Vacuum dehydration device for face cream production
By designing a vacuum dehydration device for facial cream production, the eccentric wheel directly connected to the drive motor and the transmission assembly can be used to achieve continuous boosting of the cream raw materials, and the separation of the oil phase and the water phase can be achieved through the separation chamber, which solves the problem of poor continuity of the dehydration process in existing equipment and improves production efficiency.
Patent Information
- Application Number
- CN202421992010.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-16
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-08-16
AI Technical Summary
Existing vacuum dehydration equipment for facial cream production has poor continuity during the dehydration process, which makes it difficult to improve production efficiency.
A vacuum dehydration device for the production of cream was designed, using an eccentric wheel that directly communicated with the drive motor and the transmission assembly. The continuous boost of the cream raw material was achieved through the piston rod, and the separation of the oil phase and the water phase was achieved through the communication tank and the separation chamber.
It improves the efficiency of cream dehydration, achieves process continuity, reduces production interruptions, shortens production cycles, and improves overall production efficiency.
Smart Images

Figure CN223005208U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cosmetic production, in particular to a vacuum dehydration device for cream production. Background Art
[0002] As a kind of cosmetics, facial cream plays a key role in basic skin care. The active ingredients such as whitening and anti-aging it contains help the skin absorb nutrients better. Facial creams on the market are generally mixed with ingredients such as water, oil and powder, and are dehydrated to achieve the ideal viscosity. Facial cream can not only nourish and protect the skin, but also provide the necessary moisturizing effect. It is an indispensable part of the daily skin care routine. After a lot of searches, the publication number is CN210740869U, which discloses a vacuum dehydration device for facial cream production, which can accelerate the dehydration efficiency of facial cream.
[0003] However, in actual use, the plunger has poor continuity when squeezing the cream to be dehydrated, which causes the production process to be temporarily stagnant, making it difficult to improve production efficiency. Therefore, a vacuum dehydration device for cream production is proposed to solve the above problem. Utility Model Content
[0004] The purpose of the utility model is to provide a vacuum dehydration device for cream production, which has the advantages of improving the cream dehydration efficiency and having strong process continuity, and solves the problem that when performing the cream dehydration operation, the process needs to be periodically stagnant, making it difficult to improve the production efficiency.
[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a vacuum dehydration device for cream production, comprising a base, a driving motor is fixedly installed on one side of the rear end of the upper surface of the base, a transmission assembly is installed at the front end of the driving motor, a booster bin is fixedly installed on one side of the front end of the upper surface of the base, a cavity is provided in the booster bin, and a separation bin is connected and installed at the rear end of the booster bin;
[0006] The transmission assembly includes a support frame, the front end of the drive motor passes through the support frame and is transmission-mounted with an eccentric wheel, a connecting rod is provided on the front of the eccentric wheel, a piston rod is movably mounted on one end of the connecting rod away from the eccentric wheel, and the end of the piston rod away from the connecting rod extends into the cavity;
[0007] A communication groove is provided in the pressurizing bin at the top of the cavity, and the rear end of the communication groove is connected and installed with the separation bin through a discharge one-way valve.
[0008] Preferably, a connecting frame is fixedly installed on one side of the boosting bin, a feed check valve is connected to the other side of the boosting bin, a sealing cover is fixedly installed on the top of the boosting bin, and an observation window is embedded in the upper end surface of the sealing cover with a groove. In the design, a connecting frame is fixedly installed on one side of the boosting bin, which not only enhances the stability of the overall structure, but also provides additional support points, which is conducive to the installation and fixation of subsequent components. At the same time, a feed check valve is cleverly set on the other side of the boosting bin to ensure the one-way flow of the cream raw materials and avoid backflow and contamination. The top sealing cover is designed with an observation window, so that the operator can intuitively monitor the dehydration process, adjust parameters in time, and ensure product quality.
[0009] Preferably, a limit frame is fixedly installed on the side of the connecting frame away from the boosting bin, and the limit frame is movably mounted on the connection between the connecting rod and the piston rod. In the design, a limit frame is fixedly installed on the side of the connecting frame away from the boosting bin, and the limit frame is movably mounted on the connection between the connecting rod and the piston rod. Such a limit mechanism not only ensures the precise control of the piston rod during movement, but also effectively prevents equipment damage or reduced precision due to excessive movement, thereby improving the reliability and durability of the entire device.
[0010] Preferably, the cavity runs through the boosting bin, one side of the cavity is sealed by a connecting frame, the other side of the cavity is sealed by a cover body, and the feed check valve is connected and installed on the cover body and connected and installed with the cavity. The design of the cavity runs through the boosting bin, one side of the cavity is sealed by a connecting frame, and the other side of the cavity is sealed by the cover body. This sealing structure not only ensures the vacuum environment in the cavity, but also realizes precise control of efficient loading of raw materials through the connected installation of the feed check valve, thereby improving production efficiency.
[0011] Preferably, a separation membrane is movably installed in the separation chamber, a hole is opened at the front end of the separation chamber and connected to the discharge one-way valve, a drain groove is connected to the bottom end of the separation chamber, and the bottom end of the drain groove is connected to the wastewater tank through a flange, and an inspection cover is fixedly installed at the rear end of the separation chamber, and a hole is opened on the inspection cover and connected to the high-pressure valve. In the design, a separation membrane is innovatively movably installed inside the separation chamber. This design allows for more efficient separation of substances and ensures that the active ingredients and water in the cream can be effectively separated. The high-pressure valve at the rear end and the drain groove design at the bottom realize the separation and discharge of the oil phase and the water phase, and the connection with the wastewater tank ensures the environmentally friendly treatment of the wastewater, and the interior of the separation chamber is sealed through the wastewater tank, and the conditions for pressurization are met.
[0012] Preferably, a through hole is provided inside the separation membrane, and the discharge check valve and the high-pressure valve are connected and installed through the through hole inside the separation membrane. The design of the through hole inside the separation membrane enables the discharge check valve and the high-pressure valve to be internally connected through the through hole. This design not only simplifies the internal structure, but also reduces the use of pipelines and connectors, lowers the risk of leakage, and improves the sealing performance and stability of the entire system.
[0013] Preferably, the connecting groove is designed with a tee groove structure. The connecting groove is connected and sealed with the opposite side of the cavity through the upper and lower ends, and the rear end of the connecting groove is threadedly connected to the discharge check valve. In the design, the connecting groove is designed with a tee groove structure. This structure connects the sealing cover and the opposite side of the cavity through the upper and lower ends, thus facilitating observation through the observation window, and the rear end is threadedly connected to the discharge check valve. Such a design not only improves the connection efficiency, but also provides better sealing performance through the threaded connection, ensuring the smooth and efficient dehydration process.
[0014] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0015] In the present utility model, the drive motor in the device is directly connected to the eccentric wheel through the transmission component. This design ensures that the power of the motor can be efficiently and stably transmitted to the piston rod, thereby realizing the pressurization of the cream raw material. The movement of the piston rod in the cavity realizes the continuous pressurization of the cream raw material, avoiding the stagnation time in the traditional intermittent dehydration process, thus improving the production efficiency. The design of the connecting groove enables smooth material exchange between the cavity and the separation chamber. Through the control of the discharge check valve, the continuous flow of the cream raw material can be achieved. The design of the separation chamber allows the separation of the oil phase and the water phase of the cream, and through the automated control of the high-pressure valve, the automatic discharge of the oil phase can be realized, thereby improving the dehydration efficiency. Since the entire dehydration process is continuous, the production interruption caused by stage stagnation is reduced, thus reducing the production cycle, accelerating the production speed, and improving the overall production efficiency. Each component of the device, such as the drive motor, the eccentric wheel, the piston rod, etc., is designed to be easy to monitor and maintain, which helps to promptly discover and solve problems, reduce the unexpected downtime during production, and achieve the effect of improving the cream dehydration efficiency and having strong process continuity. Description of the Drawings
[0016] Figure 1 It is the front view structural schematic diagram of the present utility model;
[0017] Figure 2 It is the connection structural schematic diagram of the transmission component of the present utility model;
[0018] Figure 3 It is the sectional structural schematic diagram of the pressurization chamber of the present utility model;
[0019] Figure 4It is a schematic diagram of the cross-sectional connection structure of the separation bin of the utility model.
[0020] In the figure: 1. base; 2. high-pressure valve; 3. separation chamber; 4. driving motor; 5. transmission assembly; 6. booster chamber; 7. feed check valve; 8. piston rod; 9. connecting frame; 10. support frame; 11. eccentric wheel; 12. connecting rod; 13. limit frame; 14. cavity; 15. discharge check valve; 16. connecting groove; 17. sealing cover; 18. observation window; 19. inspection cover; 20. drainage groove; 21. separation membrane. DETAILED DESCRIPTION
[0021] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0022] Embodiment 1
[0023] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, an embodiment of the utility model is: a vacuum dehydration device for cream production, comprising a base 1, a driving motor 4 is fixedly installed on one side of the rear end of the upper surface of the base 1, a transmission assembly 5 is installed at the front end of the driving motor 4, a booster bin 6 is fixedly installed on one side of the front end of the upper surface of the base 1, a cavity 14 is provided in the booster bin 6, and a separation bin 3 is installed at the rear end of the booster bin 6;
[0024] The transmission assembly 5 includes a support frame 10, the front end of the driving motor 4 passes through the support frame 10 and is driven by an eccentric wheel 11, a connecting rod 12 is provided on the front of the eccentric wheel 11, a piston rod 8 is movably installed on one end of the connecting rod 12 away from the eccentric wheel 11, and the end of the piston rod 8 away from the connecting rod 12 extends into the cavity 14;
[0025] A communication groove 16 is provided in the pressurizing chamber 6 at the top of the cavity 14 , and the rear end of the communication groove 16 is connected to the separation chamber 3 via a discharge one-way valve 15 .
[0026] Specifically, the driving motor 4 in the device is directly connected to the eccentric wheel 11 through the transmission assembly 5. This design ensures that the power of the motor can be efficiently and stably transmitted to the piston rod 8, thereby realizing the pressurization of the cream raw materials. The movement of the piston rod 8 in the cavity 14 realizes the continuous pressurization of the cream raw materials, avoiding the stagnation time in the traditional intermittent dehydration process, thereby improving the production efficiency. The design of the connecting groove 16 enables smooth material exchange between the cavity 14 and the separation chamber 3. The continuous flow of the cream raw materials can be realized through the control of the discharge check valve 15. The design of the separation chamber 3 allows The cream achieves separation of the oil phase and the water phase, and through the control of the automated high-pressure valve 2, the oil phase can be automatically discharged, thereby improving the dehydration efficiency. Since the entire dehydration process is continuous, production interruptions due to periodic stagnation are reduced, thereby reducing the production cycle, speeding up production, and improving overall production efficiency. Various components of the equipment, such as the drive motor 4, eccentric wheel 11, piston rod 8, etc., are designed to be easy to monitor and maintain, which helps to discover and solve problems in a timely manner, reduce unexpected downtime in production, and achieve the effect of improving the dehydration efficiency of the cream and ensuring strong process continuity.
[0027] Embodiment 2
[0028] In order to achieve continuous pressurization of the cream, Figure 2 and Figure 3 As shown, in this embodiment, a connecting frame 9 is fixedly installed on one side of the boosting bin 6, a feed check valve 7 is connected and installed on the other side of the boosting bin 6, and a sealing cover 17 is fixedly installed on the top of the boosting bin 6. The upper end surface of the sealing cover 17 is grooved and embedded with an observation window 18. In the design, a connecting frame 9 is fixedly installed on one side of the boosting bin 6, which not only enhances the stability of the overall structure, but also provides additional support points, which is conducive to the installation and fixation of subsequent components. At the same time, a feed check valve 7 is cleverly set on the other side of the boosting bin 6 to ensure the one-way flow of the cream raw materials and avoid backflow and contamination. The top sealing cover 17 is designed with an observation window 18, so that the operator can intuitively monitor the dehydration process, adjust parameters in time, and ensure product quality.
[0029] Furthermore, a limiting frame 13 is fixedly installed on the side of the connecting frame 9 away from the boosting chamber 6, and the limiting frame 13 is movably mounted on the connection between the connecting rod 12 and the piston rod 8. In the design, the limiting frame 13 is fixedly installed on the side of the connecting frame 9 away from the boosting chamber 6, and the limiting frame 13 is movably mounted on the connection between the connecting rod 12 and the piston rod 8. Such a limiting mechanism not only ensures the precise control of the piston rod 8 during the movement, but also effectively prevents equipment damage or precision reduction caused by excessive movement, thereby improving the reliability and durability of the entire device.
[0030] Further, the cavity 14 runs through the pressurization chamber 6. One side of the cavity 14 is sealed by the connecting frame 9, and the other side of the cavity 14 is sealed by the cover body. The feed check valve 7 is connected and installed on the cover body and is connected to the cavity 14. In the design, the cavity 14 runs through the pressurization chamber 6. One side of the cavity 14 is sealed by the connecting frame 9, and the other side of the cavity 14 is sealed by the cover body. This sealing structure not only ensures the vacuum environment inside the cavity 14, but also realizes the precise control of the efficient loading of raw materials through the connected installation of the feed check valve 7, improving the production efficiency.
[0031] Embodiment Three
[0032] In order to achieve continuous oil-water separation of the pressurized cream, as Figure 3 and Figure 4 shown, in this embodiment, a separation membrane 21 is movably inserted into the separation chamber 3. The front end of the separation chamber 3 is opened and connected to the discharge check valve 15. The bottom end of the separation chamber 3 is connected to a drainage trough 20. The bottom end of the drainage trough 20 is connected to the waste water tank through a flange. The rear end of the separation chamber 3 is fixedly installed with an inspection cover 19. An opening is made on the inspection cover 19 and a high-pressure valve 2 is connected and installed. In the design, the separation membrane 21 is innovatively movably inserted inside the separation chamber 3. This design allows for more efficient substance separation, ensuring that the active ingredients and moisture in the cream can be effectively separated. The design of the high-pressure valve 2 at the rear end and the drainage trough 20 at the bottom end realizes the separation and discharge of the oil phase and the water phase. The connection and installation with the waste water tank ensure the environmental protection treatment of the waste water, and through the waste water tank, the inside of the separation chamber 3 is sealed and has the condition of pressurization.
[0033] Further, through holes are provided inside the separation membrane 21. The discharge check valve 15 and the high-pressure valve 2 are connected and installed through the through holes inside the separation membrane 21. In the design, the through holes inside the separation membrane 21 enable the discharge check valve 15 and the high-pressure valve 2 to be internally connected through the through holes. This design not only simplifies the internal structure, but also reduces the use of pipelines and connectors, reduces the risk of leakage, and improves the sealing performance and stability of the entire system.
[0034] Further, the communication groove 16 is designed with a three-way groove structure. The communication groove 16 is connected and sealed with the opposite side of the cavity 14 through the upper and lower ends of the sealing cover 17. The rear end of the communication groove 16 is threadedly connected to the discharge check valve 15. In the design, the communication groove 16 is designed with a three-way groove structure. This structure connects the sealing cover 17 and the opposite side of the cavity 14 through the upper and lower ends, facilitating observation through the observation window 18, and the rear end is threadedly connected to the discharge check valve 15. Such a design not only improves the communication efficiency, but also provides better sealing performance through the threaded connection, ensuring the smooth and efficient dehydration process.
[0035] When the utility model is in use, ensure that all components are correctly installed and fixed in place. Add the cream raw material into the cavity 14 through the feed check valve 7 of the pressurization chamber 6. Start the drive motor 4, and the drive motor 4 drives the eccentric wheel 11 in the transmission component 5 to rotate. The rotation of the eccentric wheel 11 drives the piston rod 8 to move in the cavity 14 through the connecting rod 12, thereby pressurizing the cream raw material in the cavity 14. Observe the state of the cream raw material through the observation window 18, and adjust the running speed or stop of the drive motor 4 as needed to control the dehydration process. The pressurized cream enters the separation chamber 3 through the discharge check valve 15 provided on the communication groove 16. In the separation chamber 3, the oily components and water in the cream are separated through the separation membrane 21 by high pressure. The separated water flows into the waste water tank through the drain groove 20, and the oily components are discharged through the high-pressure valve 2 when the pressure is sufficient. After production, if necessary, open the inspection cover 19 to replace the separation membrane 21.
[0036] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic characteristics of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present utility model. Any reference signs in the claims should not be regarded as limiting the claims involved.
Claims
1. A vacuum dehydration device for producing facial cream, comprising a base (1), a driving motor (4) fixedly mounted on one side of the rear end of the upper surface of the base (1), a transmission assembly (5) installed at the front end of the driving motor (4), a pressurizing chamber (6) fixedly mounted on one side of the front end of the upper surface of the base (1), a cavity (14) being provided in the pressurizing chamber (6), a separation chamber (3) being connected and installed at the rear end of the pressurizing chamber (6), characterized in that: The transmission assembly (5) comprises a support frame (10), the front end of the drive motor (4) passes through the support frame (10) and is transmission-mounted with an eccentric wheel (11), a connecting rod (12) is provided on the front face of the eccentric wheel (11), a piston rod (8) is movably mounted on one end of the connecting rod (12) away from the eccentric wheel (11), and the end of the piston rod (8) away from the connecting rod (12) extends into the cavity (14); A communication groove (16) is provided in the pressurizing chamber (6) at the top of the cavity (14), and the rear end of the communication groove (16) is connected to the separation chamber (3) via a discharge one-way valve (15).
2. A vacuum dehydration device for cream production according to claim 1, characterized in that: A connecting frame (9) is fixedly installed on one side of the boosting bin (6), a feed check valve (7) is installed on the other side of the boosting bin (6), and a sealing cover (17) is fixedly installed on the top of the boosting bin (6). The upper end surface of the sealing cover (17) is grooved and embedded with an observation window (18).
3. A vacuum dehydration device for cream production according to claim 2, characterized in that: A limiting frame (13) is fixedly mounted on the side of the connecting frame (9) facing away from the boosting chamber (6), and the limiting frame (13) is movably mounted on the connection between the connecting rod (12) and the piston rod (8).
4. A vacuum dehydration device for cream production according to claim 1, characterized in that: The cavity (14) passes through the booster bin (6); one side of the cavity (14) is sealed by a connecting frame (9); the other side of the cavity (14) is sealed by a cover body; and a feed check valve (7) is installed in communication with the cover body and in communication with the cavity (14).
5. A vacuum dehydration device for cream production according to claim 1, characterized in that: A separation membrane (21) is movably inserted in the separation bin (3); a hole is opened at the front end of the separation bin (3) and is connected to and installed in communication with a discharge one-way valve (15); a drainage trough (20) is connected and installed at the bottom end of the separation bin (3); the bottom end of the drainage trough (20) is connected and installed in communication with a waste water tank via a flange; an inspection cover (19) is fixedly installed at the rear end of the separation bin (3); a hole is opened on the inspection cover (19) and is connected and installed with a high-pressure valve (2).
6. A vacuum dehydration device for producing facial cream according to claim 5, characterized in that: A through hole is provided on the inner side of the separation membrane (21), and the discharge one-way valve (15) and the high-pressure valve (2) are connected and installed through the through hole on the inner side of the separation membrane (21).
7. A vacuum dehydration device for producing facial cream according to claim 1, characterized in that: The connecting groove (16) adopts a three-way groove structure design. The connecting groove (16) is connected to the sealing cover (17) and the opposite side of the cavity (14) through the upper and lower ends. The rear end of the connecting groove (16) is threadedly connected to the discharge one-way valve (15).
Citation Information
Patent Citations
Vacuum dehydration equipment for face cream production
CN210740869U