CN223060178U - Feeding mechanism for PVDF heat preservation shell production - Google Patents

Feeding mechanism for PVDF heat preservation shell production Download PDF

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Publication number
CN223060178U
CN223060178U CN202421856562.1U CN202421856562U CN223060178U CN 223060178 U CN223060178 U CN 223060178U CN 202421856562 U CN202421856562 U CN 202421856562U CN 223060178 U CN223060178 U CN 223060178U
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feeding
fixedly connected
transmission
column
supporting
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CN202421856562.1U
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邹元杰
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Shanghai Sylolink Material Technology Co ltd
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Shanghai Sylolink Material Technology Co ltd
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Abstract

The utility model discloses a feeding mechanism for PVDF heat preservation shell production, which comprises processing equipment and a feeding hopper, wherein a feeding pipeline is arranged at the rear side of the feeding hopper, a feeding device is arranged in an inner cavity of the feeding pipeline, a feeding box is arranged at one side, far away from the processing equipment, of the feeding pipeline, a material turning device is arranged at the bottom of the feeding box, a supporting component is arranged at the bottom of the feeding box, two limiting plates are arranged in the inner cavity of the feeding box, a fixing plate is arranged at the bottom of the rear side of the processing equipment, and a first supporting plate and a second supporting plate are respectively arranged at the top of the fixing plate. According to the utility model, through the matched use of the feeding box, the feeding pipeline, the supporting component, the feeding device and the turning device, the problems that the existing processing equipment does not have the function of automatically turning materials during feeding, the materials possibly form blocks due to mutual adhesion among particles, so that bridging phenomenon is formed in a hopper, and the flowing and smooth feeding of the materials are affected are solved.

Description

Feeding mechanism for PVDF heat preservation shell production
Technical Field
The utility model belongs to the technical field of PVDF heat preservation shell production, and particularly relates to a feeding mechanism for PVDF heat preservation shell production.
Background
The PVDF heat-insulating shell production equipment is an efficient machine specially used for producing polyvinylidene fluoride PVDF heat-insulating material shells, integrates advanced automation technology, can ensure uniform plasticization and molding of PVDF materials through accurate temperature control and pressure regulation, generally comprises an extruder, a die, a cooling system and a cutting and collecting device, aims to realize continuous and efficient production process, improves production efficiency, ensures consistency and quality of products, is widely applied to heat-insulating requirements in the fields of construction, pipelines, solar energy and the like, and has the problems that the prior processing equipment does not have the function of automatically turning materials during feeding, and the materials possibly form blocks due to mutual adhesion among particles, so that bridging phenomenon is formed in a hopper, and the flow and smooth feeding of the materials are affected.
Disclosure of utility model
Aiming at the problems in the prior art, the utility model provides a feeding mechanism for PVDF heat insulation shell production, which has the advantages of feeding materials and turning the materials at the same time, and solves the problems that the existing processing equipment does not have the function of automatically turning the materials during feeding, and the materials possibly form blocks due to the mutual adhesion among particles, so that bridging phenomenon is formed in a hopper, and the flow and smooth feeding of the materials are affected.
The utility model discloses a feeding mechanism for PVDF heat-insulating shell production, which comprises processing equipment and a feeding hopper and is characterized in that a feeding pipeline is arranged at the rear side of the feeding hopper, a feeding device is arranged in an inner cavity of the feeding pipeline, a feeding box is arranged at one side of the feeding pipeline far away from the processing equipment, a stirring device matched with the feeding device is arranged at the bottom of the feeding box, supporting components matched with the stirring device are arranged at four corners of the bottom of the feeding box, two limiting plates matched with the stirring device are arranged at the top of the inner cavity of the feeding box, a fixed plate matched with the feeding device is arranged at the bottom of the rear side of the processing equipment, and two first supporting plates and two second supporting plates are respectively arranged at the left side and the right side of the top of the fixed plate.
As the preferable mode of the utility model, one side of the feeding pipeline close to the processing equipment is fixedly connected with the processing equipment, one side of the feeding box close to the feeding pipeline is fixedly connected with the feeding pipeline, the front side and the rear side of the limiting plate are fixedly connected with the inner wall of the feeding box, one side of the fixing plate close to the processing equipment is fixedly connected with the processing equipment, the bottoms of the first supporting plate and the second supporting plate are fixedly connected with the fixing plate, the top of one side of the first supporting plate close to the feeding pipeline is fixedly connected with the feeding pipeline, and the top of one side of the second supporting plate close to the feeding box is fixedly connected with the feeding box.
As the preferable mode of the utility model, the feeding device comprises a driving motor, the output end of the driving motor is fixedly connected with a first transmission gear, the top of the first transmission gear is provided with a transmission rod, and the surface of the transmission rod is sleeved with a feeding helical blade.
As the preferable mode of the utility model, the turning device comprises a transmission gear ring, a limit groove is formed in the bottom of the transmission gear ring, four second transmission gears are uniformly distributed in the inner cavity of the transmission gear ring, a transmission column is arranged at the top of each second transmission gear, and a turning piece is sleeved on the surface of each transmission column.
Preferably, the support assembly comprises a first support column, a connecting plate is arranged at the bottom of the first support column, and a second support column is arranged at one side, far away from the first support column, of the top of the connecting plate.
As the preferable mode of the utility model, the bottom of the driving motor is fixedly connected with the fixed plate, the bottom of the transmission rod is fixedly connected with the first transmission gear, the top of the transmission rod penetrates through the feeding pipeline and extends to the inner cavity of the feeding pipeline to be rotationally connected with the inner wall of the feeding pipeline through the rotating shaft, and the feeding spiral blade is fixedly connected with the transmission rod.
As the preferable mode of the utility model, the transmission toothed ring is meshed with the first transmission gear, the second transmission gear is meshed with the transmission toothed ring, the bottom of the transmission column is fixedly connected with the second transmission gear, the top of the transmission column penetrates through the feeding box and extends to the inner cavity of the feeding box to be rotationally connected with the limiting plate through the rotating shaft, and the turning piece is fixedly connected with the transmission column.
As the preferable mode of the utility model, the top of the first support column is fixedly connected with the feeding box, one side, close to the first support column, of the top of the connecting plate is fixedly connected with the first support column, the bottom of the second support column is fixedly connected with the connecting plate, and the top of the second support column penetrates through the limit groove and extends to the inner cavity of the limit groove to be in contact with the inner wall of the limit groove.
Compared with the prior art, the utility model has the following beneficial effects:
1. According to the utility model, through the matched use of the feeding box, the feeding pipeline, the supporting component, the feeding device and the turning device, the problems that the existing processing equipment does not have the function of automatically turning materials during feeding, the materials possibly form blocks due to mutual adhesion among particles, so that bridging phenomenon is formed in a hopper, and the flowing and smooth feeding of the materials are affected are solved.
2. According to the utility model, the feeding hopper can be fed by arranging the feeding box, the materials can be accommodated by arranging the limiting plate, the driving column can be limited by arranging the fixing plate, the first supporting plate and the second supporting plate, and the feeding box and the feeding pipeline can be fixed.
3. According to the utility model, the feeding device is arranged, so that the feeding effect on materials can be realized, and the use of the materials by a user is facilitated.
4. According to the utility model, the material can be turned by arranging the turning device, so that the material can be conveniently used by a user.
5. According to the utility model, the support assembly is arranged, so that the support function of the material turning device can be realized, and the material turning device is convenient for a user to use.
6. According to the utility model, the driving motor is arranged, so that the first transmission gear can be driven to rotate, the transmission rod and the transmission toothed ring can be driven to rotate by arranging the first transmission gear, the spiral blade can be driven to rotate by arranging the transmission rod, and the material can be fed by arranging the spiral blade.
7. According to the utility model, the second transmission gear can be driven to rotate by arranging the transmission toothed ring, the transmission column can be driven to rotate by arranging the second transmission gear, the turning piece can be driven to rotate by arranging the transmission column, and the material can be turned by arranging the turning piece.
8. According to the utility model, the first support column is arranged to support the connecting plate, the connecting plate is arranged to support the second support column, and the second support column and the limiting groove are arranged to support and limit the transmission toothed ring.
Drawings
FIG. 1 is a schematic view of an overall perspective structure provided by an embodiment of the present utility model;
FIG. 2 is a schematic view of a partial perspective structure according to an embodiment of the present utility model;
FIG. 3 is an enlarged perspective view of FIG. 2A according to an embodiment of the present utility model;
fig. 4 is a schematic diagram of a three-dimensional structure of a feeding device according to an embodiment of the present utility model;
fig. 5 is a schematic perspective view of a turning device according to an embodiment of the present utility model;
Fig. 6 is a schematic perspective view of a support assembly according to an embodiment of the present utility model.
The device comprises a processing device 1, a feeding hopper 2, a feeding pipeline 3, a feeding device 4, a feeding box 5, a feeding box 6, a turning device 7, a supporting component 8, a limiting plate 9, a fixing plate 10, a first supporting plate 11, a second supporting plate 401, a driving motor 402, a first transmission gear 403, a transmission rod 404, a feeding helical blade 601, a transmission toothed ring 602, a limiting groove 603, a second transmission gear 604, a transmission column 605, a turning piece 701, a first supporting column 702, a connecting plate 703 and a second supporting column.
Detailed Description
For a further understanding of the utility model, its features and advantages, reference is now made to the following examples, which are illustrated in the accompanying drawings.
The structure of the present utility model will be described in detail with reference to the accompanying drawings.
As shown in fig. 1 to 6, the feeding mechanism for producing the PVDF insulation can provided by the embodiment of the utility model comprises processing equipment 1 and a feeding hopper 2 and is characterized in that a feeding pipeline 3 is arranged at the rear side of the feeding hopper 2, a feeding device 4 is arranged in an inner cavity of the feeding pipeline 3, a feeding box 5 is arranged at one side of the feeding pipeline 3 far away from the processing equipment 1, a stirring device 6 matched with the feeding device 4 is arranged at the bottom of the feeding box 5, supporting components 7 matched with the stirring device 6 are arranged at four corners of the bottom of the feeding box 5, two limiting plates 8 matched with the stirring device 6 are arranged at the top of the inner cavity of the feeding box 5, a fixed plate 9 matched with the feeding device 3 is arranged at the bottom of the rear side of the processing equipment 1, and two first supporting plates 10 and two second supporting plates 11 are respectively arranged at the left side and the right side of the top of the fixed plate 9.
Referring to fig. 1 to 6, one side of the feeding pipe 3 near the processing apparatus 1 is fixedly connected with the processing apparatus 1, one side of the feeding box 4 near the feeding pipe 3 is fixedly connected with the feeding pipe 3, the front side and the rear side of the limiting plate 8 are fixedly connected with the inner wall of the feeding box 4, one side of the fixing plate 9 near the processing apparatus 1 is fixedly connected with the processing apparatus 1, the bottoms of the first supporting plate 10 and the second supporting plate 11 are fixedly connected with the fixing plate 9, the top of one side of the first supporting plate 10 near the feeding pipe 3 is fixedly connected with the feeding pipe 3, and the top of one side of the second supporting plate 11 near the feeding box 4 is fixedly connected with the feeding box 4.
By adopting the scheme, the feeding hopper can be fed through the feeding pipeline 3, the materials can be accommodated through the feeding box 4, the driving column 604 can be limited through the limiting plate 8, and the feeding box and the feeding pipeline can be fixed through the fixing plate 9, the first supporting plate 10 and the second supporting plate 11.
Referring to fig. 1 to 6, the feeding device 4 comprises a driving motor 401, wherein the output end of the driving motor 401 is fixedly connected with a first transmission gear 402, a transmission rod 403 is arranged at the top of the first transmission gear 402, and a feeding helical blade 404 is sleeved on the surface of the transmission rod 403.
By adopting the scheme, the feeding device 4 is arranged, so that the feeding effect on materials can be achieved, and the use of the materials by a user is facilitated.
Referring to fig. 1 to 6, the turning device 6 comprises a transmission toothed ring 601, a limiting groove 602 is formed in the bottom of the transmission toothed ring 601, four second transmission gears 603 are uniformly distributed in the inner cavity of the transmission toothed ring 601, a transmission column 604 is arranged at the top of each second transmission gear 603, and a turning piece 605 is sleeved on the surface of each transmission column 604.
By adopting the scheme, the material can be turned by arranging the turning device 6, so that the material can be conveniently used by a user.
Referring to fig. 1 to 6, the support assembly 7 includes a first support column 701, a connection plate 702 is provided at the bottom of the first support column 701, and a second support column 703 is provided at the top of the connection plate 702 at a side remote from the first support column 701.
By adopting the scheme, the support assembly 7 can play a role in supporting the stirring device 6, so that a user can conveniently use the stirring device 6.
Referring to fig. 1 to 6, the bottom of the driving motor 401 is fixedly connected with the fixing plate 9, the bottom of the driving rod 403 is fixedly connected with the first driving gear 402, the top of the driving rod 403 penetrates the feeding pipeline 3 and extends to the inner cavity of the feeding pipeline 3 to be rotationally connected with the inner wall of the feeding pipeline 3 through a rotating shaft, and the feeding spiral blade 404 is fixedly connected with the driving rod 403.
By adopting the scheme, the driving motor 401 is arranged, the first transmission gear 402 can be driven to rotate, the transmission rod 403 and the transmission gear ring 601 can be driven to rotate by arranging the first transmission gear 402, the spiral blade can be driven to rotate by arranging the transmission rod 403, and the material can be fed by arranging the spiral blade.
Referring to fig. 1 to 6, a transmission toothed ring 601 is meshed with a first transmission gear 402, a second transmission gear 603 is meshed with the transmission toothed ring 601, the bottom of a transmission column 604 is fixedly connected with the second transmission gear 603, the top of the transmission column 604 penetrates through a feeding box 4 and extends to the inner cavity of the feeding box 4 to be rotationally connected with a limiting plate 8 through a rotating shaft, and a material turning piece 605 is fixedly connected with the transmission column 604.
By adopting the scheme, the second transmission gear 603 can be driven to rotate by arranging the transmission toothed ring 601, the transmission column 604 can be driven to rotate by arranging the second transmission gear 603, the turning piece 605 can be driven to rotate by arranging the transmission column 604, and the material can be turned by arranging the turning piece 605.
Referring to fig. 1 to 6, the top of the first support column 701 is fixedly connected with the feeding box 4, one side of the top of the connecting plate 702, which is close to the first support column 701, is fixedly connected with the first support column 701, the bottom of the second support column 703 is fixedly connected with the connecting plate 702, and the top of the second support column 703 passes through the limiting groove 602 and extends to the inner cavity of the limiting groove 602 to contact with the inner wall of the limiting groove 602.
By adopting the scheme, the connecting plate 702 can be supported by arranging the first supporting columns 701, the second supporting columns 703 can be supported by arranging the connecting plate 702, and the driving toothed ring 601 can be supported and limited by arranging the second supporting columns 703 and the limiting grooves 602.
The working principle of the utility model is as follows:
When the feeding box is used, the driving motor 401 is started, materials are placed in the inner cavity of the feeding box 4, the driving motor 401 drives the first transmission gear 402 and the transmission rod 403 to synchronously rotate, meanwhile, the first transmission gear 402 drives the transmission toothed ring 601 to rotate on the surface of the second support column 703, the transmission rod 403 drives the spiral blade to rotate, the materials in the feeding box 4 enter the feeding hopper 2 through the feeding pipeline 3, meanwhile, the transmission toothed ring 601 drives the second transmission gear 603 to rotate, and the second transmission gear 603 drives the transmission column 604 and the turning piece 605 to synchronously rotate, so that the turning piece 605 turns the materials in the inner cavity of the feeding box 4, and the work is completed.
In summary, the feeding mechanism for PVDF insulation can production solves the problems that the existing processing equipment does not have the function of automatically turning materials during feeding by arranging the feeding box 4, the feeding pipeline 3, the supporting component 6, the feeding device 3 and the turning device 6 for matching use, and the materials possibly form blocks due to mutual adhesion among particles, so that bridging phenomenon is formed in a hopper, and the flowing and smooth feeding of the materials are affected.
It is noted that relational terms such as first and second, and the like are used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus.
Although embodiments of the present utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the utility model, the scope of which is defined in the appended claims and their equivalents.

Claims (8)

1. The feeding mechanism for PVDF heat preservation shell production comprises processing equipment (1) and a feeding hopper (2), and is characterized in that a feeding pipeline (3) is arranged on the rear side of the feeding hopper (2), a feeding device (4) is arranged in an inner cavity of the feeding pipeline (3), a feeding box (5) is arranged on one side, away from the processing equipment (1), of the feeding pipeline (3), a material turning device (6) matched with the feeding device (4) for use is arranged on the bottom of the feeding box (5), supporting components (7) matched with the material turning device (6) for use are arranged at four corners of the bottom of the feeding box (5), two limiting plates (8) matched with the material turning device (6) for use are arranged on the top of the inner cavity of the feeding box (5), a fixing plate (9) matched with the feeding device (4) for use is arranged on the bottom of the rear side of the processing equipment (1), and two first supporting plates (10) and two second supporting plates (11) are respectively arranged on the left side and the right side of the top of the fixing plate (9).
2. The PVDF heat preservation shell production feed mechanism of claim 1, wherein one side of the feeding pipeline (3) close to the processing equipment (1) is fixedly connected with the processing equipment (1), one side of the feeding box (5) close to the feeding pipeline (3) is fixedly connected with the feeding pipeline (3), the front side and the rear side of the limiting plate (8) are fixedly connected with the inner wall of the feeding box (5), one side of the fixing plate (9) close to the processing equipment (1) is fixedly connected with the processing equipment (1), the bottoms of the first supporting plate (10) and the second supporting plate (11) are fixedly connected with the fixing plate (9), the top of one side of the first supporting plate (10) close to the feeding pipeline (3) is fixedly connected with the feeding pipeline (3), and the top of one side of the second supporting plate (11) close to the feeding box (5) is fixedly connected with the feeding box (5).
3. The feeding mechanism for PVDF thermal insulation shell production according to claim 1, wherein the feeding device (4) comprises a driving motor (401), the output end of the driving motor (401) is fixedly connected with a first transmission gear (402), a transmission rod (403) is arranged at the top of the first transmission gear (402), and a feeding helical blade (404) is sleeved on the surface of the transmission rod (403).
4. The feeding mechanism for PVDF thermal insulation shell production according to claim 1, wherein the stirring device (6) comprises a transmission toothed ring (601), limiting grooves (602) are formed in the bottom of the transmission toothed ring (601), four second transmission gears (603) are uniformly distributed in the inner cavity of the transmission toothed ring (601), a transmission column (604) is arranged at the top of each second transmission gear (603), and stirring pieces (605) are sleeved on the surface of each transmission column (604).
5. The feeding mechanism for PVDF thermal insulation shell production according to claim 1, wherein the supporting component (7) comprises a first supporting column (701), a connecting plate (702) is arranged at the bottom of the first supporting column (701), and a second supporting column (703) is arranged at one side, far away from the first supporting column (701), of the top of the connecting plate (702).
6. The feeding mechanism for PVDF thermal insulation shell production according to claim 3, wherein the bottom of the driving motor (401) is fixedly connected with the fixed plate (9), the bottom of the transmission rod (403) is fixedly connected with the first transmission gear (402), the top of the transmission rod (403) penetrates through the feeding pipeline (3) and extends to the inner cavity of the feeding pipeline (3) to be rotatably connected with the inner wall of the feeding pipeline (3) through a rotating shaft, and the feeding helical blade (404) is fixedly connected with the transmission rod (403).
7. The feeding mechanism for PVDF thermal insulation shell production according to claim 4, wherein the transmission toothed ring (601) is meshed with the first transmission gear (402), the second transmission gear (603) is meshed with the transmission toothed ring (601), the bottom of the transmission column (604) is fixedly connected with the second transmission gear (603), the top of the transmission column (604) penetrates through the feeding box (5) and extends to the inner cavity of the feeding box (5) to be rotationally connected with the limiting plate (8) through a rotating shaft, and the turning piece (605) is fixedly connected with the transmission column (604).
8. The feeding mechanism for PVDF thermal insulation shell production according to claim 5, wherein the top of the first support column (701) is fixedly connected with the feeding box (5), one side, close to the first support column (701), of the top of the connecting plate (702) is fixedly connected with the first support column (701), the bottom of the second support column (703) is fixedly connected with the connecting plate (702), and the top of the second support column (703) penetrates through the limiting groove (602) and extends to the inner cavity of the limiting groove (602) to be in contact with the inner wall of the limiting groove (602).
CN202421856562.1U 2024-08-02 2024-08-02 Feeding mechanism for PVDF heat preservation shell production Active CN223060178U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202421856562.1U CN223060178U (en) 2024-08-02 2024-08-02 Feeding mechanism for PVDF heat preservation shell production

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202421856562.1U CN223060178U (en) 2024-08-02 2024-08-02 Feeding mechanism for PVDF heat preservation shell production

Publications (1)

Publication Number Publication Date
CN223060178U true CN223060178U (en) 2025-07-04

Family

ID=96210572

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202421856562.1U Active CN223060178U (en) 2024-08-02 2024-08-02 Feeding mechanism for PVDF heat preservation shell production

Country Status (1)

Country Link
CN (1) CN223060178U (en)

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