Cream particle size analysis device
Through the automated packaging technology of cream particle size analysis device, the problems of low cream partition efficiency and insufficient uniformity in existing equipment are solved, and efficient and uniform cream partition is achieved, which simplifies the operation process.
Patent Information
- Application Number
- CN202422299186.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-09-20
AI Technical Summary
Existing cream particle size analysis equipment relies on manual operation, resulting in low cream aliquot efficiency and inability to ensure uniformity between batches.
The cream particle size analysis device is used to realize the automated cream packaging process through the combination of the central rack, carrier rack, feed pipe rack and extractor pump. The cream in the sample container is transported into the feeding parts by using the extractor pump. The operator only needs to coat the packing tray.
It improves the efficiency and uniformity of cream partitioning, ensures product uniformity between batches, simplifies the operation process, and reduces the possibility of manual intervention.
Smart Images

Figure CN223154776U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of cream particle size analysis, and particularly to a cream particle size analysis device. Background Art
[0002] During the preparation of ointments, the size and distribution of particles have an important impact on the stability and efficacy of the ointments. A cream particle size analyzer can help pharmaceutical companies precisely control the size and distribution of particles in the ointment, thereby ensuring the stability and effectiveness of the ointment.
[0003] When the existing equipment detects the droplet size of the cream finished product through the cream droplet size detection technology, it still adopts the method of manually controlling the liquid extraction gun to collect the cream and then carry out sub-packaging. It is impossible to ensure the uniformity of the droplet size of the cream in the same batch and each batch, that is, it is impossible to ensure the uniformity of the active ingredient content of all batches of cream; and the whole process depends on manual labor, and the efficiency of the separation and storage operation of the cream is relatively low. Therefore, it needs to be improved. Utility Model Content
[0004] In order to improve the efficiency of cream sub-packaging, this application provides a cream particle size analysis device.
[0005] The cream particle size analysis device provided by this application adopts the following technical solutions:
[0006] A cream particle size analysis device includes a central frame. A carrier frame is fixedly connected to the front surface of the central frame, and a sub-packaging tray is movably connected inside the carrier frame; a feeding pipe frame is fixedly connected to the back surface of the central frame, and a sample container is movably connected inside the feeding pipe frame; a pressurizing seat is fixedly connected to the top of the central frame, a pumping machine is arranged on the top of the pressurizing seat, the input end of the pumping machine is communicated with the sample container through a pipe, and the output end of the pumping machine is connected with a distributing member.
[0007] By adopting the above technical solutions, the operator places the sample container containing the product into the feeding pipe frame and places the sub-packaging tray into the carrier frame. Start the pumping machine, and the pumping machine sucks the product out of the sample container and then transports it to the distributing member. The operator only needs to control the distributing member to coat the product on the sub-packaging tray, improving the efficiency of product sub-packaging.
[0008] Optionally, the distributing member includes a feeding pipe and a conical head. One end of the feeding pipe is connected to the output end of the pumping machine, and the other end is connected to the conical head.
[0009] Optionally, a sealing rubber ring is arranged on the conical head, and the sealing rubber ring is installed on the bottom wall of the conical head away from the feeding pipe.
[0010] Optionally, a socket cone plate is embedded on the side wall of the pressurizing seat, and the feeding pipe is arranged inside the socket cone plate.
[0011] Optionally, a winding rod is fixedly connected to the side surface of the pressing seat, a pipe row groove is formed in the side wall of the pressing seat, and the feeding pipe is adapted to the pipe row groove.
[0012] Optionally, first limiting strips are arranged at the four corners of the inner wall of the bearing frame, and a first protective pad is arranged on the inner bottom wall of the bearing frame.
[0013] Optionally, second limiting strips are arranged on the inner wall of the feeding pipe frame, and second protective pads are arranged on the four sides of the inner wall of the second limiting strips.
[0014] In summary, the present application includes at least one of the following beneficial technical effects:
[0015] 1. An operator places a sample container containing a product into the feeding pipe frame and places the distribution tray into the bearing frame. Start the pumping machine, and the pumping machine sucks the product out of the sample container and then transports it to the distributing member. The operator only needs to control the distributing member to apply the product on the distribution tray, improving the efficiency of product distribution;
[0016] 2. The feeding pipe can be guided along the pipe row groove formed on the side surface of the pressing seat, and then wound between the winding rods for protective storage, avoiding the possibility of contamination caused by the contact between the conical head and the workbench surface. Description of the Drawings
[0017] Figure 1 is a schematic structural diagram of a cream particle size analysis device according to an embodiment of the present application.
[0018] Figure 2 is a schematic structural diagram of the feeding pipe frame according to an embodiment of the present application.
[0019] Figure 3 is a schematic structural diagram of the bearing frame according to an embodiment of the present application.
[0020] Figure 4 is Figure 1 an enlarged view of A in
[0021] Description of the reference numerals: 1, central frame; 2, bearing frame; 3, feeding pipe frame; 4, distribution tray; 5, sample container; 6, pressing seat; 7, pumping machine; 8, control knob; 9, socket conical disc; 10, feeding pipe; 11, conical head; 12, sealing rubber ring; 13, pipe row groove; 14, winding rod; 15, first limiting strip; 16, first protective pad; 17, second limiting strip; 18, second protective pad. Detailed Description of the Embodiment
[0022] The following further describes the present application in detail with reference to the attached Figures 1-4 drawings.
[0023] This application example discloses a cream particle size analysis device. Refer to Figure 1 , a cream particle size analysis device includes a central frame 1, and the central frame 1 is placed on the workbench surface. The front of the central frame 1 is fixedly connected with a carrier frame 2 by bolts, and a dispensing tray 4 is movably connected inside the carrier frame 2. The back of the central frame 1 is fixedly connected with a feeding pipe frame 3 by bolts, and a sample container 5 is movably connected inside the feeding pipe frame 3. A pressurizing seat 6 is fixedly connected to the top wall of the central frame 1 by bolts, a pumping machine 7 is arranged inside the pressurizing seat 6, and a control knob 8 is arranged on the front top of the pressurizing seat 6 for controlling the start-stop and pumping rate of the pumping machine 7. The input end of the pumping machine 7 is communicated with the sample container 5 through a pipe, and the output end of the pumping machine 7 is connected with a distributing part.
[0024] The operator places the sample container 5 containing the product into the feeding pipe frame 3 and places the dispensing tray 4 into the carrier frame 2. Start the pumping machine 7, and the pumping machine 7 sucks the product out of the sample container 5 and then transports it to the distributing part. The operator only needs to control the distributing part to coat the product on the dispensing tray 4, with simple operation and improved efficiency of product dispensing.
[0025] Refer to Figure 2 and Figure 3 , at the four corners of the inner wall of the carrier frame 2, there are first limiting strips 15, and the first limiting strips 15 are fixedly adhered to the inner wall of the carrier frame 2, and the cross-section of the first limiting strips 15 is fan-shaped. A first protective pad 16 is arranged at the bottom of the inner wall of the carrier frame 2, and the first protective pad 16 is fixedly adhered.
[0026] A second limiting strip 17 is arranged on the inner wall of the feeding pipe frame 3, and the second limiting strip 17 forms a ring by connecting the head and the tail, and the outer peripheral wall of the second limiting strip 17 is fixedly adhered to the inner peripheral wall of the feeding pipe frame 3. A second protective pad 18 is arranged on the inner wall of the second limiting strip 17. In this embodiment, four second protective pads 18 are arranged in an array along the inner wall of the second limiting strip 17. The cross-section of the second protective pad 18 is semi-circular, and the second protective pad 18 is fixedly adhered to the inner peripheral wall of the second limiting strip 17.
[0027] The dispensing tray 4 can be quickly fixed and limited through the first limiting strip 15 and the first protective pad 16 on the inner wall of the carrier frame 2 to ensure its stability during subsequent cream dispensing. The sample container 5 can also be quickly limited and fixed by the second limiting strip 17 and the second protective pad 18 inside the feeding pipe frame 3. Ensure its stability during subsequent cream dispensing.
[0028] Refer to Figure 1 and Figure 4, the material distributing part includes a material conveying pipe 10. An embedded socket cone 9 is installed on the side wall of the pressure applying seat 6 close to the bearing frame 2. The smaller diameter end of the socket cone 9 extends into the interior of the pressure applying seat 6 to the output end of the material pumping machine 7. The material conveying pipe 10 is inserted into the socket cone 9 and is communicated with the output end of the material pumping machine 7. One end of the material conveying pipe 10 away from the material pumping machine 7 is installed with a tapered head 11. The smaller diameter end of the tapered head 11 is adhesively and hermetically connected to the outer peripheral wall of the material conveying pipe 10. A sealing rubber ring 12 is arranged at the larger diameter end of the tapered head 11, and the sealing rubber ring 12 is adhesively fixed to the end wall of the tapered head 11.
[0029] A winding rod 14 is installed on the pressure applying seat 6. The winding rod 14 is an L-shaped rod. The winding rod 14 is installed on the side wall of the pressure applying seat 6 through bolts and is located between the bearing frame 2 and the feeding pipe frame 3. The material conveying pipe 10 can be wound around the outer peripheral wall of the winding rod 14. A pipe discharging groove 13 is formed on the side wall of the pressure applying seat 6. The pipe discharging groove 13 extends from the edge of the socket cone 9 towards the winding rod 14. The pipe discharging groove 13 forms a notch at the edge of the socket cone 9. The inner diameter of the pipe discharging groove 13 matches the outer diameter of the material conveying pipe 10.
[0030] The implementation principle of an emulsion particle size analysis device according to an embodiment of the present application is as follows: First, the operator quickly docks and installs between the feeding pipe frame 3 and the sample container 5, and then places the distribution tray 4 on the surface of the bearing frame 2. Place the tapered head 11 on the surface of the distribution tray 4 and dock it with the test groove on the surface of the distribution tray 4 through the sealing rubber ring 12. Control the start of the material pumping machine 7 through the control knob 8, and quickly suck out the test emulsion in the sample container 5 through the material conveying pipe 10 and uniformly inject it into the interior of the distribution tray 4. Quickly realize the uniform filling operation of the emulsion into the measurement groove inside the distribution tray 4, thereby improving the detection rate and ensuring the structural accuracy of subsequent detections.
[0031] After use, place the section of the material conveying pipe 10 close to the socket cone 9 into the pipe discharging groove 13, and wind the section of the material conveying pipe 10 away from the socket cone 9 around the winding rod 14 for protective storage, reducing the possibility of the tapered head 11 being contaminated; it can also reduce the influence of the material conveying pipe 10 on other components and facilitate the operation of the operator.
[0032] The above are all the preferred embodiments of the present application. The protection scope of the present application is not limited by this. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.
Claims
1. A cream particle size analysis device, characterized in that: It includes a center support (1), a carrier (2) is fixedly connected to the front of the center support (1), and a distribution tray (4) is movably connected inside the carrier (2); a feeding pipe rack (3) is fixedly connected to the back of the center support (1), and a sample container (5) is movably connected inside the feeding pipe rack (3); a pressurizing seat (6) is fixedly connected to the top of the center support (1), a pumping machine (7) is arranged at the top of the pressurizing seat (6), the input end of the pumping machine (7) is communicated with the sample container (5) through a pipe, and the output end of the pumping machine (7) is connected with a distributing member.
2. The cream particle size analysis device according to claim 1, characterized in that: The distributing member includes a feeding pipe (10) and a conical head (11), one end of the feeding pipe (10) is connected to the output end of the pumping machine (7), and the other end is connected to the conical head (11).
3. The cream particle size analysis device according to claim 2, characterized in that: A sealing rubber ring (12) is arranged on the conical head (11), and the sealing rubber ring (12) is installed on the bottom wall of the conical head (11) far away from the feeding pipe (10).
4. The cream particle size analysis device according to claim 2, characterized in that: A socket conical disc (9) is embedded on the side wall of the pressurizing seat (6), and the feeding pipe (10) is arranged inside the socket conical disc (9).
5. The cream particle size analysis device according to claim 2, wherein: A winding rod (14) is fixedly connected to the side of the pressurizing seat (6), a pipe arranging groove (13) is opened on the side wall of the pressurizing seat (6), and the feeding pipe (10) is adapted to the pipe arranging groove (13).
6. The cream particle size analysis device according to claim 1, characterized in that: First limiting strips (15) are arranged at the four corners of the inner wall of the carrier (2), and a first protective pad (16) is arranged on the inner bottom wall of the carrier (2).
7. The cream particle size analysis device according to claim 1, characterized in that: Second limiting strips (17) are arranged on the inner wall of the feeding pipe rack (3), and second protective pads (18) are arranged on the four sides of the inner wall of the second limiting strips (17).