Amino acid purification device
By combining heating, stirring, spraying, filtering and drying mechanisms, the problems of insufficient amino acid decomposition and granulation in traditional amino acid purification devices are solved, and efficient purification of amino acid solutions is achieved.
Patent Information
- Application Number
- CN202422471107.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-12
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-10-12
AI Technical Summary
Traditional amino acid purification equipment has difficulty in fully decomposing the amino acids in the raw materials for amino acid production during the amino acid pre-production process, and it is difficult to achieve amino acid granulation.
The amino acid preparation material is heated by a heating mechanism, stirred by a stirring mechanism, and combined with spraying, filtering and drying mechanisms to achieve full purification of the amino acid solution.
The practicability of the amino acid purification device is improved, the full decomposition and granulation of the amino acid solution are ensured, and the purification effect is improved.
Smart Images

Figure CN223324426U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of amino acid purification devices, in particular to an amino acid purification device. Background Art
[0002] Amino acids are a general term for a class of organic compounds containing amino and carboxyl groups. Their chemical formula is R-CH(NH2)-COOH, where R represents different side chain groups that determine the properties and functions of the amino acid. Depending on the position of the amino group on the carbon chain, amino acids can be classified as α-, β-, and γ-amino acids. However, the amino acids that make up natural proteins in the biological world are all α-amino acids. Furthermore, amino acids are further divided into proteinogenic and non-proteinogenic amino acids. The former directly participate in protein synthesis, while the latter require modification to participate.
[0003] For example, in a type of prior art represented by the amino acid purification device disclosed in the utility model patent application number CN202321586680.0, its main structure includes a fixed frame, a preparation tank, a reaction tank, a fermentation liquid tank, a purification tank and a first discharge port, etc. Amino acid purification is achieved through the coordination of structures such as the fixed frame, the preparation tank, the reaction tank, the fermentation liquid tank, the purification tank and the first discharge port.
[0004] In the traditional amino acid purification process, it is difficult to fully decompose the amino acids in the amino acid production raw materials during the amino acid pre-production process, and it is difficult for traditional amino acid purification equipment to granulate the amino acids after amino acid purification. Utility Model Content
[0005] In order to solve the above technical problems, the utility model provides an amino acid purification device which heats the amino acid preparation material by starting a heating mechanism, stirs the preparation material by starting a stirring mechanism, discharges the amino acid solution to the stirring mechanism after preparation is completed, fully discharges the solution in the preparation material by rotating the stirring mechanism, discharges the solution after filtration into a drying mechanism, and fully purifies it by the drying mechanism, thereby improving the practicality of the equipment.
[0006] The utility model discloses an amino acid purification device, comprising a feeding mechanism; a spraying mechanism, a heating mechanism, a stirring mechanism, a filtering mechanism and a drying mechanism, wherein the spraying mechanism is installed on the feeding mechanism, the heating mechanism is located on the right side of the feeding mechanism, the stirring mechanism is located inside the heating mechanism, the filtering mechanism is located on the right side of the heating mechanism, and the drying mechanism is located on the right side of the filtering mechanism; raw materials for amino acid preparation are placed on the feeding mechanism respectively, and are conveyed by starting the feeding mechanism; during the conveying process, the raw materials for amino acid preparation are rinsed by starting the spraying mechanism, and are discharged into the heating mechanism after rinsing; the amino acid preparation materials are heated by starting the heating mechanism; the preparation materials are stirred by starting the stirring mechanism; after preparation, the amino acid solution is discharged to the stirring mechanism; the solution in the preparation material is fully discharged by rotating the stirring mechanism; the solution is filtered again by the filtering mechanism; the solution after filtration is discharged into the drying mechanism, and is fully purified by the drying mechanism, thereby improving the practicality of the equipment.
[0007] Preferably, the feeding mechanism includes multiple transmission shafts, multiple mounting racks, a transmission network, a first motor, multiple baffles and a first bracket, the multiple transmission shafts are respectively mounted on the multiple mounting racks, the transmission network is sleeved on the surfaces of the multiple transmission shafts, the output end of the first motor is connected to the front end of one of the transmission shafts, the multiple baffles are respectively mounted on the upper parts of the multiple mounting racks, and the bottom ends of the multiple mounting racks are respectively mounted on the top ends of the first brackets; the amino acid raw material is placed on the transmission network, and one of the transmission shafts is rotated by starting the first motor, and the multiple transmission shafts are rotated respectively through the transmission network, so that the transmission network transmits the amino acid raw material, the multiple mounting racks respectively support the multiple transmission shafts, and the first bracket supports the multiple mounting racks, thereby improving the practicality of the equipment.
[0008] Preferably, the spray mechanism includes a spray pump, a first pipeline, a spray pipe, a blocking net and a collecting box, the input end of the spray pump is connected to the outer wall of the collecting box, the input end of the first pipeline is connected to the output end of the spray pump, the output end of the first pipeline is connected to the input end of the spray pipe, the spray pipe is provided with multiple output ends, the blocking net is located below the spray pipe, the collecting box is located below the blocking net, and a filter plate is provided in the collecting box; by starting the spray pump, the cleaning liquid is discharged into the spray pipe through the first pipeline, and the amino acid preparation raw materials are sprayed and rinsed through the spray pipe, and the sewage after rinsing is discharged into the collecting box through the blocking net, the blocking net blocks large particles of impurities in the sewage, and the collecting box filters and collects the sewage, thereby improving the practicality of the equipment.
[0009] Preferably, the heating mechanism includes a heating barrel, a discharge plate and a first heater, the top of the heating barrel is provided with an opening, the rear of the heating barrel is provided with a liquid inlet pipe, the discharge plate is obliquely installed at the opening at the top of the heating barrel, and the first heater is installed on the outer wall of the heating barrel; the amino acid raw material is discharged into the heating barrel through the discharge plate, and the heating barrel is heated by starting the first heater to decompose the amino acid raw material, thereby improving the practicality of the equipment.
[0010] Preferably, the stirring mechanism includes a dehydration barrel, a discharge pipe, a bearing, a gear ring, a gear, a second motor, a third motor, a stirring shaft and a plurality of stirring rods, the input end of the discharge pipe is connected to the bottom end of the dehydration barrel, a valve is provided on the input end of the discharge pipe, the inner ring of the bearing is mounted on the outer wall of the discharge pipe, the outer ring of the bearing is mounted on the bottom end of the heating barrel, the inner ring of the gear ring is mounted on the outer wall of the discharge pipe, and the gear ring is located at the lower part of the bearing, the outer ring of the gear ring is meshed with the outer ring of the gear, the inner ring of the gear is mounted on the output end of the second motor, the second motor is mounted at the bottom end of the heating barrel, the third motor is mounted at the top end of the heating barrel, the top end of the stirring shaft is mounted on the output end of the third motor, a plurality of stirring rods are provided on the stirring shaft, and the stirring shaft is located in the dehydration barrel; the amino acid raw material is placed in the dehydration barrel, the stirring shaft is rotated by starting the third motor, and the amino acid raw material is stirred respectively through the plurality of stirring rods, the gear is rotated by starting the second motor, the gear and the gear ring are meshed, the discharge pipe is rotated through the bearing, the dehydration barrel is rotated, and the amino acid solution in the dehydration barrel is discharged, thereby improving the practicality of the equipment.
[0011] Preferably, the filtering mechanism includes a second bracket, a circulation pump, a resin ion filter and a second pipeline. The circulation pump and the resin ion filter are respectively installed on the top of the second bracket. The output end of the circulation pump is connected to the input end of the resin ion filter, the output end of the resin ion filter is connected to the input end of the second pipeline, and the output end of the second pipeline is connected to the drying mechanism. The second bracket supports the circulation pump and the resin ion filter respectively. By starting the circulation pump, the amino acid solution in the heating barrel is discharged into the resin ion filter, filtered by the resin ion filter, and the filtered second pipeline is discharged into the drying mechanism, thereby improving the practicality of the equipment.
[0012] Preferably, the drying mechanism includes a drying barrel, a second heater, a sprayer, multiple nozzles and a discharge hopper, an exhaust pipe is provided on the outer wall of the drying barrel, a blocking net is provided on the input end of the exhaust pipe, the second heater is installed on the outer wall of the drying barrel, the sprayer is installed on the top of the drying barrel, the sprayer is provided with multiple output ends, the input ends of the multiple nozzles are respectively installed on the multiple output ends of the sprayer, the input end of the discharge hopper is connected to the bottom end of the drying barrel, and a valve is provided on the output end of the discharge hopper; the amino acid solution is discharged into the sprayer, and the amino acid solution is discharged through the multiple nozzles to form a mist by starting the sprayer. The temperature in the drying barrel is increased by starting the second heater to dry the amino acid spray, and the dried amino acid is discharged through the discharge hopper, thereby improving the practicality of the equipment.
[0013] Compared with the prior art, the beneficial effects of the utility model are as follows: the amino acid preparation raw materials are placed on the feeding mechanism respectively, and are conveyed by starting the feeding mechanism. During the conveying process, the amino acid preparation raw materials are rinsed by starting the spraying mechanism, and are discharged into the heating mechanism after the rinsing is completed. The amino acid preparation materials are heated by starting the heating mechanism, and the preparation materials are stirred by starting the stirring mechanism. After the preparation is completed, the amino acid solution is discharged to the stirring mechanism, the solution in the preparation material is fully discharged by rotating the stirring mechanism, the solution is filtered again by the filtering mechanism, and the solution after filtration is discharged into the drying mechanism, and is fully purified by the drying mechanism, thereby improving the practicality of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is an axonometric schematic diagram of the present utility model;
[0015] Figure 2 This is an axonometric diagram of the feeding mechanism of the present utility model;
[0016] Figure 3 This is an axonometric diagram of the spray mechanism of the present utility model;
[0017] Figure 4 This is an axonometric diagram of the heating mechanism of the present invention;
[0018] Figure 5 This is a front cross-sectional view of the stirring mechanism of the present utility model;
[0019] Figure 6 This is an axonometric diagram of the filter mechanism of the present invention;
[0020] Figure 7 It is a front cross-sectional view of the drying mechanism of the present utility model.
[0021] Markings in the accompanying drawings: 01, feeding mechanism; 11, transmission shaft; 12, mounting frame; 13, transmission network; 14, first motor; 15, baffle; 16, first bracket; 02, spraying mechanism; 21, spray pump; 22, first pipeline; 23, spray pipe; 24, blocking net; 25, collecting box; 03, heating mechanism; 31, heating barrel; 32, discharge plate; 33, first heater; 04, stirring mechanism; 41, dehydration barrel; 42, discharge pipe; 43, bearing; 44, gear ring; 45, gear; 46, second motor; 47, third motor; 48, stirring shaft; 49, stirring rod; 05, filtering mechanism; 51, second bracket; 52, circulation pump; 53, resin ion filter; 54, second pipeline; 06, drying mechanism; 61, drying barrel; 62, second heater; 63, sprayer; 64, nozzle; 65, discharge hopper. DETAILED DESCRIPTION
[0022] To facilitate understanding of the present invention, a more comprehensive description of the present invention will be provided below with reference to the accompanying drawings. The present invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the present invention.
[0023] Example 1
[0024] like Figure 1 As shown, an amino acid purification device includes a feeding mechanism 01; a spraying mechanism 02, a heating mechanism 03, a stirring mechanism 04, a filtering mechanism 05, and a drying mechanism 06. The spraying mechanism 02 is installed on the feeding mechanism 01, the heating mechanism 03 is located on the right side of the feeding mechanism 01, the stirring mechanism 04 is located inside the heating mechanism 03, the filtering mechanism 05 is located on the right side of the heating mechanism 03, and the drying mechanism 06 is located on the right side of the filtering mechanism 05.
[0025] The amino acid preparation raw materials are placed on the feeding mechanism 01 respectively, and are transported by starting the feeding mechanism 01. During the transport process, the amino acid preparation raw materials are rinsed by starting the spraying mechanism 02. After rinsing, the amino acid preparation raw materials are discharged into the heating mechanism 03. The amino acid preparation materials are heated by starting the heating mechanism 03. The preparation materials are stirred by starting the stirring mechanism 04. After preparation, the amino acid solution is discharged into the stirring mechanism 04. The stirring mechanism 04 rotates to fully discharge the solution in the preparation material. The solution is filtered again by the filtering mechanism 05. The filtered solution is discharged into the drying mechanism 06, and is fully purified by the drying mechanism 06 to improve the practicality of the equipment.
[0026] like Figure 2As shown, the feeding mechanism 01 includes multiple transmission shafts 11, multiple mounting frames 12, a transmission network 13, a first motor 14, multiple baffles 15 and a first bracket 16. The multiple transmission shafts 11 are respectively mounted on the multiple mounting frames 12. The transmission network 13 is sleeved on the surfaces of the multiple transmission shafts 11. The output end of the first motor 14 is connected to the front end of one of the transmission shafts 11. The multiple baffles 15 are respectively mounted on the upper parts of the multiple mounting frames 12. The bottom ends of the multiple mounting frames 12 are respectively mounted on the top ends of the first brackets 16.
[0027] like Figure 3 As shown, the spray mechanism 02 includes a spray pump 21, a first pipe 22, a spray pipe 23, a blocking net 24 and a collection box 25. The input end of the spray pump 21 is connected to the outer wall of the collection box 25, the input end of the first pipe 22 is connected to the output end of the spray pump 21, and the output end of the first pipe 22 is connected to the input end of the spray pipe 23. The spray pipe 23 is provided with multiple output ends. The blocking net 24 is located below the spray pipe 23. The collection box 25 is located below the blocking net 24. A filter plate is provided in the collection box 25.
[0028] The amino acid raw materials are placed on the transmission network 13, and one of the transmission shafts 11 is rotated by starting the first motor 14. The transmission network 13 transmits the multiple transmission shafts 11 to rotate respectively, so that the transmission network 13 conveys the amino acid raw materials. The multiple mounting frames 12 support the multiple transmission shafts 11 respectively, and the first bracket 16 supports the multiple mounting frames 12. The cleaning liquid is discharged into the spray pipe 23 through the first pipe 22 by starting the spray pump 21. The amino acid preparation raw materials are sprayed and rinsed through the spray pipe 23. The sewage after rinsing is discharged into the collection box 25 through the blocking net 24. The blocking net 24 blocks large particles of impurities in the sewage. The collection box 25 filters and collects the sewage, thereby improving the practicality of the equipment.
[0029] Example 2
[0030] like Figures 4 to 6As shown, on the basis of Example 1, it also includes a heating mechanism 03, a stirring mechanism 04 and a filtering mechanism 05. The heating mechanism 03 includes a heating barrel 31, a discharge plate 32 and a first heater 33. The top of the heating barrel 31 is provided with an opening, and the rear of the heating barrel 31 is provided with a liquid inlet pipe. The discharge plate 32 is obliquely installed at the opening at the top of the heating barrel 31, and the first heater 33 is installed on the outer wall of the heating barrel 31; the stirring mechanism 04 includes a dehydration barrel 41, a discharge pipe 42, a bearing 43, a gear ring 44, a gear 45, a second motor 46, a third motor 47, a stirring shaft 48 and a plurality of stirring rods 49. The input end of the discharge pipe 42 is connected to the bottom end of the dehydration barrel 41, and a valve is provided on the input end of the discharge pipe 42. The inner ring of the bearing 43 is installed on the outer wall of the discharge pipe 42, the outer ring of the bearing 43 is installed at the bottom end of the heating barrel 31, and the inner ring of the gear ring 44 is installed at the On the outer wall, and the gear ring 44 is located at the lower part of the bearing 43, the outer ring of the gear ring 44 is meshed with the outer ring of the gear 45, the inner ring of the gear 45 is installed on the output end of the second motor 46, the second motor 46 is installed at the bottom end of the heating barrel 31, the third motor 47 is installed at the top end of the heating barrel 31, the top end of the stirring shaft 48 is installed on the output end of the third motor 47, the stirring shaft 48 is provided with a plurality of stirring rods 49, and the stirring shaft 48 is located in the dehydration barrel 41; the filtering mechanism 05 includes a second bracket 51, a circulating pump 52, a resin ion filter 53 and a second pipe 54, the circulating pump 52 and the resin ion filter 53 are respectively installed at the top end of the second bracket 51, the output end of the circulating pump 52 is connected to the input end of the resin ion filter 53, the output end of the resin ion filter 53 is connected to the input end of the second pipe 54, and the output end of the second pipe 54 is connected to the drying mechanism 06;
[0031] The amino acid raw materials are discharged into the heating barrel 31 through the discharge plate 32. The heating barrel 31 is heated by starting the first heater 33 to decompose the amino acid raw materials, and the amino acid raw materials are placed in the dehydration barrel 41. The stirring shaft 48 is rotated by starting the third motor 47, and the amino acid raw materials are stirred respectively through multiple stirring rods 49. The gear 45 is rotated by starting the second motor 46. The gear 45 and the gear ring 44 are engaged, and the discharge pipe 42 is rotated through the bearing 43, so that the dehydration barrel 41 is rotated to discharge the amino acid solution in the dehydration barrel 41. The second bracket 51 supports the circulation pump 52 and the resin ion filter 53 respectively. By starting the circulation pump 52, the amino acid solution in the heating barrel 31 is discharged into the resin ion filter 53, filtered by the resin ion filter 53, and the filtered second pipe 54 is discharged into the drying mechanism 06, thereby improving the practicality of the equipment.
[0032] Example 3
[0033] like Figure 7As shown, based on Example 1, a drying mechanism 06 is further included. The drying mechanism 06 includes a drying barrel 61, a second heater 62, a sprayer 63, a plurality of nozzles 64, and a discharge hopper 65. An exhaust pipe is provided on the outer wall of the drying barrel 61, and a blocking net is provided on the input end of the exhaust pipe. The second heater 62 is mounted on the outer wall of the drying barrel 61, the sprayer 63 is mounted on the top of the drying barrel 61, and a plurality of output ends are provided on the sprayer 63. The input ends of the plurality of nozzles 64 are respectively mounted on the plurality of output ends of the sprayer 63. The input end of the discharge hopper 65 is connected to the bottom end of the drying barrel 61, and a valve is provided on the output end of the discharge hopper 65.
[0034] The amino acid solution is discharged into the sprayer 63. By starting the sprayer 63, the amino acid solution is discharged through multiple nozzles 64 to form a mist. By starting the second heater 62, the temperature in the drying barrel 61 is increased to dry the amino acid spray. The dried amino acid is discharged through the discharge hopper 65, thereby improving the practicality of the equipment.
[0035] like Figures 1 to 7As shown, an amino acid purification device of the present invention, when working, first places the amino acid raw material on the transmission network 13, and starts one of the transmission shafts 11 by starting the first motor 14 to rotate. The transmission network 13 transmits the multiple transmission shafts 11 respectively, so that the transmission network 13 transmits the amino acid raw material, and the multiple mounting frames 12 respectively support the multiple transmission shafts 11, and the first bracket 16 supports the multiple mounting frames 12. Then, by starting the spray pump 21, the cleaning liquid is discharged into the spray pipe 23 through the first pipe 22, and the amino acid preparation raw material is sprayed and rinsed through the spray pipe 23. The sewage after rinsing is discharged into the collection box 25 through the blocking net 24. The blocking net 24 blocks large particles of impurities in the sewage. The collection box 25 filters and collects the sewage. The raw material is discharged into the heating barrel 31 through the discharge plate 32. The heating barrel 31 is heated by starting the first heater 33 to decompose the amino acid raw material, and then the amino acid raw material is placed in the dehydration barrel 4. 1, by starting the third motor 47 to rotate the stirring shaft 48, the amino acid raw materials are stirred respectively through the multiple stirring rods 49, and by starting the second motor 46 to rotate the gear 45. The gear 45 and the gear ring 44 are engaged, and the discharge pipe 42 is rotated through the bearing 43, so that the dehydration barrel 41 rotates to discharge the amino acid solution in the dehydration barrel 41. Then, the second bracket 51 supports the circulation pump 52 and the resin ion filter 53 respectively. By starting the circulation pump 52, the amino acid solution in the heating barrel 31 is discharged into the resin ion filter 53, and filtered by the resin ion filter 53. The filtered second pipeline 54 is discharged into the drying mechanism 06, and finally the amino acid solution is discharged into the sprayer 63. By starting the sprayer 63, the amino acid solution is discharged through the multiple nozzles 64 to form a mist. By starting the second heater 62, the temperature in the drying barrel 61 is increased to dry the amino acid spray. The dried amino acid is discharged through the discharge hopper 65, thereby improving the practicality of the equipment.
[0036] The first motor 14, spray pump 21, first heater 33, second motor 46, third motor 47, circulation pump 52, resin ion filter 53 and second heater 62 of the utility model are purchased on the market. Technicians in this industry only need to install and operate them according to the accompanying instruction manual, without the need for creative work by technicians in this field.
[0037] The main functions achieved by the present invention are: heating the amino acid preparation material by starting the heating mechanism 03, stirring the preparation material by starting the stirring mechanism 04, discharging the amino acid solution to the stirring mechanism 04 after the preparation is completed, fully discharging the solution in the preparation material by rotating the stirring mechanism 04, discharging the solution after filtration to the drying mechanism 06, and fully purifying it by the drying mechanism 06, thereby improving the practicality of the equipment.
[0038] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the technical principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.
Claims
1. An amino acid purification device, comprising a feeding mechanism (01); characterized in that: The invention also comprises a spraying mechanism (02), a heating mechanism (03), a stirring mechanism (04), a filtering mechanism (05) and a drying mechanism (06), wherein the spraying mechanism (02) is installed on the feeding mechanism (01), the heating mechanism (03) is located on the right side of the feeding mechanism (01), the stirring mechanism (04) is located inside the heating mechanism (03), the filtering mechanism (05) is located on the right side of the heating mechanism (03), and the drying mechanism (06) is located on the right side of the filtering mechanism (05).
2. An amino acid purification device according to claim 1, characterized in that, The feeding mechanism (01) comprises a plurality of transmission shafts (11), a plurality of mounting frames (12), a transmission network (13), a first motor (14), a plurality of baffles (15) and a first bracket (16); the plurality of transmission shafts (11) are respectively mounted on the plurality of mounting frames (12); the transmission network (13) is sleeved on the surfaces of the plurality of transmission shafts (11); the output end of the first motor (14) is connected to the front end of one of the transmission shafts (11); the plurality of baffles (15) are respectively mounted on the upper parts of the plurality of mounting frames (12); and the bottom ends of the plurality of mounting frames (12) are respectively mounted on the top ends of the first bracket (16).
3. An amino acid purification device according to claim 1, characterized in that: The spray mechanism (02) comprises a spray pump (21), a first pipe (22), a spray pipe (23), a blocking net (24) and a collection box (25); the input end of the spray pump (21) is connected to the outer wall of the collection box (25); the input end of the first pipe (22) is connected to the output end of the spray pump (21); the output end of the first pipe (22) is connected to the input end of the spray pipe (23); the spray pipe (23) is provided with a plurality of output ends; the blocking net (24) is located below the spray pipe (23); the collection box (25) is located below the blocking net (24); and a filter plate is provided in the collection box (25).
4. An amino acid purification device according to claim 1, characterized in that: The heating mechanism (03) comprises a heating barrel (31), a discharge plate (32) and a first heater (33). The top of the heating barrel (31) is provided with an opening, the rear of the heating barrel (31) is provided with a liquid inlet pipe, the discharge plate (32) is obliquely installed at the opening at the top of the heating barrel (31), and the first heater (33) is installed on the outer wall of the heating barrel (31).
5. An amino acid purification device according to claim 4, characterized in that: The stirring mechanism (04) includes a dewatering barrel (41), a discharge pipe (42), a bearing (43), a gear ring (44), a gear (45), a second motor (46), a third motor (47), a stirring shaft (48) and a plurality of stirring rods (49). The input end of the discharge pipe (42) is connected to the bottom end of the dewatering barrel (41). A valve is provided on the input end of the discharge pipe (42). The inner ring of the bearing (43) is mounted on the outer wall of the discharge pipe (42). The outer ring of the bearing (43) is mounted on the bottom end of the heating barrel (31). The inner ring of the gear ring (44) is mounted on the discharge pipe (42). The outer wall of the tube (42) is provided with a gear ring (44) at the lower part of the bearing (43). The outer ring of the gear ring (44) is meshed with the outer ring of the gear (45). The inner ring of the gear (45) is installed on the output end of the second motor (46). The second motor (46) is installed at the bottom end of the heating barrel (31). The third motor (47) is installed at the top end of the heating barrel (31). The top end of the stirring shaft (48) is installed on the output end of the third motor (47). A plurality of stirring rods (49) are provided on the stirring shaft (48). The stirring shaft (48) is located in the dehydration barrel (41).
6. An amino acid purification device according to claim 1, characterized in that: The filtering mechanism (05) comprises a second bracket (51), a circulation pump (52), a resin ion filter (53) and a second pipe (54). The circulation pump (52) and the resin ion filter (53) are respectively installed on the top of the second bracket (51). The output end of the circulation pump (52) is connected to the input end of the resin ion filter (53). The output end of the resin ion filter (53) is connected to the input end of the second pipe (54). The output end of the second pipe (54) is connected to the drying mechanism (06).
7. The amino acid purification device according to claim 1, characterized in that: The drying mechanism (06) comprises a drying barrel (61), a second heater (62), a sprayer (63), a plurality of nozzles (64) and a discharge hopper (65). An exhaust pipe is provided on the outer wall of the drying barrel (61), and a blocking net is provided on the input end of the exhaust pipe. The second heater (62) is installed on the outer wall of the drying barrel (61). The sprayer (63) is installed on the top of the drying barrel (61). The sprayer (63) is provided with a plurality of output ends. The input ends of the plurality of nozzles (64) are respectively installed on the plurality of output ends of the sprayer (63). The input end of the discharge hopper (65) is connected to the bottom end of the drying barrel (61), and a valve is provided on the output end of the discharge hopper (65).
Citation Information
Patent Citations
L-arginine-L-asparaginic acid preparation device
CN220048150U