Halogen material production device and processing technology thereof
By designing a braising spice production equipment with multiple conical hoppers, discharge components, and weighing and discharging mechanisms, the problems of low efficiency and uneven mixing in manual packaging during braising spice production have been solved, achieving efficient and precise braising spice production and ensuring that the spice content in each bag of braising spice meets the formula requirements.
Patent Information
- Application Number
- CN202310682978.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-09
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2043-06-09
AI Technical Summary
Existing braising equipment suffers from problems such as low efficiency of manual packaging, uneven mixing and packaging, and some braising ingredients not meeting the formula requirements.
Design a braising spice production equipment, including multiple conical hoppers, a discharge component, a screening component, a weighing frame, and a discharge mechanism. Through screening, quantitative discharge, weighing, and precise discharge, ensure that the spice content in each bag of braising spice meets the formula requirements.
It has achieved efficient and precise production of braising spices, meeting the needs of mass production, ensuring that the spice content in each bag of braising spices is uniform, and improving production efficiency and product quality.
Smart Images

Figure CN116603743B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of braising spice production technology, specifically to a braising spice production equipment and its processing technology. Background Technology
[0002] Braising spices are seasonings used to make braised dishes, generally referring to the Chinese medicinal herbs and spices used to make the braising liquid. Braising spices have a strong aromatic flavor and can remove the fishy or gamey smell of food ingredients, as well as enhance the aroma of the food.
[0003] Currently, to make it easier for people to make the same braised food at home as those sold outside, the market specializes in producing small-packaged braising spices. The following are some existing production methods for these packaged braising spices:
[0004] 1. Manually packing multiple spices into bags according to the formula ratio is labor-intensive and cannot meet the needs of mass production. 2. Alternatively, multiple spices can be mixed in a bucket according to a ratio, then packaged in bags, or the mixed spices can be ground into powder, mixed, and then packaged. However, uneven mixing or inconsistent particle size of the spices can lead to smaller spices, such as Sichuan peppercorns, being stored at the bottom. This can result in some bags not meeting the formula requirements, causing customers to not achieve the desired flavor when making braising liquid. Therefore, we propose a braising spice production equipment and processing technology. Summary of the Invention
[0005] The purpose of this invention is to provide a brine production equipment and its processing technology to solve the problems mentioned in the background art, such as low efficiency of manual packaging and the fact that some contents of mixed packaging do not meet the formula requirements.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a brine production equipment, comprising multiple conical hoppers, and a discharge component installed inside the conical hoppers, wherein a screening component is installed on the top of the conical hoppers; a support plate located below the conical hoppers, wherein a weighing frame is installed on the support plate, and a weighing element for weighing the brine inside the weighing frame is installed on the support plate, wherein a discharge mechanism for discharging the brine is installed on the weighing frame, a transfer plate is fixed to the outer end of the support plate, and discharge hoppers are installed at the lower ends of the multiple transfer plates.
[0007] Preferably, the weighing component includes an electric push rod fixed to the support plate. A weight sensor is installed at the output end of the electric push rod, and the top of the weight sensor is in contact with the bottom of the weighing frame through a gasket. Connecting rods are fixed to both ends of the support plate through fixing blocks, and a first docking block and a second docking block are fixed to the bottom of both ends of the weighing frame, respectively. The two first docking blocks and the two second docking blocks are respectively provided with openings and arc-shaped openings, and are slidably sleeved with the two ends of the connecting rods through the openings and arc-shaped openings. The weighing component can weigh spices.
[0008] Preferably, the discharge mechanism includes a movable plate and brackets fixed in a rectangular arrangement on the outside of the weighing frame. Two lead screws are rotatably installed between the two brackets on the same side of the weighing frame. The movable plate has two threaded connections at its ends to the two lead screws, and a movable opening is provided inside the movable plate. A discharge plate is slidably inserted into the movable opening, and a stop block is fixed to the inner wall of each end of the movable opening. A threaded rod, threaded to the outer end of the discharge plate, is rotatably inserted into the stop block via a bearing. A transmission gear is fixed to the bottom of each of the two threaded rods, and a toothed belt is fitted around the outer side of each of the two transmission gears. An L-shaped frame is fixed to each end of the movable plate, rotatably engaging with the top of the threaded rod. A rotating motor for rotating the threaded rod is fixed to the top of one of the L-shaped frames via a motor frame. A drive component is installed at the outer end of the lead screw away from the discharge plate. The discharge mechanism enables the symmetrical discharge of the measured spices.
[0009] Preferably, the driving component includes a drive motor fixed to the bracket via a motor frame. The output end of the drive motor is fixed to one of the lead screws via a coupling, and drive gears are fixed to the outer ends of both lead screws. Toothed belts are meshed on the outer sides of the two drive gears. The designed driving component provides power to drive the moving plate to move.
[0010] Preferably, the discharge assembly includes a discharge motor fixed to the outside of the conical hopper via a motor frame. The output end of the discharge motor is fixed to a rotating rod extending into the conical hopper via a coupling. A support frame fixed to the inner wall of the conical hopper is rotatably mounted on the outside of the rotating rod. A spiral discharge blade is fixed to the bottom of the rotating rod. A closing cover plate is rotatably mounted on the bottom of the conical hopper via a rotating shaft. A torsion spring for closing the cover plate and closing the bottom of the conical hopper is sleeved on the outside of the rotating shaft. The designed discharge assembly can achieve a certain quantitative and timed discharge through the spiral discharge blade, and the discharge amount is relatively accurate.
[0011] Preferably, the screening assembly includes a screening plate rotatably mounted on the top of a conical hopper via a rotating shaft. The screening plate has through holes for fitting around the outside of a rotating rod. The top of the conical hopper has an inclined structure, and a shell is installed on the top of the conical hopper. A discharge plate is installed on the shell. A tension spring is fixed to the outer end of the screening plate and is fixed to the outer wall of the conical hopper. A mating protrusion is fixed to the bottom of the screening plate. A ring that fits against the inner wall of the conical hopper is fixed to the outer side of the rotating rod via a connecting frame. Multiple movable protrusions that match the mating protrusion are fixed to the top of the ring. The designed screening assembly can discharge large particles from the spices, facilitating subsequent accurate weighing.
[0012] Preferably, the support plate is equipped with an auxiliary component for discharging the weighing frame. The auxiliary component includes two track plates fixed to the support plate, a pusher plate slidably inserted into the two track plates, and a docking rod adapted to the pusher plate is fixed to the outside of the second docking block. An I-shaped wheel is fixed to the end of each of the two lead screws away from the drive gear, and a connecting rope is fixed inside the I-shaped wheel. A steering wheel is rotatably installed at the outer end of the track plate, and the connecting rope passes around the steering wheel and is fixed to the outer end of the pusher plate. A sliding rod inserted into the bottom of the pusher plate is fixed inside the track plate, and a return spring is sleeved on the outside of the sliding rod. The designed auxiliary component can assist the fragrance in being discharged from the weighing frame.
[0013] Preferably, the outer side of the pusher plate is fixed with multiple protrusions. The design of the protrusions causes the pusher plate to vibrate when it comes into contact with the docking rod, thereby improving the material discharge effect.
[0014] Preferably, the weighing frame has a U-shaped frame structure, and a baffle is rotatably installed at the end of the weighing frame near the discharge hopper. The design of the baffle makes the collection and weighing of spices more effective.
[0015] A process for producing and processing braising spices, comprising the following steps:
[0016] A. Personnel pour the chopped spices into multiple conical hoppers in sequence, then the larger particles are discharged through the screening component, and the material is discharged at timed intervals through the discharge component;
[0017] B. The discharged spices are weighed by the cooperation of the weighing frame and the weighing components. If the weight is within the range, the spices are discharged from the weighing frame to the conveyor plate through the discharge mechanism.
[0018] C. If the weight exceeds the range, some of the spices will be discharged away from the conveyor plate through the discharge mechanism; if the weight is below the range, the spice will continue to be discharged through the discharge assembly.
[0019] D. The spices in multiple conical hoppers are discharged through a discharge hopper, collected in a dispensing bag at the bottom of the discharge hopper, and finally packaged.
[0020] Compared with the prior art, the beneficial effects of the present invention are:
[0021] This invention optimizes existing braising spice production. Through the design of multiple conical hoppers and internal discharge components, it can achieve quantitative discharge of each spice. The spices are weighed by a weighing device, and then discharged into the discharge hopper for collection and subsequent packaging through a discharge mechanism. Compared with the existing method of mixing multiple spices before packaging, the spice content in each bag of braising spice meets the formula requirements. Compared with the method of manually grabbing spices, it is more efficient and meets the requirements of mass production.
[0022] The feeding mechanism designed in this invention can not only feed the weighed spices into the feeding hopper, but also remove the excess spices, improve the weighing accuracy of the spices, and ensure that the weight of the spices in each bag of braising liquid meets the formula requirements.
[0023] The present invention also includes an auxiliary component that assists the discharge mechanism in discharging the spices. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0025] Figure 2 This is a schematic diagram showing the connection between the single conical hopper and the discharge hopper of the present invention;
[0026] Figure 3 This is a schematic diagram of the docking structure between the conical hopper and the weighing frame of the present invention;
[0027] Figure 4 This is a schematic diagram of the internal discharge assembly structure after a partial cross-sectional view of the bottom of the conical hopper of the present invention;
[0028] Figure 5 This is a schematic diagram of the screening component structure after partial cross-section of the conical hopper of the present invention;
[0029] Figure 6 This is a schematic diagram of the material discharge mechanism inside the weighing frame of the present invention;
[0030] Figure 7 This is a partial cross-sectional rear side view of the track slab of the present invention;
[0031] Figure 8 This is a schematic diagram of the connection between the steering wheel and the connecting rope of the present invention.
[0032] In the diagram: 1-Conical hopper; 2-Discharge assembly; 3-Screwing assembly; 4-Support plate; 5-Weighing frame; 6-Weighing component; 7-Discharge mechanism; 8-Transfer plate; 9-Discharge hopper; 10-Electric push rod; 11-Weight sensor; 12-Connecting rod; 13-First docking block; 14-Second docking block; 15-Arc-shaped opening; 16-Moving plate; 17-Bracket; 18-Screw rod; 19-Moving opening; 20-Discharge plate; 21-Stop block; 22-Threaded rod; 23-Transmission gear; 24-Toothed belt; 25-Rotor 26-Drive motor; 27-Drive motor; 28-Drive gear; 29-toothed belt; 30-Discharge motor; 31-Rotating rod; 32-Spiral discharge blade; 33-Closed cover plate; 34-Screwing plate; 35-Outer shell; 36-Discharge plate; 37-Tension spring; 38-Docking protrusion; 39-Ring; 40-Moving protrusion; 41-Track plate; 42-Pushing inclined plate; 43-Docking rod; 44-I-shaped wheel; 45-Steering wheel; 46-Slide rod; 47-Reset spring; 48-Protrusion; 49-Baffle. Implementation
[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Example
[0034] like Figure 1 and Figure 2 As shown in the figure, a brine production equipment includes multiple conical hoppers 1, a discharge assembly 2 installed inside the conical hoppers 1, a screening assembly 3 installed on the top of the conical hoppers 1, a support plate 4 located below the conical hoppers 1, a weighing frame 5 installed on the support plate 4, a weighing component 6 for weighing the brine inside the weighing frame 5 installed on the support plate 4, a discharge mechanism 7 for discharging the brine installed on the weighing frame 5, a transfer plate 8 fixed to the outer end of the support plate 4, and a discharge hopper 9 installed at the lower end of the multiple transfer plates 8.
[0035] It should be noted that: such as Figure 1 As shown, multiple conical hoppers 1 are distributed at equal angles above the discharge hopper 9. Each conical hopper 1 is filled with different spices, and the spices are discharged into the weighing frame 5 through the internal discharge component 2. The spices are weighed by the weighing component 6, and then the weighed spices are introduced into the discharge hopper 9 through the material transfer plate 8 by the discharge mechanism 7. Finally, the spices are collected by the packaging bag below the discharge hopper 9 and then packaged.
[0036] Among them, such as Figure 3 , Figure 6 and Figure 7 As shown, the weighing component 6 includes an electric push rod 10 fixed on the support plate 4. A weight sensor 11 is installed at the output end of the electric push rod 10, and the top of the weight sensor 11 is attached to the bottom of the weighing frame 5 through a gasket. Both ends of the support plate 4 are fixed with connecting rods 12 by fixing blocks, and the bottom of both ends of the weighing frame 5 are respectively fixed with a first docking block 13 and a second docking block 14. The two first docking blocks 13 and the two second docking blocks 14 are respectively provided with openings and arc-shaped openings 15, and are slidably connected to the two ends of the connecting rod 12 through the openings and arc-shaped openings 15.
[0037] It should be noted that during weighing, the electric push rod 10 drives the weight sensor 11 to rise, causing it to abut against the bottom of the weighing frame 5 via the pad, and ensuring that the openings and arc-shaped openings 15 in the first and second mating blocks 13 and 14 do not contact the connecting rod 12. Figure 6 and Figure 7 As shown, the weighing frame 5 is not affected by external forces, which facilitates the weighing of the spices inside. After weighing, the weighing frame 5 is lowered by the electric push rod 10 so that it is not pushed up. Under the action of gravity, the opening and the arc-shaped opening 15 abut against the connecting rod 12.
[0038] At the same time, such as Figure 6 and Figure 7 As shown, the discharge mechanism 7 includes a movable plate 16 and brackets 17 fixed in a rectangular arrangement on the outside of the weighing frame 5. A lead screw 18 is rotatably installed between the two brackets 17 on the same side of the weighing frame 5. The two ends of the movable plate 16 are threadedly connected to the two lead screws 18 respectively. The movable plate 16 has a movable opening 19. A discharge plate 20 is slidably inserted into the movable opening 19. A stop block 21 is fixed on the inner wall of both ends of the movable opening 19. A threaded rod 22 that is threadedly inserted into the outer end of the discharge plate 20 is rotatably inserted into the stop block 21 through a bearing. A transmission gear 23 is fixed at the bottom of both threaded rods 22. A toothed belt 24 is meshed on the outer side of the two transmission gears 23. An L-shaped frame that rotatably connects to the top of the threaded rod 22 is fixed at both ends of the movable plate 16. A rotating motor 25 for rotating the threaded rod 22 is fixed to the top of one of the L-shaped frames through a motor frame. A drive component 26 is installed on the outer end of the lead screw 18 away from the material transfer plate 8.
[0039] It should be noted that the drive component 26 drives the lead screw 18 to rotate, thereby causing the moving plate 16 to move, which in turn drives the discharge plate 20 inside to push and discharge the spices.
[0040] Among them, such as Figure 6 and Figure 7As shown, the drive unit 26 includes a drive motor 27 fixed to the bracket 17 via a motor frame. The output end of the drive motor 27 is fixed to one of the lead screws 18 via a coupling. Both lead screws 18 have drive gears 28 fixed to their outer ends. The two drive gears 28 have toothed belts 29 meshing on their outer sides.
[0041] It should be noted that: the drive motor 27 drives one of the lead screws 18 to rotate, and with the cooperation of the drive gear 28 and the toothed belt 29, the two lead screws 18 rotate synchronously, thereby driving the moving plate 16 to move and realize the discharge of the spices.
[0042] In addition, such as Figures 3-5 As shown, the discharge assembly 2 includes a discharge motor 30 fixed to the outside of the conical hopper 1 via a motor frame. The output end of the discharge motor 30 is fixed to a rotating rod 31 that extends into the conical hopper 1 via a coupling. A support frame fixed to the inner wall of the conical hopper 1 is rotatably mounted on the outside of the rotating rod 31. The design of the support frame makes the rotation of the rotating rod 31 more stable. A spiral discharge blade 32 is fixed to the bottom of the rotating rod 31. A closing cover plate 33 is rotatably mounted on the bottom of the conical hopper 1 via a rotating shaft. A torsion spring for closing the cover plate 33 to close the bottom of the conical hopper 1 is sleeved on the outside of the rotating shaft. The torsion spring and the rotating shaft are existing parts and are not labeled in the figure.
[0043] It should be noted that: the rotation of the discharge motor 30 causes the rotating rod 31 to rotate, which in turn drives the bottom spiral discharge blade 32 to rotate, and the spices in the conical hopper 1 are discharged as the spiral blade rotates.
[0044] It should also be noted that when the spiral rotates, it will cause the spices to move downwards and squeeze the closed cover plate 33, causing the spices to push open the cover plate and be discharged in the same way. This can achieve quantitative discharge of spices and ensure that the weight of spices meets the proportion of ingredients when weighing them later.
[0045] At the same time, such as Figures 3-5 As shown, the screening assembly 3 includes a screening plate 34 rotatably mounted on the top of the conical hopper 1 via a rotating shaft. The screening plate 34 has a through hole for fitting around the outside of the rotating rod 31. The top of the conical hopper 1 has a sloping structure, and a housing 35 is installed on the top of the conical hopper 1. A discharge plate 36 is installed on the housing 35. A tension spring 37 is fixed to the outer end of the screening plate 34 and is fixed to the outer wall of the conical hopper 1. A docking protrusion 38 is fixed to the bottom of the screening plate 34. A ring 39 that fits against the inner wall of the conical hopper 1 is fixed to the outside of the rotating rod 31 via a connecting frame. A plurality of movable protrusions 40 that are adapted to the docking protrusion 38 are fixed to the top of the ring 39.
[0046] It should be noted that the designed screening plate 34 can discharge some of the large particles of spices, and after being discharged through the discharge plate 36, they are further crushed. The purpose of discharging the large particles of spices is to achieve higher accuracy in subsequent weighing.
[0047] It should also be noted that when the rotating rod 31 rotates, it will drive the ring 39 to rotate, thereby causing the moving protrusion 40 to abut against the docking protrusion 38, and under the action of the tension spring 37, one end of the screening plate 34 will shake up and down, making it easier for large particles to be discharged from the discharge plate 36.
[0048] A production method enabling rapid production of spice packets and avoiding uneven spice distribution within the packets: First, personnel sequentially pour various spices into multiple conical hoppers 1. Then, the discharge motor 30 rotates, causing the spiral discharge blades 32 to rotate and push the spices from the bottom, allowing them to fall into the weighing frame 5. The weighing device 6 then weighs the spices. When the weight meets the required proportions, the discharge mechanism 7 drives the discharge plate 20 to discharge the spices. When the weight is lighter, the spiral discharge blades 32 continue to discharge. When the weight exceeds the required proportions, the motor 25 first rotates the threaded rod 22, moving the discharge plate 20 upwards. Then, the moving plate 16 is moved above the spices by the lead screw 18, and then the discharge plate 20 is moved down. The discharge plate 20 moves away from the conveyor plate 8 to remove the excess adjacent spices, and the remaining spices of the required compound weight are discharged into the conveyor plate 8. In the whole process, the spices can be weighed automatically, and the measures are taken when the weight exceeds or does not meet the standard. The spices are also automatically discharged after weighing. Compared with manual weighing and packaging, this method is more efficient and suitable for mass production. Compared with the method of mixing first and then packaging, this method ensures that the spice content in each bag meets the requirements, thus improving the quality of the product.
[0049] In this design, to prevent the spices inside the weighing frame 5 from spilling outwards during weighing, the weighing frame 5 is designed with a U-shaped frame structure. A baffle 49 is rotatably installed at one end of the weighing frame 5 near the discharge hopper 9, while the other end is blocked by the discharge plate 20. The upper end of the baffle 49 is rotatably connected to the weighing frame 5 via a rotating shaft.
[0050] A process for producing and processing braising spices, comprising the following steps:
[0051] A. Personnel pour the chopped spices into multiple conical hoppers 1 in sequence, then the larger particles are discharged through the screening component 3, and the material is discharged at timed intervals through the discharge component 2;
[0052] B. The discharged spices are weighed by the cooperation of the weighing frame 5 and the weighing component 6. If the weight is within the range, the spices are discharged from the weighing frame 5 to the conveying plate 8 through the discharge mechanism 7.
[0053] C. If the weight exceeds the range, some of the spices will be discharged away from the conveyor plate 8 through the discharge mechanism 7; if the weight is below the range, the spice will continue to be discharged through the discharge assembly 2.
[0054] D. The spices in multiple conical hoppers 1 are discharged through discharge hopper 9, collected through the packaging bag at the bottom of discharge hopper 9, and finally packaged. Example
[0055] like Figure 3 , Figure 6 and Figure 7 As shown, this embodiment further illustrates Example 1. The support plate 4 in the figure is equipped with an auxiliary component for discharging the auxiliary weighing frame 5. The auxiliary component includes two track plates 41 fixed on the support plate 4. A pusher plate 42 is slidably inserted into the two track plates 41. A docking rod 43 adapted to the pusher plate 42 is fixed on the outside of the second docking block 14. I-shaped wheels 44 are fixed at the ends of the two lead screws 18 away from the drive gear 28. A connecting rope is fixed inside the I-shaped wheel 44. A steering wheel 45 is rotatably installed on the outer end of the track plate 41. The connecting rope passes around the steering wheel 45 and is fixed to the outer end of the pusher plate 42. A slide rod 46 inserted into the bottom of the pusher plate 42 is fixed inside the track plate 41. A return spring 47 is sleeved on the outside of the slide rod 46.
[0056] It should be noted that during feeding and discharging, the screw 18 rotates, causing the moving plate 16 and the discharge plate 20 to move accordingly. At the same time, it will drive the I-shaped wheel 44 to rotate, thereby tightening the connecting rope and causing the pusher plate 42 to move. After the pusher plate 42 contacts the connecting rod 43 at the outer end of the second connecting block 14, it will tilt up accordingly, so that the weighing frame 5 is in an inclined state, which facilitates the discharge of spices. After the discharge is completed, the screw 18 reverses to reset the moving plate 16. At this time, the connecting rope will be loosened, and the pusher plate 42 will return to its original position under the action of the reset spring 47.
[0057] It is worth noting that in this scheme, the connecting rope and the I-shaped wheel 44 are in a slack state before the material is discharged. The connecting rope will only tighten when the moving plate 16 moves to the middle of the lead screw 18, which will drive the pushing inclined plate 42 to move and make the weighing frame 5 tilt. This can avoid the connecting rope from generating tension during weighing and affecting the weighing of the weighing frame 5.
[0058] It should also be noted that: Figure 8 As shown, when the connecting rope is in a slack state, the guard plate on the outside of the steering wheel 45 will keep the connecting rope inside the steering wheel 45, which facilitates subsequent docking. Example
[0059] like Figure 3 and Figure 6As shown in the figure, this embodiment further illustrates Example 2. In the figure, multiple protrusions 48 are fixed on the outer side of the push plate 42.
[0060] It should be noted that after the pusher plate 42 contacts the docking rod 43, the protrusion 48 contacts the docking rod 43, causing the docking rod 43 to vibrate, which in turn causes the weighing frame 5 to vibrate, thus improving the material discharge effect.
[0061] In this solution, all motors used are stepper motors, with the ANT-26 model being preferred for the electric telescopic pole 30. The motor's power supply interface is connected to the power supply system via a switch. The motor's operating circuit is a conventional forward and reverse control program, and the circuit operation is an existing conventional circuit. The circuits and controls involved in this solution are all existing technologies, and will not be described in detail here.
[0062] This invention is not limited to the specific embodiments described above. Any modifications made by those skilled in the art based on the above concept without creative effort are within the protection scope of this invention.
Claims
1. A brine production equipment, comprising: Multiple conical hoppers (1); Its characteristic is that it further includes: The discharge assembly (2) is installed inside the conical hopper (1), and the top of the conical hopper (1) is equipped with a screening assembly (3). A support plate (4) is located below the conical hopper (1). A weighing frame (5) is installed on the support plate (4), and a weighing component (6) for weighing the brine inside the weighing frame (5) is installed on the support plate (4). A discharge mechanism (7) for discharging the brine is installed on the weighing frame (5). A transfer plate (8) is fixed to the outer end of the support plate (4), and a discharge hopper (9) is installed at the lower end of the multiple transfer plates (8). The weighing component (6) includes an electric push rod (10) fixed on the support plate (4). A weight sensor (11) is installed at the output end of the electric push rod (10), and the top of the weight sensor (11) is attached to the bottom of the weighing frame (5) through a gasket. Both ends of the support plate (4) are fixed by fixing blocks. A connecting rod (12) is fixed, and a first docking block (13) and a second docking block (14) are fixed at the bottom of both ends of the weighing frame (5). The two first docking blocks (13) and the two second docking blocks (14) are respectively provided with openings and arc-shaped openings (15), and are slidably sleeved with the two ends of the connecting rod (12) through the openings and arc-shaped openings (15). The discharge mechanism (7) includes a moving plate (16) and brackets (17) fixed in a rectangular distribution on the outside of the weighing frame (5). A lead screw (18) is rotatably installed between the two brackets (17) on the same side of the weighing frame (5). The two ends of the moving plate (16) are respectively threaded into the two lead screws (18), and the moving plate (16) has a moving opening (19). The moving opening (19) has a moving opening (19). 9) A discharge plate (20) is slidably inserted inside, and a stop block (21) is fixed on the inner wall of both ends of the moving port (19). A threaded rod (22) that is threadedly inserted into the outer end of the discharge plate (20) is rotatably inserted into the stop block (21) through a bearing. A transmission gear (23) is fixed at the bottom of each of the two threaded rods (22). A toothed belt (24) is meshed on the outer side of each of the two transmission gears (23). An L-shaped frame that rotates and connects with the top of the threaded rod (22) is fixed at both ends of the moving plate (16). A rotating motor (25) for rotating the threaded rod (22) is fixed at the top of one of the L-shaped frames through a motor frame. A drive component (26) is installed at the outer end of the screw (18) away from the conveyor plate (8). The drive component (26) includes The assembly includes a drive motor (27) fixed to a bracket (17) via a motor frame. The output end of the drive motor (27) is fixed to one of the lead screws (18) via a coupling. Both lead screws (18) have drive gears (28) fixed to their outer ends. The two drive gears (28) are fitted with toothed belts (29) on their outer sides. The discharge assembly (2) includes a discharge motor (30) fixed to the outside of the conical hopper (1) via a motor frame. The output end of the discharge motor (30) is fixed to a rotating rod (31) extending into the conical hopper (1) via a coupling. A support frame fixed to the inner wall of the conical hopper (1) is rotatably mounted on the outside of the rotating rod (31). A spiral discharge blade (32) is fixed to the bottom of the rotating rod (31).The bottom of the conical hopper (1) is rotatably mounted with a closing cover plate (33) via a rotating shaft, and a torsion spring is sleeved on the outside of the rotating shaft for closing the cover plate (33) to close the bottom of the conical hopper (1). The screening assembly (3) includes a screening plate (34) rotatably mounted on the top of the conical hopper (1) via a rotating shaft. The screening plate (34) has a through hole for sleeved on the outside of the rotating rod (31). The top of the conical hopper (1) is a sloping structure, and an outer... The shell (35) is equipped with a discharge plate (36). A tension spring (37) is fixed to the outer end of the screening plate (34) and is fixed to the outer wall of the conical hopper (1). A mating protrusion (38) is fixed to the bottom of the screening plate (34). A ring (39) that fits against the inner wall of the conical hopper (1) is fixed to the outer side of the rotating rod (31) via a connecting frame. Multiple movable protrusions (40) that adapt to the mating protrusion (38) are fixed to the top of the ring (39).
2. The brine production equipment according to claim 1, characterized in that: The support plate (4) is equipped with an auxiliary component for discharging the auxiliary weighing frame (5). The auxiliary component includes two track plates (41) fixed on the support plate (4). A pusher plate (42) is slidably inserted into the two track plates (41). A docking rod (43) adapted to the pusher plate (42) is fixed on the outside of the second docking block (14). A I-shaped wheel (44) is fixed at the end of the two lead screws (18) away from the drive gear (28). A connecting rope is fixed inside the I-shaped wheel (44). A steering wheel (45) is rotatably installed on the outer end of the track plate (41). The connecting rope passes around the steering wheel (45) and is fixed to the outer end of the pusher plate (42). A slide rod (46) inserted into the bottom of the pusher plate (42) is fixed inside the track plate (41). A return spring (47) is sleeved on the outside of the slide rod (46).
3. The brine production equipment according to claim 2, characterized in that: Multiple protrusions (48) are fixed on the outer side of the pusher plate (42).
4. The brine production equipment according to claim 1, characterized in that: The weighing frame (5) has a U-shaped frame structure, and a baffle (49) is rotatably installed on the end of the weighing frame (5) near the discharge hopper (9).
5. The brine production and processing technology of the brine production equipment according to claim 1, characterized in that, The process includes the following steps: A. Personnel pour the chopped spices into multiple conical hoppers (1) in sequence, then discharge the larger particles through the screening component (3), and discharge them at regular intervals through the discharge component (2); B. The discharged spices are weighed by the cooperation of the weighing frame (5) and the weighing component (6). If the weight is within the range, the spices are discharged from the weighing frame (5) to the conveying plate (8) through the discharge mechanism (7). C. If the weight exceeds the range, some of the spices will be discharged away from the conveyor plate (8) through the discharge mechanism (7); if the weight is below the range, the spice will continue to be discharged through the discharge assembly (2). D. The spices in multiple conical hoppers (1) are discharged through the discharge hopper (9), collected through the packaging bag at the bottom of the discharge hopper (9), and finally packaged.
Citation Information
Patent Citations
Mechanical screening device
CN106391448A
Out-of-tolerance automatic material fetching powder scale
CN111453430A
Weighing device for food production
CN115871974A
Sand material primary screening hopper
CN213494817U
Batching scale equipment capable of fully mixing materials
CN218609230U