An analytical detection device based on a creatine sodium finished product

By using a flexible compression bag, a one-way valve structure, and a servo motor-driven power component, the problem of unstable sample delivery in sodium sarcosinate detection equipment was solved, achieving high-precision and high-efficiency detection results.

CN122109561APending Publication Date: 2026-05-29DONGYING KUNBAO NEW MATERIAL CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
DONGYING KUNBAO NEW MATERIAL CO LTD
Filing Date
2026-03-31
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing sodium sarcosinate detection equipment suffers from problems such as delivery deviation and frequency instability during sample injection, which affect detection accuracy and efficiency. Furthermore, manual operation can easily lead to sample contamination and dosage deviation.

Method used

The temporary storage component, which uses a flexible compression bag and a one-way valve structure, combined with a power component consisting of a servo motor and a reducer, enables pressureless injection and precise transposition of samples. The mechanical squeezing of the telescopic component creates controllable pressure for liquid discharge, ensuring stable and uniform sample delivery.

Benefits of technology

It improves the accuracy and efficiency of sodium sarcosinate detection, avoids problems such as sample delivery deviation and unstable flow, and realizes batch, continuous and standardized detection.

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Abstract

The application relates to the technical field of component detection, and discloses an analysis and detection equipment based on a creatine sodium finished product, which comprises a detection mounting table, a telescopic assembly, a rotating assembly, a power assembly, a temporary storage assembly, a mixing pretreatment equipment and an analysis and detection equipment; the temporary storage assembly comprises a compression bag, a flexible liquid inlet, a one-way valve and a pressure relief valve; through the flexible compression bag and the one-way valve structure of the temporary storage assembly, the application realizes pressure-free injection of the sample, avoids poor liquid inlet or early liquid leakage caused by air pressure imbalance, adopts a servo motor and a speed reducer in cooperation with the power assembly, realizes accurate indexing in cooperation with the rotating assembly, ensures that the temporary storage assembly is stably aligned with the liquid outlet position, realizes controllable pressure liquid outlet through mechanical extrusion of the telescopic assembly, realizes stable sample delivery, non-deviation and uniform flow, and realizes smooth connection with the mixing pretreatment equipment, so that the creatine sodium detection precision and efficiency are greatly improved, and the structure is stable and reliable and easy to maintain.
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Description

Technical Field

[0001] This invention relates to the field of component detection technology, and specifically to an analytical detection device based on sodium sarcosinate finished products. Background Technology

[0002] Sodium sarcosinate is an important functional raw material in the fields of daily chemicals, biomedicine, and food preservation. Its content in the finished product directly determines the product quality and efficacy. Therefore, accurate and efficient analysis and testing of sodium sarcosinate products are required in the production, quality inspection, and delivery stages. Currently, conventional sodium sarcosinate testing mostly relies on manual operation. The sample to be tested is first drawn manually with a syringe, then manually injected into the testing equipment, followed by pretreatment and analysis. This process is not only cumbersome and inefficient, but manual operation is also prone to sample contamination and dosage deviation, making it difficult to achieve batch, continuous, and standardized testing.

[0003] Existing automated testing equipment requires increasing the air pressure inside the chamber during sample injection to transport the sample to the mixing pretreatment equipment for subsequent testing. However, the existing pretreatment and transport links are not well connected, which can easily lead to problems such as sample transport deviation and unstable transport frequency, affecting the detection accuracy and efficiency. Summary of the Invention

[0004] In view of the above-mentioned shortcomings of the existing technology, the present invention provides an analytical and detection device based on sodium sarcosinate product, which can effectively solve the problems in the background technology.

[0005] To achieve the above objectives, the present invention provides the following technical solution: This invention provides an analytical testing device based on sodium sarcosinate finished product, comprising: a testing mounting platform, a telescopic component, a rotating component, a power component, a temporary storage component, a mixing pretreatment device, and an analytical testing device; The temporary storage component includes a compression bag, a flexible inlet, a one-way valve, and a pressure relief valve, which are used to receive sample solutions through the flexible inlet and the one-way valve and temporarily store them in the compression bag. The rotating component is used to drive the temporary storage component to rotate below the telescopic connecting rod of the telescopic component; The telescopic connecting rod is used to squeeze the temporary storage component to increase the internal pressure of the compression bag, so that the solution is discharged through the pressure relief valve to the mixing pretreatment equipment; The power assembly includes a servo motor, a reducer, and a reduction gear. The servo motor drives the reduction gear through the reducer, and the reduction gear transmits power to the rotating assembly. The analytical detection equipment is used to detect the sodium sarcosinate content in the solution after treatment by the mixed pretreatment equipment.

[0006] It also includes a testing installation platform comprising a testing shell, a testing installation door, a limiting hinge, a fixed support plate, a mixing pretreatment device, an analytical testing device, an analytical fixing plate, and a constraint fixing seat. The analytical fixing plate is fixedly mounted on the upper surface of the testing shell, and the constraint fixing seat is fixedly mounted on the upper surface of the testing installation platform. The testing installation door is movably mounted on the side of the testing shell. A limiting hinge is fixedly mounted on the side of the testing installation door away from the testing shell, and the other end of the limiting hinge is fixedly mounted on the testing shell. The fixed support plate is fixedly mounted inside the testing shell, and the mixing pretreatment device and the analytical testing device are fixedly mounted on the upper surface of the fixed support plate. The mixing pretreatment device and the analytical testing device are connected sideways.

[0007] It also includes a telescopic assembly comprising a fixed sleeve, an arc-shaped opening and closing door, a support connecting plate, a telescopic cylinder, a telescopic connecting rod, a fixed mounting rod, and a fixed top cover. The fixed sleeve is fixedly provided on the upper surface of the constraint fixing seat, and the fixed top cover is fixedly provided on the upper surface of the fixed sleeve. The support connecting plate is fixedly provided between the constraint fixing seat and the fixed top cover, and the telescopic cylinder is fixedly provided on the lower surface of the fixed top cover.

[0008] It also includes a telescopic connecting rod fixedly provided at the end of the telescopic cylinder away from the fixed top cover, one end of the telescopic connecting rod passing through the support connecting plate and suspended in the air, the two ends of the fixed mounting rod being fixed to the constraint fixing seat and the fixed top cover respectively, the support connecting plate being fixedly installed on the fixed mounting rod, and an arc-shaped opening and closing door being movably provided on the telescopic assembly.

[0009] It also includes a rotating assembly comprising a rotating fixed plate, a rotating gear, a hollow mounting plate, a vertical connecting plate, a hollow mounting box, a fixed support block, a guide constraint column, a guide sleeve, and a return spring. The rotating fixed plate is movably sleeved on the fixed mounting rod. The rotating gear is fixedly provided on the lower surface of the rotating fixed plate. The vertical connecting plate is fixedly provided on the upper surface of the hollow mounting plate. The hollow mounting box is fixedly provided on the lower surface of the hollow mounting plate.

[0010] It also includes a hollow mounting plate movably provided on the upper surface of the rotating fixed plate, a hollow mounting box movably installed inside the rotating fixed plate, a fixed support block fixedly provided on the lower surface of the hollow mounting box, a guide constraint column fixedly provided on the lower surface of the fixed support block, a guide sleeve fixedly provided inside the hollow mounting box, one end of the guide constraint column movably inserted into the inside of the guide sleeve, and a reset spring movably sleeved on the guide sleeve.

[0011] It also includes a power assembly comprising a power sleeve, a power fixing block, a driven gear, a reducer, a servo motor, and a reduction rod. The power sleeve is fixedly installed on one side of the fixed sleeve, and both ends of the power sleeve are fixedly installed between the constraint fixing seat and the fixed top cover. A power fixing block is fixedly provided on the inner side of the power sleeve, and a reducer is fixedly provided on the upper surface of the power fixing block.

[0012] It also includes a servo motor fixedly mounted on the upper surface of the reducer, a reduction rod fixedly mounted on the lower surface of the reducer, a driven gear fixedly sleeved on one end of the reduction rod, and the driven gear meshing with the rotating gear.

[0013] It also includes a temporary storage assembly comprising a temporary storage mounting plate, a compression bag, a flexible inlet, a one-way valve, an outlet, and a pressure relief valve. The compression bag is movably disposed inside the hollow mounting box. The temporary storage mounting plate is fixedly disposed on the upper surface of the compression bag. A hollow mounting plate is movably disposed on the temporary storage mounting plate. The temporary storage mounting plate is disposed directly below the telescopic connecting rod.

[0014] It also includes a one-way valve fixedly installed on the temporary storage mounting plate, a flexible liquid inlet fixedly installed on the upper surface of the one-way valve, a liquid outlet fixedly installed on the compression bag, a pressure relief valve fixedly installed on the lower surface of the liquid outlet, and one end of the pressure relief valve passing through the hollow mounting box and suspended in the air.

[0015] The technical solution provided by this invention has the following advantages compared with the prior art: This invention utilizes a flexible compression bag and one-way valve structure in the temporary storage component to achieve unimpeded and leak-free sample injection, avoiding pressure imbalances that could lead to poor liquid inflow or premature leakage. The power component employs a servo motor and reducer, working in conjunction with the rotating component to achieve precise positioning, ensuring the temporary storage component is stably aligned with the liquid outlet position. The telescopic component uses mechanical compression to create controllable pressure for liquid outlet, resulting in stable, non-deviation-prone, and uniform sample delivery. It seamlessly integrates with the mixing and pretreatment equipment, significantly improving the accuracy and efficiency of sodium sarcosinate detection. The structure is stable and reliable, and maintenance is simple. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present invention; Figure 2 This is a front view schematic diagram of the structure in an embodiment of the present invention; Figure 3 This is a schematic diagram of the front cross-sectional structure in an embodiment of the present invention; Figure 4 This is a schematic diagram of the side cross-sectional structure in an embodiment of the present invention; Figure 5 This is a schematic diagram of the power component structure in an embodiment of the present invention; Figure 6 This is a schematic diagram of the compression bag structure in an embodiment of the present invention; Figure 7 This is a schematic diagram of the internal structure of the hollow mounting box in an embodiment of the present invention; Figure 8 This is a partial structural schematic diagram of an embodiment of the present invention.

[0018] The labels in the diagram represent: 1. Testing mounting platform; 11. Testing housing; 12. Testing mounting door; 13. Limiting hinge; 14. Fixed support plate; 15. Mixing pretreatment equipment; 16. Analysis and testing equipment; 17. Analysis fixing plate; 18. Constraint fixing seat; 2. Telescopic assembly; 21. Fixing sleeve; 22. Arc-shaped opening and closing door; 23. Support connecting plate; 24. Telescopic cylinder; 25. Telescopic connecting rod; 26. Fixed mounting rod; 27. Fixed top cover; 3. Rotating assembly; 31. Rotating fixing plate; 3 2. Rotating gear; 33. Hollow mounting plate; 34. Vertical connecting plate; 35. Hollow mounting box; 36. Fixed support block; 37. Guide constraint column; 38. Guide sleeve; 39. Return spring; 4. Power assembly; 41. Power sleeve; 42. Power fixing block; 43. Driven gear; 44. Reducer; 45. Servo motor; 46. Reducer rod; 5. Temporary storage assembly; 51. Temporary storage mounting plate; 52. Compression bag; 53. Flexible liquid inlet; 54. Check valve; 55. Liquid outlet; 56. Pressure relief valve. Detailed Implementation

[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0020] The present invention will be further described below with reference to embodiments. Example

[0021] Please see Figures 1-6The present invention provides a technical solution: an analytical testing device based on sodium sarcosinate finished product, comprising: a testing mounting platform 1, a telescopic component 2, a rotating component 3, a power component 4, a temporary storage component 5, a mixing pretreatment device 15, and an analytical testing device 16. The temporary storage component 5 includes a compression bag 52, a flexible liquid inlet 53, a one-way valve 54, and a pressure relief valve 56, for receiving sample solutions through the flexible liquid inlet 53 and the one-way valve 54 and temporarily storing them in the compression bag 52. The rotating assembly 3 is used to drive the temporary storage assembly 5 to rotate below the telescopic connecting rod 25 of the telescopic assembly 2. The telescopic connecting rod 25 is used to squeeze the temporary storage assembly 5 to increase the internal pressure of the compression bag 52, so that the solution is discharged through the pressure relief valve 56 to the mixing pretreatment equipment 15. The power assembly 4 includes a servo motor 45, a reducer 44 and a reduction rod 46. The servo motor 45 drives the reduction rod 46 through the reducer 44. The reduction rod 46 transmits power to the rotating assembly 3. The analysis and detection equipment 16 is used to detect the sodium sarcosinate content in the solution after treatment by the mixing pretreatment equipment 15. The testing installation platform 1 includes a testing housing 11, a testing installation door 12, a limiting hinge 13, a fixed support plate 14, a mixing pretreatment device 15, an analysis and testing device 16, an analysis fixing plate 17, and a constraint fixing seat 18. The analysis fixing plate 17 is fixedly installed on the upper surface of the testing housing 11, and the constraint fixing seat 18 is fixedly installed on the upper surface of the testing installation platform 1. The testing installation door 12 is movably installed on the side of the testing housing 11. The limiting hinge 13 is fixedly installed on the side of the testing installation door 12 away from the testing housing 11, and the other end of the limiting hinge 13 is fixedly installed on the testing housing 11. The fixed support plate 14 is fixedly installed inside the testing housing 11. The mixing pretreatment device 15 and the analysis and testing device 16 are fixedly installed on the upper surface of the fixed support plate 14. The mixing pretreatment device 15 and the analysis and testing device 16 are connected on the side.

[0022] In specific implementation: The detection housing 11 serves as the external protective body of the equipment, playing a role in preventing dust, pollution, and external interference. At the same time, it provides a closed working space for all internal components, avoiding contamination of samples by external impurities during the sample detection process, ensuring a clean detection environment, and also providing rigid structural support and shape constraints for the internal components. The detection installation door 12 is used in conjunction with the limit hinge 13. The detection installation door 12 can be opened and closed flexibly, facilitating operators to perform daily inspection, maintenance, cleaning, and troubleshooting of the mixing pretreatment equipment 15 and the analysis and detection equipment 16 inside the detection housing 11. The limiting hinge 13 stably connects the detection installation door 12 to the detection housing 11, ensuring smooth opening and closing and accurate positioning of the detection installation door 12, preventing the door from shaking or shifting, and maintaining the internal sealing of the equipment after closing. The fixed support plate 14 is fixed inside the detection housing 11, serving as a dedicated support platform for the mixing pretreatment equipment 15 and the analysis and detection equipment 16, ensuring that the two core functional devices are installed horizontally and in a fixed position, preventing displacement or shaking during operation, ensuring stable communication between the mixing pretreatment equipment 15 and the analysis and detection equipment 16, allowing the pretreated sample to flow smoothly and leak-free into the analysis and detection equipment 16, and ensuring a smooth sample transport process.

[0023] Please see Figures 1-8 The present invention provides a technical solution: the telescopic component 2 includes a fixed sleeve 21, an arc-shaped opening and closing door 22, a support connecting plate 23, a telescopic cylinder 24, a telescopic connecting rod 25, a fixed mounting rod 26, and a fixed top cover 27. The fixed sleeve 21 is fixedly provided on the upper surface of the constraint fixing seat 18, and the fixed top cover 27 is fixedly provided on the upper surface of the fixed sleeve 21. The support connecting plate 23 is fixedly provided between the constraint fixing seat 18 and the fixed top cover 27, and the telescopic cylinder 24 is fixedly provided on the lower surface of the fixed top cover 27. The telescopic cylinder 24 is fixedly provided with a telescopic connecting rod 25 at one end away from the fixed top cover 27. One end of the telescopic connecting rod 25 passes through the support connecting plate 23 and is suspended in the air. The two ends of the fixed mounting rod 26 are fixed on the constraint fixing seat 18 and the fixed top cover 27 respectively. The support connecting plate 23 is fixedly installed on the fixed mounting rod 26. An arc-shaped opening and closing door 22 is movably provided on the telescopic component 2. The rotating assembly 3 includes a rotating fixed plate 31, a rotating gear 32, a hollow mounting plate 33, a vertical connecting plate 34, a hollow mounting box 35, a fixed support block 36, a guide constraint column 37, a guide sleeve 38, and a return spring 39. The rotating fixed plate 31 is movably sleeved on the fixed mounting rod 26. The rotating gear 32 is fixedly provided on the lower surface of the rotating fixed plate 31. The vertical connecting plate 34 is fixedly provided on the upper surface of the hollow mounting plate 33. The hollow mounting box 35 is fixedly provided on the lower surface of the hollow mounting plate 33. A hollow mounting plate 33 is movably provided on the upper surface of the rotating fixed plate 31. A hollow mounting box 35 is movably installed inside the rotating fixed plate 31. A fixed support block 36 is fixedly provided on the lower surface of the hollow mounting box 35. A guide constraint post 37 is fixedly provided on the lower surface of the fixed support block 36. A guide sleeve 38 is fixedly provided inside the hollow mounting box 35. One end of the guide constraint post 37 is movably inserted into the inside of the guide sleeve 38. A reset spring 39 is movably sleeved on the guide sleeve 38.

[0024] In specific implementation: The rotating fixed plate 31 is movably sleeved on the fixed mounting rod 26, serving as the core support base of the rotating component 3, providing a stable mounting foundation for the hollow mounting plate 33 and the hollow mounting box 35, and can rotate freely and smoothly around the fixed mounting rod 26, ensuring that the overall rotating component operates without jamming; The rotating gear 32 is fixed on the lower surface of the rotating fixed plate 31 and precisely meshes with the driven gear 43 of the power component 4, converting the controllable rotational power transmitted by the servo motor 45 through the reducer 44 into a fixed-angle rotation of the rotating fixed plate 31, realizing the high-precision rotation of the temporary storage component 5, ensuring that the temporary storage component 5 can be accurately aligned directly below the telescopic connecting rod 25 after each rotation, thus avoiding rotational deviation from the source; The hollow mounting plate 33 and the vertical connecting plate 34 are fixed to each other to form a rigid connecting frame. The hollow mounting plate 33 is used to support the temporary mounting plate 51 of the temporary storage component 5. The vertical connecting plate 34 firmly connects the hollow mounting plate 33 and the hollow mounting box 35, so that the temporary storage component 5 rotates synchronously and stably with the rotating fixed plate 31, preventing the temporary storage component 5 from shaking or shifting during the rotation.

[0025] Please see Figures 3-8 The present invention provides a technical solution: the power assembly 4 includes a power sleeve 41, a power fixing block 42, a driven gear 43, a reducer 44, a servo motor 45 and a reduction rod 46. The power sleeve 41 is fixedly installed on one side of the fixed sleeve 21. The two ends of the power sleeve 41 are fixedly installed between the constraint fixing seat 18 and the fixed top cover 27. The power fixing block 42 is fixedly provided on the inner side of the power sleeve 41. The reducer 44 is fixedly provided on the upper surface of the power fixing block 42. A servo motor 45 is fixedly mounted on the upper surface of the reducer 44, and a reduction rod 46 is fixedly mounted on the lower surface of the reducer 44. A driven gear 43 is fixedly sleeved on one end of the reduction rod 46, and the driven gear 43 meshes with the rotating gear 32. The temporary storage component 5 includes a temporary storage mounting plate 51, a compression bag 52, a flexible liquid inlet 53, a one-way valve 54, a liquid outlet 55, and a pressure relief valve 56. The compression bag 52 is movably disposed inside the hollow mounting box 35. The temporary storage mounting plate 51 is fixedly disposed on the upper surface of the compression bag 52. The hollow mounting plate 33 is movably disposed on the temporary storage mounting plate 51. The temporary storage mounting plate 51 is located directly below the telescopic connecting rod 25. A one-way valve 54 is fixedly installed on the temporary storage mounting plate 51. A flexible liquid inlet 53 is fixedly installed on the upper surface of the one-way valve 54. A liquid outlet 55 is fixedly installed on the compression bag 52. A pressure relief valve 56 is fixedly installed on the lower surface of the liquid outlet 55. One end of the pressure relief valve 56 passes through the hollow mounting box 35 and is suspended in the air.

[0026] In specific implementation: The analytical testing equipment based on sodium sarcosinate product uses the testing installation platform 1 as the overall support base. The testing shell 11, the constraint fixing seat 18, and the fixed support plate 14 provide installation, fixing and structural constraints for each component. The mixing pretreatment equipment 15 and the analytical testing equipment 16 are fixed on the fixed support plate 14 and are interconnected. The equipment as a whole achieves efficient and accurate testing of sodium sarcosinate product through air pressure balance liquid inlet, servo precision transmission, controllable extrusion liquid outlet, and continuous automated testing. When in use, the operator first uses a syringe to draw the sample solution of sodium sarcosinate to be tested, connects the syringe to the flexible inlet 53 of the temporary storage component 5 and slowly pushes the sample solution. The solution flows into the compression bag 52 through the one-way valve 54 on one side of the flexible inlet 53. During the injection process, the flexible compression bag 52 expands freely with the continuous injection of solution and releases the initial compression state. The flexible deformation of the compression bag 52 achieves automatic balance between the air pressure inside the bag and the outside air pressure, completely avoiding the problem of poor liquid inlet caused by the imbalance of internal and external air pressure in traditional equipment. Meanwhile, the pressure inside the bag is always lower than the opening threshold of the pressure relief valve 56, so there will be no situation where the sample solution is prematurely discharged from the outlet 55 and the pressure relief valve 56 due to excessive internal pressure. After the sample is injected, the one-way valve 54 automatically closes, sealing and temporarily storing the sample in the compression bag 52. Multiple sample-loaded temporary storage components 5 can be installed sequentially inside the hollow mounting box 35 of the rotating component 3. The hollow mounting box 35 is securely connected to the rotating fixing plate 31 through the hollow mounting plate 33 and the vertical connecting plate 34. After the equipment is started, the servo motor 45 of the power component 4 operates as the core power source, transmitting power to the reducer 44. After the reducer 44 completes the precise speed control, it drives the driven gear 43 to rotate through the reduction rod 46. The driven gear 43 meshes with the rotating gear 32 to drive the rotating fixed plate 31 to rotate smoothly and precisely around the fixed mounting rod 26. The rotating fixed plate 31 synchronously drives the hollow mounting box 35 and the internal temporary storage component 5 to rotate together until the temporary storage component 5 is precisely rotated to the position directly below the telescopic connecting rod 25 of the telescopic component 2, completing the precise rotation and positioning of the sample. When the telescopic cylinder 24 of the telescopic component 2 is activated, it drives the telescopic connecting rod 25 to extend downward, and applies stable and controllable mechanical compression to the temporary storage mounting plate 51 of the temporary storage component 5. After being subjected to force, the temporary storage mounting plate 51 compresses the flexible compression bag 52 downward, causing the internal pressure of the compression bag 52 to rise rapidly. When the pressure reaches the opening threshold of the pressure relief valve 56, the pressure relief valve 56 automatically opens, and the sample solution in the compression bag 52 flows out evenly and without deviation from the outlet 55 and the pressure relief valve 56 under controllable pressure, and accurately flows into the inside of the mixing pretreatment equipment 15 on the detection mounting platform 1. After the sample is pretreated in the mixing pretreatment device 15, it flows into the connected analysis and detection device 16. The analysis and detection device 16 performs precise detection on the pretreated sample solution and finally obtains the content data of sodium sarcosinate product. After the single compression test is completed, the telescopic cylinder 24 drives the telescopic connecting rod 25 to reset upward. The hollow mounting box 35 achieves position reset under the elastic cooperation of the guide constraint column 37, the guide sleeve 38 and the reset spring 39, and the compression bag 52 returns to the initial compression state. The power component 4 can continue to drive the rotating component 3 to rotate, turning the next sample-loaded temporary storage component 5 directly below the telescopic connecting rod 25, repeating the squeezing out, pretreatment, and detection process to achieve continuous and standardized detection of batch sodium sarcosinate samples. The entire process relies on the flexible compression bag 52 and the one-way valve 54 to ensure that the sample is injected without pressure obstruction or leakage. The servo motor 45 and the reducer 44 work together to achieve precise rotation of the temporary storage component. The telescopic component 2 mechanically squeezes to form controllable pressure for liquid discharge. The components are smoothly connected, fundamentally solving the problems of sample delivery deviation, unstable flow, and low efficiency in traditional detection equipment, and greatly improving the accuracy and efficiency of sodium sarcosinate detection.

[0027] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the embodiments of the present invention.

Claims

1. An analytical and detection device based on sodium sarcosinate finished product, characterized in that, include: Testing and installation platform (1), telescopic assembly (2), rotating assembly (3), power assembly (4), temporary storage assembly (5), mixing pretreatment equipment (15), and analysis and testing equipment (16); The temporary storage component (5) includes a compression bag (52), a flexible inlet (53), a one-way valve (54), and a pressure relief valve (56), which are used to receive sample solutions through the flexible inlet (53) and the one-way valve (54) and temporarily store them in the compression bag (52); The rotating component (3) is used to drive the temporary storage component (5) to rotate below the telescopic connecting rod (25) of the telescopic component (2); The telescopic connecting rod (25) is used to squeeze the temporary storage assembly (5) to increase the internal pressure of the compression bag (52), so that the solution is discharged through the pressure relief valve (56) to the mixing pretreatment device (15). The power assembly (4) includes a servo motor (45), a reducer (44) and a reduction lever (46). The servo motor (45) drives the reduction lever (46) through the reducer (44), and the reduction lever (46) transmits power to the rotating assembly (3). The analytical detection device (16) is used to detect the sodium sarcosinate content in the solution after treatment by the mixed pretreatment device (15).

2. The analytical and detection equipment based on sodium sarcosinate product according to claim 1, characterized in that: The testing installation platform (1) includes a testing shell (11), a testing installation door (12), a limiting hinge (13), a fixed support plate (14), a mixing pretreatment device (15), an analysis and testing device (16), an analysis fixing plate (17), and a constraint fixing seat (18). The analysis fixing plate (17) is fixedly provided on the upper surface of the testing shell (11), and the constraint fixing seat (18) is fixedly provided on the upper surface of the testing installation platform (1). The testing installation door (12) is movably provided on the side of the testing shell (11). The limiting hinge (13) is fixedly provided on the side of the testing installation door (12) away from the testing shell (11). The other end of the limiting hinge (13) is fixedly provided on the testing shell (11). The fixed support plate (14) is fixedly provided inside the testing shell (11). The mixing pretreatment device (15) and the analysis and testing device (16) are fixedly provided on the upper surface of the fixed support plate (14). The mixing pretreatment device (15) and the analysis and testing device (16) are connected on the side.

3. The analytical and detection equipment based on sodium sarcosinate product according to claim 2, characterized in that: The telescopic assembly (2) includes a fixed sleeve (21), an arc-shaped opening and closing door (22), a support connecting plate (23), a telescopic cylinder (24), a telescopic connecting rod (25), a fixed mounting rod (26), and a fixed top cover (27). The fixed sleeve (21) is fixedly provided on the upper surface of the constraint fixing seat (18), and the fixed top cover (27) is fixedly provided on the upper surface of the fixed sleeve (21). The support connecting plate (23) is fixedly provided between the constraint fixing seat (18) and the fixed top cover (27), and the telescopic cylinder (24) is fixedly provided on the lower surface of the fixed top cover (27).

4. The analytical and detection equipment based on sodium sarcosinate product according to claim 3, characterized in that: The telescopic cylinder (24) is fixedly provided with a telescopic connecting rod (25) at one end away from the fixed top cover (27). One end of the telescopic connecting rod (25) passes through the support connecting plate (23) and is suspended in the air. The two ends of the fixed mounting rod (26) are respectively fixed on the constraint fixing seat (18) and the fixed top cover (27). The support connecting plate (23) is fixedly installed on the fixed mounting rod (26). The telescopic assembly (2) is movably provided with an arc-shaped opening and closing door (22).

5. The analytical and detection equipment based on sodium sarcosinate product according to claim 4, characterized in that: The rotating assembly (3) includes a rotating fixed plate (31), a rotating gear (32), a hollow mounting plate (33), a vertical connecting plate (34), a hollow mounting box (35), a fixed support block (36), a guide constraint column (37), a guide sleeve (38), and a return spring (39). The rotating fixed plate (31) is movably sleeved on the fixed mounting rod (26). The rotating gear (32) is fixedly provided on the lower surface of the rotating fixed plate (31). The vertical connecting plate (34) is fixedly provided on the upper surface of the hollow mounting plate (33). The hollow mounting box (35) is fixedly provided on the lower surface of the hollow mounting plate (33).

6. The analytical and detection equipment based on sodium sarcosinate product according to claim 5, characterized in that: A hollow mounting plate (33) is movably provided on the upper surface of the rotating fixed plate (31). The hollow mounting box (35) is movably installed inside the rotating fixed plate (31). A fixed support block (36) is fixedly provided on the lower surface of the hollow mounting box (35). A guide constraint column (37) is fixedly provided on the lower surface of the fixed support block (36). A guide sleeve (38) is fixedly provided inside the hollow mounting box (35). One end of the guide constraint column (37) is movably inserted into the inside of the guide sleeve (38). The reset spring (39) is movably sleeved on the guide sleeve (38).

7. The analytical and detection equipment based on sodium sarcosinate product according to claim 6, characterized in that: The power assembly (4) includes a power sleeve (41), a power fixing block (42), a driven gear (43), a reducer (44), a servo motor (45), and a reduction rod (46). The power sleeve (41) is fixedly installed on one side of the fixed sleeve (21). The two ends of the power sleeve (41) are fixedly installed between the constraint fixing seat (18) and the fixed top cover (27). The power fixing block (42) is fixedly provided on the inner side of the power sleeve (41), and the reducer (44) is fixedly provided on the upper surface of the power fixing block (42).

8. The analytical and detection equipment based on sodium sarcosinate product according to claim 7, characterized in that: A servo motor (45) is fixedly mounted on the upper surface of the reducer (44), and a reduction rod (46) is fixedly mounted on the lower surface of the reducer (44). The driven gear (43) is fixedly sleeved on one end of the reduction rod (46), and the driven gear (43) meshes with the rotating gear (32).

9. The analytical and detection equipment based on sodium sarcosinate product according to claim 8, characterized in that: The temporary storage component (5) includes a temporary storage mounting plate (51), a compression bag (52), a flexible liquid inlet (53), a one-way valve (54), a liquid outlet (55), and a pressure relief valve (56). The compression bag (52) is movably disposed inside the hollow mounting box (35). The temporary storage mounting plate (51) is fixedly disposed on the upper surface of the compression bag (52). The hollow mounting plate (33) is movably disposed on the temporary storage mounting plate (51). The temporary storage mounting plate (51) is located directly below the telescopic connecting rod (25).

10. The analytical and detection device based on sodium sarcosinate product according to claim 9, characterized in that: A one-way valve (54) is fixedly provided on the temporary storage mounting plate (51). A flexible liquid inlet (53) is fixedly provided on the upper surface of the one-way valve (54). A liquid outlet (55) is fixedly provided on the compression bag (52). A pressure relief valve (56) is fixedly provided on the lower surface of the liquid outlet (55). One end of the pressure relief valve (56) passes through the hollow mounting box (35) and is suspended in the air.