Detection equipment and method for biomedical health care product production

Through the combination of crushing components, rolling components, overheating components and anti-adhesive components, the problems of insufficient crushing, overheating and powder adhesion in tablet detection are solved, and the uniform grinding and detection accuracy of the tablet is achieved.

CN120293632APending Publication Date: 2025-07-11SHANDONG HELIKANG HEALTH IND DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202510500864.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

In the prior art, irregular solid state of the tablets leads to excessively long reaction time with the reagent, insufficient crushing, heat generation causes vitamins to be inactivated, powder adhesion leads to proportional errors, affecting the detection effect.

Method used

Use crushing components to crush tablets, crush the crushing components evenly grind them, overheating components prevents heat influence, anti-stick components scrape off powder, mix components and mix reagents to ensure accurate detection.

Benefits of technology

Achieve even grinding of tablets to prevent overheating and powder adhesion, ensuring vitamin activity and detection accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of vitamin detection, and discloses a detection device and method for biomedical health care product production, the detection device comprises a detection box, a detector and a detection plate which are fixedly connected in the detection box, the detection plate is fixedly connected in the detection box, the top of the detection plate is provided with a rolling groove, and the rolling groove is provided with a rolling groove. The interior of the detection box is fixedly connected with a driving box, a crushing assembly is arranged at the top of the detection plate, and a rolling assembly is arranged in the driving box; through cooperative use of a crushing assembly and a grinding assembly, a driving air cylinder drives a moving frame to descend through a telescopic column, a rotating rod drives a grinding roller to descend to crush tablets, a driving motor drives a rotating disc to rotate through a driving rod, and the rotating disc drives a moving rod to reciprocate through an arc-shaped strip and a limiting column; and the moving rod drives the grinding roller to reciprocate in the grinding groove through the U-shaped frame, so that the grinding roller grinds the tablet fragments, and the effect of uniform grinding is achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of vitamin detection, and specifically to a detection device and method for the production of biomedical health products. Background Art

[0002] Biomedical health products generally refer to those supplements or products designed to support, maintain, or improve human health. These products can contain elements such as vitamins, minerals, herbs, amino acids, enzymes, etc., in order to meet the body's needs for certain nutrients or promote specific health functions.

[0003] Publication No. CN212180823U discloses a vitamin detector, including a device housing, a carrying mechanism, and a cleaning mechanism. The carrying mechanism includes a storage box, the storage box is installed on one side of the device housing, a rotating cylinder is arranged inside the storage box, a rotating shaft is arranged in the middle of the rotating cylinder, turntables are fixedly connected to the front end and the rear end of the rotating cylinder respectively, a limiting torsion spring is arranged on the rear surface of the turntable at the rear end of the rotating cylinder, a contraction belt is fixedly connected to the top of the rotating cylinder, the other end of the contraction belt is fixedly connected to a clamping block, and a fixing block is fixedly connected to the bottom of the clamping block.

[0004] Although the above application and the prior art can reduce the labor burden of workers and can be stored for a long time, when detecting vitamins in tablets in the above application and the prior art, since the tablets are in an irregular solid state, the mixing reaction time between the tablets and the reagent is too long. When crushing the tablets, the tablets will not be in sufficient contact with the rolling block, resulting in insufficient rolling and affecting subsequent detection. Moreover, during the rolling process of the tablets, a large amount of heat will be generated between the support table and the rolling block, causing the vitamins in the tablets to lose their activity due to heat, thus affecting the subsequent detection effect. Also, during the rolling process, the powder formed by the tablets will adhere to the surface of the rolling block, resulting in an error in the ratio between the tablets and the reagent, thus affecting the subsequent detection effect. Therefore, we have proposed a detection device and method for the production of biomedical health products. Summary of the Invention

[0005] (I) Technical Problems to be Solved

[0006] In view of the deficiencies of the prior art, the present invention provides a detection device and method for the production of biomedical health products, which have the advantages of uniform grinding, prevention of overheating, and avoidance of adhesion, and solve the problems in the above application and the prior art when detecting vitamins in tablets. Since the tablets are in an irregular solid state, the mixing and reaction time between the tablets and the reagent is too long. When the tablets are crushed, the contact between the tablets and the rolling blocks is insufficient, resulting in insufficient rolling and affecting subsequent detection. Moreover, during the rolling process of the tablets, a large amount of heat is generated between the support platform and the rolling blocks, causing the vitamins in the tablets to lose their activity due to heat, thereby affecting the subsequent detection effect. Additionally, during the rolling process, the tablets form powder that adheres to the surface of the rolling blocks, leading to an error in the ratio between the tablets and the reagent, and thus affecting subsequent detection.

[0007] (II) Technical Solution

[0008] To achieve the above-mentioned purposes of uniform grinding, prevention of overheating, and avoidance of adhesion, the present invention provides the following technical solution: A detection device for the production of biomedical health products, comprising: a detection box and a detector fixedly connected inside the detection box,

[0009] a detection plate, fixedly connected inside the detection box, a rolling groove is opened at the top of the detection plate, a driving box is fixedly connected inside the detection box, a box cover is hinged to the top of the detection box, and a control panel is arranged inside the box cover;

[0010] a crushing assembly, arranged on the top of the detection plate, for crushing the tablets of the biomedical health products to be detected. The crushing assembly includes a first L-shaped plate arranged inside the detection box, a driving cylinder is fixedly connected to the top of the first L-shaped plate, the output end of the driving cylinder is differentially connected with a telescopic column, a moving frame is fixedly connected to the bottom of the telescopic column, a rotating rod is rotatably connected inside the moving frame, and a rolling roller is fixedly connected to the surface of the rotating rod;

[0011] a rolling assembly, arranged inside the driving box, for rolling the crushed tablets;

[0012] a paving assembly, arranged on the surface of the crushing assembly, for evenly laying the crushed tablets inside the rolling groove;

[0013] an overheating prevention assembly, arranged inside the detection box, for preventing the heat generated during rolling from affecting the vitamins inside the tablets when the rolling assembly rolls the tablets;

[0014] an anti-adhesion assembly, arranged on the surface of the rolling assembly, for preventing the crushed tablet powder from adhering to the surface of the rolling assembly.

[0015] Further, the rolling assembly includes a driving motor fixedly connected inside the driving box, the output end of the driving motor is fixedly connected with a driving rod, the surface of the driving rod is fixedly connected with a turntable, and the surface of the turntable is fixedly connected with an arc-shaped strip.

[0016] Further, the rolling assembly further includes a limiting strip fixedly connected inside the driving box, a moving rod is slidably connected inside the limiting strip, a limiting column is fixedly connected to the surface of the moving rod, the limiting column is slidably pressed against the arc-shaped strip, one end of the moving rod is fixedly connected with a U-shaped frame, and the surface of the U-shaped frame is fixedly connected to the back of the first L-shaped plate.

[0017] Further, a mixing assembly is arranged on the surface of the rolling assembly, the mixing assembly is used for mixing the crushed tablet powder and the reagent, the mixing assembly includes a solenoid valve arranged inside the rolling groove and a reagent kit slidably connected to the bottom of the detection plate, a liquid outlet pipe is fixedly communicated with one side of the reagent kit, and the liquid outlet pipe is fixedly connected to the top of the detector.

[0018] Further, the paving assembly includes two storage plates fixedly connected to the bottom of the first L-shaped plate and a moving plate fixedly connected to the surface of the telescopic column, extending plates are fixedly connected to both sides of the moving plate, and the extending plates are slidably connected inside the storage plates.

[0019] Further, a second L-shaped plate is slidably connected to the bottom of the extending plate, a spring is fixedly connected to the bottom of the extending plate, and the bottom of the spring is fixedly connected to the top of the second L-shaped plate.

[0020] Further, the overheating prevention assembly includes a water tank fixedly connected to the bottom of the detection box and a water storage tank and a water inlet tank opened inside the detection plate, a water pump is arranged on one side of the water tank, a water inlet pipe is fixedly communicated with the top of the water pump, one end of the water inlet pipe is fixedly communicated with one end of the water inlet tank, and the water inlet tank is fixedly communicated with the water storage tank.

[0021] Further, a sliding rod is fixedly connected inside the water storage tank, a sliding disk is slidably connected to the surface of the sliding rod, a telescopic rod is fixedly connected to the bottom of the sliding disk, a blocking disk is fixedly connected to the bottom of the telescopic rod, the water storage tank is communicated with the water tank through a water outlet pipe, and the blocking disk is located at the top of the water outlet pipe.

[0022] Further, the anti-sticking assembly includes a fixed gear fixedly connected to one end of the rotating rod and a scraper fixedly connected to one side of the moving frame, a moving groove is opened at the top of the detection plate, a fixed toothed plate is fixedly connected inside the moving groove, and the fixed toothed plate is in meshing transmission with the fixed gear.

[0023] The present invention also provides a detection method for the production of biomedical health products. The specific steps of this biomedical health product detection method are as follows:

[0024] Step 1: Place the biomedical health product tablets to be detected inside the rolling groove and at the bottom of the crushing component.

[0025] Step 2: Start the crushing component through the control panel, so that the crushing component breaks the whole biomedical health product tablets, avoiding the sliding of the tablets due to irregular shapes during the rolling process.

[0026] Step 3: After the tablets are broken by the crushing component, start the rolling component through the control panel, so that the rolling component rolls the broken tablets, and the tablets become powdery after repeated rolling.

[0027] Step 4: When using the rolling component to roll the tablets, start the overheating component synchronously, so that the overheating component cools the inside of the rolling groove, avoiding the loss of activity of vitamins in the tablets due to heat generation during the rolling process.

[0028] Step 5: After the rolling is completed, scrape off the powder adhering to the surface of the crushing component through the anti-sticking component, so that the powder falls into the inside of the mixing component and then enters the inside of the detector, and the vitamin content in the tablets is detected by the detector.

[0029] (III) Beneficial effects

[0030] Compared with the prior art, the present invention provides a detection device and method for the production of biomedical health products, which have the following beneficial effects:

[0031] 1. For this detection device and method for the production of biomedical health products, through the combined use of the crushing component and the rolling component, place the health product tablets in the rolling groove and at the bottom of the rolling roller. Start the driving cylinder through the control panel, and the driving cylinder drives the moving frame to descend through the telescopic column, so that the moving frame drives the rolling roller to descend through the rotating rod, and the rolling roller breaks the tablets. Then start the driving motor through the control panel, and the driving motor drives the turntable to rotate through the driving rod, so that the turntable drives the moving rod to reciprocate through the arc-shaped strip and the limiting column, and the moving rod drives the first L-shaped plate to reciprocate through the U-shaped frame, so that the first L-shaped plate drives the rolling roller to reciprocate in the rolling groove, and further the rolling roller rolls the tablet fragments, and the tablet fragments become powdery, and further the tablets are evenly ground into powdery, thus achieving the effect of uniform grinding.

[0032] 2. The detection equipment and method for the production of biomedical health products, through the use of the overheating component, start the water pump through the control panel. The water pump transports the water in the water tank to the water inlet trough through the water inlet pipe, and then enters the water storage trough. As the water level in the water storage trough gradually rises, the water in the water storage trough drives the sliding plate to rise, causing the sliding plate to drive the telescopic rod to rise. When the water level in the water storage trough rises to the top, the water in the water storage trough absorbs the heat in the rolling trough, thereby avoiding a large amount of heat generation between the tablets, stretching the telescopic rod to the limit. When the water level continues to rise, the sliding plate drives the sealing plate to rise through the telescopic rod, causing the sealing plate to open the water outlet pipe, and thus the excess water inside the water storage trough flows into the water tank through the water outlet pipe. Therefore, a continuous flow of water in the water storage trough is formed, enabling the water flow to absorb the heat in the rolling trough, thereby avoiding the heat in the rolling trough from affecting the activity of vitamins in the tablets, and thus achieving the effect of preventing overheating.

[0033] 3. The detection equipment and method for the production of biomedical health products, through the combined use of the crushing component and the anti-adhesion component. When the tablets are crushed into powder, move the rolling roller to one side of the rolling trough and above the solenoid valve. At this time, the fixed gear meshes with the fixed tooth plate, and then start the driving cylinder. The driving cylinder drives the moving frame to rise through the telescopic column, causing the moving frame to drive the fixed gear and the rolling roller to rise through the rotating rod. During the rising process of the rolling roller, the fixed tooth plate drives the rotating rod to rotate through the fixed gear, causing the rotating rod to drive the rolling roller to rotate. During the rotation of the rolling roller, it comes into contact with the scraper, causing the scraper to scrape off the powder attached to the surface of the rolling roller, thereby preventing the powder from adhering to the surface of the rolling roller and affecting subsequent detection, and thus achieving the effect of avoiding adhesion.

[0034] Other features and advantages of the present invention will be described in the subsequent specification, and some of them will become obvious from the specification or be understood by implementing the present invention. The objectives and other advantages of the present invention can be achieved and obtained through the structures specifically pointed out in the written specification and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] Figure 1 It is a three-dimensional structural schematic diagram of the detection box of the present invention;

[0036] Figure 2 It is a three-dimensional structural schematic diagram of the box cover of the present invention;

[0037] Figure 3 It is a three-dimensional sectional structural schematic diagram of the detection box of the present invention;

[0038] Figure 4 It is a three-dimensional schematic diagram of the internal structure of the detection box of the present invention;

[0039] Figure 5 It is a three-dimensional schematic diagram of another perspective of the internal structure of the detection box of the present invention;

[0040] Figure 6 Schematic perspective sectional view of the drive box of the present invention;

[0041] Figure 7 Schematic perspective view of the crushing component and the leveling component of the present invention;

[0042] Figure 8 Schematic perspective view of the drive motor of the present invention;

[0043] Figure 9 Schematic perspective view of the first L-shaped plate of the present invention;

[0044] Figure 10 Schematic perspective view of the moving plate of the present invention;

[0045] Figure 11 Schematic perspective view of the detection plate and the water tank of the present invention;

[0046] Figure 12 Schematic perspective view of the detection plate and the water tank from another perspective of the present invention;

[0047] Figure 13 Schematic perspective sectional view of the detection plate of the present invention;

[0048] Figure 14 For the present invention Figure 13 Enlarged schematic view of the structure at A in;

[0049] Figure 15 For the present invention Figure 13 Enlarged schematic view of the structure at B in;

[0050] Figure 16 Schematic perspective view of the slide bar of the present invention.

[0051] In the figure: 1. Detection box; 11. Box cover; 111. Control panel; 12. Detector; 13. Detection plate; 131. Rolling groove; 14. Driving box; 2. Crushing component; 21. First L-shaped plate; 211. Driving cylinder; 212. Telescopic column; 22. Moving frame; 221. Rotating rod; 222. Rolling roller; 3. Rolling component; 31. Driving motor; 311. Driving rod; 312. Turntable; 313. Arc-shaped bar; 32. Limiting bar; 321. Moving rod; 322. Limiting column; 33. U-shaped frame; 4. Mixing component; 41. Solenoid valve; 42. Reagent kit; 421. Liquid outlet pipe; 5. Paving component; 51. Storage plate; 52. Moving plate; 521. Extending plate; 522. Second L-shaped plate; 523. Spring; 6. Overheating component; 61. Water tank; 611. Water pump; 612. Water inlet pipe; 62. Water storage tank; 621. Slide bar; 622. Slide disk; 623. Telescopic rod; 624. Sealing plate; 625. Water outlet pipe; 63. Water inlet tank; 7. Anti-sticking component; 71. Moving groove; 711. Fixed toothed plate; 72. Fixed gear; 73. Scraper. Detailed implementation mode

[0052] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0053] In the embodiments of the present application, the devices or elements indicated by or implied must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the embodiments of the present application. In the description of the embodiments of the present application, the meaning of "a plurality" is two or more, unless otherwise specifically specified.

[0054] For the first specific embodiment, please refer to Figures 1 to 9 , a detection device for the production of biomedical health products, including: a detection box 1 and a detector 12 fixedly connected inside the detection box 1,

[0055] a detection plate 13 fixedly connected inside the detection box 1. A rolling groove 131 is opened at the top of the detection plate 13. A driving box 14 is fixedly connected inside the detection box 1. A box cover 11 is hinged to the top of the detection box 1. A control panel 111 is arranged inside the box cover 11;

[0056] The crushing component 2 is arranged on the top of the detection plate 13 and is used for crushing the biomedical health care product tablets to be detected. The crushing component 2 includes a first L-shaped plate 21 arranged inside the detection box 1. A driving cylinder 211 is fixedly connected to the top of the first L-shaped plate 21. The output end of the driving cylinder 211 is differentially connected to a telescopic column 212. A moving frame 22 is fixedly connected to the bottom of the telescopic column 212. A rotating rod 221 is rotatably connected inside the moving frame 22. A rolling roller 222 is fixedly connected to the surface of the rotating rod 221;

[0057] The rolling component 3 is arranged inside the driving box 14 and is used for rolling the crushed tablets. The rolling component 3 includes a driving motor 31 fixedly connected inside the driving box 14. A driving rod 311 is fixedly connected to the output end of the driving motor 31. A turntable 312 is fixedly connected to the surface of the driving rod 311. An arc-shaped strip 313 is fixedly connected to the surface of the turntable 312. The rolling component 3 further includes a limiting strip 32 fixedly connected inside the driving box 14. A moving rod 321 is slidably connected inside the limiting strip 32. A limiting column 322 is fixedly connected to the surface of the moving rod 321. The limiting column 322 is slidably pressed against the arc-shaped strip 313. One end of the moving rod 321 is fixedly connected to a U-shaped frame 33. The surface of the U-shaped frame 33 is fixedly connected to the back of the first L-shaped plate 21;

[0058] The paving component 5 is arranged on the surface of the crushing component 2 and is used for evenly paving the crushed tablets inside the rolling groove 131;

[0059] The overheat component 6 is arranged inside the detection box 1 and is used to prevent the heat generated during rolling from affecting the vitamins inside the tablets when the rolling component 3 rolls the tablets;

[0060] The anti-sticking component 7 is arranged on the surface of the rolling component 3 and is used to prevent the crushed tablet powder from sticking to the surface of the rolling component 3;

[0061] When the tablets need to be rolled into powder, place the health care product tablets in the rolling groove 131 and under the rolling roller 222. Start the driving cylinder 211 through the control panel 111. The driving cylinder 211 drives the moving frame 22 to descend through the telescopic column 212, so that the moving frame 22 drives the rolling roller 222 to descend through the rotating rod 221, and the rolling roller 222 crushes the tablets. Then start the driving motor 31 through the control panel 111. The driving motor 31 drives the turntable 312 to rotate through the driving rod 311, so that the turntable 312 drives the moving rod 321 to reciprocate through the arc-shaped strip 313 and the limiting column 322. The moving rod 321 drives the first L-shaped plate 21 to reciprocate through the U-shaped frame 33, so that the first L-shaped plate 21 drives the rolling roller 222 to reciprocate in the rolling groove 131, and further the rolling roller 222 rolls the tablet fragments, turning the tablet fragments into powder, and further evenly grinding the tablets into powder;

[0062] Specific Embodiment 2. Please refer to Figures 1 to 10 , based on the detection device for the production of biomedical health products provided in Specific Embodiment 1, the present embodiment provides a further technical solution:

[0063] The flattening component 5 includes two storage plates 51 fixedly connected to the bottom of the first L-shaped plate 21 and a moving plate 52 fixedly connected to the surface of the telescopic column 212. Both sides of the moving plate 52 are fixedly connected with extending plates 521. The extending plates 521 are slidably connected inside the storage plates 51. The bottom of the extending plates 521 is slidably connected with second L-shaped plates 522. The bottom of the extending plates 521 is fixedly connected with springs 523. The bottom of the springs 523 is fixedly connected with the top of the second L-shaped plates 522;

[0064] When it is necessary to prevent the tablets from sticking and caking with each other after being ground into powder, after the rolling roller 222 breaks the tablets, the driving cylinder 211 is started through the control panel 111. The driving cylinder 211 drives the moving frame 22 and the moving plate 52 to rise through the telescopic column 212. The moving frame 22 drives the rolling roller 222 to rise through the rotating rod 221, so that the rolling roller 222 is separated from the tablet fragments. The moving plate 52 drives the second L-shaped plate 522 to rise through the extending plate 521, so that the second L-shaped plate 522 moves to the middle of the tablet fragments. Then, the rolling component 3 is started through the control panel 111, so that the rolling component 3 drives the crushing component 2 and the second L-shaped plate 522 to move. As the second L-shaped plate 522 moves, the second L-shaped plate 522 gradually moves the tablet fragments to different positions in the rolling groove 131, thereby avoiding the tablets from sticking and caking with each other when forming powder in the subsequent rolling process;

[0065] Specific Embodiment 3. Please refer to Figures 1 to 16 , based on the detection device for the production of biomedical health products provided in Specific Embodiment 2, the present embodiment provides a further technical solution:

[0066] The overheating component 6 includes a water tank 61 fixedly connected to the bottom of the detection box 1 and a water storage tank 62 and a water inlet tank 63 opened inside the detection plate 13. A water pump 611 is arranged on one side of the water tank 61. The top of the water pump 611 is fixedly communicated with a water inlet pipe 612. One end of the water inlet pipe 612 is fixedly communicated with one end of the water inlet tank 63. The water inlet tank 63 is fixedly communicated with the water storage tank 62. A sliding rod 621 is fixedly connected inside the water storage tank 62. A sliding disk 622 is slidably connected to the surface of the sliding rod 621. The bottom of the sliding disk 622 is fixedly connected with a telescopic rod 623. The bottom of the telescopic rod 623 is fixedly connected with a blocking disk 624. The water storage tank 62 and the water tank 61 are communicated through a water outlet pipe 625. The blocking disk 624 is located at the top of the water outlet pipe 625;

[0067] It should be noted that the sliding plate 622 is a foam board that can float on the water surface, and the sliding plate 622 can drive the telescopic rod 523 and the plugging plate 624 to rise during the rising process. When the sliding plate 622 moves to the top of the water storage tank 61, the plugging plate 624 is separated from the water outlet pipe 625 and the gap is not large;

[0068] When it is necessary to prevent the heat generated during the rolling process from affecting the vitamin activity of the tablets, the water pump 611 is started through the control panel 111. The water pump 611 transports the water in the water tank 61 to the water inlet tank 63 through the water inlet pipe 612, and then enters the water storage tank 62. As the water level in the water storage tank 62 gradually rises, the water in the water storage tank 62 drives the sliding plate 622 to rise, so that the sliding plate 622 drives the telescopic rod 623 to rise. When the water level in the water storage tank 62 rises to the top, the water in the water storage tank 62 absorbs the heat in the rolling tank 131, thereby avoiding a large amount of heat generation between the tablets, stretching the telescopic rod 623 to the limit. When the water level continues to rise, the sliding plate 622 drives the plugging plate 624 to rise through the telescopic rod 623, so that the plugging plate 624 opens the water outlet pipe 625, and then the excess water inside the water storage tank 62 flows into the water tank 61 through the water outlet pipe 625. Therefore, the water in the water storage tank 62 continuously flows, and the water flow absorbs the heat in the rolling tank 131, thereby avoiding the heat in the rolling tank 131 from affecting the vitamin activity in the tablets;

[0069] For Specific Embodiment 4, please refer to Figures 1 to 12 , according to a detection device for the production of biomedical health products provided in Specific Embodiment 3, the present embodiment provides a further technical solution:

[0070] The anti-sticking assembly 7 includes a fixed gear 72 fixedly connected to one end of the rotating rod 221 and a scraper 73 fixedly connected to one side of the moving frame 22. A moving groove 71 is formed at the top of the detection plate 13, and a fixed toothed plate 711 is fixedly connected inside the moving groove 71. The fixed toothed plate 711 is in meshing transmission with the fixed gear 72;

[0071] When it is necessary to prevent powder from sticking to the surface of the rolling roller 222, the rolling roller 222 is moved to one side in the rolling tank 131 and located above the solenoid valve 41. At this time, the fixed gear 72 is meshed with the fixed toothed plate 711, and then the driving cylinder 211 is started. The driving cylinder 211 drives the moving frame 22 to rise through the telescopic column 212, so that the moving frame 22 drives the fixed gear 72 and the rolling roller 222 to rise through the rotating rod 221. During the rising process of the rolling roller 222, the fixed toothed plate 711 drives the rotating rod 221 to rotate through the fixed gear 72, so that the rotating rod 221 drives the rolling roller 222 to rotate. During the rotation process of the rolling roller 222, it contacts the scraper 73, and the scraper 73 scrapes the powder attached to the surface of the rolling roller 222, so that the powder no longer adheres to the surface of the rolling roller 222 and affects the subsequent detection;

[0072] Specific Embodiment Five. Please refer to Figures 1 to 11 , based on the detection device for the production of biomedical health products provided in Specific Embodiment Four, this embodiment provides a further technical solution:

[0073] A mixing component 4 is arranged on the surface of the rolling component 3. The mixing component 4 is used to mix the crushed tablet powder and the reagent. The mixing component 4 includes a solenoid valve 41 arranged inside the rolling groove 131 and a reagent kit 42 slidably connected to the bottom of the detection plate 13. A liquid outlet pipe 421 is fixedly communicated with one side of the reagent kit 42. The liquid outlet pipe 421 is fixedly connected to the top of the detector 12;

[0074] It should be noted that the control panel 111 is electrically connected to the detector 12, the driving cylinder 211, the driving motor 31, and the solenoid valve 41. The surface of the bottom of the U-shaped frame 33 is fixedly connected to the back of the reagent kit 42. The liquid outlet pipe 421 is fixedly connected to the top of the detector 12, and the liquid outlet pipe 421 is a corrugated pipe that can be stretched and contracted. A valve is arranged inside the liquid outlet pipe 421. When the rolling roller 222 moves to one side of the rolling groove 131, the rolling roller 222 is located above the solenoid valve 41, and the fixed toothed plate 711 meshes with the fixed gear 72;

[0075] When it is necessary to mix the powder formed by rolling the tablets with the reagent inside the reagent kit 42, when the rolling roller 222 rolls the tablet fragments, the second L-shaped plate 522 is received inside the extending plate 521. At this time, the spring 523 is in a compressed state. Then, the solenoid valve 41 is opened and the driving motor 31 is started through the control panel 111, so that the driving motor 31 drives the first L-shaped plate 21 through the U-shaped frame 33, and then the second L-shaped plate 522 pushes the tablets rolled into powder, so that the tablet powder moves into the reagent kit 42 through the opening of the solenoid valve 41. When the bottom of the second L-shaped plate 522 no longer contacts the top of the rolling groove 131, the spring 523 is no longer squeezed by the second L-shaped plate 522 and returns to its original state, thereby driving the second L-shaped plate 522 to move reciprocally and generate vibration, and then transferring the powder attached to the surface of the second L-shaped plate 522 to the inside of the reagent kit 42 through the vibration. Then, the rolling roller 222 and the second L-shaped plate 522 are moved to the top of the rolling groove 131 and the solenoid valve 41 is closed through the driving cylinder 211. While the U-shaped frame 33 drives the first L-shaped plate 21 to move reciprocally, the U-shaped frame 33 synchronously drives the reagent kit 42 to move reciprocally. During the reciprocal movement of the reagent kit 42, the tablet powder and the reagent inside the reagent kit 42 are fully mixed. After the mixing is completed, it flows into the detector 12 through the liquid outlet pipe 421. The detector 12 detects the vitamins in the tablets and uploads the detection results to the inside of the control panel 111;

[0076] Specific Embodiment Six, the present invention also provides a detection method for the production of biomedical health products. This biomedical health product detection method specifically includes the following steps:

[0077] Step 1: Place the biomedical health product tablets to be detected inside the rolling groove 131 and at the bottom of the crushing component 2.

[0078] Step 2: Start the crushing component 2 through the control panel 111, so that the crushing component 2 breaks the biomedical health product tablets as a whole, avoiding the sliding of the tablets due to irregular shapes during the rolling process.

[0079] Step 3: After the tablets are broken by the crushing component 2, start the rolling component 3 through the control panel 111, so that the rolling component 3 rolls the broken tablets, and the tablets become powdery after repeated rolling.

[0080] Step 4: When using the rolling component 3 to roll the tablets, synchronously start the overheating component 6, so that the overheating component 6 cools the inside of the rolling groove 131, avoiding the inactivation of vitamins in the tablets due to heat generation during the rolling process.

[0081] Step 5: After the rolling is completed, scrape off the powder adhering to the surface of the crushing component 2 through the anti-sticking component 7, so that the powder falls into the inside of the mixing component 4 and then enters the inside of the detector 12, and the detector 12 detects the vitamin content in the tablets.

[0082] Working principle: When in use, open the lid 11, set the specified operating command inside the control panel 111, then place the health care product tablets in the rolling groove 131 and at the bottom of the rolling roller 222. Start the driving cylinder 211 through the control panel 111. The driving cylinder 211 drives the moving frame 22 to descend through the telescopic column 212, so that the moving frame 22 drives the rolling roller 222 to descend through the rotating rod 221, and the rolling roller 222 crushes the tablets. When it is necessary to prevent the tablets from sticking together after being ground into powder, after the rolling roller 222 crushes the tablets, start the driving cylinder 211 through the control panel 111. The driving cylinder 211 drives the moving frame 22 and the moving plate 52 to rise through the telescopic column 212. The moving frame 22 drives the rolling roller 222 to rise through the rotating rod 221, so that the rolling roller 222 is separated from the tablet fragments. The moving plate 52 drives the second L-shaped plate 522 to rise through the extending plate 521, so that the second L-shaped plate 522 moves to the middle of the tablet fragments. Then start the rolling assembly 3 through the control panel 111, so that the rolling assembly 3 drives the crushing assembly 2 and the second L-shaped plate 522 to move. As the second L-shaped plate 522 moves, the second L-shaped plate 522 gradually moves the tablet fragments to different positions in the rolling groove 131, thereby avoiding the tablet fragments from sticking together when forming powder during subsequent rolling. Then start the driving motor 31 through the control panel 111. The driving motor 31 drives the turntable 312 to rotate through the driving rod 311, so that the turntable 312 drives the moving rod 321 to reciprocate through the arc-shaped strip 313 and the limiting column 322. The moving rod 321 drives the first L-shaped plate 21 to reciprocate through the U-shaped frame 33, so that the first L-shaped plate 21 drives the rolling roller 222 to reciprocate in the rolling groove 131, thereby enabling the rolling roller 222 to roll the tablet fragments and turn the tablet fragments into powder, and further evenly grinding the tablets into powder. When it is necessary to prevent the heat generated during rolling from affecting the vitamin activity of the tablets, start the water pump 611 through the control panel 111. The water pump 611 transports the water in the water tank 61 to the water inlet groove 63 through the water inlet pipe 612, and then enters the water storage tank 62. As the water level in the water storage tank 62 gradually rises, the water in the water storage tank 62 drives the sliding disk 622 to rise, so that the sliding disk 622 drives the telescopic rod 623 to rise. When the water level in the water storage tank 62 rises to the top, the water in the water storage tank 62 absorbs the heat in the rolling groove 131, thereby avoiding a large amount of heat generated between the tablets, and stretching the telescopic rod 623 to the limit. When the water level continues to rise, the sliding disk 622 drives the sealing disk 624 to rise through the telescopic rod 623, so that the sealing disk 624 opens the water outlet pipe 625, and then the excess water inside the water storage tank 62 flows into the water tank 61 through the water outlet pipe 625. Therefore, the water in the water storage tank 62 keeps flowing, and the water flow absorbs the heat in the rolling groove 131, thereby avoiding the heat in the rolling groove 131 from affecting the vitamin activity in the tablets.When the powder formed after rolling the tablets needs to be mixed with the reagents inside the kit 42, when the rolling roller 222 rolls the tablet fragments, the second L-shaped plate 522 is received inside the extending plate 521. At this time, the spring 523 is in a compressed state. Then, the solenoid valve 41 is opened through the control panel 111 and the drive motor 31 is started. The drive motor 31 drives the first L-shaped plate 21 to move through the U-shaped frame 33. Furthermore, the second L-shaped plate 522 pushes the tablets rolled into powder, so that the tablet powder moves through the opening of the solenoid valve 41 into the kit 42. When the bottom of the second L-shaped plate 522 no longer contacts the top of the rolling groove 131, the spring 523 is no longer squeezed by the second L-shaped plate 522 and returns to its original state. Furthermore, it drives the second L-shaped plate 522 to reciprocate and vibrate. Furthermore, the powder adhering to the surface of the second L-shaped plate 522 is transferred into the kit 42 through vibration. Then, the rolling roller 222 and the second L-shaped plate 522 are moved to the top of the rolling groove 131 by the drive cylinder 211. When it is necessary to prevent the powder from adhering to the surface of the rolling roller 222, the rolling roller 222 is moved to one side in the rolling groove 131 and located above the solenoid valve 41. At this time, the fixed gear 72 meshes with the fixed toothed plate 711. Then, the drive cylinder 211 is started. The drive cylinder 211 drives the moving frame 22 to rise through the telescopic column 212, so that the moving frame 22 drives the fixed gear 72 and the rolling roller 222 to rise through the rotating rod 221. During the rising process of the rolling roller 222, the fixed toothed plate 711 drives the rotating rod 221 to rotate through the fixed gear 72, so that the rotating rod 221 drives the rolling roller 222 to rotate. During the rotation process of the rolling roller 222, it contacts the scraper 73, so that the scraper 73 scrapes off the powder adhering to the surface of the rolling roller 222. Furthermore, the powder no longer adheres to the surface of the rolling roller 222 and affects subsequent detection. Subsequently, the solenoid valve 41 is closed. While the U-shaped frame 33 drives the first L-shaped plate 21 to reciprocate, the U-shaped frame 33 synchronously drives the kit 42 to reciprocate. During the reciprocating movement of the kit 42, the tablet powder and the reagents inside the kit 42 are fully mixed. After the mixing is completed, it flows into the detector 12 through the liquid outlet pipe 421. The vitamins in the tablets are detected by the detector 12, and the detection results are uploaded to the inside of the control panel 111.,

[0083] The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.

[0084] It should be noted that in this document, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variation thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0085] Parallel: The parallelism defined in this application is not limited to absolute parallelism. This definition of parallelism can be understood as substantially parallel, allowing for non-absolute parallelism due to factors such as assembly tolerances, design tolerances, and the influence of structural flatness. Small-angle range errors are allowed. For example, within an assembly error range of less than 10 degrees, it can be understood as a parallel relationship.

[0086] Perpendicular: The perpendicularity defined in this application is not limited to an absolute perpendicular intersection (an included angle of 90 degrees). A non-absolute perpendicular intersection relationship due to factors such as assembly tolerances, design tolerances, and the influence of structural flatness is allowed. Small-angle range errors are allowed. For example, within an assembly error range of 80 degrees to 100 degrees, it can be understood as a perpendicular relationship.

[0087] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A detection device for the production of biomedical health products, comprising: A detection box (1) and a detector (12) fixedly connected inside the detection box (1), characterized in that: A detection plate (13) is fixedly connected inside the detection box (1). A rolling groove (131) is formed at the top of the detection plate (13), and a driving box (14) is fixedly connected inside the detection box (1); A crushing assembly (2) is arranged on the top of the detection plate (13). The crushing assembly (2) includes a first L-shaped plate (21) arranged inside the detection box (1). A driving cylinder (211) is fixedly connected to the top of the first L-shaped plate (21). The output end of the driving cylinder (211) is differentially connected to a telescopic column (212). A moving frame (22) is fixedly connected to the bottom of the telescopic column (212). A rotating rod (221) is rotatably connected inside the moving frame (22), and a rolling roller (222) is fixedly connected to the surface of the rotating rod (221); A rolling assembly (3) is arranged inside the driving box (14) for rolling the crushed tablets; An overheat assembly (6) is arranged inside the detection box (1) to prevent the heat generated during rolling from affecting the vitamins inside the tablets when the rolling assembly (3) rolls the tablets; An anti-sticking assembly (7) is arranged on the surface of the rolling assembly (3) to prevent the crushed tablet powder from sticking to the surface of the rolling assembly (3).

2. The detection device for the production of biomedical health products according to claim 1, characterized in that: A box cover (11) is hinged to the top of the detection box (1). A control panel (111) is arranged inside the box cover (11). The rolling assembly (3) includes a driving motor (31) fixedly connected inside the driving box (14). The output end of the driving motor (31) is fixedly connected to a driving rod (311). A turntable (312) is fixedly connected to the surface of the driving rod (311), and an arc-shaped strip (313) is fixedly connected to the surface of the turntable (312).

3. The detection device for the production of biomedical health products according to claim 2, characterized in that: The rolling assembly (3) further includes a limiting strip (32) fixedly connected inside the driving box (14). A moving rod (321) is slidably connected inside the limiting strip (32). A limiting column (322) is fixedly connected to the surface of the moving rod (321). The limiting column (322) and the arc-shaped strip (313) slide and press against each other. One end of the moving rod (321) is fixedly connected to a U-shaped frame (33), and the surface of the U-shaped frame (33) is fixedly connected to the back of the first L-shaped plate (21).

4. A detection device for the production of biomedical health products according to claim 1, characterized in that: A mixing assembly (4) is arranged on the surface of the rolling assembly (3). The mixing assembly (4) is used for mixing the crushed tablet powder and the reagent. The mixing assembly (4) includes a solenoid valve (41) arranged inside the rolling groove (131) and a reagent kit (42) slidably connected to the bottom of the detection plate (13). A liquid outlet pipe (421) is fixedly communicated with one side of the reagent kit (42), and the liquid outlet pipe (421) is fixedly connected to the top of the detector (12).

5. The detection device for the production of biomedical health products according to claim 1, characterized in that: A paving component (5) is arranged on the surface of the crushing component (2). The paving component (5) includes two storage plates (51) fixedly connected to the bottom of the first L-shaped plate (21) and a moving plate (52) fixedly connected to the surface of the telescopic column (212). Both sides of the moving plate (52) are fixedly connected with extending plates (521), and the extending plates (521) are slidably connected to the inside of the storage plates (51).

6. The testing device for the production of biomedical health products according to claim 5, characterized in that: A second L-shaped plate (522) is slidably connected to the bottom of the extending plate (521). A spring (523) is fixedly connected to the bottom of the extending plate (521), and the bottom of the spring (523) is fixedly connected to the top of the second L-shaped plate (522).

7. The detection device for the production of biomedical health products according to claim 1, characterized in that: The overheat component (6) includes a water tank (61) fixedly connected to the bottom of the detection box (1), a water storage tank (62) and a water inlet tank (63) opened inside the detection plate (13). A water pump (611) is arranged on one side of the water tank (61). The top of the water pump (611) is fixedly communicated with a water inlet pipe (612). One end of the water inlet pipe (612) is fixedly communicated with one end of the water inlet tank (63), and the water inlet tank (63) is fixedly communicated with the water storage tank (62).

8. The detection device for the production of biomedical health products according to claim 7, characterized in that: A sliding rod (621) is fixedly connected to the inside of the water storage tank (62). A sliding disk (622) is slidably connected to the surface of the sliding rod (621). A telescopic rod (623) is fixedly connected to the bottom of the sliding disk (622). A blocking disk (624) is fixedly connected to the bottom of the telescopic rod (623). The water storage tank (62) and the water tank (61) are communicated through a water outlet pipe (625), and the blocking disk (624) is located at the top of the water outlet pipe (625).

9. The detection device for the production of biomedical health products according to claim 1, characterized in that: The anti-sticking component (7) includes a fixed gear (72) fixedly connected to one end of the rotating rod (221) and a scraper (73) fixedly connected to one side of the moving frame (22). A moving groove (71) is opened at the top of the detection plate (13). A fixed toothed plate (711) is fixedly connected to the inside of the moving groove (71), and the fixed toothed plate (711) is meshed and driven with the fixed gear (72).

10. A detection method for the production of biomedical health products, characterized in that: Using a detection device for the production of biomedical health products according to any one of claims 1-9, the biomedical health product detection method specifically includes the following steps: Step 1: Place the biomedical health product tablets to be detected inside the rolling groove (131) and at the bottom of the crushing component (2); Step 2: Start the crushing component (2) through the control panel (111) so that the crushing component (2) breaks the biomedical health product tablets as a whole to prevent the tablets from sliding due to irregular shapes during the rolling process; Step 3: After the tablets are broken by the crushing component (2), start the rolling component (3) through the control panel (111) so that the rolling component (3) rolls the broken tablets, and the tablets are repeatedly rolled into a powder state; Step 4: When using the rolling component (3) to roll the tablets, simultaneously start the overheat component (6) so that the overheat component (6) cools the inside of the rolling groove (131), preventing heat from being generated during rolling and causing the vitamins in the tablets to lose their activity. Step 5: After rolling is completed, use the anti-sticking component (7) to scrape off the powder adhering to the surface of the crushing component (2), causing the powder to fall into the inside of the mixing component (4) and then enter the inside of the detector (12), and use the detector (12) to detect the vitamin content in the tablets.

Citation Information

Patent Citations

  • Vitamin detector

    CN212180823U