Multifunctional silicon dioxide split charging stock bin
By cutting the notch at the bottom of the drying tower and installing the partition baffle and support frame, the problems of insufficient discharge port height and excessive volume after the drying tower renovation are solved, and the adaptive installation of the silicon dioxide packaging machine and efficient use of space are achieved.
Patent Information
- Application Number
- CN202421602787.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-09
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-07-09
AI Technical Summary
After the idle silica drying tower is renovated, the discharge port height is insufficient, which cannot meet the installation needs of the packaging machine. The large volume leads to insufficient storage, resulting in wasted space.
Cut the notch at the bottom of the drying tower and install a conical diversion shell and a partition baffle. The inner cavity is divided into two partition areas. The height is adjusted through the support frame, and the arch breaking assembly and quick opening manhole are added to meet the installation needs of the packaging machine and improve the space utilization.
It realizes the installation adaptability of the silica packaging machine and the full utilization of space, ensuring the stability of the feeding material, and making it easy to inspect and clean.
Smart Images

Figure CN223121896U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of dispensing bins, in particular to a multifunctional silica dispensing bin. Background Art
[0002] A silica bin is a device for storing finished silica particles. In existing workshops, idle silica drying towers often appear. Currently, most of them are modified from idle silica drying towers for use in storing silica.
[0003] A patent with a publication number of CN210883593U is disclosed in the prior art. The solution includes a first bin, a second bin, and a packaging bin. One side of the top of the first bin, the second bin, and the packaging bin is connected to a bag type dust collector through a discharge valve. The inner cavity centers of the first bin and the second bin are vertically inserted with a feeding main pipe. Axially on the outer walls of the two feeding main pipes, a first feeding branch pipe, a second feeding branch pipe, a third feeding branch pipe, and a fourth feeding branch pipe are inclined upward. The tips of the first feeding branch pipe, the second feeding branch pipe, the third feeding branch pipe, and the fourth feeding branch pipe are all connected to a hopper. The center of the bottom end face of the first bin and the second bin is provided with a collection hopper. It improves the quality consistency of the whole bin of products, cancels the inspection area, improves the storage space of the warehouse, and makes full and reasonable use of the bin space. By setting three bins and rotating without seams, a virtuous cycle of continuous production, continuous homogenization and mixing, and continuous qualified shipment is realized.
[0004] The existing devices including the above patent gradually expose the deficiencies of the prior art during use, mainly manifested in the following aspects:
[0005] First, after the idle silica drying tower is modified, the height of the drying tower discharge port from the ground is 2000 mm, which cannot meet the installation height of the silica packaging machine.
[0006] Second, when the drying tower is changed into a bin, the volume is too large. During each shift, while producing and packaging, the stored silica in the bin is always less than 1 / 3, resulting in waste of space.
[0007] In summary, it is obvious that the prior art has inconveniences and defects in actual use, so it is necessary to improve. Summary of the Utility Model
[0008] In view of the defects in the prior art, the utility model provides a multifunctional silica packing silo to solve the problems that after the transformation of the idle silica drying tower in the traditional technology, the height of the discharge port of the drying tower from the ground is 2000 mm, which cannot meet the installation height of the silica packing machine; and when the drying tower is changed into a silo, the volume is too large. During production and packaging in each shift, the stored silica in the silo is always less than 1 / 3, resulting in waste of space.
[0009] To achieve the above object, the utility model provides the following technical solutions:
[0010] The multifunctional silica packing silo includes a drying tower. A notch is provided at the lower end of the drying tower, and a conical shunt shell is fixedly connected to the notch. The large-diameter end of the conical shunt shell is arranged downward, and a bottom ring plate is fixedly connected between the large-diameter end of the conical shunt shell and the notch.
[0011] A partition baffle is vertically and fixedly connected inside the drying tower. Through the partition baffle, the inner cavity of the drying tower is evenly divided into two packing areas. The lower end of the partition baffle is fixedly connected to the conical shunt shell. The lower surface of the bottom ring plate corresponds to each packing area and is fixedly connected with a discharge valve port communicating with its inner cavity.
[0012] A number of reinforcing components are arranged in parallel from top to bottom in the packing area.
[0013] As an optimized scheme, the reinforcing component includes a horizontally fixedly connected support circular tube. The support circular tube is in the radial direction of the drying tower. Side support circular tubes are horizontally fixedly connected to both sides of the support circular tube, and a connecting circular tube is fixedly connected between the side support circular tube and the support circular tube.
[0014] As an optimized scheme, both ends of the support circular tube and the side support circular tube are fixedly connected to the inner wall of the drying tower and the partition baffle respectively.
[0015] As an optimized scheme, an arch-breaking component is rotatably arranged at a position near the outlet end of the packing area.
[0016] As an optimized scheme, a dust collector on the top of the drying tower is fixedly connected corresponding to each packing area, and the dust collector on the top of the drying tower is communicated with the packing area.
[0017] As an optimized scheme, the arch-breaking component includes a rotating shaft horizontally arranged. A number of columns of arch-breaking teeth are arranged around the rotating shaft, and the arch-breaking teeth are arranged in an L shape.
[0018] As an optimized scheme, the orientations of the adjacent columns of arch-breaking teeth are arranged in opposite directions.
[0019] As an optimized solution, one end of the rotating shaft is rotatably installed on the tower wall of the drying tower, and the other end of the rotating shaft is rotatably installed on the shell wall of the conical shunt housing. A driving machine for driving the rotating shaft to rotate is fixedly connected to the outer wall of the conical shunt housing.
[0020] As an optimized solution, quick-opening manholes are fixedly connected to the outer wall of the drying tower near the lower end corresponding to each of the sub-packaging areas.
[0021] As an optimized solution, the lower end of the drying tower is supported on the ground through a support frame, and the drying tower can be adjusted in height vertically through the support frame.
[0022] As an optimized solution, the support frame includes a bottom plate. A sleeve is vertically and fixedly connected to the bottom plate. A support column is slidably arranged vertically in the sleeve. A plurality of positioning holes are arranged in parallel from top to bottom on the support column. Pin holes are coaxially arranged on the opposite barrel walls of the sleeve near the upper end. A positioning pin assembly is inserted into the pin holes, and the positioning pin assembly penetrates through one of the positioning holes.
[0023] As an optimized solution, the bottom plate is fixed to the ground through bolts.
[0024] Compared with the prior art, the beneficial effects of the present utility model are:
[0025] By cutting the bottom of the drying tower to cut out a notch, the height between the bottom of the drying tower and the ground and the installation height of the silica packaging machine can be increased.
[0026] Moreover, the drying tower can be adjusted in height vertically through the support column and the sleeve. During adjustment, the drying tower is lifted by a crane, then the distance of the support column in the support cylinder is adjusted, and then the positioning pin assembly is inserted to achieve fixation, which can meet the installation height requirements of silica packaging machines of different specifications and sizes.
[0027] A partition plate is arranged in the drying tower to divide the large-volume drying tower into two sub-packaging areas. Different silica products can be conveyed into the partitioned bins A / B for packaging, so as to make full use of the space.
[0028] By rotatably arranging an anti-arching assembly in the drying tower, the stability of material transportation can be ensured.
[0029] Quick-opening manholes are added below the bins, which is convenient for entering for inspection, maintenance and cleaning of accumulated materials. Description of the Drawings
[0030] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to scale.
[0031] Figure 1 is a schematic structural diagram of the present invention;
[0032] Figure 2 is a schematic structural diagram of the reinforcement assembly of the present invention.
[0033] In the figure: 1 - drying tower; 2 - partition baffle; 3 - packaging area; 4 - reinforcement assembly; 5 - quick-opening manhole; 6 - rotating shaft; 7 - arch-breaking teeth; 8 - driving machine; 9 - discharge valve opening; 10 - sleeve; 11 - support column; 12 - positioning pin assembly; 13 - bottom plate; 14 - ground; 15 - support circular tube; 16 - side support circular tube; 17 - connecting circular tube; 18 - dust collector on the top of the bin. Specific Embodiments
[0034] The following will describe in detail the embodiments of the technical solutions of the present invention with reference to the drawings. The following embodiments are only used to more clearly illustrate the technical solutions of the present invention, so they are only examples and cannot be used to limit the protection scope of the present invention.
[0035] As Figure 1 and Figure 2 shown, the multifunctional silica packaging bin includes a drying tower 1. A notch is provided at the lower end of the drying tower 1. A conical shunt shell is fixedly connected at the notch. The large-diameter end of the conical shunt shell is arranged downward. A bottom ring plate is fixedly connected between the large-diameter end of the conical shunt shell and the notch.
[0036] A partition baffle 2 is vertically and fixedly connected inside the drying tower 1. Through the partition baffle 2, the inner cavity of the drying tower 1 is evenly divided into two packaging areas 3. The lower end of the partition baffle 2 is fixedly connected to the conical shunt shell. The lower surface of the bottom ring plate is fixedly connected with a discharge valve opening 9 communicating with its inner cavity corresponding to each packaging area 3.
[0037] A number of reinforcement assemblies 4 are arranged in parallel from top to bottom in the packaging area 3.
[0038] The reinforcement assembly 4 includes a horizontally fixedly connected support circular tube 15. The support circular tube 15 is in the radial direction of the drying tower 1. Side support circular tubes 16 are horizontally fixedly connected to both sides of the support circular tube 15. A connecting circular tube 17 is fixedly connected between the side support circular tube 16 and the support circular tube 15.
[0039] Both ends of the support circular tube 15 and the side support circular tube 16 are fixedly connected to the inner wall of the drying tower 1 and the partition baffle 2 respectively.
[0040] A breaking arch assembly is rotatably provided at a position near the outlet end of the packaging area 3.
[0041] At the top of the drying tower 1, a bag filter 18 is fixedly connected corresponding to each packaging area 3, and the bag filter 18 is communicated with the packaging area 3.
[0042] The breaking arch assembly includes a rotating shaft 6 rotatably arranged horizontally, and several columns of breaking arch teeth 7 are arranged around the rotating shaft 6. The breaking arch teeth 7 are arranged in an L shape.
[0043] The orientations of the breaking arch teeth 7 in adjacent columns are arranged in opposite directions.
[0044] One end of the rotating shaft 6 is rotatably installed on the tower wall of the drying tower 1, and the other end of the rotating shaft 6 is rotatably installed on the shell wall of the conical shunt shell. A driving machine 8 for driving the rotating shaft 6 to rotate is fixedly connected to the outer wall of the conical shunt shell.
[0045] Quick-opening manholes 5 are fixedly connected to the outer wall of the drying tower 1 near the lower end corresponding to each packaging area 3.
[0046] The lower end of the drying tower is supported on the ground 14 through a support frame, and the drying tower can be adjusted in height vertically through the support frame.
[0047] The support frame includes a bottom plate 13. A sleeve 10 is vertically fixedly connected to the bottom plate 13. A support column 11 is slidably arranged vertically in the sleeve 10. A plurality of positioning holes are arranged in parallel from top to bottom on the support column 11. Pin holes are coaxially opened on the opposite barrel walls of the sleeve 10 near the upper end. A positioning pin assembly 12 is inserted into the pin holes, and the positioning pin assembly 12 penetrates through one of the positioning holes.
[0048] The bottom plate 13 is fixed to the ground 14 by bolts.
[0049] The working principle of this device is as follows:
[0050] By cutting the bottom of the drying tower 1 to cut out a notch, the height between the bottom of the drying tower 1 and the ground 14 and the installation height of the silica packing machine can be increased;
[0051] Moreover, the drying tower 1 can be adjusted in height vertically through the support column 11 and the sleeve 10. During adjustment, the drying tower 1 is lifted by a crane, then the distance of the support column 11 in the support cylinder is adjusted, and then the positioning pin assembly 12 is inserted to achieve fixation, which can meet the installation height requirements of silica packing machines of different specifications;
[0052] A partition plate is arranged in the drying tower 1 to divide the large-volume drying tower 1 into two packaging areas 3, and different silica products can be conveyed to the partitioned bins A / B for packaging, so as to make full use of the space;
[0053] By rotatably arranging an arch-breaking component in the drying tower 1, the stability of material conveying can be ensured;
[0054] A quick-opening manhole 5 is added below the silo, which is convenient for entering to check, repair and clean the accumulated material.
[0055] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present invention, and they should all be covered by the scope of the claims and the description of the present invention.
Claims
1. Multifunctional silica packing bin, characterized in that: It includes a drying tower (1). A notch is provided at the lower end of the drying tower (1). A conical shunt shell is fixedly connected at the notch. The large-diameter end of the conical shunt shell is arranged downward. A bottom ring plate is fixedly connected between the large-diameter end of the conical shunt shell and the notch. A partition baffle (2) is vertically and fixedly connected inside the drying tower (1). Through the partition baffle (2), the inner cavity of the drying tower (1) is evenly divided into two sub-packaging areas (3). The lower end of the partition baffle (2) is fixedly connected to the conical shunt shell. The lower surface of the bottom ring plate corresponds to each sub-packaging area (3) and is fixedly connected with a discharge valve port (9) communicating with its inner cavity. A number of reinforcement components (4) are arranged in parallel from top to bottom in the sub-packaging area (3).
2. The multifunctional silica packing bin according to claim 1, wherein: The reinforcement component (4) includes a horizontally fixedly connected support circular tube (15). The support circular tube (15) is in the radial direction of the drying tower (1). Side support circular tubes (16) are horizontally fixedly connected to both sides of the support circular tube (15). A connecting circular tube (17) is fixedly connected between the side support circular tube (16) and the support circular tube (15).
3. The multi-functional silica packing bin according to claim 2, wherein: Both ends of the support circular tube (15) and the side support circular tube (16) are fixedly connected to the inner wall of the drying tower (1) and the partition baffle (2) respectively.
4. The multi-functional silica packing bin according to claim 3, wherein: An arch-breaking component is rotatably arranged at a position near the outlet end of the sub-packaging area (3).
5. The multi-functional silica packing bin according to claim 4, characterized in that: At the top of the drying tower (1), a dust collector on the top of the bin (18) is fixedly connected corresponding to each sub-packaging area (3). The dust collector on the top of the bin (18) is communicated with the sub-packaging area (3).
6. The multi-functional silica packing bin according to claim 5, characterized in that: The arch-breaking component includes a rotating shaft (6) arranged horizontally. A number of columns of arch-breaking teeth (7) are arranged around the rotating shaft (6). The arch-breaking teeth (7) are arranged in an L shape. The orientations of the adjacent columns of arch-breaking teeth (7) are opposite.
7. The multi-functional silica bin for bulk material packaging according to claim 6, wherein: One end of the rotating shaft (6) is rotatably installed on the tower wall of the drying tower (1). The other end of the rotating shaft (6) is rotatably installed on the shell wall of the conical shunt shell. A driving machine (8) for driving the rotating shaft (6) to rotate is fixedly connected to the outer wall of the conical shunt shell.
8. The multifunctional silica bin for bulk loading according to claim 7, wherein: Quick-opening manholes (5) are fixedly connected to the outer wall of the drying tower (1) near the lower end corresponding to each sub-packaging area (3).
9. The multi-functional silica packing bin according to claim 8, characterized in that: The lower end of the drying tower is supported on the ground (14) through a support frame. The height of the drying tower can be adjusted vertically through the support frame.
10. The multi-functional silica packing bin according to claim 9, characterized in that: The support frame includes a bottom plate (13). A sleeve (10) is vertically fixedly connected to the bottom plate (13). A support column (11) slides vertically in the sleeve (10). A number of positioning holes are arranged in parallel from top to bottom on the support column (11). Pin holes are coaxially arranged on the opposite barrel walls near the upper end of the sleeve (10). A positioning pin assembly (12) is inserted into the pin holes. The positioning pin assembly (12) penetrates through one of the positioning holes.
Citation Information
Patent Citations
Silicon dioxide material storage bin dust remover
CN210883593U