The two rotating half blades are connected to the rotating column and rotate downward and are symmetric with each other with the rotating column as the symmetry center. Driving rings are arranged on the outer contours of the upper ends of the two rotating half blades. Driving teeth are arranged on the outer side wall of the driving ring. An extension plate is connected to the upper end surface of the feed cylinder. The rotating motor is arranged on the extension plate. The output end of the rotating motor penetrates the extension plate downward and is connected to the gear. The gear meshes with the driving teeth through the driving port on the driving ring.
3. The processing and mixing device for pill products and decocted products according to claim 2, characterized in that: A rotating column extending upward is arranged at the bottom of the inner cavity of the feed cylinder. A rotating hole is arranged on the rotating column, and the rotating hole is matched with the rotating column.
4. The processing and mixing device for pill products and decocted products according to claim 3, wherein: A number of convex columns are arranged on the lower end surface of the rotating half blade, and the convex columns point to the ice crushing port.
5. The processing and mixing device for pill products and decocted products according to claim 4, characterized in that: A guide plate is arranged in the inner cavity of the conveying cylinder. The guide plate is connected to the upper wall of the inner cavity of the conveying cylinder and is inclined toward the discharge port.