Dispersion structure for a glue making machine
By working in tandem with the inner and outer discs rotating in opposite directions, combined with gear transmission and bearing design, the problems of uneven rubber mixing and unreasonable power transmission in traditional glue-making machines are solved, achieving efficient and uniform rubber dispersion and power transmission, thus improving the performance and reliability of the glue-making machine.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BENGBU SAIER TIMES IND & TRADE CO LTD
- Filing Date
- 2025-06-11
- Publication Date
- 2026-07-14
AI Technical Summary
Traditional glue-making machines have a simple dispersion structure, which leads to uneven mixing of glue materials, easy accumulation at the edges of the equipment, unreasonable power transmission, poor component coordination, and increased maintenance costs and energy consumption.
The inner rotating disk and the outer disk that rotates in the opposite direction work together, combined with gear transmission and bearing design, to form a complex flow field, ensuring that all rotating parts work in a coordinated manner and achieving efficient dispersion.
To achieve uniform mixing of rubber materials, avoid agglomeration, improve the quality of rubber products, reduce energy consumption, extend component life, and improve the accuracy and efficiency of power transmission.
Smart Images

Figure CN224485683U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of dispersion mechanism technology, specifically to a dispersion structure for a glue-making machine. Background Technology
[0002] In the adhesive manufacturing industry, traditional adhesive dispersing machines have many shortcomings. Their dispersion methods are limited, often relying on unidirectional stirring or shearing, making it difficult to achieve uniform mixing of the adhesive material, leading to unstable performance of the adhesive products. Furthermore, the adhesive material tends to accumulate at the edges of the equipment, resulting in insufficient treatment in some areas. Simultaneously, traditional structures suffer from inefficient power transmission, poor component coordination, and motion interference, increasing maintenance costs and energy consumption. Therefore, a new, highly efficient adhesive dispersing structure is urgently needed. Utility Model Content
[0003] To address the aforementioned technical deficiencies, the purpose of this utility model is to provide a dispersion structure for a glue-making machine, in which an inner edge plate and an outer disc assembly that rotates in the opposite direction and has an inner curved outer edge plate work together to form a complex flow field using gear transmission and bearing design, thereby fully dispersing the glue material.
[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: The present invention provides a dispersing structure for a glue-making machine, comprising:
[0005] An inner turntable, wherein multiple inner edge plates are fixed to the outer circumference of the inner turntable, and the multiple inner edge plates are bent toward the upper and lower sides of the inner turntable respectively;
[0006] The outer disk group consists of multiple outer disks, with the outer disk groups arranged circumferentially around the outer periphery of the inner turntable.
[0007] The outer disk assembly includes a first outer disk and a second outer disk, which are on the same axis and rotate in opposite directions.
[0008] Preferably, an outer edge plate is fixed at the outer edge of both the first outer turntable and the second outer turntable. The outer edge plate on the same turntable is bent to one side, and the outer edge plates on the first outer turntable and the second outer turntable on the same axis are bent inward.
[0009] Preferably, the inner edge plates that curve to both sides on the inner turntable are distributed sequentially at intervals.
[0010] Preferably, the dispersion structure further includes a driving part and a driving shell, the driving shell is fixed on the driving part, a central shaft is rotatably mounted inside the driving shell, and the inner turntable is fixed to the end of the central shaft.
[0011] Preferably, an inner shaft and an outer sleeve are rotatably mounted on the drive housing, the inner shaft and the outer sleeve rotate in opposite directions, the first outer turntable is fixed on the outer sleeve, and the second outer turntable is fixed on the inner shaft.
[0012] Preferably, the drive housing is provided with a connecting mechanism, and the inner shaft and the outer turntable are respectively linked to the central shaft through the connecting mechanism.
[0013] Preferably, a first toothed disc is fixed on the central shaft, and the first toothed disc meshes with a first driven tooth.
[0014] Preferably, a second toothed disc is fixed on the central shaft, a connecting tooth is engaged on one side of the second toothed disc, and a second driven tooth is fixed on the outer sleeve, the second driven tooth being engaged with the connecting tooth.
[0015] Preferably, a motor for driving the central shaft to rotate is fixed inside the drive unit.
[0016] Preferably, multiple bearings are connected between the outer sleeve and the inner shaft.
[0017] The beneficial effects of this utility model are as follows:
[0018] The inner edge plate and the outer disk assembly rotating in the opposite direction work together to form a complex flow field, which fully breaks down and disperses the rubber material, avoids agglomeration, makes the components mix evenly, and improves the quality of rubber products.
[0019] The connecting mechanism ensures that all rotating parts work in a coordinated manner, avoids interference, and guarantees the reasonable distribution and transmission of power.
[0020] Gear transmission precisely controls speed and direction, enabling reverse rotation of inner and outer shafts to meet the working requirements of the outer disc assembly, improving the accuracy and efficiency of power transmission. Bearings reduce friction between inner and outer shafts, ensuring stable high-speed reverse rotation and extending component life. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the structure of this utility model.
[0022] Figure 2 This is a bottom view of the present invention.
[0023] Figure 3 This is a cross-sectional view of the drive unit, outer disk assembly, and central shaft.
[0024] Figure 4 for Figure 3 A cross-sectional view along the AA direction.
[0025] Figure 5 for Figure 3 Cross-sectional view along the BB direction.
[0026] Figure 6 This is a structural diagram of the inner turntable.
[0027] In the figure: 1. Drive unit, 2. Outer sleeve, 3. First outer turntable, 4. Inner shaft, 5. Second outer turntable, 6. Inner turntable, 7. Drive housing, 8. First driven gear, 9. Central shaft, 10. First gear plate, 11. Second driven gear, 12. Second gear plate, 13. Connecting gear, 14. Inner edge plate, 15. Outer edge plate. Detailed Implementation
[0028] The present invention is illustrated below with specific embodiments, but these are not intended to limit the scope of the invention.
[0029] Example 1
[0030] like Figures 1-6 As shown in the figure, in this embodiment, a dispersing structure for a glue-making machine is provided, including an inner rotating disk 6 and an outer disk assembly.
[0031] Multiple inner edge plates 14 are fixed on the outer circle of the inner turntable 6. The multiple inner edge plates 14 bend towards the upper and lower sides of the inner turntable 6 respectively. The inner turntable 6 is the core rotating component. The multiple inner edge plates 14 fixed on its outer circle bend towards the upper and lower sides of the inner turntable 6. As the inner turntable 6 rotates, the inner edge plates 14 generate a shearing and stirring effect on the rubber material.
[0032] There are multiple outer discs, and multiple outer disc groups are arranged circumferentially around the outer periphery of the inner turntable 6;
[0033] The outer disc assembly includes a first outer disc 3 and a second outer disc 5. The first outer disc 3 and the second outer disc 5 are on the same axis, and the first outer disc 3 and the second outer disc 5 on the same axis rotate in opposite directions. This opposite rotation direction causes the rubber material to be subjected to forces from different directions between the inner and outer discs, further enhancing the dispersion effect of the rubber material and constructing the basic framework of the dispersion structure of the glue making machine. The inner edge plate 14 and the outer disc assembly rotating in opposite directions work together to initially realize the crushing and dispersion of the rubber material and prevent the rubber material from agglomerating.
[0034] Example 2
[0035] like Figures 1-6 As shown, based on Embodiment 1, this embodiment provides a structure for the inner turntable 6 and the outer disc assembly, as detailed below:
[0036] Outer edge plates 15 are fixed at the outer edges of both the first outer turntable 3 and the second outer turntable 5. The outer edge plates 15 on the same turntable are bent to one side, and the outer edge plates 15 on the first outer turntable 3 and the second outer turntable 5 on the same axis are bent inward. When the turntables rotate, the rubber material will be repeatedly rubbed and collided between the inner and outer bent outer edge plates 15 due to the opposite rotation of the two turntables. The rubber materials with different flow directions impact each other, which strengthens the aggregation and rubbing effect on the outer rubber material, ensuring that the rubber material can be fully processed in the entire dispersion area, avoiding the accumulation or uneven dispersion of the rubber material at the edge, and improving the uniformity of dispersion.
[0037] The inner edge plates 14, which curve outwards to both sides on the inner turntable 6, are distributed at intervals. During rotation, the interval distribution causes the rubber material to form rhythmic pressure changes as it flows through the inner edge plates 14. The space between adjacent inner edge plates 14 allows the rubber material to have a brief aggregation and redistribution process. Combined with continuous rotation, the flow state of the rubber material is continuously changed. The interval distribution of the inner edge plates 14 creates a complex flow field, which improves the fineness of the rubber material dispersion and makes the various components in the rubber material more uniformly mixed.
[0038] The dispersion structure also includes a drive unit 1 and a drive housing 7. The drive housing 7 is fixed to the drive unit 1. A central shaft 9 is rotatably mounted inside the drive housing 7. An inner turntable 6 is fixed to the end of the central shaft 9. The power generated by the motor drives the central shaft 9 to rotate, which in turn drives the inner turntable 6 fixed to the end of the central shaft 9 to rotate, realizing the dispersion action of the inner turntable 6 and its attached inner edge plate 14. This provides the main source of rotational driving force for the entire dispersion structure, integrates the power input and the driving relationship of the inner turntable 6, and enables the inner turntable 6 to operate stably and efficiently, ensuring that the core components of the dispersion structure receive reliable power and guaranteeing the continuous working capability of the glue-making machine.
[0039] Example 3
[0040] like Figures 1-6 As shown, based on Embodiment 1 and Embodiment 2, this embodiment provides a structure for the drive housing 7, as detailed below:
[0041] An inner shaft 4 and an outer sleeve 2 are rotatably mounted on the drive housing 7, with the inner shaft 4 and outer sleeve 2 rotating in opposite directions. A first outer turntable 3 is fixed to the outer sleeve 2, and a second outer turntable 5 is fixed to the inner shaft 4. When they rotate in opposite directions, the rubber material is subjected to complex shearing, extrusion, and stretching forces between the inner and outer turntables. This reverse rotation drive of the two turntables in the outer disc assembly enhances the dispersion and processing capability of the peripheral rubber material. Combined with the inner turntable 6, it forms a highly efficient dispersion mode with internal and external synergy, greatly improving the dispersion efficiency of the rubber material in the glue-making machine.
[0042] The drive housing 7 is equipped with a connecting mechanism. The inner shaft 4 and the outer turntable are linked to the central shaft 9 through the connecting mechanism. The connecting mechanism transmits power to the inner shaft 4 and the outer turntable according to a certain transmission ratio and motion mode, ensuring that the inner shaft 4 and the outer turntable can not only rotate, but also maintain a coordinated motion relationship with the central shaft 9, so as to achieve the predetermined reverse rotation effect.
[0043] A first gear disk 10 is fixed on the central shaft 9. The first gear disk 10 meshes with the first driven tooth 8. When the central shaft 9 rotates, the first gear disk 10 drives the first driven tooth 8 to rotate, thereby transmitting the power of the central shaft 9. As the starting link of the subsequent transmission chain, the initial conversion of speed and torque is realized according to the characteristics of gear meshing, opening the power transmission path between the central shaft 9 and other components, and utilizing the stable transmission of gear meshing.
[0044] A second gear disk 12 is fixed on the central shaft 9. A connecting tooth 13 is meshed on one side of the second gear disk 12. A second driven tooth 11 is fixed on the outer tube sleeve 2. The second driven tooth 11 meshes with the connecting tooth 13. When the central shaft 9 rotates, the power is transmitted to the second driven tooth 11 through the second gear disk 12 and the connecting tooth 13 in sequence, driving the outer tube sleeve 2 to rotate. At the same time, this structure cooperates with the transmission link of the inner shaft 4 to realize the reverse rotation of the inner shaft 4 and the outer tube sleeve 2. The rotation direction is cleverly changed by utilizing the different meshing relationships of the gear set.
[0045] The drive unit 1 has a motor fixed inside for driving the central shaft 9 to rotate. When powered on, the motor rotor rotates and the electrical energy is converted into mechanical energy through the connection between the motor shaft and the central shaft 9, driving the central shaft 9 to rotate at a set speed, thus injecting power into the entire dispersing structure of the glue making machine.
[0046] Multiple bearings are connected between the outer sleeve 2 and the inner shaft 4. When the two rotate in opposite directions, the balls or rollers of the bearings roll between the inner and outer rings, reducing the frictional resistance between the outer sleeve 2 and the inner shaft 4, so that the two can rotate smoothly relative to each other, converting sliding friction into rolling friction and reducing energy loss.
[0047] Working principle:
[0048] The dispersion structure of this glue-making machine is powered by a motor inside the drive unit 1. The motor drives the central shaft 9 to rotate, which in turn drives the inner turntable 6 fixed at the end of the central shaft 9 to rotate. The inner edge plates 14 of the outer circle of the inner turntable 6 are curved upward and downward and are spaced apart. When rotating, they shear and stir the glue material, forming rhythmic pressure changes and complex flow fields.
[0049] The central shaft 9 transmits power to the inner shaft 4 and outer sleeve 2, which are nested together and rotate in opposite directions, via the first gear 10, the second gear 12, and the gears meshing with them. The first outer rotating disk 3 and the second outer rotating disk 5 are fixed on the outer sleeve 2 and the inner shaft 4, respectively, and they rotate in opposite directions. The outer edge plate 15 of the outer rotating disk bends inward, and the rubber material is repeatedly rubbed and collided between the inner and outer bent outer edge plates 15, and is subjected to complex shearing, squeezing, and stretching forces between the inner and outer disks, thus achieving full dispersion.
[0050] Finally, it should be noted that the above embodiments are only used to illustrate and not limit the technical solutions of this utility model. Although this utility model has been described in detail with reference to the above embodiments, those skilled in the art should understand that modifications or equivalent substitutions can still be made to this utility model without departing from the spirit and scope of this utility model. Any modifications or partial substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A dispersion structure for a glue-making machine, characterized in that, include: The inner turntable (6) has multiple inner edge plates (14) fixed on its outer circle, and the multiple inner edge plates (14) bend towards the upper and lower sides of the inner turntable (6) respectively. The outer disk group, the number of which is multiple, and the multiple outer disk groups are arranged circumferentially around the outer periphery of the inner turntable (6); The outer disk assembly includes a first outer disk (3) and a second outer disk (5). The first outer disk (3) and the second outer disk (5) are on the same axis, and the first outer disk (3) and the second outer disk (5) on the same axis rotate in opposite directions.
2. The dispersion structure of a glue-making machine according to claim 1, characterized in that, The outer edge plates (15) are fixed at the outer edges of the first outer turntable (3) and the second outer turntable (5). The outer edge plates (15) on the same turntable are bent to one side, and the outer edge plates (15) on the first outer turntable (3) and the second outer turntable (5) on the same axis are bent inward.
3. The dispersion structure of a glue-making machine according to claim 1, characterized in that, The inner edge plates (14) that curve to both sides on the inner turntable (6) are distributed at intervals.
4. The dispersion structure of a glue-making machine according to claim 1, characterized in that, The dispersion structure also includes a drive unit (1) and a drive housing (7). The drive housing (7) is fixed on the drive unit (1). A central shaft (9) is rotatably mounted inside the drive housing (7). The inner turntable (6) is fixed at the end of the central shaft (9).
5. The dispersion structure of a glue-making machine according to claim 4, characterized in that, The drive housing (7) is rotatably mounted with an inner shaft (4) and an outer sleeve (2) that are sleeved together. The inner shaft (4) and the outer sleeve (2) rotate in opposite directions. The first outer turntable (3) is fixed on the outer sleeve (2), and the second outer turntable (5) is fixed on the inner shaft (4).
6. The dispersion structure of a glue-making machine according to claim 5, characterized in that, The drive housing (7) is provided with a connecting mechanism inside, and the inner shaft (4) and the outer turntable are respectively linked to the central shaft (9) through the connecting mechanism.
7. The dispersion structure of a glue-making machine according to claim 6, characterized in that, A first toothed disc (10) is fixed on the central shaft (9), and the first toothed disc (10) meshes with the first driven tooth (8).
8. The dispersion structure of a glue-making machine according to claim 7, characterized in that, A second toothed disc (12) is fixed on the central shaft (9). A connecting tooth (13) is engaged on one side of the second toothed disc (12). A second driven tooth (11) is fixed on the outer sleeve (2). The second driven tooth (11) is engaged with the connecting tooth (13).
9. The dispersion structure of a glue-making machine according to claim 4, characterized in that, The drive unit (1) has a motor fixed inside for driving the rotation of the central shaft (9).
10. The dispersion structure of a glue-making machine according to claim 5, characterized in that, Multiple bearings are connected between the outer sleeve (2) and the inner shaft (4).