Automatic feeding station
By using the material storage components composed of slip plates and drive parts in the feeding station, the problem of powder bonding in the inner wall of the silo is solved, and the efficient drop of powder is achieved and dust is reduced, which improves the operability and efficiency of the feeding station.
Patent Information
- Application Number
- CN202422322449.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The inner wall of the existing feeding station is prone to bonding powder blocks, affecting the feeding process.
The material storage component consisting of a sliding plate and a driving member is used to drive the sliding plate to move towards the side away from the center of the hopper through the driving member, and the powder is dropped by inertia and reduce bonding; the synchronous movement of the sliding plate is achieved by combining the inclined guide column, spring and urging rod to reduce the loss of powder between gaps.
Effectively reduce the possibility of powder bonding to the inner wall of the storage chamber, reduce the risk of blockage of the discharge pipe, reduce dust flying out, and improve feeding efficiency.
Smart Images

Figure CN223225366U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of automatic feeding, in particular to an automatic feeding station. Background Art
[0002] The feeding station is a device used for feeding materials. It is used for unpacking and feeding small bags of materials in the food, pharmaceutical, chemical and metallurgical industries. It is simple and convenient to operate and has a high cost performance.
[0003] The utility model with announcement number CN216686660U discloses a dust-free feeding station, including a storage bin, a feeding port is provided on the storage bin, an exhaust pipe is provided in the storage bin, one end of the exhaust pipe passes through the side wall of the storage bin, and the end of the exhaust pipe away from the storage bin is connected to a dust suction device, a slot is provided on the top wall of the storage bin, and a dust filter is connected to the slot in a vertical sliding direction on the storage bin, and the lower end of the dust filter is in contact with the inner wall of the bottom of the exhaust pipe to block the dust in the storage bin.
[0004] The feeding station in the above technical solution does not have a cleaning mechanism inside the silo. After use, powder blocks are easily adsorbed and adhered to the side walls of the silo. If it is not cleaned for a long time, a thick layer of material is easily adhered to the side walls of the silo, affecting the feeding process. Utility Model Content
[0005] In order to reduce the possibility of powder sticking to the inner wall of the silo, the present application provides an automatic feeding station.
[0006] The automatic feeding station provided in this application adopts the following technical solution:
[0007] An automatic feeding station includes a frame, a hopper and a storage assembly. The hopper is fixedly connected to the frame. The storage assembly includes multiple sliding plates and a driving member. The multiple sliding plates are respectively slidably connected in the hopper. A discharge pipe is provided on any of the sliding plates. The discharge pipe is passed through and slidably connected to the hopper at one end away from the sliding plate. The driving member is used to drive the sliding of the multiple sliding plates. When the multiple sliding plates slide toward the middle of the hopper until they abut against the adjacent hopper, the multiple sliding plates jointly form a storage cavity.
[0008] By adopting the above technical solution, the driving member drives multiple sliding plates to move toward the side away from the center of the hopper, and the powder on the multiple sliding plates falls due to inertia, reducing the possibility of the powder sticking to the inner wall of the storage chamber.
[0009] Preferably, the driving member includes multiple springs, multiple groups of inclined guide columns and force rods, the multiple groups of inclined guide columns correspond to multiple sliding plates respectively, the multiple groups of inclined guide columns are fixedly connected to the corresponding sliding plates, the multiple groups of inclined guide columns are respectively penetrated at one end away from the corresponding sliding plates and are slidably connected to the adjacent sliding plates, the multiple springs are respectively arranged on the multiple sliding plates, the multiple springs always drive the multiple sliding plates to slide toward the center of the hopper, the force rod is fixedly connected to any sliding plate, and the end of the force rod away from the sliding plate is penetrated and slidably connected to the hopper.
[0010] By adopting the above technical solution, any sliding plate is pulled by the force rod to make the sliding plate slide toward the side away from the center of the hopper, and the simultaneous movement of multiple sliding plates is achieved by the relative sliding of the inclined guide columns. At this time, multiple springs are deformed. When the force rod is released, the springs return to their original shape, causing the multiple sliding plates to slide to their original positions. Through the movement of the sliding plate, the powder adsorbed on the side wall of the sliding plate falls off, reducing the possibility of the powder adhering to the inner wall of the storage chamber.
[0011] Preferably, it also includes multiple connecting plates, each of which corresponds to a plurality of sliding plates. The two ends of the connecting plates in the width direction are respectively slidably connected to two adjacent sliding plates. When the sliding plate slides away from the center of the hopper to the extreme position, the connecting plate covers the gap between the two adjacent sliding plates.
[0012] By adopting the above technical solution, the two ends of the connecting plate are respectively abutted against two adjacent sliding plates, thereby reducing the possibility of powder falling out from the gap between the two sliding plates when the sliding plates move.
[0013] Preferably, a plurality of rubber blocks are provided on the frame, and the hopper is fixedly connected to the plurality of rubber blocks at the same time.
[0014] By adopting the above technical solution, the rubber block plays a role. The setting of the rubber block can reduce the possibility of the frame vibrating when the sliding plate moves.
[0015] Preferably, the lower portion of the storage cavity is an inverted cone structure, and the discharge pipe is located at the lower portion of the storage cavity.
[0016] By adopting the above technical solution, the powder in the storage cavity is guided.
[0017] Preferably, it also includes a plurality of dust covers, wherein the plurality of dust covers are detachably connected to the hopper, and the plurality of dust covers are detachably connected to adjacent dust covers. When the plurality of dust covers are installed on the hopper at the same time, the plurality of dust covers shield the storage cavity.
[0018] By adopting the above technical solution, the storage cavity is shielded by multiple dust covers, thereby reducing the possibility of dust in the storage cavity flying out during the operation of the feeding station; and the multiple dust covers are detachably connected to the hopper, and different numbers of dust covers can be selectively removed according to the size of the material bag to facilitate the entry of the material.
[0019] Preferably, the dust cover is provided with a window.
[0020] By adopting the above technical solution, when multiple dust covers are installed on the hopper, it is convenient to observe the storage cavity through the window.
[0021] The technical effects of this utility model are mainly reflected in the following aspects:
[0022] 1. The utility model provides multiple sliding plates, which are driven by a driving member to move toward a side away from the center of the hopper. The powder on the sliding plates falls off due to inertia, thereby reducing the possibility of the powder adhering to the inner wall of the storage chamber.
[0023] 2. The utility model provides a driving member. A force rod is used to pull any sliding plate, causing the sliding plate to slide toward the side away from the center of the hopper. The inclined guide pillars slide relative to each other to achieve simultaneous movement of multiple sliding plates. At this time, multiple springs are deformed. When the force rod is released, the springs return to their original shape, causing the multiple sliding plates to slide back to their original positions. The movement of the sliding plates causes the powder adsorbed on the side walls of the sliding plates to fall off, reducing the possibility of the powder adhering to the inner wall of the storage chamber.
[0024] 3. The utility model provides a connecting plate so that both ends of the connecting plate abut against two adjacent sliding plates respectively, thereby reducing the possibility of powder falling out from the gap between the two sliding plates when the sliding plates move. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.
[0026] Figure 2 It is a structural diagram of the storage mechanism of an embodiment of the present application.
[0027] Figure 3 yes Figure 2 Enlarged view of point A in the middle.
[0028] Figure 4 This is a schematic diagram of the dustproof plate structure of an embodiment of the present application.
[0029] Explanation of the accompanying reference numerals: 1. Frame; 11. Rubber block; 2. Hopper; 3. Storage assembly; 31. Sliding plate; 32. Driving member; 321. Spring; 322. Inclined guide column; 323. Force rod; 33. Discharge pipe; 34. Storage chamber; 35. Connecting plate; 4. Dust cover; 41. Hook; 42. Buckle; 43. Window. DETAILED DESCRIPTION
[0030] The following is combined with Figure 1-4 The present application is further described in detail to make the technical solution of the present application easier to understand and grasp.
[0031] The embodiment of the present application discloses an automatic feeding station.
[0032] Reference Figure 1-Figure 3 The material discharging pipe 33 is located at the bottom of the storage chamber 34, and the material discharging pipe 33 is fixedly connected to the storage chamber 34 to facilitate guiding the powder in the storage chamber 34.
[0033] Reference Figure 1-Figure 3 The driving member 32 drives the four sliding plates 31 to move toward the side away from the center of the hopper 2. Through inertia, the powder on the multiple sliding plates 31 falls, reducing the possibility of the powder sticking to the inner wall of the storage chamber 34. When the sliding plates 31 move, the discharge pipe 33 moves together, which can reduce the possibility of blockage in the discharge pipe 33 or adhesion of powder in the discharge pipe 33.
[0034] Reference Figure 1-Figure 3 The driving member 32 includes a plurality of springs 321, four groups of inclined guide columns 322 and a force rod 323. The multiple groups of inclined guide columns 322 correspond to the four sliding plates 31 respectively. The four groups of inclined guide columns 322 are fixedly connected to the corresponding sliding plates 31 respectively. Each group of inclined guide columns 322 includes a plurality of inclined guide columns 322. The end of each inclined guide column 322 away from the corresponding sliding plate 31 is respectively penetrated and slidably connected to the adjacent sliding plate 31. The two ends of the multiple springs 321 are respectively fixedly connected to the sliding plate 31 and the side wall of the hopper 2. The multiple springs 321 always drive the multiple sliding plates 31 to slide toward the center side of the hopper 2. The force rod 323 is fixedly connected to any sliding plate 31. The end of the force rod 323 away from the sliding plate 31 is penetrated and slidably connected to the hopper 2.
[0035] Reference Figure 1-Figure 3 By pulling any sliding plate 31 through the force rod 323, the sliding plate 31 slides toward the side away from the center of the hopper 2, and the inclined guide column 322 slides relative to each other to achieve simultaneous movement of multiple sliding plates 31. At this time, multiple springs 321 are deformed. When the force rod 323 is released, the spring 321 returns to its original shape, causing the multiple sliding plates 31 to slide to their original positions. Through the movement of the sliding plate 31, the powder adsorbed on the side wall of the sliding plate 31 falls off, reducing the possibility of the powder adhering to the inner wall of the storage chamber 34.
[0036] Reference Figure 1-Figure 3 , further comprising four connecting plates 35, each corresponding to one of the four sliding plates 31. The ends of the four connecting plates 35 in the width direction are slidably connected to two adjacent sliding plates 31. When the sliding plates 31 slide to their limit positions away from the center of the hopper 2, the connecting plates 35 cover the gap between the two adjacent sliding plates 31. The ends of the connecting plates 35 abut against the two adjacent sliding plates 31, thereby reducing the possibility of powder falling out of the gap between the two sliding plates 31 when the sliding plates 31 move.
[0037] Reference Figure 1 and Figure 2 , a plurality of rubber blocks 11 are fixedly connected to the frame 1, and the hopper 2 is fixedly connected to the plurality of rubber blocks 11. The provision of the rubber blocks 11 can reduce the possibility of the frame 1 vibrating when the sliding plate 31 moves.
[0038] Reference Figures 1-4 , further comprising a plurality of dust covers 4, each of which is detachably connected to the hopper 2, and each of which is detachably connected to an adjacent dust cover 4, that is, further comprising a plurality of hooks 41 and a plurality of buckles 42, wherein the plurality of hooks 41 correspond to the plurality of buckles 42, the plurality of hooks 41 are fixedly connected to the plurality of dust plates, and the plurality of buckles 42 are movably connected to the hopper 2. When the plurality of dust covers 4 are simultaneously mounted on the hopper 2, the plurality of buckles 42 are respectively engaged with the corresponding hooks 41, and the plurality of dust covers 4 shield the material storage cavity 34. By shielding the material storage cavity 34 with the plurality of dust covers 4, the possibility of dust in the material storage cavity 34 flying out during the operation of the feeding station is reduced; and the plurality of dust covers 4 are detachably connected to the hopper 2, and different numbers of dust covers 4 can be selectively removed according to the size of the material bag, so as to facilitate the entry of the material. A viewing window 43 is fixedly connected to the dust cover 4 . When multiple dust covers 4 are installed on the hopper 2 , the material storage cavity 34 can be easily observed through the viewing window 43 .
[0039] Of course, the above are only typical examples of the present application. In addition, the present application may have many other specific implementation methods. Any technical solutions formed by equivalent replacement or equivalent transformation fall within the scope of protection required by the present application.
Claims
1. An automatic feeding station, characterized by: The invention comprises a frame (1), a hopper (2) and a storage assembly (3), wherein the hopper (2) is fixedly connected to the frame (1), and the storage assembly (3) comprises a plurality of sliding plates (31) and a driving member (32), wherein the plurality of sliding plates (31) are respectively slidably connected in the hopper (2), and a discharge pipe (33) is provided on any of the sliding plates (31), and the discharge pipe (33) is penetrated at one end away from the sliding plate (31) and slidably connected to the hopper (2), and the driving member (32) is used to drive the sliding of the plurality of sliding plates (31), and when the plurality of sliding plates (31) slide toward the middle of the hopper (2) and abut against the adjacent hopper (2), the plurality of sliding plates (31) jointly form a storage cavity (34); The driving member (32) includes a plurality of springs (321), a plurality of groups of inclined guide pillars (322) and a force rod (323), wherein the plurality of groups of inclined guide pillars (322) correspond to the plurality of sliding plates (31) respectively, and the plurality of groups of inclined guide pillars (322) are fixedly connected to the corresponding sliding plates (31) respectively, and the ends of the plurality of groups of inclined guide pillars (322) away from the corresponding sliding plates (31) are respectively penetrated and slidably connected to the adjacent sliding plates (31), and the plurality of springs (321) are respectively arranged on the plurality of sliding plates (31), and the plurality of springs (321) always drive the plurality of sliding plates (31) to slide toward the center side of the hopper (2), and the force rod (323) is fixedly connected to any sliding plate (31), and the end of the force rod (323) away from the sliding plate (31) is penetrated and slidably connected to the hopper (2); The invention also includes a plurality of connecting plates (35), wherein the plurality of connecting plates (35) respectively correspond to the plurality of sliding plates (31), and the two ends of the plurality of connecting plates (35) in the width direction are respectively slidably connected to two adjacent sliding plates (31), and when the sliding plate (31) slides away from the center of the hopper (2) to an extreme position, the connecting plate (35) shields the gap between the two adjacent sliding plates (31).
2. An automatic feeding station according to claim 1, characterized in that: The frame (1) is provided with a plurality of rubber blocks (11), and the hopper (2) is fixedly connected to the plurality of rubber blocks (11) at the same time.
3. The automatic feeding station according to claim 1, characterized in that: The lower portion of the storage cavity (34) is an inverted cone structure, and the discharge pipe (33) is located at the lower portion of the storage cavity (34).
4. The automatic feeding station according to claim 1, characterized in that: The utility model further comprises a plurality of dustproof covers (4), wherein the plurality of dustproof covers (4) are detachably connected to the hopper (2), and the plurality of dustproof covers (4) are detachably connected to adjacent dustproof covers (4). When the plurality of dustproof covers (4) are simultaneously installed on the hopper (2), the plurality of dustproof covers (4) shield the material storage cavity (34).
5. The automatic feeding station according to claim 4, characterized in that: The dust cover (4) is provided with a viewing window (43).