Plastic uptake raw material mixing machine
By adopting a rotating cylinder and feeding trough structure in the blister raw material mixer, the problem of poor stirring effect caused by uneven raw material accumulation is solved, and uniform addition and efficient mixing of raw materials are achieved.
Patent Information
- Application Number
- CN202520642905.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2035-04-08
AI Technical Summary
During the mixing process, the existing blister raw material mixers have poor stirring effect due to uneven raw materials accumulation during the mixing process, which affects the mixing efficiency.
A blister raw material mixer is designed, adopting a rotating cylinder and feeding tank structure. While driving the motor to drive the mixing assembly to mix raw materials, the cylinder and feeding tank drive different raw materials to be evenly added to the mixing machine to avoid the accumulation of the same raw materials.
Through this design, it is possible to achieve uniform addition of raw materials during the mixing process, improve the mixing efficiency of the stirring assembly, and ensure uniformity and efficient mixing of plastic raw materials.
Smart Images

Figure CN222875016U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of blister mixing, and in particular relates to a blister raw material mixer. Background Art
[0002] Blister raw materials are a kind of raw materials for plastic processing. As an environmentally friendly and degradable material, plastic has a wide range of application prospects. When producing plastic products, materials with different components need to be fully mixed to ensure the quality and performance of the product;
[0003] Therefore, it is necessary to evenly mix different plastic particles and additives to avoid bubbles in the plastic, improve the fluidity and melting temperature of the plastic solution, and make the plastic easier to process and shape. When mixing existing plastic particles and admixtures, usually all the required plastic particles are first put into the mixer, and then all the admixtures are poured on the plastic particles in the mixer and stirred together. In this way, the stirring effect of all the raw materials piled together is poor, so it needs to be improved. Utility Model Content
[0004] The purpose of the utility model is to provide a blister raw material mixer to solve the problems existing in the background technology.
[0005] In order to achieve the above technical purpose, the technical solution adopted by the utility model is as follows:
[0006] A blister raw material mixer comprises a mixing body, a driving motor is installed at the front end of the mixing body, an input end of the driving motor extends into the mixing body and a stirring assembly is installed therein, the mixing body is arranged as a cylinder, a feeding mechanism is evenly installed at the upper end of the mixing body, the feeding mechanism comprises a plurality of feeding boxes, a plurality of the feeding boxes are all equipped with a uniform feeding assembly, the uniform feeding assembly comprises a cylinder rotatably installed with the feeding box, the cylinder matches the lower end of the feeding box, a plurality of feeding grooves are provided on the circumference of the cylinder, a driving gear is installed at the front end of the cylinder, a transmission shaft is installed on the driving motor, the stirring assembly is installed on the circumference of the transmission shaft, a driving assembly connected to the driving gear is installed on the transmission shaft, an electromagnetic discharge valve is installed at the lower end of the mixing body, and a plurality of feed ports are installed at the upper end of the mixing body.
[0007] The driving assembly comprises a gear plate fixedly mounted on the transmission shaft, and the gear plate is respectively meshed with a plurality of driving gears.
[0008] The driving assembly includes a first gear plate and a second gear plate rotatably mounted with the mixing body, the thickness of the driving gear on the right side is greater than the thickness of the driving gear on the left side and the center, the first gear plate and the second gear plate are fixedly mounted with the transmission shaft, the first gear plate is meshed with the driving gear on the right side, an adjusting gear meshed with the driving gear on the left side and the center is rotatably mounted inside the mixing body, and the adjusting gear is meshed with the second gear plate.
[0009] An adjustment component matching the feeding trough is installed inside the cylinder, and the adjustment component includes a threaded column, a sliding groove is provided inside the feeding trough, and the sliding groove is slidably connected with an adjustment plate, and the adjustment plate is fixedly installed with a vertical plate facing the center of the cylinder, and a plurality of trapezoidal push blocks are fixedly installed on the vertical plate, and a matching groove matching the vertical plate is provided inside the cylinder, and a matching column rotatably installed with the threaded column is slidably connected inside the matching groove, and springs are fixedly installed at the lower ends of the outwardly extending parts on both sides of the trapezoidal push block, and the threaded column is threadedly connected to the mixing body.
[0010] The stirring assembly comprises a plurality of stirring plates fixedly mounted on the transmission shaft, and a plurality of through grooves are formed inside the stirring plates.
[0011] A mounting shaft penetrating the stirring plate is rotatably mounted inside the through groove, a mixing plate is fixedly mounted on the circumferential side of the mounting shaft, a first cavity is provided in the middle of the stirring plate and at the point where the mounting shaft penetrates, a second cavity is provided in the center of the transmission shaft and communicates with the first cavity, the first cavity abuts against the circumferential side of the mounting shaft, a plurality of push grooves are provided on the circumferential side of the mounting shaft, and the first cavity and the second cavity are both filled with a portion of the aqueous solution.
[0012] The utility model is provided with a rotating cylinder and a feeding trough, so that different raw materials can be evenly added into the mixing body during the process of the driving motor driving the stirring component to mix the blister raw materials, so as to avoid excessive accumulation of the same raw materials affecting the mixing, thereby improving the mixing efficiency of the stirring component. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The present invention can be further described by the non-limiting embodiments given in the accompanying drawings.
[0014] Figure 1 This is a structural schematic diagram of a blister raw material mixer of the utility model;
[0015] Figure 2 This is a schematic diagram of the first cross-sectional structure of a blister raw material mixer of the utility model;
[0016] Figure 3 This is a second cross-sectional structural schematic diagram of a blister raw material mixer of the utility model;
[0017] Figure 4This is a third cross-sectional structural schematic diagram of a blister raw material mixer of the utility model;
[0018] Figure 5 for Figure 4 A schematic diagram of the enlarged structure at A in the middle;
[0019] Figure 6 This is a schematic diagram of the first partial structure of a blister raw material mixer of the utility model;
[0020] Figure 7 This is a schematic diagram of the second partial structure of a blister raw material mixer of the utility model;
[0021] Figure 8 This is a fourth cross-sectional structural schematic diagram of a blister raw material mixer of the utility model;
[0022] Fig. 9 The utility model is a cylindrical cross-sectional structure schematic diagram of a blister raw material mixer.
[0023] The main component symbols are described as follows:
[0024] Mixing body 1, driving motor 11, feeding box 12, cylinder 13, driving gear 14, transmission shaft 15, feeding trough 16, electromagnetic discharge valve 17, gear plate 20, first gear plate 21, second gear plate 22, adjusting gear 23, threaded column 30, adjusting plate 31, vertical plate 32, trapezoidal push block 33, matching column 34, spring 35, stirring plate 36, through groove 37, mounting shaft 38, mixing plate 39, first cavity 40, second cavity 41, push groove 42. DETAILED DESCRIPTION
[0025] In order to enable those skilled in the art to better understand the present invention, the technical solution of the present invention is further described below in conjunction with the accompanying drawings and embodiments.
[0026] Example 1: Figure 1-9As shown, a blister raw material mixer of the utility model comprises a mixing body 1, a driving motor 11 is installed at the front end of the mixing body 1, the input end of the driving motor 11 extends into the mixing body 1 and is installed with a stirring assembly, the mixing body 1 is arranged as a cylinder, a feeding mechanism is evenly installed at the upper end of the mixing body 1, the feeding mechanism comprises a plurality of feeding boxes 12, and the plurality of feeding boxes 12 are all installed with a uniform feeding assembly, the uniform feeding assembly comprises a cylinder 13 rotatably installed with the feeding box 12, the cylinder 13 matches with the lower end of the feeding box 12, a plurality of feeding grooves 16 are provided on the circumference of the cylinder 13, a driving gear 14 is installed at the front end of the cylinder 13, a transmission shaft 15 is installed on the driving motor 11, the stirring assembly is installed on the circumference of the transmission shaft 15, a driving assembly connected to the driving gear 14 is installed on the transmission shaft 15, an electromagnetic discharge valve 17 is installed at the lower end of the mixing body 1, and a plurality of feed ports are installed at the upper end of the mixing body 1.
[0027] The mixing body 1 and the lower end of the feeding box 12 are jointly equipped with a support column. The openings of several feeding boxes 12 are higher than the feeding port, and the openings at the upper ends of the feeding boxes 12 are larger than the size of the cylinder 13, so that the raw materials entering the feeding boxes can move downward and be evenly transported by the feeding components. When in use, different kinds of raw materials or additives required for blistering are respectively put into different feeding boxes 12, and then the driving motor 11 is started to drive the transmission shaft 15 to rotate, and then the stirring component and the driving component are driven to work through the transmission shaft 15, and the driving component drives several driving gears 14 to rotate. When the driving gear 14 rotates, it will drive the cylinder 13 to rotate, and the feeding trough 16 is driven to rotate through the cylinder 13. Since the cylinder 13 and the feeding trough 16 are rotated, the cylinder 13 and the feeding trough 16 are rotated. The lower end of the feeding box 12 is matched, and the feeding trough 16 is upward and connected to the feeding box 12, so that the blister raw material particles can enter the feeding trough 16 and follow the rotation of the cylinder 13. The particles that have not entered the feeding trough 16 will be blocked by the side wall of the feeding box 12 to avoid following. In this way, the particles in the feeding trough 16 can be aligned with the feed port downward during rotation and can enter the mixing body 1 to be mixed by the stirring component. In this way, each time the material is added, only the amount in the space of the feeding trough 16 will be added, and there will be no unevenness. In this way, when the various raw material particles are evenly entered into the mixing body 1, they can better cooperate with the stirring component to complete the mixing. After the mixing is completed, the electromagnetic discharge valve 17 is opened to discharge them from it.
[0028] The utility model is provided with a rotating cylinder and a feeding trough, so that different raw materials can be evenly added into the mixing body during the process of the driving motor driving the stirring component to mix the blister raw materials, so as to avoid excessive accumulation of the same raw materials affecting the mixing, thereby improving the mixing efficiency of the stirring component.
[0029] The driving assembly includes a gear plate 20 fixedly mounted on the transmission shaft 15, and the gear plate 20 is respectively meshed with a plurality of driving gears 14. The driving motor 11 drives the transmission shaft 15 and the gear plate 20 to rotate, and the gear plate 20 drives the meshed driving gears 14 to rotate, so that the cylinder 13 and the feeding trough 16 can be driven to rotate to transfer the raw materials.
[0030] Embodiment 2: Further improvement is made on the basis of Embodiment 1, the driving assembly includes a first toothed disc 21 and a second toothed disc 22 rotatably mounted on the mixing body 1, the thickness dimension of the right driving gear 14 is greater than the thickness dimension of the left and central driving gears 14, the first toothed disc 21 and the second toothed disc 22 are both fixedly mounted on the transmission shaft 15, the first toothed disc 21 is meshed with the right driving gear 14, an adjusting gear 23 meshed with the left and central driving gears 14 is rotatably mounted inside the mixing body 1, and the adjusting gear 23 is meshed with the second toothed disc 22.
[0031] Since the left feeding box 12 is lower on the left and higher on the right, and the right feeding box 12 is lower on the right and higher on the left, when the cylinder 13 and the feeding trough 16 rotate in the same direction, the raw materials on one side will easily fall out of the feeding trough 16. For example, the cylinder 13 inside the left feeding box 12 rotates clockwise, that is, the feeding trough 16 rotates clockwise, so that the raw materials entering the feeding trough 16 are easy to slide out from the low position to the high position when rotating clockwise, thereby causing the amount inside the feeding trough 16 to be less than the normal amount, and when the left feeding trough 16 rotates counterclockwise, the raw materials at the lower position will fill the feeding trough 16;
[0032] Therefore, it is necessary to make the left driving gear 14 rotate counterclockwise and the right driving gear 14 rotate clockwise. When working, the transmission shaft 15 is started to rotate counterclockwise, driving the first gear plate 21 to rotate counterclockwise, and driving the right driving gear 14 meshing with the first gear plate 21 to rotate clockwise. Similarly, the second gear 22 rotates counterclockwise, which will drive the adjusting gear 23 meshing with it to rotate clockwise, and the adjusting gear 23 drives the left and central driving gears 14 to rotate counterclockwise.
[0033] An adjustment component matching the feeding trough 16 is installed inside the cylinder 13, and the adjustment component includes a threaded column 30. A slide groove is provided inside the feeding trough 16, and an adjustment plate 31 is slidably connected to the slide groove. The adjustment plate 31 is fixedly installed with a vertical plate 32 facing the center of the cylinder 13, and a plurality of trapezoidal push blocks 33 are fixedly installed on the vertical plate 32. A matching groove matching the vertical plate 32 is provided inside the cylinder 13, and a matching column 34 rotatably installed with the threaded column 30 is slidably connected inside the matching groove. Springs 35 are fixedly installed at the lower ends of the outwardly extending parts on both sides of the trapezoidal push blocks 33, and the threaded column 30 is threadedly connected to the mixing body 1.
[0034] When the capacity of the feeding trough 16 needs to be adjusted, the threaded column 30 is driven to rotate. Since the threaded column 30 is threadedly connected to the mixing body 1, the rotation of the threaded column 30 will drive the matching column 34 to move forward or backward. When the matching column 34 is located in front of the trapezoidal push block 33, the matching column 34 moves backward and abuts against the inclined surface of the trapezoidal push block 33, thereby causing it and the vertical plate 32 and the adjustment plate 31 to extend outward to overcome the rebound force of the spring 35, thereby reducing the capacity of the feeding trough 16. At the same time, when the spring 35 is in a natural state, the adjustment plate 31 is close to the center of the cylinder 13 with the cooperation of the spring 35 and the trapezoidal push block 33. At this time, the capacity is maximum. At the same time, the threaded connection between the threaded column 30 and the mixing body 1 has a self-locking ability, so the position of the adjustment plate 31 can be stably adjusted.
[0035] The stirring assembly includes a plurality of stirring plates 36 fixedly mounted on the transmission shaft 15 , and a plurality of through grooves 37 are formed inside the stirring plates 36 .
[0036] A mounting shaft 38 penetrating the stirring plate 36 is rotatably mounted inside the through groove 37, a mixing plate 39 is fixedly mounted around the mounting shaft 38, a first cavity 40 is provided at the middle of the stirring plate 36 and where the mounting shaft 38 penetrates, a second cavity 41 is provided at the center of the transmission shaft 15 and communicates with the first cavity 40, the first cavity 40 abuts against the side of the mounting shaft 38, a plurality of push grooves 42 are provided around the side of the mounting shaft 38, and the first cavity 40 and the second cavity 41 are both filled with part of the aqueous solution. The aqueous solution is not filled fully, and when the transmission shaft 15 drives the stirring plate 36 to rotate, the aqueous solution will flow from high to low, and the aqueous solution in the first cavity 40 at the high position will move to the first cavity 40 at the low position. Since the mounting shaft 38 is sealed and abutted against the second cavity 41, the aqueous solution will drive the push groove 42 to rotate and flow downward when it moves. When the aqueous solution drives the mounting shaft 38 to rotate, it will drive the mixing plate 39 to rotate to mix the blister raw materials. On the basis of mixing the raw materials by the regular rotation of the stirring plate 36, the raw materials can also be mixed by the irregular mixing plate 39, thereby improving the mixing efficiency and using the movement of the aqueous solution to save energy.
[0037] The above embodiments are merely illustrative of the principles and effects of the present invention, and are not intended to limit the present invention. Anyone familiar with the technology may modify or change the above embodiments without violating the spirit and scope of the present invention. Therefore, all equivalent modifications or changes made by those with ordinary knowledge in the relevant technical field without departing from the spirit and technical ideas disclosed in the present invention shall still be covered by the claims of the present invention.
Claims
1. A blister raw material mixer, comprising a mixer body, a driving motor is installed at the front end of the mixer body, an input end of the driving motor extends into the mixer body and a stirring assembly is installed therein, characterized in that: The mixing body is set as a cylinder, and a feeding mechanism is evenly installed on the upper end of the mixing body. The feeding mechanism includes a plurality of feeding boxes, and a plurality of the feeding boxes are all installed with a uniform feeding component. The uniform feeding component includes a cylinder rotatably installed with the feeding box, and the cylinder matches the lower end of the feeding box. A plurality of feeding grooves are opened on the circumference of the cylinder, a driving gear is installed on the front end of the cylinder, a transmission shaft is installed on the driving motor, the stirring component is installed on the circumference of the transmission shaft, and a driving component connected to the driving gear is installed on the transmission shaft. An electromagnetic discharge valve is installed at the lower end of the mixing body, and a plurality of feeding ports are installed on the upper end of the mixing body.
2. A blister raw material mixer according to claim 1, characterized in that: The driving assembly comprises a gear plate fixedly mounted on the transmission shaft, and the gear plate is respectively meshed with a plurality of driving gears.
3. A blister raw material mixer according to claim 1, characterized in that: The driving assembly includes a first gear plate and a second gear plate rotatably mounted with the mixing body, the thickness of the driving gear on the right side is greater than the thickness of the driving gear on the left side and the center, the first gear plate and the second gear plate are fixedly mounted with the transmission shaft, the first gear plate is meshed with the driving gear on the right side, an adjusting gear meshed with the driving gear on the left side and the center is rotatably mounted inside the mixing body, and the adjusting gear is meshed with the second gear plate.
4. A blister raw material mixer according to claim 1, characterized in that: An adjustment component matching the feeding trough is installed inside the cylinder, and the adjustment component includes a threaded column, a sliding groove is provided inside the feeding trough, and the sliding groove is slidably connected with an adjustment plate, and the adjustment plate is fixedly installed with a vertical plate facing the center of the cylinder, and a plurality of trapezoidal push blocks are fixedly installed on the vertical plate, and a matching groove matching the vertical plate is provided inside the cylinder, and a matching column rotatably installed with the threaded column is slidably connected inside the matching groove, and springs are fixedly installed at the lower ends of the outwardly extending parts on both sides of the trapezoidal push block, and the threaded column is threadedly connected to the mixing body.
5. A blister raw material mixer according to claim 1, characterized in that: The stirring assembly comprises a plurality of stirring plates fixedly mounted on the transmission shaft, and a plurality of through grooves are formed inside the stirring plates.
6. A blister raw material mixer according to claim 5, characterized in that: A mounting shaft penetrating the stirring plate is rotatably mounted inside the through groove, a mixing plate is fixedly mounted on the circumferential side of the mounting shaft, a first cavity is provided in the middle of the stirring plate and at the point where the mounting shaft penetrates, a second cavity is provided in the center of the transmission shaft and communicates with the first cavity, the first cavity abuts against the circumferential side of the mounting shaft, a plurality of push grooves are provided on the circumferential side of the mounting shaft, and the first cavity and the second cavity are both filled with a portion of the aqueous solution.