Cosmetic material system spatial distribution reconstruction method and cosmetic prepared by same
By adjusting the air pressure, resonance intensity, and frequency of cosmetic materials through container variable acceleration translation, the problem of inconsistent distribution caused by traditional rotational shearing is solved, achieving efficient, uniform distribution and stable preparation of cosmetic materials, thereby improving product quality and production efficiency.
Patent Information
- Application Number
- CN202410306495.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-18
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2044-03-18
AI Technical Summary
Traditional methods of rotating and shearing distribution of cosmetic materials result in inconsistent particle distribution, requiring manual adjustment. Furthermore, the high evaporation rate of volatile substances makes it difficult to control the quality of the final cosmetic product.
By employing a container-based variable acceleration translation method, the spatial distribution of cosmetic material systems can be reconstructed by adjusting air pressure, resonance intensity, and resonance frequency. This avoids relying on the irregular structure of rotating devices and utilizes the inherent differences in the properties of the materials themselves for distribution adjustment.
It shortens the cosmetic preparation time, reduces the loss of volatile substances, lowers the risk of contamination, improves product uniformity and smoothness, and stabilizes viscosity and rheological parameters between processing batches.
Smart Images

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Figure BDA0004746024720000091
Abstract
Description
Technical Field
[0001] This invention relates to the field of cosmetic molding and preparation processes, and in particular to a method and application for reconstructing the spatial distribution of cosmetic material systems. Background Technology
[0002] Cosmetic materials are generally composed of different types of low-molecular-weight polymers, high-molecular-weight polymers, natural bioactive substances, mineral powders or granules, oils, water, etc. These substances are generally in different states of matter under certain conditions, such as solid and liquid. The cosmetic processing requires combining so many different types and states of substances in a certain spatial distribution to achieve specific physical effects and cosmetic efficacy.
[0003] Traditional cosmetic material distribution typically employs a rotational shearing method. This method uses a rotating device, such as a paddle, to add different materials together or sequentially into a container. The difference in distance between the materials and the center of the rotating device creates a shearing effect, transforming the spatial distribution of the materials from a separated to an interlaced and spaced-apart arrangement. Traditional cosmetic material distribution methods also include those without paddles. For example, multiple materials are added together or sequentially into a self-rotating container. Since the container itself is a dispensing device, the difference in distance between the materials and the container walls can similarly create a shearing effect, achieving a change in the spatial distribution pattern of the materials.
[0004] Chinese utility model patent CN216605085U discloses a cosmetic emulsifying pot, a representative piece of equipment in traditional cosmetic material processing, which embodies a method for reconstructing the distribution of cosmetic materials using rotational shearing. Rotational shearing is mainly applied in equipment such as mixers, homogenizers, dual-center centrifuges, and various combinations thereof. However, traditional rotational shearing distribution methods for cosmetic materials inevitably result in distribution differences related to the rotation center, leading to inconsistencies in the distribution patterns of different material particles. This inconsistency generally requires the artificial introduction of rotational shearing variation factors, such as multi-center rotation or irregular structures to generate turbulence for compensation. This compensation process is time-consuming and also results in a high evaporation rate of some volatile substances in the cosmetic material, making it difficult to control the quality of the final cosmetic product. Summary of the Invention
[0005] To address the shortcomings of existing technologies, this invention introduces a novel cosmetic material distribution method that does not rely on a rotating device. This method redistributes the materials within the container using a variable-acceleration translational motion. This method, independent of irregular internal structures of the device, relies solely on the differences in the inherent properties of the materials, such as density, viscosity, morphology, and particle size, to reconstruct the spatial distribution of cosmetic materials.
[0006] The objective of this invention is achieved through the following technical solution: a method for reconstructing the spatial distribution of a cosmetic material system, comprising the following steps:
[0007] S1. Add the cosmetic material to the distribution reconstruction device;
[0008] S2. Adjust the air pressure, resonance intensity, resonance frequency, and running time of the distribution reconstruction device to reconstruct the distribution of the cosmetic material;
[0009] S3. The container of the reconfiguration device rearranges the spatial distribution of different cosmetic materials in a periodic variable acceleration translational motion, wherein the variable acceleration translational motion includes any one or both of the changes in speed magnitude and speed direction.
[0010] Furthermore, the cosmetic material is one or more of the following states: liquid, solid, semi-solid, or supercritical, wherein the liquid state includes Newtonian fluids and non-Newtonian fluids.
[0011] Furthermore, in step S2, after calibrating the resonance frequency according to the input cosmetic material system type, the process parameters are stored, and then the resonance intensity is increased. The resonance frequency is determined by monitoring the resonance acceleration.
[0012] Furthermore, when the cosmetic material is a semi-solid cosmetic system, each time the resonant frequency is calibrated, the material state in the distribution reconstruction device is judged. If the material surface is flat, the stored process parameters are used to run directly according to the set time. If the material surface is still uneven, the stored process parameters are used to run for 2-5 minutes first, and then the resonant frequency is recalibrated. The material state in the distribution reconstruction device is judged until it is flat, and the stored process parameters are used to run according to the set time until the end.
[0013] Furthermore, when the cosmetic material is a semi-solid or solid cosmetic system, the steps for calibrating the resonance frequency are as follows: First, set the resonance intensity to 5-10%. Starting from 0, increase the resonance frequency in units of the original increase value X Hz. Pause for 3-8 seconds after each increase, and use an accelerometer to determine whether the resonance acceleration increases during the process. If it increases, continue increasing the resonance frequency by X Hz. If the resonance acceleration decreases during the process, return to the previous resonance frequency and increase the resonance frequency again in units of X / 2 Hz. If the resonance acceleration increases, decrease to X / 2n Hz and continue increasing the resonance frequency. If the resonance acceleration decreases, return to the previous resonance frequency and increase the resonance frequency again in units of X / 2n Hz, and so on, n = (1, 2, 3...) until the resonance frequency is accurate to 0.1 Hz. The original increase value is 5. <X<20。
[0014] Furthermore, the semi-solid cosmetics include creams, lotions, mud, and gels.
[0015] Furthermore, when the cosmetic material is a solid cosmetic system, the steps for calibrating the resonance frequency are as follows: The cosmetic material is loaded into the distribution reconstruction device, the device is immediately sealed and a vacuum is drawn, then the vacuum valve is closed. First, the resonance intensity is set to 5-10%. Starting from 0, the resonance frequency is increased in units of the original increase value X Hz. Each increase is paused for 3-8 seconds, and the resonance acceleration is checked using an acceleration sensor. If it increases, the resonance frequency is increased by X Hz. If the resonance acceleration decreases, the frequency is returned to the previous order resonance frequency, and the frequency is increased again in units of X / 2 Hz. If the resonance acceleration increases, the frequency is decreased to X / 2n Hz, and the frequency is increased again. If the resonance acceleration decreases, the frequency is returned to the previous order resonance frequency, and the frequency is increased again in units of X / 2n Hz. This process is repeated, with n = (1, 2, 3...), until the resonance frequency is accurate to 0.1 Hz. The original increase value is 3... <X<10。
[0016] Furthermore, the solid cosmetic system is composed of solid powdery substances containing trace amounts of liquid.
[0017] Further, the resonance intensity adjustment steps are as follows: increase the resonance intensity at 5% intervals, pause for 10 seconds after each increase, if the acceleration increase is greater than 5, continue to increase the resonance intensity, if the acceleration increase is less than 5, return to the previous step and increase the resonance intensity by 4%, and so on until the acceleration adjustment value is accurate to 1, then stop increasing the resonance intensity, store the current process parameters, use the stored process parameters to run directly for 5 minutes according to the set time, then adjust the resonance intensity again through multi-segment settings according to the above adjustment method and run again for 5 minutes under the newly determined resonance conditions, the number of segments is 2-4, and run according to the set segments until the end.
[0018] The second objective of this invention is to provide cosmetics prepared using the above-mentioned method for reconstructing the spatial distribution of cosmetic material systems.
[0019] The cosmetics include one or more of the following: gel, face cream, foundation, eyeshadow, and blush.
[0020] In summary, compared with the prior art, the present invention has the following beneficial effects:
[0021] (1) This invention redistributes the material in the container by using the variable acceleration translation method of the container. It is applied to the field of cosmetic preparation. On the one hand, it saves time in the cosmetic preparation process. On the other hand, it avoids the excessive shearing that is easy to cause by using the traditional rotation shearing method, which damages the structure of the material, causes irreversible viscosity loss, or even changes the rheological properties of the system.
[0022] (2) In the preparation method of the present invention, the temperature, air pressure, resonance intensity and resonance frequency of the distribution reconstruction device are adjusted according to different cosmetic material states. The steps of adjusting the resonance frequency and resonance intensity are optimized, which greatly shortens the adjustment time and accuracy. By optimizing the adjustment of resonance parameters, the cosmetic material can achieve a better distribution effect in a short time, so as to reduce the volatilization of the material and avoid the defects of drying and uneven coloring in the final product.
[0023] (3) The product prepared by the method of the present invention can be added in one go and is stirred in a non-contact manner, which greatly reduces the risk of cosmetic contamination.
[0024] (4) The product prepared by the method of the present invention has a more uniform material and product because the material space is redistributed in an integral manner, and the distribution effect of each point in the container is almost the same. The product has a more delicate feel.
[0025] (5) The product prepared by the method of the present invention has a more stable process and a higher consistency in state at all locations in space. Therefore, the dispersion of viscosity or rheological parameters between processing batches is smaller. Detailed Implementation
[0026] The following embodiments will help those skilled in the art to further understand the present invention, but do not limit the present invention in any way. For those skilled in the art, several changes and modifications can be made without departing from the concept of the present invention, and these all fall within the scope of protection of the present invention. The endpoints and any values of the ranges disclosed herein are not limited to the precise ranges or values; these ranges or values should be understood to include values close to these ranges or values. For numerical ranges, the endpoint values of various ranges, the endpoint values of various ranges and individual point values, and individual point values can be combined with each other to obtain one or more new numerical ranges. These numerical ranges should be considered as specifically disclosed herein. The present invention will be described in detail below with reference to specific embodiments:
[0027] The main types of cosmetic materials include cosmetic systems composed of liquid substances, high-temperature liquid cosmetic systems composed of waxes and other solid and liquid substances, powder cosmetic systems composed of solid powder substances containing trace amounts of liquid, and semi-solid cosmetic systems composed of solid and liquid substances, such as creams, lotions, clays, and gels.
[0028] For cosmetic systems composed of liquid substances, when adjusting the resonance frequency and intensity using a distribution reconstruction device, the material is loaded into the device, the resonance intensity is set to 20%, and the device's automatic frequency sweep mode is used to directly scan the frequency from 0. The scanning time is preferably set to 0.5 to 10 minutes. Once the device displays that the scanning frequency change has dropped below 1 Hz, the resonance frequency is recorded, and the scanning mode is turned off. Then, based on the recorded resonance frequency, the resonance intensity is increased at 5% intervals, with a 10-second pause after each increase. If the acceleration increase is greater than 5, the resonance intensity continues to be increased until the acceleration rises below 5, at which point the resonance intensity is no longer increased. The current process parameters are stored, and then the process is run directly according to the set time until completion.
[0029] For high-temperature liquid cosmetic systems composed of waxes and other solid and liquid substances, when adjusting the resonance frequency and intensity using a distribution reconstruction device, the device is preheated to the set temperature before the material is loaded into the device and allowed to stand at a constant temperature until the material is fully heated. Then, the resonance intensity is set to 5%, and the device's automatic frequency sweep mode is used to directly scan the frequency from 0, with a preferred scanning time of 0.5–10 minutes. Once the device displays that the frequency change has dropped below 1 Hz, the resonance frequency is recorded, and the scanning mode is turned off. Then, using the recorded resonance frequency, the resonance intensity is increased in 5% increments, pausing for 10 seconds after each increase. If the acceleration increase is greater than 5%, the resonance intensity continues to increase; if the acceleration increase is less than 5%, the process reverts to the previous step, increasing the resonance intensity by 4%, and so on, until the acceleration adjustment value is accurate to 1, at which point the resonance intensity is no longer increased. The current process parameters are stored, and then the process is run directly according to the set time until completion.
[0030] For semi-solid cosmetic systems composed of solid and liquid substances, such as creams, lotions, mud, and gels, the adjustment method is as follows: Load the material into the device, set the resonance intensity to 5-10%, and increase the resonance frequency in 10Hz increments using a binary method, pausing for 5 seconds after each increase. If the resonance acceleration increases during this process, continue increasing the resonance frequency by 10Hz; if the resonance acceleration decreases, return to the previous resonance frequency and increase the resonance frequency again in 5Hz increments. If the acceleration increases, decrease to 2.5Hz and continue increasing the resonance frequency; if the acceleration decreases, return to the previous resonance frequency and increase the resonance frequency again in 2.5Hz. Continue this process until the resonance frequency is accurate to 0.1Hz. When dividing the previous adjustment increment, if there are decimals that cannot be displayed, round down to the nearest integer. Store the current process parameters, stop the machine, and observe the material state inside the container. If the material surface is smooth, reseal the container and run directly according to the set time using the stored process parameters. If the material surface is still uneven, run the process for 5 minutes using the stored process parameters, then open the container and check the material surface until it is smooth. Increase the resonance intensity in 5% increments, pausing for 10 seconds after each increase. If the acceleration increase is greater than 5, continue increasing the resonance intensity; if the acceleration increase is less than 5, revert to the previous step and increase the resonance intensity by 4%, and so on, until the acceleration adjustment value is accurate to 1. Stop increasing the resonance intensity, store the current process parameters, and run the process for 5 minutes directly according to the set time using the stored process parameters. Then, adjust the resonance intensity again using the above adjustment method and run it for 5 minutes again under the newly determined resonance conditions. The number of segments should be 2-4, and run the process in segments until the end.
[0031] For powder cosmetic systems composed of solid powdery substances containing trace amounts of liquid, such as powders, granules, or powder blocks, the device is preheated to the set temperature. The material is then loaded into the device, immediately sealed, and a vacuum is applied, followed by closing the vacuum valve. The resonance intensity is then set to 5%, and the resonance frequency is increased in 5 Hz increments, pausing for 5 seconds after each increase. If the resonance acceleration increases during this process, the frequency is increased by another 5 Hz; if the resonance acceleration decreases, the frequency is reduced to the previous level of 2.5 Hz before being increased again. Once the frequency step is adjusted to 2.5 Hz, the adjustment continues using a binary method. If increasing by 2.5 Hz increases the acceleration, the frequency is increased by another 2.5 Hz; if increasing by 2.5 Hz decreases the acceleration, the frequency is reduced to the previous level of 1.2 Hz before being increased. When dividing the previous adjustment increment, any decimals that cannot be displayed are rounded down. This process is repeated until the resonance frequency is accurate to 0.1 Hz. Increase the resonance intensity in 5% increments, pausing for 10 seconds after each increase. If the acceleration increase is greater than 5%, continue increasing the resonance intensity; if the acceleration increase is less than 5%, revert to the previous step and increase the resonance intensity by 4%. Continue this process until the acceleration adjustment value is accurate to 1. Stop increasing the resonance intensity and save the current process parameters. Use the saved process parameters to run for 5 minutes according to the set time. Then, adjust the resonance intensity again using the above adjustment method and run for 5 minutes again under the newly determined resonance conditions. The number of segments is 2-4. Run according to the set segments until the end.
[0032] Example 1
[0033] The spatial distribution of a serum product was reconstructed using the HAM500 acoustic resonance device. 200g of the serum product was randomly placed in a cylindrical stainless steel container within the HAM500 device. After sealing the container, an atmospheric atmosphere and a vacuum of 0.1 atmospheres were established, and the valve was closed. The temperature was set to room temperature (25°C). The resonance intensity was set to 20%. The device's automatic frequency sweep mode was used to directly scan the frequency from 0. The preferred scanning time was 5 minutes. Once the device displayed that the frequency change had decreased to below 1 Hz, the resonance frequency was recorded as 50.1 Hz. The resonance intensity was increased in 5% increments, with a 10-second pause after each increase. If the acceleration increased by more than 5, the resonance intensity was increased further until the acceleration decreased to less than 5, at which point the intensity was no longer increased. At a resonance intensity of 25%, the resonance acceleration was 80 gravitational accelerations. The resonance time was set to 5 minutes. After resonance, a serum product with a uniform spatial distribution of various materials was obtained.
[0034] Example 2
[0035] The spatial distribution of an eyeliner product was reconstructed using a HAM500 acoustic resonance device. 200g of the eyeliner product was randomly placed in a cylindrical stainless steel container within the HAM500 device. After sealing the container, an atmospheric atmosphere and a vacuum of 0.1 atmospheres were established, and the valve was closed. The device was preheated to a set temperature of 85°C, and the resonance intensity was set to 5%. The device's automatic frequency sweep mode was used to directly scan the frequency from 0, with a preferred scanning time of 5 minutes. Once the device displayed that the frequency change had decreased to below 1 Hz, the resonance frequency was recorded as 50.9 Hz. The resonance intensity was increased in 5% increments, with a 10-second pause after each increase. If the acceleration increase was greater than 5, the resonance intensity was increased further until the acceleration decreased to less than 5, at which point the intensity was no longer increased. A resonance intensity of 25% resulted in a resonance acceleration of 60 gravitational accelerations. The resonance time was set to 5 minutes. After resonance, a uniformly distributed eyeliner product was obtained.
[0036] Example 3
[0037] The spatial distribution of a loose powder product was reconstructed using a HAM500 acoustic resonance device. 200g of the loose powder product was randomly placed in a jacketed stainless steel container within the HAM500 device. After sealing the resonance container, an atmospheric atmosphere and a vacuum of 0.1 atmospheres were established, and the gas valve was closed. The temperature was set to 85℃, and the resonance intensity was set to 5%. Starting from 0, the resonance frequency was increased in 5Hz increments, pausing for 5 seconds after each increase. If the resonance acceleration increased during this process, the frequency was increased by another 5Hz; if the resonance acceleration decreased, the frequency was reduced to the previous level of 2.5Hz before being increased again. Once the frequency step was adjusted to 2.5Hz, the frequency was adjusted using a binary method. If increasing by 2.5Hz increased the acceleration, the frequency was increased by another 2.5Hz; if increasing by 2.5Hz decreased the acceleration, the frequency was reduced to the previous level of 1.2Hz before being increased. When dividing the previous adjustment increment, any decimals that could not be displayed were rounded down to the nearest integer. This process is repeated until the resonant frequency is accurate to 0.1 Hz. The resonant frequency is then set to 50.7 Hz. The resonant intensity is increased in 5% increments, with a 10-second pause after each increase. If the acceleration increase is greater than 5, the resonant intensity is increased further; if the acceleration increase is less than 5, the intensity is reduced to 4%, and so on, until the acceleration adjustment value is accurate to 1. The resonant intensity is then stopped. The current process parameters are stored. After evacuation, the vacuum valve is closed. The stored process parameters are used to run the system for 5 minutes according to the set time. Then, the system is adjusted again using the above method and run for another 5 minutes under the newly determined resonant conditions. This multi-segment parameter setting is repeated until the end, with 2 to 4 segments. The resonant intensity is set to 28% to obtain 80 gravitational accelerations, and the resonant time is set to 5 minutes. After resonance, a uniformly distributed powder body of various materials is obtained.
[0038] Example 4
[0039] The spatial distribution of a lip gloss product was reconstructed using the HAM100 acoustic resonance device. 30g of the lip gloss product material was randomly placed in a stainless steel container with a hemispherical bottom in the HAM100 device. After sealing the resonance container, an atmospheric atmosphere and a vacuum of 0.1 atmospheres were established, and the valve was closed. The temperature was 65℃, and the resonance intensity was set to 5%. Starting from 0, the resonance frequency was increased in 10Hz increments using a binary method, pausing for 5 seconds after each increase. If the resonance acceleration increased during this process, the frequency was increased by another 10Hz; if the resonance acceleration decreased, the frequency was returned to the previous order and increased again in 5Hz increments. If the acceleration increased, the frequency was reduced to 2.5Hz and increased again; if the acceleration decreased, the frequency was returned to the previous order and increased again in 2.5Hz increments. This process continues until the resonant frequency is accurate to 0.1 Hz. During this process, when dividing the previous adjustment increment, if any decimals cannot be displayed, round down to the nearest integer. Stop the machine and observe the material state inside the container. If the material surface is smooth, reseal the container and run directly according to the set time using the stored process parameters. If the material surface is still uneven, run for 5 minutes using the stored process parameters, then open the container and check the material surface until it is smooth. Record the resonant frequency as 60.6 Hz, then increase the resonant intensity in 5% increments, pausing for 10 seconds after each increase. If the acceleration increase is large... If the acceleration is below 5, continue to increase the resonance intensity until the acceleration drops below 5. Then stop increasing the resonance intensity and store the current process parameters. After vacuuming, close the vacuum valve and run for 5 minutes using the stored process parameters according to the set time. Then adjust again according to the above adjustment method and run for 5 minutes again under the newly determined resonance conditions. Run in segments according to the set parameters in this multi-segment setting until the end. The number of segments is 2 to 4. Set the resonance intensity to 20% to obtain 70 gravitational accelerations. Set the resonance time to 10 minutes. After the resonance ends, a lipstick material with uniform spatial distribution of various materials is obtained.
[0040] Comparative Example 1-1
[0041] The spatial distribution of a serum product was reconstructed using the HAM500 acoustic resonance device. 200g of the serum product was randomly placed in a cylindrical stainless steel container within the HAM500 device. After sealing the container, an atmospheric atmosphere and 1 atmosphere of pressure were established, and the valve was closed. The temperature was set to room temperature (25°C), the resonance frequency to 50.1Hz, and the resonance intensity to 25%, resulting in a resonance acceleration of 25–40 gravitational accelerations. The resonance time was set to 5 minutes. After resonance, a relatively uniform spatial distribution of the serum product was obtained, with noticeable acceleration fluctuations observed during the resonance process.
[0042] Comparative Example 3-1
[0043] The spatial distribution of a loose powder product was reconstructed using a HAM500 acoustic resonance device. 200g of the loose powder product was randomly placed in a jacketed stainless steel container within the HAM500 device. After sealing the resonance container, an atmospheric vacuum of 0.1 atmospheres was established, and the gas valve was closed. The temperature was set to 90℃, the resonance frequency to 50.7Hz, and the resonance intensity to 30%, resulting in a resonance acceleration of 40 gravitational accelerations. The resonance time was set to 5 minutes. After the resonance ended, a spatially uniformly distributed loose powder material could not be obtained.
[0044] Comparative Example 3-2
[0045] Using traditional rotary mixing equipment, the spatial distribution of a loose powder product was reconstructed. 200g of loose powder was randomly placed in a container, sealed, and then mixed at an atmospheric vacuum of 0.1 atmospheres, a temperature of 65℃, and a time of 5 minutes. After mixing, a uniformly distributed loose powder could not be obtained.
[0046] Comparative Example 3-3
[0047] The spatial distribution of a loose powder product was reconstructed using a HAM500 acoustic resonance device. 200g of the loose powder product was randomly placed in a jacketed stainless steel container within the HAM500 device. The resonance container temperature was set to 65℃, the pressure to 1 atm, the resonance frequency to 50.7Hz, and the resonance intensity to 28% (resulting in 80 gravitational accelerations). The resonance time was set to 5 minutes. After resonance, a relatively uniform spatial distribution of the various materials was obtained in the loose powder.
[0048] Comparative Example 4-1
[0049] The spatial distribution of materials in a lip gloss product was reconstructed using the HAM100 acoustic resonance device. 30g of lip gloss material was randomly placed in a stainless steel container with a hemispherical bottom in the HAM100 device. After sealing the resonance container, an atmospheric atmosphere and a vacuum of 0.1 atmospheres were established, then the valve was closed. The temperature was set to 65℃, the resonance frequency to 60.6Hz, and the resonance intensity to 20%, resulting in a resonance acceleration of 70 gravitational accelerations. The resonance time was set to 5 minutes. After resonance, a lip gloss material with a uniform spatial distribution of various materials was obtained.
[0050] Table 1. Product performance of Examples 1-4 and Comparative Examples
[0051]
[0052]
[0053] Specific embodiments of the present invention have been described above. It should be understood that the present invention is not limited to the specific embodiments described above, and those skilled in the art can make various changes or modifications within the scope of the claims, which do not affect the essence of the present invention. Unless otherwise specified, the embodiments and features described in this application can be arbitrarily combined with each other.
Claims
1. A method of reconstructing the spatial distribution of a cosmetic material system, characterized by, The method comprises the following steps: S1, adding the cosmetic material into a distribution reconfiguration device; S2, adjusting one or more parameters of the distribution reconfiguration device, such as air pressure, resonance intensity, resonance frequency and running time, to reconfigure the distribution of the cosmetic material, wherein the step of adjusting comprises adjusting the resonance frequency of the distribution reconfiguration device; S3, the container of the distribution reconfiguration device reconfigures the spatial distribution of different cosmetic materials in a periodically accelerated translational motion mode, wherein the accelerated translational motion comprises any one or both of a change in speed magnitude and a change in speed direction; After calibrating the resonance frequency according to the input cosmetic material system category, the process parameters are stored, and the resonance intensity is increased, wherein the resonance frequency is determined by monitoring the resonance acceleration. The cosmetic material is a semi-solid cosmetic system or a solid cosmetic system, and the step of calibrating the resonance frequency comprises the following steps: firstly, setting the resonance intensity to 5-10%, starting from 0 and increasing the resonance frequency by an original increment X hz, stopping for 3-8 seconds after each increase, determining whether the resonance acceleration increases during the process by using an acceleration sensor, continuing to increase the resonance frequency by X hz if the resonance acceleration increases, returning to the previous resonance frequency if the resonance acceleration decreases, increasing the resonance frequency by X / 2 hz again, decreasing the resonance frequency by X / 2n hz if the resonance acceleration increases, returning to the previous resonance frequency if the resonance acceleration decreases, and increasing the resonance frequency by X / 2n hz again, and so on, n=(1, 2, 3,...), until the resonance frequency is accurate to 0.1 hz, and the original increment 5<X<20.
2. The cosmetic material system spatial distribution reconstruction method according to claim 1, characterized by, The semi-solid cosmetic comprises any one of a cream, a paste and a gel.
3. The method of claim 1, wherein the method further comprises: The cosmetic material is a solid cosmetic system, and the step of calibrating the resonance frequency comprises the following steps: filling the cosmetic material into the distribution reconfiguration device, immediately sealing the device and vacuumizing, then closing the vacuum valve, firstly setting the resonance intensity to 5-10%, starting from 0 and increasing the resonance frequency by an original increment X hz, stopping for 3-8 seconds after each increase, determining whether the resonance acceleration increases during the process by using an acceleration sensor, continuing to increase the resonance frequency by X hz if the resonance acceleration increases, returning to the previous resonance frequency if the resonance acceleration decreases, increasing the resonance frequency by X / 2 hz again, decreasing the resonance frequency by X / 2n hz if the resonance acceleration increases, returning to the previous resonance frequency if the resonance acceleration decreases, and increasing the resonance frequency by X / 2n hz again, and so on, n=(1, 2, 3,...), until the resonance frequency is accurate to 0.1 hz, and the original increment 5<X<10. The solid cosmetic system is composed of a solid powder substance with a trace amount of liquid.
4. The method of claim 1, wherein, 5. The method of claim 1, wherein, The resonance intensity adjustment step is: increasing the resonance intensity by 5% at intervals, stopping for 10 seconds after each increase, if the acceleration increase is greater than 5, continue to increase the resonance intensity, if the acceleration increase is less than 5, return to the last step and increase the resonance intensity by 4%, and so on until the acceleration adjustment value is accurate to 1%, no longer increase the resonance intensity, store the current process parameters, directly run for 5 minutes according to the set time using the stored process parameters, then adjust the resonance intensity by multiple segments according to the above adjustment step and run for 5 minutes again under the newly determined resonance conditions, the number of segments is 2-4, run according to the set segment until the end.
6. A cosmetic prepared by the method of spatial distribution reconstruction of a cosmetic material system according to any one of claims 1-5.
Citation Information
Patent Citations
Cosmetic emulsifying pot
CN216605085U
Resonant blending method and resonant blending equipment of starting mix agent
CN109939600A