Mixing batcher for seasoning production
By designing a mixing ingredient for seasoning production with a rotary ingredient barrel, the problems of inaccurate spice ratio and low mixing efficiency in the prior art are solved, and a more efficient condiment production process is achieved.
Patent Information
- Application Number
- CN202510571128.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-06
- Publication Date
- 2025-06-27
AI Technical Summary
In the existing seasoning production, when the spice ratio is achieved through a screw feeder, the gaps in the conveying pipeline cause unstable spice flow, inaccurate proportions, and separate ratios and mixing, making the efficiency low.
Design a mixing ingredient for seasoning production, which can achieve more accurate ingredients through a rotating ingredient barrel, and mix directly during mixing to improve efficiency. The device includes a bracket, a mixing mechanism, a mixing mechanism and a controller that achieves the accuracy of the mixing and efficiency of mixing through rotating components and the mixing assembly.
The accuracy of ingredients and the efficiency of mixing by rotating the ingredients is achieved, which reduces the possibility of residual ingredients inside the ingredients, reduces the amount of ingredients loading the ingredients of the ingredients, and improves the overall efficiency of seasoning production.
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Figure CN120205002A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of condiment production, and particularly to a mixing batching device for condiment production. Background Technique
[0002] Condiments mainly refer to herbs and spices. Herbs are the leaves of various plants. They can be fresh, dried or ground. In some cases, a single plant can be used for both herb and spice production. Some condiments are a blend of multiple spices (such as paprika) or a blend of multiple herbs (such as a sachet of herbs). Products that are widely used in diet, cooking and food processing to improve the taste of food and have functions such as removing fishy smell, mutton smell, greasiness, enhancing fragrance, enhancing freshness, etc. It mainly includes three paragraphs of content:
[0003] When producing condiments mixed with multiple spices, generally, multiple screw conveyors are connected to the same proportioning barrel, and the proportioning of condiment spices is achieved by different running times of the screw conveyors, and then sent to a mixer for mixing. However, the screw conveyor transports spices through a screw conveyor shaft, and there are gaps inside the conveying pipeline, resulting in a continuous change in the flow rate of the transported spices, inaccurate proportioning, and at the same time, the proportioning and mixing are separated, with low efficiency. For this reason, we propose a mixing batching device for condiment production. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the existing defects, provide a mixing batching device for condiment production, achieve more accurate batching through a rotating batching cylinder, and can directly perform mixing during proportioning, improving efficiency, and effectively solving the problems in the background technique.
[0005] To achieve the above object, the present invention provides the following technical solution: A mixing batching device for condiment production, including a first bracket, a second bracket and a batching mechanism;
[0006] A mixing mechanism is arranged at the upper end of the first bracket;
[0007] The second bracket is placed at the rear end of the first bracket, the upper end of the second bracket is fixedly connected with an end cover, the end cover is arranged in cooperation with the mixing mechanism, and a uniformly distributed feeding mechanism is arranged on the upper surface of the second bracket;
[0008] The batching mechanism includes a bottom plate, an annular track, a batching component, a rotating component and a support plate. Inside the feed inlet of the end cover, there is a fixed connection with the bottom plate. On the upper surface of the bottom plate, there is an annular track. At the upper end of the bottom plate, there is a support plate. Along the edge of the bottom plate, there are evenly distributed first blanking holes. Along the edge of the support plate, there are evenly distributed second blanking holes. The number of the second blanking holes is twice that of the first blanking holes. The lower surface of the support plate is rotatably connected with a rotating component. Along the edge of the rotating component, there are fixed connections with evenly distributed batching components. The batching components are all arranged in cooperation with the annular track. The batching components are all slidably connected between the bottom plate and the support plate. The feeding mechanism is all arranged in cooperation with the support plate. Through the rotating batching cylinder, more accurate batching can be achieved. During proportioning, mixing can be directly carried out, improving efficiency.
[0009] Further, it also includes a controller, and the controller is arranged on the left side of the first bracket.
[0010] Further, the rotating component includes a rotating seat, a connecting plate and a blanking blocking plate. In the middle of the lower surface of the support plate, there is a rotatable connection with the rotating seat. On the outer arc surface of the rotating seat, there are fixed connections with evenly distributed connecting plates. Between the upper ends on the outer sides of the connecting plates, there is a fixed connection with a blanking blocking plate. The upper surface of the blanking blocking plate is slidably connected with the lower surface of the support plate, realizing the revolution of the batching cylinder.
[0011] Further, the batching component includes a protective sleeve, a batching cylinder, a driving wheel, a stirring shaft and a second rotating shaft. At one end of the connecting plate away from the rotating seat, there are fixed connections with batching cylinders. At the upper and lower ends of the batching cylinder, there are fixed connections with protective sleeves. The protective sleeves are polytetrafluoroethylene protective sleeves. The upper protective sleeves are all slidably connected with the lower surface of the support plate. The upper surface of the upper protective sleeves and the upper surface of the blanking blocking plate are on the same plane. The lower protective sleeves are all slidably connected with the upper surface of the bottom plate. The distance between the central axis of the batching cylinder and the central axis of the bottom plate, the distance between the central axis of the first blanking hole and the central axis of the bottom plate, and the distance between the central axis of the second blanking hole and the central axis of the bottom plate are the same. In the middle of the batching cylinder, there is a rotatable connection with a second rotating shaft. The parts of the second rotating shaft located inside the adjacent batching cylinders are all fixed with evenly distributed stirring shafts. At one end of the second rotating shaft close to the central axis of the bottom plate, there are fixed sleeves with driving wheels. On the upper surface of the annular track, there is an anti-slip sticker pasted. The outer arc surfaces of the driving wheels are all slidably connected with the upper surface of the anti-slip sticker, enhancing the fluidity of the batching inside the batching cylinder.
[0012] Further, the batching mechanism also includes a second motor. In the middle of the upper surface of the support plate, there is a fixed connection with the second motor. The output shaft of the second motor is fixedly connected with the upper end of the rotating seat. The input end of the second motor is electrically connected to the output end of the controller, driving the rotating seat to rotate.
[0013] Furthermore, the batching mechanism further includes extension cylinders, push-pull plates, and air cylinders. The rear end of the upper surface of the support plate is fixedly connected with evenly distributed extension cylinders. The extension cylinders are respectively communicated with the second lower material holes adjacent vertically. There is one second lower material hole spaced between two adjacent extension cylinders. The rear end of the upper surface of the support plate is fixedly connected with air cylinders evenly distributed in a circle. The rear ends of the telescopic ends of the air cylinders are fixedly connected with push-pull plates. The push-pull plates are respectively inserted into the lower ends of the extension cylinders located on the same axis of the support plate. The air inlets of the air cylinders are all communicated with an external air pump to block the materials in the extension cylinders.
[0014] Furthermore, the mixing mechanism includes a first motor, a first rotating shaft, a mixing barrel, spiral blades, and a plug-in plate. The upper end of the first support is fixedly connected with a mixing barrel. The end cover is fixedly connected to the rear side of the upper end of the mixing barrel. The middle of the mixing barrel is rotatably connected with a first rotating shaft. The outer part of the first rotating shaft is fixedly connected with evenly distributed spiral blades. The edges of the spiral blades are all slidably connected with the inner arc surface of the mixing barrel. The lower end of the discharge pipeline of the mixing barrel is inserted with a plug-in plate. The rear side of the upper end of the first support is fixedly connected with a first motor. The output shaft of the first motor is fixedly connected with the rear end of the first rotating shaft. The input end of the first motor is electrically connected to the output end of the controller to mix the batching.
[0015] Furthermore, the feeding mechanism includes a feeding barrel, a third motor, a base, a spiral feeding shaft, and a feeding pipeline. The upper surface of the second support is fixedly connected with evenly distributed bases. The upper ends of the bases are all fixedly connected with feeding barrels. The lower ends of the feeding barrels are all provided with feeding pipelines. The front ends of the feeding pipelines are respectively inserted into the interiors of the adjacent extension cylinders. The rear inner walls of the feeding pipelines are all rotatably connected with spiral feeding shafts. The rear walls of the feeding pipelines are all fixedly connected with third motors. The output shafts of the third motors are all fixedly connected with the rear ends of the spiral feeding shafts located in the same feeding pipeline. The input ends of the third motors are all electrically connected to the output end of the controller to feed the materials.
[0016] Furthermore, a distance measuring sensor is fixedly connected to the front end of the feed inlet of the end cover. A detection plate is fixedly connected to the upper surface of the bottom plate. The detection plate is located inside the annular track. The distance measuring sensor and the detection plate are corresponding in the front and rear positions. The distance measuring sensor is bidirectionally electrically connected to the controller to detect the position of the batching cylinder.
[0017] Furthermore, evenly distributed stud bolts are fixedly connected between the edge of the bottom plate and the edge of the support plate. The middle parts of the stud bolts are all movably sleeved with limit sleeves. The limit sleeves are all located between the edge of the bottom plate and the edge of the support plate to fix the bottom plate and the support plate.
[0018] Compared with the prior art, the beneficial effects of the present invention are:
[0019] 1. The output shaft of motor three drives the spiral feeding shaft to rotate, and various ingredients of the condiment enter the corresponding extension cylinder. When the material blocking plate is located at the lower end of the extension cylinder, the extension cylinder is filled with ingredients. When the ingredient cylinder rotates to the lower end of the extension cylinder, the ingredients fall into the interior of the ingredient cylinder, and the ingredient cylinder is completely filled. The ingredient cylinder continues to rotate to the first blanking hole on the bottom plate, and all the ingredients inside the ingredient cylinder fall into the interior of the feeding bucket. The volume of the ingredient cylinder remains unchanged. Before loading the ingredient cylinder, the extension cylinder is filled with ingredients. The weight difference of the ingredients put in each time is extremely small. At the same time, when the ingredient cylinder rotates around the center, the stirring shaft rotates to stir the condiment production ingredients inside the ingredient cylinder, enhancing the fluidity of the condiment production ingredients, avoiding a large amount of ingredients remaining inside the ingredient cylinder during blanking, reducing the error of the volume of the ingredient cylinder for loading ingredients, and improving the accuracy of the condiment production ingredients.
[0020] 2. When the distance detected by the ranging sensor twice before and after is the same as the distance between the ranging sensor and the detection plate, the ingredient cylinder completes a process of filling and blanking, and all the ingredients complete one blanking. When a certain ingredient no longer needs to be put in, the telescopic end of the corresponding cylinder pushes the push-pull plate, so that the push-pull plate inserts into the interior of the corresponding extension cylinder to block the extension cylinder and stop the blanking, realizing the precise proportioning of different condiment production ingredients.
[0021] 3. The ingredients falling from the first blanking hole on the bottom plate directly fall into the interior of the mixing bucket. The output shaft of motor one drives the rotating shaft one and the spiral blade to rotate to mix the condiment production ingredients, mixing the condiment production ingredients while improving the efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a schematic structural diagram of the present invention;
[0023] Figure 2 is a schematic structural diagram of the mixing mechanism of the present invention;
[0024] Figure 3 is a schematic assembly structure diagram of the plug-in board of the present invention;
[0025] Figure 4 is a partial exploded structural diagram of the ingredient mechanism of the present invention;
[0026] Figure 5 is a sectional structural diagram of the ingredient assembly of the present invention;
[0027] Figure 6 is a schematic structural diagram of the ingredient mechanism of the present invention;
[0028] Figure 7 is a schematic structural diagram of the feeding mechanism of the present invention;
[0029] Figure 8 is a schematic diagram of the cooperation between the stud and the limit sleeve of the present invention.
[0030] In the figure: 1 - Support One, 2 - Mixing Mechanism, 21 - Motor One, 22 - Rotating Shaft One, 23 - Mixing Barrel, 24 - Screw Blade, 25 - Plug - and - Play Plate, 3 - End Cover, 4 - Batching Mechanism, 41 - Base Plate, 42 - Ring Track, 43 - Batching Assembly, 431 - Protective Sleeve, 432 - Batching Tube, 433 - Driving Wheel, 434 - Stirring Shaft, 435 - Rotating Shaft Two, 44 - Rotating Assembly, 441 - Rotating Seat, 442 - Connecting Plate, 443 - Blocking Plate, 45 - Support Plate, 46 - Motor Two, 47 - Extension Tube, 48 - Push - Pull Plate, 49 - Cylinder, 5 - Support Two, 6 - Feeding Mechanism, 61 - Feeding Barrel, 62 - Motor Three, 63 - Base, 64 - Screw Feeding Shaft, 65 - Feeding Pipeline, 7 - Controller, 8 - Distance Measuring Sensor, 9 - Detection Plate, 10 - Stud, 11 - Limit Sleeve. Specific Embodiment
[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present invention.
[0032] Please refer to Figure 1-8 , this embodiment provides a mixing and batching device for condiment production, including Support One 1, Support Two 5 and Batching Mechanism 4.
[0033] At the upper end of Support One 1, there is a Mixing Mechanism 2. The Mixing Mechanism 2 includes Motor One 21, Rotating Shaft One 22, Mixing Barrel 23, Screw Blade 24 and Plug - and - Play Plate 25. The upper end of Support One 1 is fixedly connected with Mixing Barrel 23. The End Cover 3 is fixedly connected to the rear side of the upper end of Mixing Barrel 23. The middle part of Mixing Barrel 23 is rotatably connected with Rotating Shaft One 22. The outside of Rotating Shaft One 22 is fixedly connected with evenly distributed Screw Blades 24. The edges of the Screw Blades 24 are all slidably connected with the inner arc surface of Mixing Barrel 23. The lower end of the discharge pipeline of Mixing Barrel 23 is inserted with Plug - and - Play Plate 25. The rear side of the upper end of Support One 1 is fixedly connected with Motor One 21. The output shaft of Motor One 21 is fixedly connected to the rear end of Rotating Shaft One 22. The input end of Motor One 21 is electrically connected to the output end of Controller 7. The output shaft of Motor One 21 drives Rotating Shaft One 22 to rotate, and the Screw Blades 24 rotate to mix and stir various ingredients inside Mixing Barrel 23. The edges of the Screw Blades 24 are all slidably connected with the inner arc surface of Mixing Barrel 23 to prevent the ingredients from sticking to the inner wall of Mixing Barrel 23. After mixing, the Plug - and - Play Plate 25 is pulled out, and the evenly - mixed ingredients are discharged from the discharge pipeline of Mixing Barrel 23. During cleaning, Mixing Barrel 23 can be separated from End Cover 3 for easy cleaning of each part.
[0034] The second bracket 5 is placed at the rear end of the first bracket 1. A end cover 3 is fixedly connected to the upper end of the second bracket 5. The end cover 3 is arranged in cooperation with the mixing mechanism 2. The upper surface of the second bracket 5 is provided with a uniformly distributed feeding mechanism 6. The feeding mechanism 6 includes a feeding barrel 61, a third motor 62, a base 63, a spiral feeding shaft 64 and a feeding pipe 65. The upper surface of the second bracket 5 is fixedly connected with uniformly distributed bases 63. The upper ends of the bases 63 are fixedly connected with feeding barrels 61 respectively. The lower ends of the feeding barrels 61 are all provided with feeding pipes 65. The front ends of the feeding pipes 65 are all inserted into the interiors of adjacent extension cylinders 47. The rear inner walls of the feeding pipes 65 are all rotatably connected with spiral feeding shafts 64. The rear walls of the feeding pipes 65 are all fixedly connected with third motors 62. The output shafts of the third motors 62 are all fixedly connected to the rear ends of the spiral feeding shafts 64 located in the same feeding pipe 65. The input ends of the third motors 62 are all electrically connected to the output end of the controller 7. Pour various ingredients of the condiment into different feeding barrels 61. The output shaft of the third motor 62 drives the spiral feeding shaft 64 located in the same feeding pipe 65. Various ingredients are conveyed to the interiors of the corresponding extension cylinders 47 through the spiral feeding shaft 64.
[0035] The batching mechanism 4 includes a bottom plate 41, an annular track 42, a batching component 43, a rotating component 44 and a support plate 45. A bottom plate 41 is fixedly connected inside the feeding port of the end cover 3. An annular track 42 is provided on the upper surface of the bottom plate 41. A support plate 45 is arranged at the upper end of the bottom plate 41. Uniformly distributed first blanking holes are formed at the edge of the bottom plate 41. Uniformly distributed second blanking holes are formed at the edge of the support plate 45. The number of the second blanking holes is twice that of the first blanking holes. A rotating component 44 is rotatably connected to the lower surface of the support plate 45. Uniformly distributed batching components 43 are fixedly connected to the edge of the rotating component 44. The batching components 43 are all arranged in cooperation with the annular track 42. The batching components 43 are all slidably connected between the bottom plate 41 and the support plate 45. The feeding mechanism 6 is all arranged in cooperation with the support plate 45. The rotating component 44 includes a rotating seat 441, a connecting plate 442 and a blanking blocking plate 443. A rotating seat 441 is rotatably connected to the middle of the lower surface of the support plate 45. Uniformly distributed connecting plates 442 are fixedly connected to the outer arc surface of the rotating seat 441. A blanking blocking plate 443 is fixedly connected between the upper ends on the outer sides of the connecting plates 442. The upper surface of the blanking blocking plate 443 is slidably connected to the lower surface of the support plate 45. The batching component 43 includes a protective sleeve 431, a batching cylinder 432, a driving wheel 433, a stirring shaft 434 and a second rotating shaft 435. Connecting plates 442 away from the rotating seat 441 are all fixedly connected with batching cylinders 432. Protective sleeves 431 are fixedly connected to both the upper and lower ends of the batching cylinders 432. The protective sleeves 431 are polytetrafluoroethylene protective sleeves. The upper protective sleeves 431 are all slidably connected to the lower surface of the support plate 45. The upper surfaces of the upper protective sleeves 431 and the upper surface of the blanking blocking plate 443 are in the same plane. The lower protective sleeves 431 are all slidably connected to the upper surface of the bottom plate 41. The distance between the central axis of the batching cylinder 432 and the central axis of the bottom plate 41, the distance between the central axis of the first blanking hole and the central axis of the bottom plate 41, and the distance between the central axis of the second blanking hole and the central axis of the bottom plate 41 are the same. Second rotating shafts 435 are rotatably connected to the middle of the batching cylinders 432. Uniformly distributed stirring shafts 434 are fixedly connected to the parts of the second rotating shafts 435 located inside the adjacent batching cylinders 432. Driving wheels 433 are fixedly sleeved on one ends of the second rotating shafts 435 close to the central axis of the bottom plate 41. Anti-slip stickers are pasted on the upper surface of the annular track 42. The outer arc surfaces of the driving wheels 433 are all slidably connected to the upper surface of the anti-slip stickers. The batching mechanism 4 further includes a second motor 46. A second motor 46 is fixedly connected to the middle of the upper surface of the support plate 45. The output shaft of the second motor 46 is fixedly connected to the upper end of the rotating seat 441. The input end of the second motor 46 is electrically connected to the output end of the controller 7. The batching mechanism 4 further includes an extension cylinder 47, a pushing and pulling plate 48 and a cylinder 49. Uniformly distributed extension cylinders 47 are fixedly connected to the rear end of the upper surface of the support plate 45. The extension cylinders 47 are respectively communicated with the vertically adjacent second blanking holes. One second blanking hole is spaced between two adjacent extension cylinders 47. Cylinders 49 are fixedly connected to the rear end of the upper surface of the support plate 45 in a circumferentially uniform distribution.At the rear ends of the telescopic ends of the air cylinders 49, push-pull plates 48 are fixedly connected. The push-pull plates 48 are respectively inserted into the lower ends of the extension cylinders 47 located on the same axis of the support plate 45. The air inlets of the air cylinders 49 are all connected to an external air pump. At the front end of the feed inlet of the end cover 3, a distance measuring sensor 8 is fixedly connected. On the upper surface of the bottom plate 41, a detection plate 9 is fixedly connected. The detection plate 9 is located inside the annular track 42. The distance measuring sensor 8 and the detection plate 9 are corresponding in the front and rear positions. The distance measuring sensor 8 is bidirectionally electrically connected to the controller 7. Between the edge of the bottom plate 41 and the edge of the support plate 45, evenly distributed stud bolts 10 are fixedly connected. In the middle of the stud bolts 10, limit sleeves 11 are movably sleeved. The limit sleeves 11 are all located between the edge of the bottom plate 41 and the edge of the support plate 45. The output shaft of the second motor 46 drives the rotating seat 441 to rotate. The rotating seat 441 drives each dosing cylinder 432 to revolve around the central axis of the rotating seat 441. The protective sleeve 431 reduces the wear of the dosing cylinder 432. When the dosing cylinder 432 reaches the second material discharge hole at the lower end of the extension cylinder 47, the dosing cylinder 432 communicates with the extension cylinder 47. The material inside the extension cylinder 47 falls into the inside of the dosing cylinder 432 and fills the dosing cylinder 432. The dosing cylinder 432 continues to move forward. The blanking blocking plate 443 rotates to the lower end of the extension cylinder 47 to block the extension cylinder 47 and stop the material from falling. When the dosing cylinder 432 rotates to the upper end of the first material discharge hole, the material inside the dosing cylinder 432 falls into the inside of the mixing barrel 23. While the dosing cylinder 432 revolves, the dosing cylinder 432 drives the driving wheel 433 to rotate on the annular track 42. An anti-slip sticker is pasted on the upper surface of the annular track 42 to increase the friction between the driving wheel 433 and the annular track 42 and reduce the possibility of the driving wheel 433 slipping at the upper end of the annular track 42. The driving wheel 433 rotates on the annular track 42, driving the second rotating shaft 435 to rotate and the stirring shaft 434 to rotate to stir the inside of the dosing cylinder 432 to prevent too much material from remaining in the dosing cylinder 432. The distance measuring sensor 8 continuously detects the distance from the detection plate 9 in real time and feeds it back to the controller 7. When the dosing cylinder 432 rotates between the distance measuring sensor 8 and the detection plate 9, the distance measuring sensor 8 detects the continuously changing distance from the dosing cylinder 432. When the dosing cylinder 432 moves away from between the distance measuring sensor 8 and the detection plate 9, the distance measuring sensor 8 redetects the distance from the detection plate 9. When the numerical values of the distances from the detection plate 9 detected before and after are obtained, it indicates that all the materials have completed one-time blanking through the dosing cylinder 432. When one kind of material is dosed, the telescopic end of the corresponding air cylinder 49 extends, and the push-pull plate 48 is pushed into the corresponding extension cylinder 47. When the dosing cylinder 432 reaches the lower end of the extension cylinder 47 where the dosing is completed again, no more material is discharged, realizing the proportioning of the materials.
[0036] It further includes a controller 7. The controller 7 is arranged on the left side of the first support 1. The controller 7 adopts a commercially available controller with the model FX2N-128MR-001.
[0037] A mixing batching device for condiment production provided by the present invention has the following working principle:
[0038] When assembling the ingredient dispensing mechanism 4, first assemble the rotating base 441, the dispensing cylinder 432, and the second motor 46 onto the support plate 45. Then, sleeved with a limiting sleeve 11 on the outside of the stud 10. Subsequently, place the support plate 45 on the upper end of the bottom plate 41, align the driving wheel 433 with the annular track 42, and align the detection plate 9 with the distance measuring sensor 8. Then install the stud 10 to integrate the support plate 45 and the bottom plate 41. Subsequently, install it into the feed port of the end cover 3 to complete the installation of the ingredient dispensing mechanism 4. Pour various ingredients of the condiments into different feeding barrels 61 respectively. The output shaft of the third motor 62 drives the spiral feeding shaft 64 located in the same feeding pipe 65. Various ingredients are conveyed to the inside of the corresponding extension cylinder 47 through the spiral feeding shaft 64. At the same time, the output shaft of the second motor 46 drives the rotating base 441 to rotate. The rotating base 441 drives each dispensing cylinder 432 to revolve around the central axis of the rotating base 441. The protective sleeve 431 reduces the wear of the dispensing cylinder 432. When the dispensing cylinder 432 reaches the second discharge hole at the lower end of the extension cylinder 47, the dispensing cylinder 432 communicates with the extension cylinder 47. The ingredients inside the extension cylinder 47 fall into the inside of the dispensing cylinder 432 and fill the dispensing cylinder 432. The dispensing cylinder 432 continues to move forward. The blanking blocking plate 443 rotates to the lower end of the extension cylinder 47 to block the extension cylinder 47 and stop the feeding. When the dispensing cylinder 432 rotates to the upper end of the first discharge hole, the ingredients inside the dispensing cylinder 432 fall into the inside of the mixing barrel 23. While the dispensing cylinder 432 revolves, the dispensing cylinder 432 drives the driving wheel 433 to rotate on the annular track 42. The upper surface of the annular track 42 is pasted with an anti-slip sticker (an anti-slip tape with a surface of selected anti-slip sand and non-sand special anti-slip material), increasing the friction between the driving wheel 433 and the annular track 42 and reducing the possibility of the driving wheel 433 slipping on the upper end of the annular track 42. The driving wheel 433 rotates on the annular track 42, driving the second rotating shaft 435 to rotate and the stirring shaft 434 to rotate to stir the inside of the dispensing cylinder 432 to prevent more ingredients from remaining in the dispensing cylinder 432. The distance measuring sensor 8 continuously detects the distance from the detection plate 9 and feeds it back to the controller 7. When the dispensing cylinder 432 rotates between the distance measuring sensor 8 and the detection plate 9, the distance measuring sensor 8 detects the continuously changing distance from the dispensing cylinder 432. When the dispensing cylinder 432 moves away from between the distance measuring sensor 8 and the detection plate 9, the distance measuring sensor 8 redetects the distance from the detection plate 9. When the values of the distances from the detection plate 9 detected twice are compared, it indicates that all ingredients have completed one discharge through the dispensing cylinder 432. When one ingredient is dispensed, the telescopic end of the corresponding cylinder 49 extends, and the push-pull plate 48 is pushed into the inside of the corresponding extension cylinder 47. When the dispensing cylinder 432 reaches the lower end of the extension cylinder 47 where the ingredient dispensing is completed again, the feeding stops, realizing the proportioning of the ingredients. The output shaft of the first motor 21 drives the first rotating shaft 22 to rotate, and the spiral blade 24 rotates to mix and stir various ingredients inside the mixing barrel 23. The edges of the spiral blades 24 are all slidably connected to the inner arc surface of the mixing barrel 23 to prevent the inner wall of the mixing barrel 23 from sticking to the ingredients.After mixing is completed, the plug-in board 25 is taken out, and the evenly mixed ingredients are discharged from the discharge pipeline of the mixing barrel 23. During cleaning, the mixing barrel 23 can be separated from the end cover 3 to facilitate cleaning of each part.
[0039] The above are only embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. A mixing and batching device for seasoning production, characterized in that: It comprises a first bracket (1), a second bracket (5) and a batching mechanism (4); A mixing mechanism (2) is provided at the upper end of the bracket 1 (1); The second bracket (5) is placed at the rear end of the first bracket (1), the upper end of the second bracket (5) is fixedly connected with an end cover (3), the end cover (3) is arranged in coordination with the mixing mechanism (2), and the upper surface of the second bracket (5) is provided with a uniformly distributed feeding mechanism (6); The batching mechanism (4) comprises a bottom plate (41), an annular track (42), a batching assembly (43), a rotating assembly (44) and a supporting plate (45); the bottom plate (41) is fixedly connected to the inside of the feed port of the end cover (3); the upper surface of the bottom plate (41) is provided with an annular track (42); the upper end of the bottom plate (41) is provided with a supporting plate (45); the edge of the bottom plate (41) is provided with evenly distributed feeding holes; the edge of the supporting plate (45) is provided with evenly distributed There are two evenly distributed material discharge holes, and the number of the two material discharge holes is twice that of the one material discharge holes. The lower surface of the support plate (45) is rotatably connected to a rotating component (44), and the edge of the rotating component (44) is fixedly connected to evenly distributed batching components (43). The batching components (43) are all arranged in cooperation with the annular track (42), and the batching components (43) are all slidably connected between the bottom plate (41) and the support plate (45). The feeding mechanism (6) is arranged in cooperation with the support plate (45).
2. The mixing and batching device for seasoning production according to claim 1, characterized in that: It also includes a controller (7), which is arranged on the left side of the bracket (1).
3. The mixing and batching device for seasoning production according to claim 2, characterized in that: The rotating assembly (44) comprises a rotating seat (441), a connecting plate (442) and a blocking plate (443); the middle part of the lower surface of the support plate (45) is rotatably connected to the rotating seat (441); the outer arc surface of the rotating seat (441) is fixedly connected to the connecting plates (442) which are evenly distributed; the blocking plate (443) is fixedly connected between the outer upper ends of the connecting plates (442); and the upper surface of the blocking plate (443) is slidably connected to the lower surface of the support plate (45).
4. A mixing and batching device for seasoning production according to claim 3, characterized in that: The batching assembly (43) comprises a protective sleeve (431), a batching barrel (432), a driving wheel (433), a stirring shaft (434) and a second rotating shaft (435); one end of the connecting plate (442) away from the rotating seat (441) is fixedly connected to the batching barrel (432); the upper and lower ends of the batching barrel (432) are fixedly connected to the protective sleeve (431); the protective sleeve (431) is a polytetrafluoroethylene protective sleeve; the upper end of the protective sleeve (431) is slidably connected to the lower surface of the support plate (45); the upper surface of the upper end of the protective sleeve (431) and the upper surface of the blocking plate (443) are located in the same plane; the lower end of the protective sleeve (431) is slidably connected to the upper surface of the bottom plate (41); The spacing between the center axis of the dosing barrel (432) and the center axis of the bottom plate (41), the spacing between the center axis of the first feeding hole and the center axis of the bottom plate (41), and the spacing between the center axis of the second feeding hole and the center axis of the bottom plate (41) are the same; the middle of the dosing barrel (432) is rotatably connected with the second rotating shaft (435); the part of the second rotating shaft (435) located inside the adjacent dosing barrel (432) is fixedly connected with a uniformly distributed stirring shaft (434); one end of the second rotating shaft (435) close to the center axis of the bottom plate (41) is fixedly sleeved with a driving wheel (433); the upper surface of the annular track (42) is pasted with an anti-skid sticker, and the outer arc surface of the driving wheel (433) is slidably connected to the upper surface of the anti-skid sticker.
5. The mixing and batching device for seasoning production according to claim 3, characterized in that: The batching mechanism (4) further comprises a second motor (46), the second motor (46) being fixedly connected to the middle of the upper surface of the support plate (45), the output shaft of the second motor (46) being fixedly connected to the upper end of the rotating seat (441), and the input end of the second motor (46) being electrically connected to the output end of the controller (7).
6. The mixing and batching device for seasoning production according to claim 2, characterized in that: The batching mechanism (4) further comprises an extension tube (47), a push-pull plate (48) and a cylinder (49); the rear end of the upper surface of the support plate (45) is fixedly connected with uniformly distributed extension tubes (47); the extension tubes (47) are respectively connected with two vertically adjacent feed holes; a feed hole is spaced between two adjacent extension tubes (47); the rear end of the upper surface of the support plate (45) is fixedly connected with cylinders (49) uniformly distributed around the circumference; the rear ends of the telescopic ends of the cylinders (49) are fixedly connected with push-pull plates (48); the push-pull plates (48) are respectively plugged into the lower ends of the extension tubes (47) located on the same axis of the support plate (45); the air inlets of the cylinders (49) are connected with an external air pump.
7. The mixing and batching device for seasoning production according to claim 2, characterized in that: The mixing mechanism (2) comprises a motor (21), a rotating shaft (22), a mixing barrel (23), spiral blades (24) and a plug-in plate (25); the upper end of the bracket (1) is fixedly connected to the mixing barrel (23); the end cover (3) is fixedly connected to the upper rear side of the mixing barrel (23); the middle of the mixing barrel (23) is rotatably connected to the rotating shaft (22); the outer portion of the rotating shaft (22) is fixedly connected to spiral blades (24) distributed evenly; the edges of the spiral blades (24) are all slidably connected to the inner arc surface of the mixing barrel (23); the lower end of the discharge pipe of the mixing barrel (23) is plugged with the plug-in plate (25); the upper rear side of the bracket (1) is fixedly connected to the motor (21); the output shaft of the motor (21) is fixedly connected to the rear end of the rotating shaft (22); the input end of the motor (21) is electrically connected to the output end of the controller (7).
8. The mixing and batching device for seasoning production according to claim 6, characterized in that: The feeding mechanism (6) comprises a feeding barrel (61), a motor three (62), a base (63), a spiral feeding shaft (64) and a feeding pipe (65). The upper surface of the bracket two (5) is fixedly connected with the base (63) which is evenly distributed. The upper ends of the bases (63) are fixedly connected with the feeding barrels (61). The lower ends of the feeding barrels (61) are provided with feeding pipes (65). The front ends of the feeding pipes (65) are inserted into the interior of the adjacent extension tubes (47). The rear inner walls of the feeding pipes (65) are rotatably connected with the spiral feeding shafts (64). The rear walls of the feeding pipes (65) are fixedly connected with the motor three (62). The output shafts of the motor three (62) are fixedly connected with the rear ends of the spiral feeding shafts (64) located in the same feeding pipe (65). The input ends of the motor three (62) are electrically connected to the output ends of the controller (7).
9. The mixing and batching device for seasoning production according to claim 2, characterized in that: A distance measuring sensor (8) is fixedly connected to the front end of the feed port of the end cover (3); a detection plate (9) is fixedly connected to the upper surface of the bottom plate (41); the detection plate (9) is located inside the annular track (42); the distance measuring sensor (8) corresponds to the detection plate (9) in front and rear positions; and the distance measuring sensor (8) is bidirectionally electrically connected to the controller (7).
10. The mixing and batching device for seasoning production according to claim 1, characterized in that: Evenly distributed studs (10) are fixedly connected between the edge of the bottom plate (41) and the edge of the support plate (45), and the middle of the studs (10) are movably sleeved with limiting sleeves (11), and the limiting sleeves (11) are located between the edge of the bottom plate (41) and the edge of the support plate (45).