Raw material dumping device
The raw material pouring device driven by slide rails and rollers, combined with the lifting plate design, solves the problems of inconvenience and incompleteness of manual pouring in tall material pots, and realizes automated and efficient pouring.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN MANWEILONGCHU BIOTECHNOLOGY CO LTD
- Filing Date
- 2025-06-04
- Publication Date
- 2026-05-05
AI Technical Summary
In the production of pre-made seasonings, the large spice pots cause problems with the inconvenience and incompleteness of manual pouring.
A raw material tilting device was designed, which uses slide rails and rollers to drive the tilting bucket to move, and combines a lifting plate to prevent the raw material from sticking to the bucket wall, thus realizing automated tilting.
It enables convenient movement and thorough unloading of raw materials, reduces manual high-level operations, and improves unloading efficiency.
Smart Images

Figure CN224198755U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of raw material dumping technology, specifically to a raw material dumping device. Background Technology
[0002] When producing and processing pre-made seasonings, it is generally necessary to put various different raw materials into a mixing pot, let them stand or stir-fry them, and then package the finished product. When producing a large quantity of pre-made seasonings at one time, a large mixing pot is required. These mixing pots are generally tall, and it is troublesome to pour the ingredients from the top manually. Moreover, when using ordinary containers to pour the ingredients, there is a problem of incomplete pouring. Utility Model Content
[0003] To address the aforementioned deficiencies in the prior art, this application provides a raw material pouring device that eliminates the need for manual pouring from a higher position, ensures more thorough pouring, and possesses strong practicality.
[0004] To achieve the above objectives, the present invention employs the following technology:
[0005] A raw material pouring device, comprising:
[0006] The slide rail consists of two parallel slide rails spaced apart. Rollers are rolled on each slide rail. A drive block is connected to the lower surface of each slide rail. A drive rod is connected to the opposite side of each drive block. The two drive rods are coaxial and rotate around their own central axis.
[0007] The mounting bracket has rotating rods installed at both ends. The two rotating rods are coaxially arranged and rotate coaxially through two rollers respectively.
[0008] The tilting bucket is installed on the mounting frame, with its central axis perpendicular to the rotating rod. Both the upper and lower ends of the tilting bucket are open. A lifting plate is installed inside the tilting bucket and moves coaxially. The lifting plate slides in contact with the inner wall of the tilting bucket.
[0009] Furthermore, one end of one of the rotating rods extends out of the end of its corresponding roller, and a moving channel runs through the side of the slide rail corresponding to the roller. One end of one of the rotating rods passes through the moving channel and is coaxially connected to a mounting column. Two drive plates are connected to the side wall of the mounting column. The distance between the two drive plates and the mounting column is equal on both sides, and the two sides of the two drive plates are coplanar.
[0010] Furthermore, it also includes a first support frame, on which a first rotating motor is mounted. The drive shaft of the first rotating motor is connected to a rotating block, and the rotating block is connected to two connecting rods. Each connecting rod is connected to a drive column. The two drive columns are parallel to the first rotating motor and are spaced equally apart. The central axis of the two drive columns is coplanar with the drive shaft of the first rotating motor. Two second support frames are mounted on each side of the first support frame. One of the second support frames is equipped with an electric lead screw along the axial direction of the first rotating motor. The electric lead screw is threaded with a mating block. The other second support frame is equipped with a sliding rod along the axial direction of the first rotating motor. A slider slides through the sliding rod. The first support frame is connected to the mating block and the slider.
[0011] When the slide rail rotates to a predetermined angle and both rollers are located at one end of the slide rail, the first rotating motor is coaxial with both rollers.
[0012] Furthermore, it also includes two drive frames, one of which houses a second rotary motor. The drive shaft of the second rotary motor is coaxially connected to one of the drive rods, and the other drive rod is rotatably located in the other drive frame. Both slide rails are connected to the same linkage rod.
[0013] Furthermore, the inner wall of the tilting hopper is provided with a convex rib parallel to the axis of the tilting hopper, and both ends of the tilting hopper have protrusions extending inward. The two ends of the convex rib are connected to the protrusions. The side of the lifting plate is provided with a notch that matches the shape of the convex rib. The notch penetrates the upper and lower surfaces of the lifting plate and slides with the convex rib.
[0014] The beneficial effects of this utility model are as follows:
[0015] 1. The tilting bucket is driven by a rotatable slide rail and rollers on the slide rail, which allows the tilting bucket to be easily moved to a lower position for feeding, and to pour raw materials above the material pot. This eliminates the need for manual pouring of raw materials at a higher position, thus improving the convenience of pouring raw materials.
[0016] 2. A lifting plate is installed inside the pouring bucket to prevent the raw materials from sticking to the bucket wall when pouring, making the pouring more thorough. Attached Figure Description
[0017] Figure 1 This is a perspective view of the raw material pouring device according to an embodiment of this application.
[0018] Figure 2 This application Figure 1 A magnified view of a portion of point A in the middle.
[0019] Figure 3 This is a schematic diagram of the internal structure of the tilting bucket according to an embodiment of this application.
[0020] The markings in the diagram are: 1-slide rail, 11-roller, 12-drive block, 13-drive rod, 14-moving channel, 15-mounting column, 16-drive plate, 17-first support frame, 18-first rotating motor, 19-U-shaped column, 110-second support frame, 111-electric lead screw, 112-fitting block, 113-slide rod, 114-slider, 115-drive frame, 116-second rotating motor, 117-linkage rod, 2-mounting frame, 21-rotating rod, 3-tilting bucket, 31-lifting plate, 32-protrusion, 33-protrusion, 34-notch, 4-material pot. Detailed Implementation
[0021] To make the objectives, technical solutions and advantages of the present utility model clearer, the implementation methods of the present utility model will be described in detail below with reference to the accompanying drawings. However, the embodiments described in the present utility model are only some embodiments of the present utility model, and not all embodiments.
[0022] like Figure 1 As shown, this embodiment provides a raw material pouring device, including a slide rail 1, a mounting frame 2, and a pouring bucket 3.
[0023] Specifically, such as Figure 1 As shown, there are two parallel slide rails 1 with a gap between them. Rollers 11 are rolled on each slide rail 1. Drive blocks 12 are connected to the lower surface of each slide rail 1. Drive rods 13 are connected to the opposite sides of the two drive blocks 12. The two drive rods 13 are coaxially arranged and rotate around their own central axis.
[0024] Specifically, such as Figure 1 As shown, both ends of the mounting bracket 2 are equipped with rotating rods 21. The two rotating rods 21 are coaxially arranged and rotate through the two rollers 11. More specifically, bearings can be installed between the rotating rods 21 and the rollers 11.
[0025] Specifically, such as Figure 1 As shown, the tilting bucket 3 is installed on the mounting frame 2, and its central axis intersects perpendicularly with the rotating rod 21. Both the upper and lower ends of the tilting bucket 3 are open. A lifting plate 31 is coaxially movable inside the tilting bucket 3, and the lifting plate 31 slides in contact with the inner wall of the tilting bucket 3.
[0026] During operation, the drive rod 13 is rotated to tilt the slide rail 1. The two ends of the slide rail 1 are the feeding end and the tilting end, respectively. At this time, the feeding end is lower than the tilting end and is located in a convenient feeding position. The roller 11 rolls on the slide rail 1 to the feeding end and drives the tilting bucket 3 to move to the feeding end. The lifting plate 31 is moved to one end of the tilting bucket 3, and the rotating rod 21 is rotated to make one end of the tilting bucket 3 face down. At this time, the raw material can be placed into the tilting bucket 3 from the other end of the tilting bucket 3 to complete the feeding.
[0027] During material tilting, rotating the drive rod 13 tilts the slide rail 1, positioning the tilting end of the slide rail 1 as follows: Figure 1 Above the material pot 4, and at this time the tilting end is lower than the feeding end, the roller 11 rolls on the slide rail 1 to the tilting end, and drives the tilting bucket 3 to move to the tilting end. Since the center of gravity of the tilting bucket 3 is at one end, the tilting bucket 3 will not rotate during the rolling of the roller 11. Rotate the rotating rod so that the other end of the tilting bucket 3 faces down, and the raw material falls from the other end of the tilting bucket 3 into the material pot 4. At the same time, the lifting plate 31 moves downward and scrapes the raw material on the inner wall of the tilting bucket 3, thus completing the tilting.
[0028] Preferred, such as Figure 2 As shown, one end of one rotating rod 21 extends out of one end of its corresponding roller 11. Here, the corresponding roller 11 refers to the roller 11 through which one rotating rod 21 passes. A moving channel 14 passes through the side of the slide rail 1 corresponding to the roller 11. Here, the corresponding slide rail 1 refers to the slide rail 1 where the corresponding roller 11 is located. One end of one rotating rod 21 passes through the moving channel 14 and is coaxially connected to a mounting post 15. Two drive plates 16 are connected to the side wall of the mounting post 15. The distance between the two drive plates 16 and the mounting post 15 is equal on both sides. The two sides of the two drive plates 16 are coplanar. With this design, the rotation of the rotating rod 21 can be easily realized by rotating the drive plates 16.
[0029] Preferred, such as Figure 2 As shown, it also includes a first support frame 17 that is axially movable along the rotating rod 21. A first rotating motor 18 is mounted on the first support frame 17. The drive shaft of the first rotating motor 18 is parallel to the rotating rod 21 and connected to a U-shaped column 19. The middle section of the U-shaped column 19 is perpendicularly connected to the drive shaft of the first rotating motor 18. The two straight sections of the U-shaped column 19 are parallel to the rotating rod 21. Two second support frames 110 are respectively provided on both sides of the first support frame 17. One of the second support frames 110 has a... There is an electric lead screw 111, which is threadedly fitted with a mating block 112. A second support frame 110 has a slide rod 113 axially along the first rotating motor 18, and a slider 114 slides along the slide rod 113. The first support frame 17 is connected to the mating block 112 and the slider 114. When the slide rail 1 rotates to a predetermined angle, and both rollers 11 are located at one end of the slide rail 1, the first rotating motor 18 is coaxial with both rollers 11. Here, the predetermined angle refers to the position of the tilting end of the slide rail 1 at such a time. Figure 1 The material pot 4 is shown above the tilting end and the tilting end is lower than the feeding end. Here, one end refers to the tilting end of the slide rail 1. With this design, the U-shaped column 19 is driven outside the surface of the drive plate 16 by the electric screw 111, and the U-shaped column 19 is driven to rotate by the first rotating motor 18. The straight section of the U-shaped column 19 contacts the drive plate 16 and drives the drive plate 16 to rotate, thus realizing the tilting of the tilting bucket 3.
[0030] Preferred, such as Figure 1 As shown, the device also includes two drive frames 115. One drive frame 115 houses a second rotary motor 116. The drive shaft of the second rotary motor 116 is coaxially connected to one drive rod 13. The other drive rod 13 is rotatably disposed in the other drive frame 115. Both slide rails 1 are connected to the same linkage rod 117. More specifically, in this example, the linkage rod 117 is disposed at the loading end of the two slide rails 1. The second rotary motor 116 is used to drive the drive rod 13 to rotate, thereby driving the two slide rails 1 to rotate.
[0031] Preferred, such as Figure 3 As shown, the inner wall of the tilting hopper 3 is provided with two protrusions 32 parallel to the axial direction of the tilting hopper 3. Two protrusions 33 extend inward from both ends of the tilting hopper 3. The protrusions 32 are connected to the corresponding protrusions 33 at both ends. The lifting plate 31 has a recess 34 on its side that matches the shape of the protrusions 32. The recess 34 penetrates the upper and lower surfaces of the lifting plate 31 and slides with the protrusions 32. The protrusions 33 are used to prevent the lifting plate 31 from falling out of the tilting hopper 3. With this design, there is no need to set up a separate drive mechanism for the lifting plate 31. It can slide inside the tilting bucket 3 under its own weight; more preferably, the notch 34 is provided with an extension block at the edge of the upper and lower surfaces of the lifting plate 31 to prevent the lifting plate 31 from getting stuck; more preferably, when installing the tilting bucket 3, the lifting plate 31 is first inserted into the tilting bucket 3, and then protrusions 33 are provided at both ends of the protrusion 32. At this time, a chamfer can be provided at the connection between the protrusion 33 and the protrusion 32 to prevent some raw material from staying at the connection between the protrusion 33 and the protrusion 32 during backflow, so as to make the pouring more thorough.
[0032] The above description is only a preferred embodiment of this application and is not intended to limit this application. Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application.
Claims
1. A raw material pouring device, characterized in that, include: The slide rail (1) has two parallel and spaced slide rails. Rollers (11) are rolled on the slide rail (1). Drive blocks (12) are connected to the lower surface of the slide rail (1). Drive rods (13) are connected to the opposite sides of the two drive blocks (12). The two drive rods (13) are coaxial and rotate around their own central axis. Mounting bracket (2), with rotating rods (21) installed at both ends. The two rotating rods (21) are coaxially arranged and rotate coaxially through two rollers (11). The tilting bucket (3) is installed on the mounting frame (2), and its central axis intersects perpendicularly with the rotating rod (21). The upper and lower ends of the tilting bucket (3) are open. The tilting bucket (3) is equipped with a lifting plate (31) that moves coaxially inside the tilting bucket (3). The lifting plate (31) slides in contact with the inner wall of the tilting bucket (3).
2. The raw material pouring device according to claim 1, characterized in that, One end of one of the rotating rods (21) extends out of the roller (11), and one of the slide rails (1) has a moving channel (14) running through its side. One end of the rotating rod (21) passes through the moving channel (14) and is coaxially connected to the mounting column (15). Two drive plates (16) are symmetrically connected to the side wall of the mounting column (15).
3. The raw material pouring device according to claim 2, characterized in that, It also includes a first support frame (17) that moves axially along the rotating rod (21). The first support frame (17) is equipped with a first rotating motor (18). The drive shaft of the first rotating motor (18) is parallel to the rotating rod (21) and connected to a U-shaped column (19). The middle section of the U-shaped column (19) is perpendicularly connected to the drive shaft of the first rotating motor (18). The two straight sections of the U-shaped column (19) are parallel to the rotating rod (21). One end of the slide rail (1) is used for feeding and the other end is used for tilting. When the slide rail (1) rotates to a predetermined angle and both rollers (11) are located at the other end of the slide rail (1), the first rotating motor (18) and the two rollers (11) are coaxial.
4. The raw material pouring device according to claim 3, characterized in that, The first support frame (17) is provided with two second support frames (110) on both sides. One of the second support frames (110) is provided with an electric lead screw (111) along the axial direction of the first rotating motor (18). The electric lead screw (111) is threaded with a mating block (112). The other second support frame (110) is provided with a slide rod (113) along the axial direction of the first rotating motor (18). A slider (114) slides through the slide rod (113). The first support frame (17) is connected to the mating block (112) and the slider (114).
5. The raw material pouring device according to claim 1, characterized in that, It also includes two drive frames (115), one of which is equipped with a second rotary motor (116). The drive shaft of the second rotary motor (116) is coaxially connected to one of the drive rods (13), and the other drive rod (13) is rotatably located in the other drive frame (115). Both slide rails (1) are connected to the same linkage rod (117).
6. The raw material pouring device according to claim 1, characterized in that, The inner wall of the tilting bucket (3) is provided with a protrusion (32) parallel to the axis of the tilting bucket (3). Both ends of the tilting bucket (3) have protrusions (33) extending inward. The two ends of the protrusion (32) are connected to the protrusions (33). The side of the lifting plate (31) is provided with a notch (34) matching the shape of the protrusion (32). The notch (34) penetrates the upper and lower surfaces of the lifting plate (31). The notch (34) and the protrusion (32) slide together.