Equipment for preparing compound amino acid

Through the phased filtration method of bag filtration, nanofiltration, adsorption cotton and activated carbon, combined with the sliding box design and water tank heating and cleaning system, the problems of incomplete impurity removal and complex replacement in traditional equipment are solved, and efficient and stable amino acid preparation production is achieved.

CN223416889UActive Publication Date: 2025-10-10SHANDONG ZHONGTIAN CROP SCI CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422641340.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-10-10
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

Traditional equipment for producing compound amino acids cannot effectively remove impurities of all sizes and properties through filtration technology, resulting in insufficient product purity. In addition, the operation of replacing filter materials is complicated, affecting production efficiency and product quality.

Method used

The filter adopts a phased filtration method of bag filtration, nanofiltration, adsorption cotton and activated carbon, combined with a sliding connection box design to facilitate the replacement of filter materials; the combination of water tank, heater, self-priming pump and nozzle achieves efficient cleaning; the design of guide plate and stirring rod ensures mixing uniformity and independence.

Benefits of technology

It significantly improves product purity and quality, simplifies the replacement process of filter materials, ensures the stability and sustainability of the filtration effect, improves mixing uniformity and cleaning efficiency, and ensures the stable operation of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223416889U_ABST
    Figure CN223416889U_ABST
Patent Text Reader

Abstract

The utility model relates to the field of medicine, and discloses compound amino acid preparation equipment which comprises a box body, a control panel is arranged on the upper portion of the center of the front end face of the box body, a feeding port is formed in the center of the upper end face of the box body, a mixing structure is arranged on the upper portion of the center in the box body, and a filtering structure is arranged on the lower portion of the center in the box body. A discharging electromagnetic valve is arranged in the center of the lower end face of the box body, and a cleaning structure is arranged on the upper portion of the center of the rear end face of the box body. According to the utility model, impurities with various sizes and properties in materials can be effectively removed by adopting a staged filtering method of cloth bag filtration, nanofiltration, adsorption cotton and activated carbon, the purity and quality of products are remarkably improved by adopting a progressive filtering mode, and the four lifting boxes are respectively connected in the sliding frame in a sliding manner, so that the impurities in the materials can be effectively removed. The lifting box can be conveniently pulled out of the sliding frame to be replaced or maintained, operation is easy and fast, and the stability and continuity of the filtering effect are guaranteed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the field of medicine, in particular to a compound amino acid preparation device. Background Art

[0002] Compound amino acid production equipment mainly involves the synthesis, preparation and application of amino acids. Amino acids are the basic units that make up proteins and are essential for the growth, development and maintenance of normal physiological functions of organisms. In the medical field, compound amino acid preparations are often used to supplement nutrition, especially for patients who cannot absorb nutrients orally or intestinally. Essential amino acids can be provided through intravenous infusion.

[0003] Since traditional compound amino acid production equipment may not be able to effectively remove impurities of all sizes and properties in filtration technology, resulting in insufficient product purity, if replacing the filter material requires disassembling a large number of parts or the entire equipment, this will lead to complicated and time-consuming operations, affecting production efficiency, and incomplete cleaning, and residues may affect product quality and the sanitary condition of the equipment. Therefore, those skilled in the art provide a compound amino acid production equipment to solve the problems raised in the above background technology. Utility Model Content

[0004] The purpose of this utility model is to solve the shortcomings of the prior art and propose a compound amino acid preparation device. By adopting bag filtration, nanofiltration, adsorption cotton and activated carbon, the staged filtration method can effectively remove impurities of various sizes and properties in the material. This layer-by-layer progressive filtration method significantly improves the purity and quality of the product. The four lifting boxes are slidably connected to the inside of the slide. When the filter material needs to be replaced, the lifting box can be easily pulled out from the slide for replacement or maintenance. The operation is simple and fast, ensuring the stability and sustainability of the filtration effect. Through the water tank, heater, self-priming pump, water delivery The pipe and nozzle heat the water in the water tank through the heater, and then use the self-priming pump to transport the hot water into the tank. It is sprayed and cleaned through multiple nozzles to effectively dissolve and remove dirt and residues inside the tank. By adopting four guide plates and setting a motor under each guide plate to drive the stirring rod for stirring and mixing, this design can make the raw materials multi-directionally stirred on different guide plates, improving the uniformity and efficiency of mixing. The discharge solenoid valve can accurately control the flow of mixed materials to the filtering structure, avoiding the material from flowing into the filtering structure in advance during the mixing process, and ensuring the independence and effectiveness of mixing and filtration.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a compound amino acid production device, comprising a box body, a control panel is provided at the upper center of the front end surface of the box body, a feed port is provided at the center of the upper end surface of the box body, a mixing structure is provided at the upper center of the interior of the box body, a filtering structure is provided at the lower center of the interior of the box body, a discharge solenoid valve is provided at the center of the lower end surface of the box body, and a cleaning structure is provided at the upper center of the rear end surface of the box body;

[0006] Through the above technical solution, by using bag filtration, nanofiltration, adsorption cotton and activated carbon, the staged filtration method can effectively remove impurities of various sizes and properties in the material. This progressive filtration method significantly improves the purity and quality of the product. The four lifting boxes are slidably connected to the inside of the slide. When the filter material needs to be replaced, the lifting box can be easily pulled out from the slide for replacement or maintenance. The operation is simple and quick, ensuring the stability and continuity of the filtration effect. Through the water tank, heater, self-priming pump, water pipe and nozzle, the water in the water tank is heated by the heater, and then the hot water is delivered to the box by the self-priming pump. The multiple nozzles are sprayed for cleaning, effectively dissolving and removing dirt and residues inside the box. By using four guide plates and arranging a motor under each guide plate to drive the stirring rod for stirring and mixing, this design can enable the raw materials to be stirred in multiple directions on different guide plates, improving the uniformity and efficiency of mixing. The discharge solenoid valve can accurately control the flow of the mixed material to the filtration structure, preventing the material from flowing into the filtration structure prematurely during the mixing process, ensuring the independence and effectiveness of mixing and filtration.

[0007] Furthermore, the mixing structure includes four guide plates, four motors, four stirring rods and a material discharge solenoid valve. The four guide plates are arranged in a rectangular shape at the upper center of the box body. The four motors are respectively arranged on the lower end surfaces of the four guide plates. The four stirring rods are respectively arranged at the center of the upper end surfaces of the four guide plates. The output ends of the four motors sequentially pass through the lower end surfaces of the four guide plates and pass to the upper end surfaces of the four guide plates, and the ends are respectively fixedly connected to one end of the four stirring rods. The material discharge solenoid valve is arranged on one end of the four guide plates.

[0008] Through the above technical solution, after the raw materials enter the box from the feed inlet, they fall on four guide plates arranged in a rectangular shape. The four motors drive the four stirring rods to rotate respectively, so that the stirring rods stir and mix the raw materials above the guide plates. When the mixing is completed, the discharge solenoid valve is opened, and the mixed material flows downward from one end of the guide plate into the filter structure.

[0009] Furthermore, the filtration structure includes four slides, four lifting boxes, bag filters, nanofiltration, adsorption cotton and activated carbon. The four slides are arranged vertically and arranged at the lower center of the box body. The four lifting boxes are slidably connected to the centers of the four slides, and the bag filters, nanofiltration, adsorption cotton and activated carbon are respectively arranged at the centers of the four lifting boxes.

[0010] Through the above technical solution, after the mixed material flows out of the mixing structure, it is filtered layer by layer through the bag filter, nanofiltration, adsorption cotton and activated carbon arranged at the center of the four lifting boxes. The bag filter first performs a preliminary filtration on the material to remove larger particle impurities, nanofiltration further removes fine particles and some harmful substances, the adsorption cotton adsorbs some tiny impurities and moisture, and the activated carbon deeply adsorbs and purifies the material. Through these four levels of filtration, impurities of different sizes and properties can be effectively removed, and the purity of the product can be improved. The lifting box is slidably connected to the inside of the slide. When the filter material needs to be replaced, the lifting box can be easily pulled out from the slide to replace or maintain the bag filter, nanofiltration, adsorption cotton and activated carbon. The operation is simple and quick, ensuring the stability and continuity of the filtering effect.

[0011] Furthermore, the cleaning structure includes a water tank, two heaters, two self-priming pumps, two water pipes and a plurality of nozzles, wherein the water tank is arranged at the upper center of the rear end surface of the box body, the two heaters are respectively arranged at the lower center of the front inner wall and the lower center of the rear wall of the water tank, the two self-priming pumps are arranged at both sides of the center of the lower inner wall of the water tank, the two water pipes are respectively arranged on the output ends of the two self-priming pumps, and the output ends of the two water pipes respectively pass through the front inner wall of the water tank and the rear end surface of the box body to the interior of the box body, and the plurality of nozzles are respectively arranged in a front-to-back arrangement at the lower center of one side wall of the two water pipes inside the box body;

[0012] Through the above technical solution, the water tank serves as a storage container for cleaning water. When cleaning is required, two heaters heat the water in the water tank to improve the cleaning effect. After the water is heated, the self-priming pump is started to pump out the hot water in the water tank through the water pipe on the output end, and the hot water is transported into the box through multiple nozzles. The hot water is sprayed out through the nozzles to clean the inside of the box. The heater heats the water, and the hot water can better dissolve and remove dirt and residue inside the box, thereby improving the cleaning effect. The cleaning function can be started at any time as needed to keep the inside of the box clean.

[0013] Furthermore, a plurality of support rods are arranged transversely on the lower end surface of the water tank;

[0014] Through the above technical solution, the support rod can disperse the weight of the water tank, ensuring that the water tank will not shake or shift due to vibration or other external forces during operation, thereby improving the stability of the entire equipment.

[0015] Furthermore, a water inlet is provided at the center of the upper end surface of the water tank;

[0016] Through the above technical solution, when water needs to be added to the water tank, water is injected into the water tank through the water inlet.

[0017] Furthermore, the lower end surface of the box body is provided with four supporting legs arranged in a rectangular shape;

[0018] Through the above technical solution, the rectangularly arranged support legs can evenly share the weight of the box, ensuring that the box remains stable during operation without tilting or shaking.

[0019] The utility model has the following beneficial effects:

[0020] 1. In the utility model, the compound amino acid preparation equipment adopts bag filtration, nanofiltration, adsorption cotton and activated carbon. The phased filtration method can effectively remove impurities of various sizes and properties in the material. This progressive filtration method significantly improves the purity and quality of the product. The four lifting boxes are slidably connected to the inside of the slide. When the filter material needs to be replaced, the lifting boxes can be easily pulled out from the slide for replacement or maintenance. The operation is simple and quick, ensuring the stability and sustainability of the filtration effect.

[0021] 2. In the utility model, the water in the water tank is heated by the heater through the water tank, the hot water is then transported into the tank by the self-priming pump, and sprayed and cleaned through multiple nozzles to effectively dissolve and remove dirt and residue inside the tank.

[0022] 3. In the present invention, four guide plates are adopted and a motor is arranged under each guide plate to drive a stirring rod for stirring and mixing. This design can enable the raw materials to be stirred in multiple directions on different guide plates, thereby improving the uniformity and efficiency of mixing. The discharge solenoid valve can accurately control the flow of mixed materials to the filtering structure, avoiding the material from flowing into the filtering structure in advance during the mixing process, thereby ensuring the independence and effectiveness of mixing and filtration. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 This is a three-dimensional diagram of a compound amino acid preparation device proposed in the present invention;

[0024] Figure 2 This is a side sectional view of a compound amino acid preparation device proposed in the present invention;

[0025] Figure 3 This is a front cross-sectional view of a compound amino acid preparation device proposed in the present invention;

[0026] Figure 4 for Figure 3 Enlarged schematic diagram of point A in the middle.

[0027] Legend:

[0028] 1. Box body; 2. Control panel; 3. Feed inlet; 4. Mixing structure; 401. Guide plate; 402. Motor; 403. Stirring rod; 404. Discharge solenoid valve; 5. Filtering structure; 501. Slide; 502. Lifting box; 503. Bag filter; 504. Nanofiltration; 505. Adsorption cotton; 506. Activated carbon; 6. Discharge solenoid valve; 7. Support legs; 8. Cleaning structure; 801. Water tank; 802. Heater; 803. Self-priming pump; 804. Water pipe; 805. Nozzle. DETAILED DESCRIPTION

[0029] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] Reference Figure 1-4 The utility model provides an embodiment of a compound amino acid preparation device, comprising a box body 1, a control panel 2 is provided at the upper center of the front end face of the box body 1, a feed port 3 is provided at the center of the upper end face of the box body 1, a mixing structure 4 is provided at the upper center of the interior of the box body 1, a filtering structure 5 is provided at the lower center of the interior of the box body 1, a discharge solenoid valve 6 is provided at the center of the lower end face of the box body 1, and a cleaning structure 8 is provided at the upper center of the rear end face of the box body 1. Various amino acid raw materials are put into the interior of the box body 1 through the feed port 3 at the center of the upper end face of the box body 1, and the mixed raw materials are stirred and mixed by starting the mixing structure 4 to make them fully fused. The amino acid solution flows into the filtering structure 5 at the lower center of the interior of the box 1. The filtering structure 5 filters the solution to remove impurities and insoluble matter therein. The filtered compound amino acid solution is collected at the center of the lower end face of the box 1. When the solution needs to be discharged, the discharge solenoid valve 6 is opened and the solution is discharged from the box 1. When the equipment needs to be cleaned, the cleaning structure 8 at the upper center of the rear end face of the box 1 is started to spray hot water to clean the inside of the box 1. The lower end face of the box 1 is arranged in a rectangular shape and has four supporting legs 7. The rectangularly arranged supporting legs 7 can evenly share the weight of the box 1 to ensure that the box 1 remains stable during operation and does not tilt or shake.

[0031] The mixing structure 4 includes four guide plates 401, four motors 402, four stirring rods 403 and a feeding solenoid valve 404. The four guide plates 401 are arranged in a rectangular shape at the upper center of the box body 1. The four motors 402 are respectively arranged on the lower end surfaces of the four guide plates 401. The four stirring rods 403 are respectively arranged at the center of the upper end surfaces of the four guide plates 401. The output ends of the four motors 402 pass through the lower end surfaces of the four guide plates 401 in sequence and pass to the upper end surfaces of the four guide plates 401, and the ends are respectively fixed. It is fixedly connected to one end of the four stirring rods 403, and the discharge solenoid valve 404 is set on one end of the four guide plates 401. After the raw materials enter the box body 1 from the feed inlet 3, they fall on the four guide plates 401 arranged in a rectangular shape. The four motors 402 respectively drive the four stirring rods 403 to rotate, so that the stirring rods 403 stir and mix the raw materials above the guide plates 401. When the mixing is completed, the discharge solenoid valve 404 is opened, and the mixed materials flow downward from one end of the guide plate 401 into the filter structure 5.

[0032] The filtering structure 5 includes four slides 501, four lifting boxes 502, bag filters 503, nanofiltration 504, adsorption cotton 505 and activated carbon 506. The four slides 501 are arranged in an upper and lower arrangement at the lower center of the interior of the box 1. The four lifting boxes 502 are slidably connected to the inner centers of the four slides 501. The bag filters 503, nanofiltration 504, adsorption cotton 505 and activated carbon 506 are respectively arranged at the inner centers of the four lifting boxes 502. After the mixed material flows out of the mixing structure 4, it passes through the bag filters 503, nanofiltration 504, adsorption cotton 505 and activated carbon 506 arranged at the inner centers of the four lifting boxes 502 in turn for layer-by-layer filtration. Filtration 503 first performs preliminary filtration on the material to remove larger particle impurities, nanofiltration 504 further removes fine particles and some harmful substances, adsorption cotton 505 adsorbs some tiny impurities and moisture, and activated carbon 506 performs deep adsorption and purification on the material. Through these four levels of filtration, impurities of different sizes and properties can be effectively removed, and the purity of the product can be improved. The lifting box 502 is slidably connected to the inside of the slide 501. When the filter material needs to be replaced, the lifting box 502 can be easily pulled out from the slide 501 to replace or maintain the bag filter 503, nanofiltration 504, adsorption cotton 505 and activated carbon 506. The operation is simple and quick, which ensures the stability and continuity of the filtration effect.

[0033] The cleaning structure 8 includes a water tank 801, two heaters 802, two self-priming pumps 803, two water pipes 804 and multiple nozzles 805. The water tank 801 is arranged at the upper center of the rear end surface of the box body 1. The two heaters 802 are respectively arranged at the lower center of the front inner wall and the lower center of the rear wall of the water tank 801. The two self-priming pumps 803 are arranged on both sides of the center of the lower inner wall of the water tank 801. The two water pipes 804 are respectively arranged on the output ends of the two self-priming pumps 803. The output ends of the two water pipes 804 respectively pass through the front inner wall of the water tank 801 and the rear end surface of the box body 1 to the interior of the box body 1. Multiple nozzles 805 are arranged in front and back inside the box body 1 at the lower center of one side wall of the two water pipes 804.

[0034] The water tank 801 is used as a storage container for cleaning water. When cleaning is required, two heaters 802 heat the water in the water tank 801 to improve the cleaning effect. After the water is heated, the self-priming pump 803 is started to extract the hot water in the water tank 801 through the water pipe 804 on the output end, and the hot water is transported to the box body 1 through multiple nozzles 805. The hot water is sprayed through the nozzles 805 to clean the inside of the box body 1. The heater 802 heats the water, and the hot water can better dissolve and remove The dirt and residue inside the box body 1 are cleaned to improve the cleaning effect. The cleaning function can be started at any time as needed to keep the inside of the box body 1 clean. A plurality of support rods are arranged horizontally on the lower end surface of the water tank 801. The support rods can disperse the weight of the water tank 801 and ensure that the water tank 801 will not shake or shift due to vibration or other external forces during operation, thereby improving the stability of the entire equipment. A water inlet is provided at the center of the upper end surface of the water tank 801. When water needs to be added to the water tank 801, water is injected into the water tank 801 through the water inlet.

[0035] Working principle: Various amino acid raw materials are put into the box body 1 through the feed port 3 at the center of the upper end face of the box body 1. After the raw materials enter the box body 1 from the feed port 3, they fall on four guide plates 401 arranged in a rectangular shape. The four motors 402 respectively drive the four stirring rods 403 to rotate, so that the stirring rods 403 stir and mix the raw materials above the guide plates 401. When the mixing is completed, the discharge solenoid valve 404 is opened, and the mixed material flows downward from one end of the guide plate 401 into the filter structure 5. After the mixed material flows out of the mixing structure 4, it passes through the bag filter 503, nanofiltration 504, adsorption cotton 505 and activated carbon 506 arranged at the center of the four lifting boxes 502 in turn. The filter is filtered layer by layer. The bag filter 503 first performs preliminary filtration on the material to remove larger particles of impurities. The nanofiltration 504 further removes fine particles and some harmful substances. The adsorption cotton 505 adsorbs some tiny impurities and moisture. The activated carbon 506 deeply adsorbs and purifies the material. Through these four levels of filtration, impurities of different sizes and properties can be effectively removed, and the purity of the product can be improved. The lifting box 502 is slidably connected to the inside of the slide 501. When the filter material needs to be replaced, the lifting box 502 can be easily pulled out from the slide 501 to replace or maintain the bag filter 503, nanofiltration 504, adsorption cotton 505 and activated carbon 506. The operation is simple and quick, which ensures the stability and continuity of the filtering effect.

[0036] The water tank 801 serves as a storage container for cleaning water. When cleaning is required, two heaters 802 heat the water in the water tank 801 to improve the cleaning effect. After the water is heated, the self-priming pump 803 is started to extract the hot water in the water tank 801 through the water pipe 804 on the output end, and the hot water is transported to the box body 1 through multiple nozzles 805. The hot water is sprayed through the nozzles 805 to clean the inside of the box body 1. The heater 802 heats the water, and the hot water can better dissolve and remove dirt and residues inside the box body 1, thereby improving the cleaning effect. The cleaning function can be started at any time as needed to keep the inside of the box body 1 clean.

[0037] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A compound amino acid preparation device, comprising a housing (1), characterized in that: A control panel (2) is provided at the upper center of the front end face of the box body (1), a feed port (3) is provided at the center of the upper end face of the box body (1), a mixing structure (4) is provided at the upper center of the interior of the box body (1), a filtering structure (5) is provided at the lower center of the interior of the box body (1), a discharge solenoid valve (6) is provided at the center of the lower end face of the box body (1), and a cleaning structure (8) is provided at the upper center of the rear end face of the box body (1); The filtering structure (5) comprises four slides (501), four lifting boxes (502), a bag filter (503), a nanofiltration (504), an adsorption cotton (505) and an activated carbon (506); the four slides (501) are arranged vertically and arranged at the lower center of the interior of the box (1); the four lifting boxes (502) are slidably connected to the center of the interior of the four slides (501); the bag filter (503), the nanofiltration (504), the adsorption cotton (505) and the activated carbon (506) are respectively arranged at the center of the interior of the four lifting boxes (502); The cleaning structure (8) comprises a water tank (801), two heaters (802), two self-priming pumps (803), two water pipes (804) and a plurality of nozzles (805). The water tank (801) is arranged at the upper center of the rear end face of the box body (1). The two heaters (802) are respectively arranged at the lower center of the front inner wall and the lower center of the rear wall of the water tank (801). The two self-priming pumps (803) are arranged at the center of the lower inner wall of the water tank (801) on both sides. The two water pipes (804) are respectively arranged on the output ends of the two self-priming pumps (803). The output ends of the two water pipes (804) respectively penetrate the front inner wall of the water tank (801) and the rear end face of the box body (1) and pass into the interior of the box body (1). The plurality of nozzles (805) are respectively arranged in a front-to-back arrangement at the lower center of one side wall of the two water pipes (804) inside the box body (1).

2. The compound amino acid preparation device according to claim 1, characterized in that: The mixing structure (4) comprises four material guide plates (401), four motors (402), four stirring rods (403) and a material discharge solenoid valve (404). The four material guide plates (401) are arranged in a rectangular shape and are arranged at the upper center of the box body (1). The four motors (402) are respectively arranged on the lower end surfaces of the four material guide plates (401). The four stirring rods (403) are respectively arranged at the center of the upper end surfaces of the four material guide plates (401). The output ends of the four motors (402) sequentially pass through the lower end surfaces of the four material guide plates (401) and pass to the upper end surfaces of the four material guide plates (401), and the ends are respectively fixedly connected to one end of the four stirring rods (403). The material discharge solenoid valve (404) is arranged on one end of the four material guide plates (401).

3. The compound amino acid preparation device according to claim 1, characterized in that: The lower end surface of the water tank (801) is provided with a plurality of support rods arranged transversely.

4. The compound amino acid preparation device according to claim 1, characterized in that: A water inlet is provided at the center of the upper end surface of the water tank (801).

5. The compound amino acid preparation device according to claim 1, characterized in that: The lower end surface of the box body (1) is provided with four supporting legs (7) arranged in a rectangular shape.