PE film production compounding device
Technical Field
The utility model belongs to the technical field of PE film production, and particularly relates to a PE film production mixing device.
Background
PE film is widely used in agriculture, packaging, construction and other fields due to its good transparency, flexibility, water resistance and chemical stability. In the PE film processing production process, raw materials and various additives are required to be mixed and then processed, and a PE film production mixing device is required during mixing. The existing PE film production mixing device mainly comprises a stirring barrel, a stirring system and the like, raw materials are poured into the stirring barrel, power is provided by a motor in the stirring system, and a stirring shaft is driven to rotate at a high speed through a belt or a coupling. The stirring blade is arranged on the stirring shaft, the common shapes include a paddle type, an anchor type, a turbine type and the like, and the blades in different shapes are suitable for different material characteristics to mix and stir the raw materials.
The utility model relates to the technical field of PE film production and discloses a mixing device for PE film production, which comprises a stirring barrel, a discharging pipe and a feeding hopper which are respectively communicated with the bottom and the top of the stirring barrel, wherein a fixed ring is fixed on the surface of the stirring barrel, a bottom plate is arranged below the stirring barrel, the top of the bottom plate is fixed between a plurality of support columns and the fixed ring, a first motor is arranged in the middle position of the top of the stirring barrel, a rotating rod is bolted to an output shaft of the first motor, and a packing auger is fixed at the bottom end of the rotating rod.
Based on the above, most of the existing PE film production mixing devices are used for directly conveying and adding raw materials into the device for mixing, and the input raw materials often show uneven particle sizes. The larger raw material particles can interfere the uniformity of mixing in the mixing process, so that a certain gap exists between the homogeneous states of the final mixed products, and meanwhile, the mixing efficiency can be reduced, the production period can be prolonged, and the production cost can be increased. In the subsequent heating plasticizing process, the sizes of the raw material particles are uneven, and the heat absorbed by different particles is different, so that the plasticizing degree is inconvenient and the consistency is well maintained.
Disclosure of utility model
In order to solve the technical problems, the utility model provides a PE film production mixing device, which aims to solve the problems that most of the existing PE film production mixing devices directly convey and add raw materials into the device for mixing, and the input raw materials often show uneven particle sizes. The larger raw material particles can interfere the uniformity of mixing in the mixing process, so that a certain gap exists between the homogeneous states of the final mixed products, and meanwhile, the mixing efficiency can be reduced, the production period can be prolonged, and the production cost can be increased. In the subsequent heating plasticizing process, the sizes of the raw material particles are uneven, and the heat absorbed by different particles is different, so that the plasticizing degree is inconvenient and the consistency is well maintained.
The utility model discloses a PE film production mixing device, which is characterized by comprising the following specific technical means:
The PE film production mixing device comprises a mixer main body, a feeding hole, a separator, a driving motor, a perforated separation plate, a separation assembly and a brushing assembly, wherein the feeding hole is fixedly arranged at the top of the mixer main body, the separator is fixedly arranged in the middle of the feeding hole, the driving motor is connected to the front side of the separator through bolts, the perforated separation plate is horizontally and slidingly connected inside the separator, the separation assembly is arranged inside the separator, and the brushing assembly is arranged inside the separator.
The separating assembly comprises a first rotating shaft, a second rotating shaft and a second synchronous belt mechanism, wherein the first rotating shaft is rotatably connected inside the separator, one end of the first rotating shaft is fixedly arranged inside the driving motor, the second rotating shaft is rotatably connected to the front side inside the separator, and the second synchronous belt mechanism is arranged outside the first rotating shaft and the second rotating shaft.
The separating assembly further comprises a transmission cam, a transmission rod and a driving rod, wherein the transmission cam is fixedly arranged at one end of the second rotating shaft, one end of the transmission rod is hinged to one side of the transmission cam, the driving rod is horizontally and slidingly connected in the separator, one end of the driving rod is fixedly arranged on one side of the separating plate with the hole, and the other end of the driving rod is hinged to one end of the transmission rod.
Further, the brushing assembly comprises a first synchronous belt mechanism and transmission brushes, wherein the first synchronous belt mechanism is arranged in the mixer body, the first synchronous belt mechanism is arranged on the outer side of a first rotating shaft, the transmission brushes are provided with a plurality of groups, and the plurality of groups of transmission brushes are equidistantly arranged on the outer side of the first synchronous belt mechanism.
The brushing assembly further comprises a guide groove and guide posts, wherein the guide groove is formed in two sides of the inside of the separator, the guide posts are provided with a plurality of groups, the guide posts are fixedly connected to two sides of the plurality of groups of transmission brushes, and the guide posts are slidably connected in the guide groove.
Further, the brushing assembly further comprises a blanking groove which is arranged on one side of the inside of the separator.
Compared with the prior art, the utility model has the following beneficial effects:
Firstly, the PE raw material separating device is provided with the separating assembly, PE raw materials are added into the mixer main body through the feeding hole, the PE raw materials pass through the perforated separating plate when passing through the separator, the PE raw materials with larger particles are intercepted by the perforated separating plate, PE raw materials meeting the mixing condition fall into the mixer main body through small holes formed in the perforated separating plate to be mixed, the larger particles in the PE raw materials are effectively separated, and the driving motor is electrified to enable the first rotating shaft to rotate, so that the driving rod is enabled to slide back and forth to drive the perforated separating plate to slide back and forth to generate vibration, and the PE raw material separating efficiency at the upper part of the perforated separating plate is greatly improved.
And secondly, the utility model is provided with a brushing component, the first rotating shaft is driven to rotate by the driving motor, and the first synchronous belt mechanism is driven to rotate at the same time, so that the first synchronous belt mechanism drives the plurality of groups of transmission brushes to rotate reciprocally, the large-particle PE raw materials intercepted by the upper part of the perforated separating plate are brushed, the large-particle PE raw materials are brushed to the position of the blanking groove and then discharged, and the large-particle PE raw materials are effectively brushed and stored, thereby facilitating the subsequent processing.
The utility model has the advantages of large particle interception, quick separation, brushing and storage and the like, effectively separates larger particles in PE raw materials, greatly improves the PE raw material separation efficiency at the upper part of the separating plate with holes, brushes and stores the large particle PE raw materials, and is convenient for subsequent processing.
Drawings
Fig. 1 is a schematic diagram of the main structure of the present utility model.
Fig. 2 is a schematic view of the separator structure of the present utility model.
Fig. 3 is a schematic view of a first rotating shaft structure of the present utility model.
Fig. 4 is a schematic view of a perforated separator plate structure of the present utility model.
Fig. 5 is a schematic view of the structure of the driven brush of the present utility model.
In the figure, the correspondence between the component names and the drawing numbers is:
1. The mixer comprises a mixer main body, a feeding hole, a separator, a discharging groove, a guide groove, a first rotating shaft, a first synchronous belt mechanism, a transmission brush, a guide post, a second synchronous belt mechanism, a second rotating shaft, a transmission cam, a driving motor, a perforated separating plate, a driving rod and a driving rod, wherein the driving motor comprises a mixer main body, a feeding hole, a separator, a discharging groove, a guide groove, a driving shaft, a driving brush, a guide post, a driving rod, a second synchronous belt mechanism, a driving cam, a driving motor, a driving shaft, a driving motor, a perforated separating plate, a driving rod and a driving rod.
Detailed Description
Embodiments of the present utility model are described in further detail below with reference to the accompanying drawings and examples. The following examples are illustrative of the utility model but are not intended to limit the scope of the utility model.
Embodiment one:
As shown in fig. 1 to 5:
The utility model provides a PE film production mixing device which comprises a mixer main body 1, a feed inlet 2, a separator 3, a driving motor 4, a perforated separation plate 5 and a separation assembly, wherein the feed inlet 2 is fixedly arranged at the top of the mixer main body 1, the separator 3 is fixedly arranged in the middle of the feed inlet 2, the driving motor 4 is connected to the front side of the separator 3 through bolts, the perforated separation plate 5 is horizontally and slidably connected inside the separator 3, and the separation assembly is arranged inside the separator 3.
The separation assembly comprises a first rotating shaft 303, a second rotating shaft 308 and a second synchronous belt mechanism 307, wherein the first rotating shaft 303 is rotatably connected inside the separator 3, one end of the first rotating shaft 303 is fixedly arranged inside the driving motor 4, the second rotating shaft 308 is rotatably connected to the front side inside the separator 3, and the second synchronous belt mechanism 307 is arranged outside the first rotating shaft 303 and the second rotating shaft 308.
The separating assembly further comprises a transmission cam 309, a transmission rod 310 and a driving rod 311, wherein the transmission cam 309 is fixedly arranged at one end of the second rotating shaft 308, one end of the transmission rod 310 is hinged to one side of the transmission cam 309, the driving rod 311 is horizontally and slidingly connected in the separator 3, one end of the driving rod 311 is fixedly arranged at one side of the separating plate 5 with holes, and the other end of the driving rod 311 is hinged to one end of the transmission rod 310.
Specific use and action of the embodiment:
When raw materials need to be added into the mixer body 1 for mixing operation, PE raw materials are added into the mixer body 1 from the feed inlet 2, PE raw materials are intercepted by the perforated separation plate 5 in the separator 3 in the falling process, PE raw materials with larger particles are intercepted by the perforated separation plate 5, and PE raw materials meeting mixing conditions fall into the mixer body 1 through small holes formed in the perforated separation plate 5 for mixing operation.
Meanwhile, the driving motor 4 is electrified to drive the first rotating shaft 303 to rotate, the first rotating shaft 303 rotates to drive the second rotating shaft 308 to rotate through the second synchronous belt mechanism 307, the second rotating shaft 308 rotates to drive the transmission cam 309 to rotate, the transmission cam 309 rotates to drive the transmission rod 310 to swing, the transmission rod 310 swings to drive the driving rod 311 to slide reciprocally in the separator 3, the driving rod 311 slides reciprocally to drive the perforated separation plate 5 to slide reciprocally to generate vibration, and PE raw material separation at the upper part of the perforated separation plate 5 is accelerated.
Embodiment two:
On the basis of the first embodiment, as shown in fig. 1 to 5, the device also comprises a brushing assembly which is arranged inside the separator 3
The brushing assembly comprises a first synchronous belt mechanism 304 and a transmission brush 305, wherein the first synchronous belt mechanism 304 is arranged in the mixer body 1, the first synchronous belt mechanism 304 is arranged outside the first rotating shaft 303, the transmission brush 305 is provided with a plurality of groups, and the plurality of groups of transmission brushes 305 are equidistantly arranged outside the first synchronous belt mechanism 304.
The brushing assembly further comprises a guide groove 302 and guide columns 306, wherein the guide groove 302 is formed in two sides of the interior of the separator 3, a plurality of groups of guide columns 306 are arranged, the guide columns 306 are fixedly connected to two sides of the plurality of groups of transmission brushes 305, and the guide columns 306 are slidably connected to the interior of the guide groove 302.
The brushing assembly further comprises a discharging groove 301, wherein the discharging groove 301 is arranged on one side inside the separator 3.
Specific use and action of the embodiment:
PE raw materials are added into the mixer main body 1 from the feed inlet 2, PE raw materials with larger particles are intercepted by a perforated separation plate 5 in the separator 3 in the falling process, a driving motor 4 is electrified to drive a first rotating shaft 303 to rotate, the first rotating shaft 303 rotates to drive a first synchronous belt mechanism 304 to rotate in the separator 3, the first synchronous belt mechanism 304 drives a plurality of groups of transmission brushes 305 to reciprocate, large-particle PE raw materials intercepted by the upper part of the perforated separation plate 5 are brushed, the large-particle PE raw materials are discharged after being brushed to the position of a blanking groove 301, and the large-particle PE raw materials can be reworked after being collected in a mode of connecting a cloth bag, an aggregate box and the like in the blanking groove 301. The driving brush 305 drives the guide post 306 to slide inside the guide groove 302 when moving, and the guide post 306 and the guide groove 302 play a guiding role when the driving brush 305 moves.
In this context, the following points need to be noted:
1. The drawings of the embodiments of the present disclosure relate only to the structures related to the embodiments of the present disclosure, and reference may be made to the general design for other structures.
2. The embodiments of the present disclosure and features in the embodiments may be combined with each other to arrive at a new embodiment without conflict.
The foregoing is merely a specific embodiment of the disclosure, but the protection scope of the disclosure is not limited thereto, and any person skilled in the art can easily think about changes or substitutions within the technical scope of the disclosure, and it should be covered in the protection scope of the disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims.