Botanical cosmetic quality detection system and detection method thereof
By designing a plant-source cosmetics quality detection system including a constant temperature chamber and a laser particle size analyzer, the problem of difficulty in detecting the quality of plant-source cosmetics under different environmental conditions in the prior art is solved, and efficient and accurate automated detection is achieved.
Patent Information
- Application Number
- CN202510244300.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-05-27
AI Technical Summary
The existing cosmetic quality testing system is difficult to effectively detect the quality of plant-source cosmetics under different environmental conditions, especially in high or low temperature environments, and it is difficult to detect the particle size distribution of particles in the emulsified system.
A plant-source cosmetic quality detection system is designed, including a constant temperature chamber and a measuring instrument, which realizes the temperature regulation of cosmetic samples through the constant temperature chamber, and uses conveying components and laser particle size analyzer for automated detection to reduce human intervention.
It realizes efficient quality inspection under different environmental conditions to ensure that cosmetics can still be accurately tested in high or low temperature environments, and reduces the possibility of human operational errors through automated inspection.
Smart Images

Figure CN120044189A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cosmetics quality detection, and more specifically, to a plant-derived cosmetics quality detection system and its detection method. Background Art
[0002] In the cosmetics industry, with consumers' increasing pursuit of natural, healthy, and safe products, plant-derived cosmetics have gradually become the mainstream trend in the market. Such cosmetics mainly contain plant extracts and have the advantages of being mild, low-irritating, and environmentally friendly, and are deeply loved by consumers. However, the complexity of plant-derived cosmetics also brings challenges to quality control; Chinese Publication No.: CN118759211B discloses a cosmetics quality detection system, including an installation platform for providing a stable installation position for other mechanisms, a conveying mechanism fixedly connected to the upper surface of the installation platform, a sampling driving mechanism disposed in the middle of the conveying mechanism, a sampling mechanism fixedly connected to the front side of the sampling driving mechanism, a base mechanism fixedly connected to the right side of the installation platform, a clamping driving mechanism fixedly connected to the right side of the lifting transmission mechanism, an injection mechanism, a detection mechanism disposed on the left side of the lifting transmission mechanism, and a control mechanism disposed on the front upper surface of the base mechanism, which realizes the purpose of automatic operation through user settings and built-in programs. The present invention is provided with a detection mechanism that can automatically perform centrifugal dispersion treatment on samples and use a spectral detector for spectral analysis, and can quickly evaluate whether a cosmetics sample meets the quality standards; Although the above patent can quickly evaluate whether a cosmetics sample meets the quality standards by using a conveying mechanism, a sampling mechanism, a detection mechanism, and a control mechanism, considering the excessive application scenarios of cosmetics, not only the safety issue needs to be considered, but also the application in different scenarios needs to be ensured, such as the use situation in high-temperature or low-temperature environments and the detection of the particle size distribution of particles in the emulsion system. If the particle size is too large, it will cause the emulsion to quickly stratify or sediment, shortening its shelf life; In view of this, we propose a plant-derived cosmetics quality detection system and its detection method. Summary of the Invention
[0003] The purpose of the present invention is to provide a plant-derived cosmetics quality detection system and its detection method to solve the problems raised in the above background art.
[0004] To achieve the above object, on the one hand, the present invention provides a quality detection system for plant-derived cosmetics, including a constant temperature chamber and a measuring device. An inlet is provided on one side of the constant temperature chamber, and an outlet is provided on the side of the constant temperature chamber away from the inlet. A conveying component for conveying cosmetic detection samples is arranged in the constant temperature chamber. The conveying component includes a turntable component for conveying to a specified position, and a conveying table for detecting cosmetics is fixedly connected in the constant temperature chamber. On the side of the outlet of the constant temperature chamber, a placement column for receiving the cosmetics after detection is provided, and a placement table is fixedly connected to the top of the placement column. The conveying component includes a conveying cylinder, the conveying cylinder is fixedly connected to the inner bottom wall of the constant temperature chamber, a fixed table is fixedly connected to the inner side of the conveying cylinder, the turntable component is arranged at the bottom of the fixed table, and a rotating table is rotatably connected to the top of the fixed table. On the top of the conveying table, a support plate and a placement ring are fixedly connected. A support frame is fixedly connected to the top of the conveying table. On one side of the placement ring, an extension rod is fixedly connected to the support frame. The bottom of the extension rod is fixedly connected to an electric sliding rail through an electric telescopic rod. A sliding plate is slidably connected to the bottom of the electric sliding rail, and a laser particle size analyzer is fixedly connected to the bottom of the middle end of the sliding plate.
[0005] Preferably, a plurality of first rotating rods are fixedly connected to the peripheral position of the top of the fixed table. A second rotating rod is fixedly connected to the bottom of the rotating table. The second rotating rod penetrates the fixed table, and a first gear is fixedly connected to the top of the first rotating rod away from the rotating table.
[0006] Preferably, the turntable component includes a first turntable, the first turntable is fixedly connected to one end of the second rotating rod away from the rotating table. A plurality of first arched holes are formed on the surface of the first turntable. The turntable component includes a second turntable. A convex column is fixedly connected to the peripheral position of the top of the second turntable. A limiting disk is fixedly connected to the center position of the top of the second turntable. A motor is fixedly connected to the bottom of the second turntable, and the motor is fixedly connected to the inner bottom wall of the conveying cylinder.
[0007] Preferably, the diameter of the convex column is matched with the width of the first arched hole, and the convex column is slidably connected in the first arched hole.
[0008] Preferably, sprockets are arranged on the outer walls of the two second gears. The second gears are meshed with the sprockets, the sprockets are meshed with the first gears, and a first sliding block is fixedly connected to the top of the sprockets.
[0009] Preferably in the present invention, the inside of the rotating table is in a hollow shape. A plurality of strip-shaped holes are formed in the outer wall of the rotating table. A third rotating rod is fixedly connected to the top of the rotating table, and a transmission belt is sleeved on the outer wall of the upper end of the third rotating rod.
[0010] Preferably in the present invention, a slide rail is rotatably connected inside the rotating table. A second sliding block is slidably connected to the bottom of the slide rail. An arch-shaped member is fixedly connected to the bottom of the second sliding block. A second arch-shaped hole is formed in the outer wall of the arch-shaped member. The width of the first sliding block fits the width of the second arch-shaped hole, and the first sliding block is slidably connected inside the second arch-shaped hole.
[0011] Preferably in the present invention, a column is rotatably connected to the top of the extension column. A touch sensor is installed on one side of the column. A fourth rotating rod is rotatably connected to the top of the extension column. A runner is fixedly connected to the upper end of the fourth rotating rod, and the outer wall of the runner has convex portions facing opposite sides.
[0012] Preferably in the present invention, a strip-shaped groove is formed in the bottom of the electric slide rail. A plurality of pressure sensors are fixedly connected in the strip-shaped groove. The sliding plate is slidably connected in the strip-shaped groove. A wide plate is fixedly connected to the middle end of the sliding plate. The width of the wide plate fits the strip-shaped groove. Claws are fixedly connected to the bottom positions at both ends of the sliding plate. A triangular annular groove is formed in the inner wall of the claw, and the width of the triangular annular groove fits the outer wall width of the measuring device.
[0013] On the other hand, the present invention also provides a quality detection system for plant-derived cosmetics and its detection method, including the following operation steps: S1. First, after sampling and loading the cosmetics into the measuring device in the previous step, it is conveyed from the feeding port to the support platform. S2. Then, during the conveying process of the conveying component, the cosmetics in the measuring device reach the specified temperature through the constant temperature chamber, and are conveyed to the support platform on the other side through the conveying component. S3. Then, the measuring device containing the cosmetics is conveyed to the placement ring by the claw, and the detection is completed by the laser particle size analyzer. S4. Finally, it is conveyed to the placement table by the claw and taken out by the staff.
[0014] Compared with the prior art, the beneficial effects of the present invention are: 1. In the quality detection system for plant-derived cosmetics and its detection method, driven by the motor, the second turntable drives the first turntable, the second rotating rod and the sprocket to rotate together. The measuring device is conveyed under the push of the first sliding block, and the reciprocating conveyance of the sliding plate and the claw and the laser particle size analyzer are used to complete the detection of the cosmetics, which reduces the human intervention in the detection process and can reduce the problem of human detection operation errors.
[0015] 2. In the quality detection system and method for the plant-derived cosmetics, by defining the perimeter ratio of the sprocket to the first gear as 2:1, that is, when the measuring device is transported from the left side to the right side, it rotates by a 90-degree angle. Then, the first sliding block moves along the sprocket by a length equal to one-fourth of the perimeter of the sprocket. If the measuring device rotates two circles within the rotating table when it is transported to the right support platform, this can ensure that the cosmetics in the constant temperature chamber reach the required detection temperature in sufficient time.
[0016] 3. In the quality detection system and method for the plant-derived cosmetics, by setting the touch sensor and the pressure sensor, the clamping jaws and the sliding plate operate reciprocally, enabling the laser particle size analyzer to approach the measuring device for detection. By repeating this process in a cycle, the problem of cross-infection during the manual operation process can be prevented. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is the overall three-dimensional schematic diagram of the quality detection system for the plant-derived cosmetics of the present invention; Figure 2 is the overall cross-sectional schematic diagram of the quality detection system for the plant-derived cosmetics of the present invention; Figure 3 is the internal three-dimensional schematic diagram of the constant temperature chamber of the quality detection system for the plant-derived cosmetics of the present invention; Figure 4 is the internal unfolded three-dimensional schematic diagram of the conveying assembly of the quality detection system for the plant-derived cosmetics of the present invention; Figure 5 is the unfolded detailed schematic diagram of the conveying device of the quality detection system for the plant-derived cosmetics of the present invention; Figure 6 is the three-dimensional schematic diagram of the detection table of the quality detection system for the plant-derived cosmetics of the present invention; Figure 7 is the unfolded three-dimensional schematic diagram of the detection table of the quality detection system for the plant-derived cosmetics of the present invention; The meanings of the various reference numerals in the figure are as follows: 1. Constant temperature chamber; 11. Inlet; 12. Outlet; 2. Placing column; 21. Placing table; 3. Conveying assembly; 31. Conveying cylinder; 311. Support platform; 32. Fixed platform; 321. First rotating rod; 3211. Second rotating rod; 3212. First gear; 322. Second gear; 323. Sprocket; 3231. First sliding block; 33. Turntable assembly; 331. First turntable; 3311. First arched hole; 332. Second turntable; 3321. Raised column; 3322. Limiting disc; 34. Motor; 35. Rotating table; 351. Strip-shaped hole; 352. Third rotating rod; 3521. Transmission belt; 36. Slide rail; 361. Second sliding block; 362. Arch-shaped member; 3621. Second arched hole 4. Conveyor table; 41. Support plate; 42. Placing ring; 43. Support frame; 431. Extension column; 4311. Column; 4312. Touch sensor; 432. Fourth rotating rod; 4321. Rotating wheel; 44. Electric slide rail; 441. Strip-shaped groove; 442. Pressing sensor; 45. Sliding plate; 451. Wide plate; 452. Claw; 4521. Triangular annular groove; 453. Laser particle size analyzer; 5. Measuring device. Detailed implementation manner
[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0019] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present invention.
[0020] Such as Figures 1-7As shown, a quality inspection system for plant-derived cosmetics includes a constant temperature chamber 1 and a measuring device 5. An inlet 11 is provided on one side of the constant temperature chamber 1, and an outlet 12 is provided on the side of the constant temperature chamber 1 away from the inlet 11. A conveying assembly 3 for conveying cosmetic test samples is arranged in the constant temperature chamber 1. The conveying assembly 3 includes a turntable assembly 33 for conveying to a specified position. A conveying table 4 for detecting cosmetics is fixedly connected in the constant temperature chamber 1. A placement column 2 for receiving the cosmetics after the detection is completed is arranged on one side of the outlet 12 of the constant temperature chamber 1. A placement table 21 is fixedly connected to the top of the placement column 2. The conveying assembly 3 includes a conveying cylinder 31. The conveying cylinder 31 is fixedly connected to the bottom inner wall of the constant temperature chamber 1. A fixed platform 32 is fixedly connected to the inner side of the conveying cylinder 31. The turntable assembly 33 is arranged at the bottom of the fixed platform 32. A rotating table 35 is rotatably connected to the top of the fixed platform 32. Support plates 41 and placement rings 42 are fixedly connected to the top of the conveying table 4. A support frame 43 is fixedly connected to the top of the conveying table 4. An extension column 431 is fixedly connected to the support frame 43 on one side of the placement ring 42. The bottom of the extension column 431 is fixedly connected to an electric slide rail 44 through an electric telescopic rod. A sliding plate 45 is slidably connected to the bottom of the electric slide rail 44. A laser particle size analyzer 453 is fixedly connected to the bottom of the middle end of the sliding plate 45.
[0021] As Figures 3-5As shown in the figure, a second rotating rod 3211 is fixedly connected to the bottom of the rotating table 35. The second rotating rod 3211 penetrates through the fixed table 32. At the top of the first rotating rod 3211 away from the rotating table 35, a first gear 3212 is fixedly connected. The turntable assembly 33 includes a first turntable 331. The first turntable 331 is fixedly connected to one end of the second rotating rod 3211 away from the rotating table 35. A plurality of first arched holes 3311 are formed on the surface of the first turntable 331. The turntable assembly 33 includes a second turntable 332. At the peripheral position of the top of the second turntable 332, a convex column 3321 is fixedly connected. At the center position of the top of the second turntable 332, a restricting disc 3322 is fixedly connected. At the bottom of the second turntable 332, a motor 34 is fixedly connected. The motor 34 is fixedly connected to the bottom inner wall of the conveying cylinder 31. The diameter of the convex column 3321 fits the width of the first arched hole 3311. The convex column 3321 is slidably connected in the first arched hole 3311. On the outer walls of the two second gears 322, sprockets 323 are provided. The second gears 322 are meshed with the sprockets 323. The sprockets 323 are meshed with the first gear 3212. At the top of the sprocket 323, a first sliding block 3231 is fixedly connected. The inside of the rotating table 35 is in a hollow shape. A plurality of strip-shaped holes 351 are formed on the outer wall of the rotating table 35. At the top of the rotating table 35, a third rotating rod 352 is fixedly connected. A transmission belt 3521 is sleeved on the outer wall of the upper end of the third rotating rod 352. Inside the rotating table 35, a slide rail 36 is rotatably connected. At the bottom of the slide rail 36, a second sliding block 361 is slidably connected. At the bottom of the second sliding block 361, an arched member 362 is fixedly connected. A second arched hole 3621 is formed on the outer wall of the arched member 362. The width of the first sliding block 3231 fits the width of the second arched hole 3621. The first sliding block 3231 is slidably connected in the second arched hole 3621.
[0022] As Figures 6-7 shown, at the top of the extension column 431, a column 4311 is rotatably connected. On one side of the column 4311, a touch sensor 4312 is installed. At the top of the extension column 431, a fourth rotating rod 432 is rotatably connected. At the upper end of the fourth rotating rod 432, a runner 4321 is fixedly connected. The outer wall of the runner 4321 has convex parts facing each other on both sides. At the bottom of the electric slide rail 44, a strip-shaped groove 441 is formed. In the strip-shaped groove 441, a plurality of pressure sensors 442 are fixedly connected. A sliding plate 45 is slidably connected in the strip-shaped groove 441. At the middle end of the sliding plate 45, a wide plate 451 is fixedly connected. The width of the wide plate 451 fits the strip-shaped groove 441. At the bottom positions of both ends of the sliding plate 45, clamping jaws 452 are fixedly connected. A triangular annular groove 4521 is formed on the inner wall of the clamping jaw 452. The triangular annular groove 4521 fits the outer wall width of the measuring device 5.
[0023] It can be seen from this that when it is necessary to take samples of some cosmetics for particle size distribution detection, as Figures 3-6As shown, after the sampled cosmetics are placed in the measuring device 5, they are conveyed through the feeding port 11 to the inside of the rotating table 35 inside the left support platform 311 and fixed in the groove on the outer wall of the rotating table 35. At this time, the entire conveying assembly 3 is started. Driven by the motor 34, the second turntable 332 rotates. At the same time, the second turntable 332 drives the protruding column 3321 to rotate together. At this time, the protruding column 3321 gradually rotates into the first arched hole 3311 and drives the first turntable 331 to rotate together. Here, after the protruding column 3321 enters and then exits the first arched hole 3311, it will drive the first turntable 331 to rotate by 90 degrees. At this time, the first turntable 331 drives the rotating table 35, the measuring device 5 and the first rotating rod 321 to rotate by 90 degrees through the second rotating rod 3211. At the same time, the first rotating rod 321 will drive the first gear 3212 to rotate by 90 degrees, and the first gear 3212 will drive the sprocket 323 to rotate. At this time, the sprocket 323 will drive the first sliding block 3231 to move along the sprocket 323, and the first sliding block 3231 will drive the arched member 362 and the second sliding block 361 to slide left and right in the slide rail 36 during the movement. When the measuring device 5 is conveyed to the right side position of the fixed platform 32 (as Figure 3 shown), at this time, the second sliding block 361 driven by the first sliding block 3231 to slide forward to the right will protrude from the strip hole 351, push the measuring device 5 outwards and stay on the right support platform 311 waiting for conveying and detection. During the process of the measuring device 5 being conveyed from the left side of the fixed platform 32 to the right support platform 311 by rotation, the temperature is adjusted by the constant temperature chamber 1, so that the temperature of the cosmetics entering from outside the constant temperature chamber 1 gradually becomes the temperature suitable for detection (that is, the temperature in the constant temperature chamber 1); It should be noted that the perimeter ratio of the sprocket 323 to the first gear 3212 is 2:1. That is, when the measuring device 5 is conveyed from the left side to the right side, it rotates by 180 degrees. Then the first sliding block 3231 moves along the sprocket 323 by a length equal to one-fourth of the perimeter of the sprocket 323. Then, if the measuring device 5 is conveyed to the right support platform 311, the measuring device 5 rotates two circles in the rotating table 35. This can ensure that the cosmetics in the constant temperature chamber 1 have sufficient time to reach the required detection temperature; Meanwhile, during the process of the measuring device 5 being transported to the right support platform 311, the rotating platform 35 rotates by 90 degrees, which will drive the third rotating rod 352 to rotate. At this time, the third rotating rod 352 will drive the fourth rotating rod 432 and the rotating wheel 4321 to rotate by 90 degrees together through the transmission belt 3521. During the rotation of the rotating wheel 4321, the protruding part on its periphery will touch the touch sensor 4312 during the rotation. At this time, each time the touch sensor 4312 is touched, it will send a message to the electric slide rail 44. At this time, under the drive of the electric slide rail 44, the sliding plate 45 slides to the left to the end of one end of the electric slide rail 44 and then returns to the central position in the middle. At this time, when the sliding plate 45 slides to the left, it will gradually slide to the position of the pressure sensor 442 at one end inside the strip-shaped groove 441. At this time, under the pressure of the wide plate 451 on the pressure sensor 442, the electric telescopic rod connecting the extension column 431 and the electric slide rail 44 performs an action of extending and shortening, so that the clamping jaw 452 clamps the measuring cup, and when the sliding plate 45 slides to the right end of the electric slide rail 44, the pressure sensor 442 is used again to place the measuring device 5 in the placement ring 42 for fixation, and in the next cycle, the measuring device 5 in the placement ring 42 is transported to the placement platform 21, and finally the detection is completed, and the detected cosmetics in the measuring cup are taken out by the staff; It should be noted that two touches of the touch sensor 4312 are a cycle. When the touch sensor 4312 is squeezed for the first time, the sliding plate 45 will slide to the left end in the electric slide rail 44 and then return to the central position again. When the touch sensor 4312 is squeezed for the second time, it will slide to the right and return (that is, complete one reciprocation). At this time, during the process of the sliding plate 45 sliding to the right, the previously detected measuring device 5 will be transported onto the placement platform 21, and at the same time, the measuring device 5 to be detected will be transported onto the placement ring 42. A pressure sensor 442 is also set at the middle position of the strip-shaped groove 441. The middle pressure sensor 442 is set to perform a long operation every two presses (that is, set a long-time stay effect), that is, when the sliding plate 45 returns to the middle position after one reciprocation, the electric telescopic rod extends to a certain length and stays for a certain time, so that the laser particle size analyzer 453 approaches the inside of the measuring device 5 for detection, and this cycle is repeated for detection.
[0024] A detection method for a plant-derived cosmetic quality detection system includes the following steps: S1. First, after the cosmetics are sampled and loaded into the measuring device 5 in the previous step, they are transported from the feeding port 11 to the support platform 311; S2. Then, during the transportation of the transportation component 3, the cosmetics in the measuring device 5 reach the specified temperature through the constant temperature chamber 1, and are transported to the support platform 311 on the other side under the transportation of the transportation component 3; S3. Then, the measuring device 5 containing cosmetics is conveyed into the placement ring 42 by the gripper 452, and the detection is completed by the laser particle size analyzer 453; S4. Finally, it is conveyed to the placement table 21 by the gripper 452 and taken out by the staff.
[0025] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A plant-derived cosmetics quality testing system, comprising a constant temperature chamber (1) and a measuring device (5), characterized in that: A material inlet (11) is provided on one side of the constant temperature chamber (1), and a material outlet (12) is provided on a side of the constant temperature chamber (1) away from the material inlet (11). A conveying assembly (3) for conveying cosmetic test samples is arranged in the constant temperature chamber (1), and the conveying assembly (3) includes a turntable assembly (33) for conveying to a designated position. A conveying platform (4) for testing cosmetics is fixedly connected in the constant temperature chamber (1); The constant temperature chamber (1) is provided with a placement column (2) for receiving the tested cosmetics on one side of the discharge port (12), and the top of the placement column (2) is fixedly connected with a placement table (21); The conveying assembly (3) comprises a conveying cylinder (31), the conveying cylinder (31) is fixedly connected to the bottom inner wall of the constant temperature chamber (1), the inner side of the conveying cylinder (31) is fixedly connected to a fixed platform (32), the turntable assembly (33) is arranged at the bottom of the fixed platform (32), and the top of the fixed platform (32) is rotatably connected to a rotating platform (35); The top of the conveying platform (4) is fixedly connected to a support plate (41) and a placement ring (42); the top of the conveying platform (4) is fixedly connected to a support frame (43); the support frame (43) is fixedly connected to an extension rod (431) on one side of the placement ring (42); the bottom of the extension rod (431) is fixedly connected to an electric slide rail (44) via an electric telescopic rod; the bottom of the electric slide rail (44) is slidably connected to a sliding plate (45); and the middle bottom of the sliding plate (45) is fixedly connected to a laser particle size analyzer (453).
2. A botanical cosmetics quality detection system according to claim 1, characterized in that: A plurality of first rotating rods (321) are fixedly connected at the peripheral position of the top of the fixed platform (32), a second rotating rod (3211) is fixedly connected at the bottom of the rotating platform (35), the second rotating rod (3211) passes through the fixed platform (32), and a first gear (3212) is fixedly connected at the top of the rotating platform (35).
3. A botanical cosmetics quality detection system according to claim 2, characterized in that: The turntable assembly (33) comprises a first turntable (331), the first turntable (331) being fixedly connected to an end of a second turntable (3211) away from a rotating platform (35), a surface of the first turntable (331) being provided with a plurality of first arch holes (3311), the turntable assembly (33) comprising a second turntable (332), a top peripheral position of the second turntable (332) being fixedly connected to a protruding column (3321), a top center position of the second turntable (332) being fixedly connected to a limiting disk (3322), a bottom of the second turntable (332) being fixedly connected to a motor (34), and the motor (34) being fixedly connected to the bottom inner wall of the conveying cylinder (31).
4. A botanical cosmetics quality detection system according to claim 3, characterized in that: The diameter of the protruding column (3321) matches the width of the first arch hole (3311), and the protruding column (3321) is slidably connected in the first arch hole (3311).
5. A botanical cosmetics quality detection system according to claim 2, characterized in that: Sprocket wheels (323) are provided on the outer walls of the No. 2 gear wheels (322) on both sides; the No. 2 gear wheels (322) are meshingly connected with the sprocket wheels (323); the sprocket wheels (323) are meshingly connected with the No. 1 gear wheels (3212); and the top of the sprocket wheels (323) is fixedly connected with a No. 1 sliding block (3231).
6. A botanical cosmetics quality detection system according to claim 5, characterized in that: The interior of the rotating platform (35) is hollowed out, and a plurality of strip-shaped holes (351) are provided on the outer wall of the rotating platform (35). A third rotating rod (352) is fixedly connected to the top of the rotating platform (35), and a transmission belt (3521) is sleeved on the outer wall of the upper end of the third rotating rod (352).
7. A botanical cosmetics quality detection system according to claim 6, characterized in that: A slide rail (36) is rotatably connected inside the rotating table (35); a second slide block (361) is slidably connected to the bottom of the slide rail (36); an arched member (362) is fixedly connected to the bottom of the second slide block (361); a second arched hole (3621) is formed on the outer wall of the arched member (362); the width of the first slide block (3231) matches the width of the second arched hole (3621); and the first slide block (3231) is slidably connected inside the second arched hole (3621).
8. A botanical cosmetics quality detection system according to claim 7, characterized in that: The top of the extension column (431) is rotatably connected to a column (4311), a touch sensor (4312) is installed on one side of the column (4311), the top of the extension column (431) is rotatably connected to a fourth rotating rod (432), the upper end of the fourth rotating rod (432) is fixedly connected to a rotating wheel (4321), and the outer wall of the rotating wheel (4321) is a convex portion facing each other on two sides.
9. A botanical cosmetics quality detection system according to claim 8, characterized in that: The bottom of the electric slide rail (44) is provided with a strip groove (441), and a plurality of pressure sensors (442) are fixedly connected in the strip groove (441). The sliding plate (45) is slidably connected in the strip groove (441), and a wide plate (451) is fixedly connected at the middle end of the sliding plate (45), and the width of the wide plate (451) matches the strip groove (441). Clamps (452) are fixedly connected at the bottom positions of both ends of the sliding plate (45), and a triangular annular groove (4521) is provided on the inner wall of the clamp (452), and the triangular annular groove (4521) matches the width of the outer wall of the measuring device (5).
10. A detection method of a botanical cosmetics quality detection system, based on the botanical cosmetics quality detection system according to any one of claims 1 to 9, characterized in that: The method comprises the following steps: S1, firstly, after the cosmetic sample is loaded into the measuring container (5) in the previous step, it is transported from the feeding port (11) to the supporting platform (311); S2, during the conveying process of the conveying component (3), the cosmetics in the measuring vessel (5) are brought to a specified temperature through the constant temperature chamber (1), and are then conveyed to the support platform (311) on the other side through the conveying of the conveying component (3); S3, then the measuring container (5) containing the cosmetics is transported into the placement ring (42) by the clamping claw (452), and the laser particle size analyzer (453) is used to complete the detection; S4. Finally, the product is transported to the placement table (21) by the clamping claw (452) and taken out by the staff.
Citation Information
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