Wear-resistant blanking cone for sheet-type storage bin
By using wear-resistant unloading cones in the sheet storage bin and utilizing the design of stainless steel unloading shells and guide trough dividing leaves, the problem of difficult unloading is solved, and smooth unloading of materials and efficient production are achieved.
Patent Information
- Application Number
- CN202422426242.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-10-09
AI Technical Summary
It is difficult to unload materials from the unloading pile of the sheet storage silo, which causes material retention, affects production efficiency and may cause problems such as compaction and adhesion.
A wear-resistant discharge cone for a sheet-type storage bin is designed. The discharge shell is made of stainless steel, with an internal material guide plate and an external support frame. Combined with a material guide trough and a material dividing blade, the material is discharged in batches by rotating the material dividing blade driven by a motor.
It improves the fluidity of materials, avoids material retention and compaction, and ensures smooth material discharge and production efficiency.
Smart Images

Figure CN223341435U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of sheet-type storage bins and relates to a wear-resistant blanking cone for sheet-type storage bins. Background Art
[0002] The unloading pile of a chip silo is a common and critical part of industrial production, especially in situations where precise control of material flow and storage is required. The chip silo is an efficient and compact material storage device widely used in industries such as chemicals, food, metallurgy, and building materials. Its design generally combines the physical properties of the material with the process requirements to ensure the stability and safety of the material during storage and unloading. Difficulty unloading the material from the unloading pile of a chip silo is a common problem, which may lead to a series of problems, as follows:
[0003] The difficulty in unloading materials from the unloading pile of a chip-type storage silo can lead to material stagnation within the silo, reducing material flowability. This not only affects production efficiency but can also cause the material to become compacted and sticky within the silo, further exacerbating unloading difficulties. Therefore, there is an urgent need for a wear-resistant unloading cone for a chip-type storage silo to solve the above problems. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of the present invention is to provide a wear-resistant discharge cone for a sheet-type storage bin to solve the problems raised in the above background technology.
[0005] The utility model is realized by the following technical solutions: a wear-resistant blanking cone of a sheet-type storage bin, comprising: an outer connecting shell, a blanking shell, a lower connecting plate, a material guide component and a support base, wherein the lower end of the outer connecting shell is provided with a blanking shell for guiding the material inside the sheet-type storage bin;
[0006] The cross section of the material discharge shell is a conical structure, and the material of the material discharge shell is made of a stainless steel metal material. The inner side of the material discharge shell is provided with a plurality of groups of material guide plates for discharging materials in batches;
[0007] A group of internal discharge troughs for discharging materials are provided on the inner side of each group of the material guide plates, and a group of external support frames for supporting the lower end of the discharge shell are provided on the outer side of the discharge shell. The cross section of the external support frame is an annular structure, which can support the lower end of the discharge shell by using the external support frame.
[0008] As a preferred embodiment, the lower end of the outer support frame is provided with several groups of support columns for supporting the lower end of the outer support frame, and the inner side of each group of support columns is provided with a group of inner support frames for supporting the outer side of the material guide component. The outer side of the material guide component can be supported by using the inner support frames.
[0009] As a preferred embodiment, several groups of the support columns are arranged in a ring structure in cross-section when viewed from above, and several groups of the support columns are provided with a group of guiding components on the inner side for assisting in guiding the lower end of the blanking shell. The guiding components can be used to assist in guiding the lower end of the blanking shell.
[0010] As a preferred embodiment, a group of support bases are provided at the lower ends of the several groups of support columns for supporting the lower ends of the several groups of support columns, and the cross-sectional shape of the support bases when viewed from above is consistent with the cross-sectional shape of the outer support frame when viewed from above.
[0011] As a preferred embodiment, the material guiding component includes a bottom shell and a discharge port. A group of material guiding grooves for introducing materials from the inside of the chip-type storage bin are provided at the upper rear end of the bottom shell. The interior of the material guiding groove is interconnected with the interior of the lower end inner discharge trough, and the material from the inside of the chip-type storage bin can be introduced by using the material guiding groove.
[0012] As a preferred embodiment, a group of dividing chambers for guiding several materials in batches are provided at the lower left end of the material guide trough, and several groups of dividing blades for separating and guiding the materials are provided inside the dividing chamber, so that the materials can be separated and guided by using the dividing blades.
[0013] As a preferred embodiment, a group of rotary seats for driving the rotation of the several groups of material blades are provided on the inner side of the several groups of material blades, a group of connectors for transmitting motor power are provided inside and on the upper end of the rotary seats, the connectors and the rotary seats are fixed by several groups of bolts, and a group of motors for driving the rotary seats and the connectors to rotate are provided at the lower end of the rotary seats.
[0014] After adopting the above technical scheme, the beneficial effects of the utility model are: by using an external support frame to support the lower end of the discharge shell, by using an internal support frame to support the outer side of the guide component, by using the guide component to assist in guiding the lower end of the discharge shell, by using the guide trough to introduce the material inside the sheet-type storage bin, and by using the dividing blades to separate and guide the material. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.
[0016] Figure 1 This is a schematic diagram of the front side plan view of a wear-resistant discharge cone of a sheet-type storage bin of the utility model;
[0017] Figure 2 This is a schematic diagram of the front structure of a wear-resistant discharge cone of a sheet-type storage bin of the utility model when the discharge shell and the outer support frame are engaged;
[0018] Figure 3 This is a schematic diagram of the structure of the material guide component in the wear-resistant discharge cone of a sheet-type storage bin of the utility model, viewed from the left oblique front side;
[0019] Figure 4 This is a schematic diagram of the structure of the left oblique front side of the inner part of the material distributing cavity in the wear-resistant discharge cone of a sheet-type storage bin of the utility model;
[0020] In the figure: 100 - outer connecting shell, 110 - material guide plate, 120 - outer supporting frame, 130 - material lower shell, 140 - lower connecting plate, 150 - inner supporting frame, 160 - material guide component, 170 - supporting column, 180 - supporting base;
[0021] 16a- bottom shell, 16b- material guide trough, 16c- material distribution cavity, 16d- material distribution blade, 16e- connector, 16f- motor, 16g- material outlet. DETAILED DESCRIPTION
[0022] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0023] See also Figure 1-Figure 4 A wear-resistant blanking cone for a chip-type storage bin comprises an outer connecting shell 100, a material guide component 160 and a support base 180. A blanking shell 130 is provided at the lower end of the outer connecting shell 100 for guiding the material inside the chip-type storage bin.
[0024] The cross section of the material discharge shell 130 is a conical structure, and the material of the material discharge shell 130 is made of a stainless steel metal material. The inner side of the material discharge shell 130 is provided with a plurality of groups of material guide plates 110 for discharging materials in batches.
[0025] A group of internal discharge troughs for discharging materials are provided on the inner side of each group of material guide plates 110, and a group of external support frames 120 for supporting the lower end of the discharge shell 130 are provided on the outer side of the discharge shell 130. The cross-section of the external support frame 120 is an annular structure, which can support the lower end of the discharge shell 130 by using the external support frame 120.
[0026] The lower end of the outer support frame 120 is provided with several groups of support columns 170 for supporting the lower end of the outer support frame 120. The inner side of each group of support columns 170 is provided with a group of inner support frames 150 for supporting the outer side of the material guide component 160. The outer side of the material guide component 160 can be supported by using the inner support frames 150.
[0027] Several groups of support columns 170 are arranged in a ring-shaped cross-section when viewed from above. A group of guide components 160 for assisting in guiding materials to the lower end of the blanking shell 130 are provided on the inner side of the several groups of support columns 170. The guide components 160 can be used to assist in guiding materials to the lower end of the blanking shell 130.
[0028] A group of support bases 180 are provided at the lower ends of the groups of support columns 170 for supporting the lower ends of the groups of support columns 170 . The cross-sectional shape of the support base 180 when viewed from above is consistent with the cross-sectional shape of the outer support frame 120 when viewed from above.
[0029] The material guide component 160 includes a bottom shell 16a and a discharge port 16g. A group of material guide grooves 16b for introducing materials from the inside of the chip-type storage bin are provided at the upper rear end of the bottom shell 16a. The interior of the material guide grooves 16b is interconnected with the interior of the lower end inner discharge trough, and the material from the chip-type storage bin can be introduced by using the material guide grooves 16b.
[0030] A group of dividing chambers 16c for guiding several materials in batches are provided at the lower left end of the guide trough 16b. Several groups of dividing leaves 16d for separating and guiding the materials are provided inside the dividing chamber 16c. The materials can be separated and guided by using the dividing leaves 16d.
[0031] A group of rotary seats are provided on the inner side of several groups of material leaves 16d for driving the several groups of material leaves 16d to rotate. A group of connectors 16e are provided inside and on the upper end of the rotary seats for transmitting the power of the motor 16f. The connectors 16e and the rotary seats are fixed by several groups of bolts. A group of motors 16f are provided at the lower end of the rotary seats for driving the rotary seats and the connectors 16e to rotate.
[0032] See also Figure 1-Figure 4As the first embodiment of the present invention: In order to solve the problem that the material is difficult to discharge from the material pile inside the sheet-type storage bin, which will cause the material to be retained in the bin and make the material fluidity worse. This will not only affect production efficiency, but may also cause the material to become compacted and stuck in the bin, further exacerbating the problem of difficulty in unloading. First, the staff will connect and fix the present invention with the external sheet-type storage bin, and then let the material inside the external sheet-type storage bin enter the interior of several groups of guide plates 110. Since each group of guide plates 110 is provided with a group of internal unloading troughs for unloading the material on the inside, the several groups of internal unloading troughs can guide the material from top to bottom. Then, when the material enters the lowermost internal unloading trough, it enters the guide trough 16b inside the guide component 160 through the lowermost internal unloading trough, thereby completing the sequential unloading operation.
[0033] See also Figure 1-Figure 4 , as the second embodiment of the present utility model: based on the description in the above embodiment, further, when the material enters the distribution chamber 16c through the material guide trough 16b, the staff starts the motor 16f, and the motor 16f drives the connecting head 16e and the rotary seat to rotate. Since the connecting head 16e and the rotary seat are fixed by several groups of bolts, the rotary seat drives several groups of distribution leaves 16d to rotate inside the distribution chamber 16c, and evenly distributes the material, and then discharges it from the discharge port 16g.
[0034] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A wear-resistant blanking cone for a sheet-type storage bin, comprising: An outer connecting shell (100), a material discharge shell (130), a lower connecting plate (140), a material guide component (160) and a supporting base (180), characterized in that a material discharge shell (130) for guiding the material inside the sheet-type storage bin is provided at the lower end of the outer connecting shell (100); The cross section of the material discharge shell (130) is a conical structure, and the material of the material discharge shell (130) is made of a stainless steel metal material. The inner side of the material discharge shell (130) is provided with a plurality of groups of material guide plates (110) for discharging materials in batches; A group of internal discharge troughs for discharging materials are provided on the inner side of each group of the material guide plates (110), and a group of external support frames (120) for supporting the lower end of the discharge shell (130) are provided on the outer side of the discharge shell (130), wherein the cross section of the external support frame (120) is an annular structure.
2. The wear-resistant blanking cone for a sheet-type storage bin according to claim 1, characterized in that: The lower end of the outer support frame (120) is provided with a plurality of groups of support columns (170) for supporting the lower end of the outer support frame (120), and the inner side of each group of support columns (170) is provided with a group of inner support frames (150) for supporting the outer side of the material guide component (160).
3. The wear-resistant blanking cone for a sheet-type storage bin according to claim 2, characterized in that: The cross-section of the plurality of support columns (170) is arranged in a ring structure when viewed from above. A group of material guiding components (160) for assisting in guiding the lower end of the blanking shell (130) is provided inside the plurality of support columns (170).
4. The wear-resistant blanking cone for a sheet-type storage bin according to claim 3, characterized in that: A group of support bases (180) for supporting the lower ends of the groups of support columns (170) are provided at the lower ends of the groups of support columns (170), and the cross-sectional shape of the support base (180) when viewed from above is consistent with the cross-sectional shape of the outer support frame (120) when viewed from above.
5. The wear-resistant blanking cone for a sheet-type storage bin according to claim 3, characterized in that: The material guide component (160) includes a bottom shell (16a) and a discharge port (16g). A group of material guide grooves (16b) for introducing materials inside the sheet storage bin are provided at the upper rear end of the bottom shell (16a). The interior of the material guide groove (16b) is communicated with the interior of the lowermost inner discharge groove.
6. The wear-resistant blanking cone for a sheet-type storage bin according to claim 5, characterized in that: A group of dividing chambers (16c) for guiding a plurality of materials in batches is provided at the lower left end of the guide trough (16b), and a plurality of groups of dividing blades (16d) for dividing and guiding the materials are provided inside the dividing chamber (16c).
7. The wear-resistant blanking cone for a sheet-type storage bin according to claim 6, characterized in that: A group of rotating seats for driving the group of material blades (16d) to rotate are provided on the inner side of the plurality of groups of material blades (16d), a group of connecting heads (16e) for transmitting the power of the motor (16f) are provided inside and on the upper end of the rotating seats, the connecting heads (16e) and the rotating seats are fixed by a plurality of groups of bolts, and a group of motors (16f) for driving the rotating seats and the connecting heads (16e) to rotate are provided at the lower end of the rotating seats.