Coating forming equipment for cosmetic composition
By designing an internal partition component and an air jet pipe inside the rotating drum of the coating molding equipment, a complex airflow pattern is formed, which solves the problem of easy damage to the capsules inside the rotating drum and achieves a uniform and efficient cleaning effect.
Patent Information
- Application Number
- CN202511295811.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-11
- Publication Date
- 2025-10-31
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing overcoating equipment, the cleaning structure is located on the outside of the rotating drum, which causes the capsules inside the drum to easily fall from a height and be damaged by collision.
A rotary drum cleaning machine is designed, which is equipped with an internal partition component and an air jet pipe. Through a complex airflow pattern, a uniform airflow impact is formed inside the drum. By using the combination of arc-shaped guide strips and air jet pipes, the capsules are cleaned and stirred in all directions, reducing capsule collision and wear.
It improves the uniformity and thoroughness of cleaning, protects the surface quality of capsules, enhances cleaning efficiency and quality, ensures that capsules are evenly distributed in the rotating drum, avoids local accumulation, reduces turbulence and eddies, and improves cleaning efficiency.
Smart Images

Figure CN120861529A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the fields of pharmaceutical engineering and biotechnology, and particularly relates to a coating molding device for cosmetic compositions. Background Technology
[0002] The quality and stability of cosmetic raw materials play a crucial role in the final effect of the product. Traditional cosmetic raw materials are often susceptible to the effects of moisture, oxygen and temperature in the air during storage, which can lead to deterioration or performance degradation, affecting product quality and stability. To overcome this problem, researchers have developed a variety of coating technologies to protect cosmetic raw materials.
[0003] Cholesterol liquid crystals can display a variety of colors as temperature and light change, giving cosmetics a unique appearance and offering various playful possibilities. However, cholesterol esters have a sticky texture and poor spreadability. Directly adding them to products will first affect the appearance and color, and they are prone to sticking to mixing equipment and packaging materials, resulting in significant waste. Furthermore, their size is uneven, and over time, cholesterol esters will aggregate. Therefore, proper coating is necessary to facilitate addition, prevent adhesion to mixing equipment and packaging materials, and ensure a uniform appearance.
[0004] However, existing overmolding technologies require cleaning equipment to clean the capsules. But in existing technologies, the cleaning structure is located on the outside of the rotating drum, which makes it difficult to cushion the capsules inside the drum. This can lead to capsules falling from a height and being damaged by impact. Summary of the Invention
[0005] This invention addresses the problem in existing technologies where the cleaning structure is located on the outside of the rotating drum, which makes it difficult to cushion the capsules inside the drum, leading to capsules falling from a height and being damaged by impact. The invention proposes the following technical solution:
[0006] A coating molding device for cosmetic compositions includes a rotary drum washing machine. The rotary drum washing machine includes: a shell, with guide pipes embedded on both sides of the shell, a rotary drum disposed between the two guide pipes, an air duct disposed inside the rotary drum at the outer position of the rotary drum, an inner partition assembly fixedly installed at one end of the rotary drum, and a support ring rotatably installed in the middle of the inner partition assembly.
[0007] As a preferred embodiment of the above technical solution, the inner partition component includes a circular sleeve rotatably connected to one side of the inner wall of the rotating cage. A rotating plate is fixedly installed on the outer side of the circular sleeve. A spring rod is embedded in the top of the rotating plate. A protrusion is snapped onto the top of the spring rod. A mounting base is integrally formed at the bottom of the protrusion. A guide strip is slidably connected inside the mounting base.
[0008] As a preferred embodiment of the above technical solution, mounting brackets are fixedly installed on both sides of the guide strip, the mounting brackets are fixedly installed on the outside of the support ring, an arc-shaped strip is connected through the middle of the rotating plate, the two ends of the arc-shaped strip are fixedly connected to the mounting brackets, a return spring is sleeved on the outside of the arc-shaped strip, and the two ends of the return spring are fixedly connected to the opposite surfaces of the rotating plate and the mounting brackets, respectively.
[0009] As a preferred embodiment of the above technical solution, a jet pipe is embedded in one end face of the circular sleeve, and air outlets are provided at the top and both sides of the jet pipe. The air outlet at the top of the jet pipe is larger than the air outlets on both sides. A support ring is embedded in one end of the jet pipe, and the support ring is rotatably connected to the inside of the rotating cage.
[0010] As a preferred embodiment of the above technical solution, positioning blocks are symmetrically welded to the outer side of the support ring, the arc-shaped strip and the guide strip have the same shape, and the center points of the arc-shaped strip and the guide strip are different.
[0011] As a preferred embodiment of the above technical solution, a drive block is integrally formed at one end of the rotating cage, and the outer side of the drive block and the outer side of the protrusion are in contact with each other.
[0012] As a preferred embodiment of the above technical solution, one end of the support ring is fixedly connected to one of the guide pipes, and the support ring is fixedly installed inside the outer shell.
[0013] As a preferred embodiment of the above technical solution, an installation sleeve is fixedly installed at the other end of the rotating cage. Ventilation holes are equidistantly opened inside the installation sleeve. A filter plate is fixedly installed inside the installation sleeve. Turbine blades are equidistantly formed inside the installation sleeve at one end of the filter plate. A positioning sleeve is rotatably installed inside the installation sleeve. A gear is fixedly installed at one end of the installation sleeve at the outer position of the positioning sleeve. The middle part of the positioning sleeve is fixedly connected to the outer side of another guide tube.
[0014] As a preferred embodiment of the above technical solution, arc-shaped guide strips are installed equidistantly inside the rotating cage, a hot air blower is connected to one end of the air duct, a drive motor is installed inside the outer shell, a drive wheel is snapped onto the output shaft of the drive motor, the drive wheel meshes with the gear on the outside, and the number of rotating cages is set to two.
[0015] The beneficial effects of this invention are as follows:
[0016] (1) It can form a more complex airflow pattern inside the rotating drum, so that the capsules can be impacted by airflow in all directions. This not only further improves the uniformity and thoroughness of cleaning, but also reduces the collision and wear between capsules, protecting the surface quality of the capsules.
[0017] (2) It can move and reset flexibly within a certain range, thereby optimizing the airflow path, enhancing the rinsing and stirring effect on the capsule, improving cleaning efficiency and quality, and enhancing the all-round cleaning effect on the capsule, ensuring that the capsule can be evenly impacted and rinsed by the airflow in the rotating drum, improving cleaning efficiency and quality, and being able to flush and clean the inside of the rotating drum, changing the difficulty of flushing and cleaning the inside of the rotating drum.
[0018] (3) It enables the capsules to be smoothly transported into the drum, providing a good start for the subsequent cleaning process. The rotation of the drum not only promotes full contact between the capsules and the cleaning medium and improves the cleaning effect, but also makes the capsules evenly distributed in the drum, avoiding local accumulation and improving the uniformity of cleaning.
[0019] (4) The flow pattern enhances the rinsing and stirring effect of the airflow on the capsule, so that the capsule can be more evenly subjected to the impact force from all directions during the cleaning process, further improving the uniformity and thoroughness of the cleaning. At the same time, the design of the arc-shaped guide strip can also make the airflow form a stable flow field inside the rotating drum, reducing the turbulence and eddies of the flow and improving the cleaning efficiency. Attached Figure Description
[0020] Figure 1 The diagram shown is a structural schematic of an encapsulation molding device for cosmetic compositions according to Example 1;
[0021] Figure 2 The diagram shown is a schematic of the installation structure of the support ring in Embodiment 1;
[0022] Figure 3 The diagram shown is a structural schematic of the inner partition component in Embodiment 1;
[0023] Figure 4 The diagram shown is a schematic representation of the return spring in Embodiment 1;
[0024] Figure 5 The diagram shown is a structural schematic of the positioning sleeve in Embodiment 1.
[0025] In the diagram: 1. Outer shell; 2. Guide pipe; 3. Air duct; 4. Rotating cage; 5. Inner partition assembly; 51. Circular sleeve; 52. Rotating plate; 53. Spring rod; 54. Protrusion; 55. Mounting base; 56. Guide strip; 57. Mounting bracket; 58. Arc strip; 59. Return spring; 510. Jet pipe; 511. Support ring; 512. Positioning block; 513. Drive block; 6. Support ring; 7. Mounting sleeve; 8. Vent hole; 9. Filter plate; 10. Turbine blade; 11. Gear; 12. Positioning sleeve. Detailed Implementation
[0026] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments.
[0027] Example 1
[0028] This invention provides an encapsulation molding apparatus for cosmetic compositions, such as... Figures 1 to 5 As shown, the rotary drum cleaning machine includes: a shell 1, with guide pipes 2 embedded on both sides of the shell 1, a rotary drum 4 between the two guide pipes 2, an air duct 3 located inside the rotary drum 4 at the outer side of the rotary drum 4, an inner partition component 5 fixedly installed at one end of the rotary drum 4, and a support ring 6 rotatably installed in the middle of the inner partition component 5.
[0029] like Figure 2 and Figure 3 As shown, the inner partition assembly 5 includes a circular sleeve 51 rotatably connected to one side of the inner wall of the rotating cage 4. A rotating plate 52 is fixedly installed on the outer side of the circular sleeve 51. This design can effectively limit the rotation plate 52 and prevent it from shaking during movement, ensuring the stability and accuracy of the rotation plate 52, thereby improving the working reliability and cleaning effect of the entire inner partition assembly 5. A spring rod 53 is embedded in the top of the rotating plate 52. A protrusion 54 is snapped into the top of the spring rod 53. A mounting seat 55 is integrally formed at the bottom of the protrusion 54. A guide strip 56 is slidably connected inside the mounting seat 55.
[0030] Under the elastic action of the spring rod 53, the protrusion 54 can be driven to reset. At the same time, through the coordinated action of the mounting base 55 and the guide strip 56, the protrusion 54 is displaced when it moves and moves closer to the center of the circular sleeve 51. This structural design allows the protrusion 54 to automatically adjust its position and attitude. When the protrusion 54 and the driving block 513 are separated, the protrusion 54 automatically resets using the tension of the spring rod 53.
[0031] like Figure 2 and Figure 3 As shown, mounting brackets 57 are fixedly installed on both sides of the guide strip 56. The mounting brackets 57 are fixedly installed on the outside of the support ring 6. An arc-shaped strip 58 is connected through the middle of the rotating plate 52. The two ends of the arc-shaped strip 58 are fixedly connected to the mounting brackets 57. A return spring 59 is sleeved on the outside of the arc-shaped strip 58. The two ends of the return spring 59 are fixedly connected to the opposite surfaces of the rotating plate 52 and the mounting brackets 57, respectively, for fixing the return spring 59, which changes the difficulty of fixing the return spring 59.
[0032] When the rotating plate 52 moves along the outer side of the arc strip 58, it will squeeze the return spring 59, causing it to compress and deform. Under the elastic force of restoring the deformation, the return spring 59 can drive the rotating plate 52 to reset. This design changes the reset method and difficulty of the rotating plate 52, making its reset smoother and more reliable, and ensuring the stability and continuous effectiveness of the inner partition component 5 during the cleaning process.
[0033] like Figure 2 and Figure 3 As shown, a jet pipe 510 is embedded in one end face of a circular sleeve 51. Air outlets are provided at the top and sides of the jet pipe 510. The air outlet at the top of the jet pipe 510 is larger than the air outlets on the sides. This design creates an uneven airflow distribution. The larger air outlet in the middle blows through the inside of the rotating drum 4, cleaning any residual dirt inside. The smaller air outlets on the sides act as gas separators, allowing the capsule to be cushioned as it descends, preventing it from falling directly into the rotating drum 4. A support ring 511 is embedded in one end of the jet pipe 510. The support ring 511 is rotatably connected to the inside of the rotating drum 4, providing stable support and positioning for the jet pipe 510. This ensures that the jet pipe 510 maintains a stable working state during the cleaning process. Simultaneously, the rotatable connection of the support ring 511 allows the rotating drum 4 to rotate flexibly during operation, ensuring the normal operation of the entire cleaning machine.
[0034] like Figure 2 and Figure 3 As shown, positioning blocks 512 are symmetrically welded to the outside of the support ring 6. The arc-shaped strip 58 and the guide strip 56 have the same shape, but the center points of the arc-shaped strip 58 and the guide strip 56 are different.
[0035] The positioning block 512 limits the rotation plate 52 to prevent the rotation of the rotation plate 52 from being too large. At the same time, the arc strip 58 and the guide strip 56 have the same shape but different center points. This unique design allows the rotation plate 52 to drive the protrusion 54 to move accordingly when it moves, and to flow towards the center of the circular sleeve 51.
[0036] like Figure 2 and Figure 3 As shown, a drive block 513 is integrally formed at one end of the rotating cage 4, and the outer side of the drive block 513 and the outer side of the protrusion 54 are in contact with each other.
[0037] When the rotating cage 4 rotates, it drives the drive block 513 to rotate. When the drive block 513 rotates, it comes into contact with the protrusion 54, thereby driving the protrusion 54 to move, which changes the difficulty of moving the protrusion 54.
[0038] like Figure 1 and Figure 2As shown, one end of the support ring 6 is fixedly connected to one of the guide pipes 2, and the support ring 6 is fixedly installed inside the outer shell 1;
[0039] The support ring 6 is used to fix the guide pipe 2, which changes the fixing method and difficulty of the guide pipe 2, so that the guide pipe 2 can maintain a stable position and state during operation and ensure its normal guiding function.
[0040] like Figure 1 , Figure 2 and Figure 5 As shown, an installation sleeve 7 is fixedly installed at the other end of the rotating cage 4. Ventilation holes 8 are equidistantly opened inside the installation sleeve 7. A filter plate 9 is fixedly installed inside the installation sleeve 7. Turbine blades 10 are equidistantly formed inside the installation sleeve 7 at one end of the filter plate 9. A positioning sleeve 12 is rotatably installed inside the installation sleeve 7. A gear 11 is fixedly installed at one end of the installation sleeve 7 at the outer position of the positioning sleeve 12. The middle part of the positioning sleeve 12 is fixedly connected to the outer side of another guide tube 2.
[0041] When the rotating cage 4 rotates, it drives the mounting sleeve 7 to rotate via the gear 11. When the mounting sleeve 7 rotates, it drives the turbine blade 10 to rotate. When the turbine blade 10 rotates, it causes the gas to flow. At this time, the gas is filtered along the filter plate 9. The filtered gas enters the interior of the rotating cage 4 through the vent hole 8. The flowing gas drives the internally cleaned capsule to move, which changes the difficulty of the capsule's movement.
[0042] like Figure 1 As shown, arc-shaped guide strips are equidistantly installed inside the rotating drum 4. The design of these arc-shaped guide strips effectively guides the airflow to form a rotating flow pattern inside the drum 4, enhancing the rinsing and agitation effect on the capsules. This allows the capsules to be more evenly impacted from all directions during the cleaning process, further improving the uniformity and thoroughness of the cleaning. One end of the air duct 3 is connected to a hot air blower, which delivers hot air with a certain temperature and flow rate into the air duct 3. After entering the rotating drum 4 through the air duct 3, the hot air interacts with the arc-shaped guide strips to form a more complex airflow field, further enhancing the cleaning effect on the capsules. The system performs comprehensive blowing and rinsing to accelerate the removal of impurities and moisture from the capsule surface, improving cleaning efficiency and drying effect. A drive motor is installed inside the outer shell 1, and a drive wheel is snapped onto the output shaft of the drive motor. The drive motor and drive wheel facilitate the rotation of the drive gear 11. When the gear 11 rotates, it drives the rotating cage 4 to rotate, which changes the difficulty of rotating the rotating cage 4. The drive wheel and gear 11 mesh on the outside. There are two rotating cages 4 in total. The cleaning work is carried out synchronously under the action of the two rotating cages 4, which improves efficiency and prevents clogging during the cleaning process.
[0043] Working principle: In actual use, the capsule enters the rotating cage 4 along the guide pipe 2. At this time, the drive motor and drive wheel drive the drive gear 11 to rotate. When the gear 11 rotates, it drives the rotating cage 4 to rotate. When the rotating cage 4 rotates, it drives the mounting sleeve 7 to rotate through the gear 11. When the mounting sleeve 7 rotates, it drives the turbine blade 10 to rotate. When the turbine blade 10 rotates, it induces the gas to flow. At this time, the gas is filtered along the filter plate 9. The filtered gas enters the rotating cage 4 through the vent hole 8. At this time, the flowing gas drives the capsule being cleaned inside to move. At the same time, the design of the arc-shaped guide strip can effectively guide the airflow to form a rotating flow pattern inside the rotating cage 4, enhance the rinsing and stirring effect of the airflow on the capsule, and make the capsule more evenly subjected to the impact force from all directions during the cleaning process, further improving the uniformity and thoroughness of cleaning.
[0044] When the rotating cage 4 rotates, it drives the drive block 513 to move. The drive block 513, when rotating, engages with the protrusion 54, thereby moving the protrusion 54 and increasing the difficulty of its movement. The protrusion 54, via the spring rod 53, drives the rotating plate 52 to move outside the arc-shaped strip 58. At this time, the rotating plate 52 compresses the return spring 59, causing it to compress. Simultaneously, the protrusion 54 drives the mounting base 55 to move outside the arc-shaped strip 58, causing the protrusion 54 to move inwards. At the same time, the protrusion 54 moves outside the drive block 513. When the rotating plate 52 moves, it drives the circular sleeve 51 to rotate. When the circular sleeve 51 rotates, it drives the jet pipe 510 to rotate. As the external gas enters the interior of the jet pipe 510 along the circular sleeve 51 and blows towards the inside of the rotating cage 4 along the jet pipe 510, an uneven airflow distribution can be formed. The larger air outlet in the middle blows into the interior of the rotating cage 4 and cleans the gas, while the smaller air outlets on both sides act as gas separators, so that the gas is used to buffer the capsule when it descends, preventing the capsule from falling directly into the rotating cylinder 4.
[0045] Meanwhile, the rotation of the circular sleeve 51 causes the jet pipe 510 to rotate. When the jet pipe 510 rotates, the direction and distribution of the blown gas change. This change allows the airflow to be distributed more evenly inside the rotating cage 4, avoiding uneven cleaning caused by excessively strong or weak local airflow, thus improving the stability and reliability of cleaning. The gas distribution change generated when the jet pipe 510 rotates can form a more complex airflow pattern inside the rotating cage 4, so that the capsules can be impacted by airflow in all directions. This not only further improves the uniformity and thoroughness of cleaning, but also reduces collisions and wear between capsules, protecting the surface quality of the capsules.
[0046] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it.
Claims
1. A coating molding apparatus for cosmetic compositions, comprising a rotary drum washing machine, characterized in that, The rotary drum cleaning machine includes: a shell (1), with guide pipes (2) embedded on both sides of the shell (1), a rotary drum (4) between the two guide pipes (2), an air duct (3) inside the rotary drum (4) located on the outer side of the rotary drum (4), an inner partition component (5) fixedly installed at one end of the rotary drum (4), and a support ring (6) rotatably installed in the middle of the inner partition component (5).
2. The coating molding equipment for cosmetic compositions according to claim 1, characterized in that, The inner partition assembly (5) includes a circular sleeve (51) rotatably connected to one side of the inner wall of the rotating cage (4). A rotating plate (52) is fixedly installed on the outer side of the circular sleeve (51). A spring rod (53) is embedded in the top of the rotating plate (52). A protrusion (54) is snapped into the top of the spring rod (53). A mounting base (55) is integrally formed at the bottom of the protrusion (54). A guide strip (56) is slidably connected inside the mounting base (55).
3. The coating molding equipment for cosmetic compositions according to claim 2, characterized in that, The guide strip (56) is fixedly mounted on both sides with mounting brackets (57). The mounting brackets (57) are fixedly mounted on the outside of the support ring (6). An arc-shaped strip (58) is connected through the middle of the rotating plate (52). The two ends of the arc-shaped strip (58) are fixedly connected to the mounting brackets (57). A return spring (59) is sleeved on the outside of the arc-shaped strip (58). The two ends of the return spring (59) are fixedly connected to the opposite surfaces of the rotating plate (52) and the mounting brackets (57), respectively.
4. The coating molding equipment for cosmetic compositions according to claim 2, characterized in that, A jet pipe (510) is embedded in one end face of the circular sleeve (51). The jet pipe (510) has air outlets at the top and both sides. The air outlet at the top of the jet pipe (510) is larger than the air outlets on both sides. A support ring (511) is embedded in one end of the jet pipe (510). The support ring (511) is rotatably connected to the inside of the rotating cage (4).
5. The coating molding equipment for cosmetic compositions according to claim 2, characterized in that, The support ring (6) is symmetrically welded with positioning blocks (512) on the outside. The arc strip (58) and the guide strip (56) have the same shape, but the center points of the arc strip (58) and the guide strip (56) are different.
6. The coating molding equipment for cosmetic compositions according to claim 2, characterized in that, One end of the rotating cage (4) is integrally formed with a driving block (513), and the outer side of the driving block (513) and the outer side of the protrusion (54) are in contact with each other.
7. The coating molding equipment for cosmetic compositions according to claim 1, characterized in that, One end of the support ring (6) is fixedly connected to one of the guide pipes (2), and the support ring (6) is fixedly installed inside the outer shell (1).
8. The coating molding equipment for cosmetic compositions according to claim 2, characterized in that, An installation sleeve (7) is fixedly installed at the other end of the rotating cage (4). Ventilation holes (8) are equidistantly opened inside the installation sleeve (7). A filter plate (9) is fixedly installed inside the installation sleeve (7). Turbine blades (10) are equidistantly formed inside the installation sleeve (7) at one end of the filter plate (9). A positioning sleeve (12) is rotatably installed inside the installation sleeve (7). A gear (11) is fixedly installed at one end of the installation sleeve (7) at the outer position of the positioning sleeve (12). The middle part of the positioning sleeve (12) is fixedly connected to the outer side of another guide pipe (2).
9. The coating molding equipment for cosmetic compositions according to claim 8, characterized in that, The rotating cage (4) is equipped with arc-shaped guide strips at equal intervals inside. One end of the air duct (3) is connected to a hot air blower. The outer shell (1) is equipped with a drive motor. A drive wheel is snapped onto the output shaft of the drive motor. The drive wheel meshes with the gear (11) on the outside. The number of rotating cages (4) is set to two.