High-pressure synthesis reaction device based on NRPC coupling hydrogen-based acid synergistic factor
The high-pressure synthesis reaction apparatus automates the sealing and unsealing of reactor lids using gas flow direction changes, addressing labor-intensive manual screw operations and improving reaction efficiency.
Patent Information
- Application Number
- CN202510498000.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing high-pressure reaction devices for NRPC coupled hydrogen acid enhancer factors require manual screw tightening and loosening of the reactor lid, which is labor-intensive.
A high-pressure synthesis reaction apparatus with a charge and seal top component that uses a channel component with rotating half-circular blocks to automate the locking and unlocking of the reactor lid through gas flow direction changes, eliminating the need for manual screw rotation.
Automates the sealing and unsealing process, saving labor and enhancing reaction efficiency by reducing manual intervention.
Smart Images

Figure CN120305887A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of chemical reaction equipment, and more specifically to a high-pressure synthesis reaction device based on an NRPC-coupled hydrogen amino acid synergistic factor. Background Art
[0002] NRPC is a unique configuration composed of multiple functional protein complexes. Its peptide chain structure can serve as a carrier to chelate mineral element nutrients, thereby enhancing the affinity and safety of products for crops, and ultimately achieving the effect of improving the absorption and utilization rate of products. Moreover, as a secondary metabolite of microorganisms, NRPC itself has biological characteristics that can improve the disease resistance and stress resistance of crops. In addition, the unique chain stacking configuration of NRPC endows this component with broad biological activities. During field application, various biological configurations of different combinations endow it with diverse application effects.
[0003] The coupling of NRPC with hydrogen amino acid synergistic factors needs to be carried out in a high-pressure reaction device. In order to ensure the airtightness of the internal reaction of the existing high-pressure reaction device, the top cover and the reaction kettle are often fixed and sealed by bolt connection. When the reaction ends, it is necessary to hold a clamp to screw out the bolts, which is labor-consuming. Therefore, we propose a high-pressure synthesis reaction device based on an NRPC-coupled hydrogen amino acid synergistic factor to solve the above problems. Summary of the Invention
[0004] In order to overcome the above-mentioned defects of the prior art, the present invention provides a high-pressure synthesis reaction device based on an NRPC-coupled hydrogen amino acid synergistic factor to solve the problems existing in the above-mentioned background art.
[0005] To achieve the above object, the present invention provides the following technical solution: A high-pressure synthesis reaction device based on an NRPC-coupled hydrogen amino acid synergistic factor, including a pressure charging and capping assembly. The pressure charging and capping assembly includes a channel assembly. Both sides of the channel assembly are fixedly connected with linkage assemblies. The rear ends of the two linkage assemblies are movably sleeved with lock pin assemblies. One end of each of the two lock pin assemblies is threadedly connected with a sealing top cover;
[0006] The channel assembly includes a channel housing. The inner sides of the front and back of the channel housing are rotatably connected with a rotating shaft. A fan wheel is fixedly sleeved on the side of the rotating shaft. The inner bottom of the channel housing is fixedly connected with a first semi-circular block and a second semi-circular block;
[0007] The first semi-circular block and the second semi-circular block enable air flow to circulate at the top end inside the channel housing. During the pressurization and depressurization processes of the channel housing, under the action of the first semi-circular block and the second semi-circular block, they rotate in opposite directions respectively, and are linked with the linkage assemblies and the lock pin assemblies to realize the screwing in and out of the lock pin assemblies, saving manpower.
[0008] Further, one end of each of the two linkage components and the locking pin component is rotatably connected to a fixing plate, and is located at the top end on one side of the fixing plate. The sides of the two fixing plates connecting the linkage components and the locking pin component face each other. At the bottom end on one side of the two fixing plates connecting the linkage components and the locking pin component, there is a fixed connection with a mounting plate, and the mounting plate is fixedly sleeved with a reactor assembly;
[0009] The rotating shaft and the fan wheel are located between the first semi-circular block and the second semi-circular block. The first semi-circular block is located at one end inside the channel pipe shell, and the second semi-circular block is located at the other end inside the channel pipe shell.
[0010] Further, one end of the channel pipe shell is fixedly communicated with a second air pipe, and the second air pipe and the second semi-circular block are located at the same end of the channel pipe shell.
[0011] Further, the linkage component includes a roller and a track. One end of the roller is fixedly connected to a rotating shaft, the other end of the roller is movably sleeved with a track on the side, and the inner side of the end of the rotating shaft away from the roller is movably sleeved with a locking pin component.
[0012] Further, the locking pin component includes a pin tube, a groove, a threaded rod, and a limiting block. One end of the pin tube is provided with a groove, there is a slot on the side of the pin tube, a threaded rod is movably sleeved inside the pin tube, half of the threaded rod is in the shape of a smooth cylinder and half is in the shape of a thread. At the top of the end of the threaded rod in the shape of a cylinder, there is a fixed connection with a limiting block, and the limiting block moves in the slot of the pin tube.
[0013] Further, one end of the pressure charging and capping component is fixedly communicated with the reactor assembly, the bottom of the other end of the pressure charging and capping component is fixedly communicated with a high-pressure component, and the top of the high-pressure component is fixedly connected to the bottom of the reactor assembly.
[0014] Further, the reactor assembly includes an outer shell. Inside the top of the outer shell, there is a fixedly sleeved sealing ring. Inside the sealing ring, there is a fixedly sleeved inner reactor. On the side of the top of the inner reactor, there is a threaded hole. At the bottom of the inner reactor, there is a rotatable connection with a rotating chassis. On the side of the rotating chassis, there is a fixedly sleeved fan blade set. In the middle of the bottom of the rotating chassis, there is a fixed connection with a rotating rod.
[0015] Further, there are six circular holes on the side of the middle part of the inner reactor, and guide vanes are fixedly connected to the inside of the six circular holes.
[0016] Further, the fan blade set includes a connecting ring, connecting rods, and fan blades. The top of the connecting ring is fixedly connected with six connecting rods, and the top ends of the six connecting rods are fixedly connected with fan blades.
[0017] Furthermore, the high-pressure component includes a base, one side of the base is fixedly connected with a connecting block, one side of the connecting block is fixedly connected with an air pump, the top of the air pump is fixedly communicated with a first air pipe, the top of the first air pipe is fixedly communicated with a connecting air pipe, one side of the connecting air pipe is fixedly communicated with a second air pipe, the other side of the connecting air pipe is movably connected with an air valve, and the top of the base is fixedly connected with an outer shell.
[0018] Technical effects and advantages of the present invention:
[0019] By providing a pressurizing and capping component, the present invention uses an air pump to inject air flow into the channel pipe shell to increase the air pressure in the reaction kettle. When the air flow passes through the channel pipe shell, the second semi-circular block changes the air flow path to the upper half of the pipe, so that the air flow directly blows onto the fan wheel, causing the fan wheel to rotate, and then driving the rotating roller to rotate. Then, the track is used to make the locking pin component rotate, and further rotate the threaded rod into the sealing top cover, avoiding manually rotating the bolt to fix the top cover of the reaction kettle. When the reaction is completed, the air valve is opened, and the air in the reaction kettle quickly flows into the channel pipe orifice under high pressure. Similarly, under the action of the first semi-circular plate changing the air flow direction, the fan wheel rotates in the reverse direction, and then the threaded rod is screwed out of the sealing top cover, avoiding manually holding the clamp to screw out the bolt, which is beneficial to saving manpower.
[0020] By providing a reaction kettle component, when the air pump discharges high-pressure air flow into the reaction kettle, the air flow first discharges from the inner reaction kettle through the round holes to the outer shell. Under the action of the guide vanes, the high-pressure air flow directly blows onto the fan blades, causing the fan blades to rotate, and then the chassis rotates. Reaction test tubes are placed on the top of the chassis, so that the test tubes rotate with the chassis, achieving the effect of stirring the test tubes and being beneficial to improving the reaction efficiency. Description of the drawings
[0021] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 is a schematic diagram of the structure of the pressurizing and capping component of the present invention;
[0023] Figure 3 is a schematic diagram of the structure of the channel component of the present invention;
[0024] Figure 4 is a schematic diagram of the structure of the linkage component of the present invention;
[0025] Figure 5 is a schematic diagram of the structure of the locking pin component of the present invention;
[0026] Figure 6 is a schematic diagram of the sectional structure of the reaction kettle component of the present invention;
[0027] Figure 7 is a schematic diagram of the structure of the fan blade kit of the present invention;
[0028] Figure 8 Schematic structural diagram of the high-pressure component of the present invention.
[0029] The reference numerals are: 1, pressure charging and capping component; 101, channel component; 1011, channel housing; 1012, rotating shaft; 1013, fan wheel; 1014, first semi-circular block; 1015, second semi-circular block; 102, linkage component; 1021, roller; 1022, crawler belt; 103, locking pin component; 1031, pin tube; 1032, groove; 1033, threaded rod; 1034, limiting block; 104, sealing top cover; 105, fixing plate; 106, mounting plate; 2, reactor component; 201, outer shell; 202, sealing ring; 203, inner reactor; 204, rotating chassis; 205, fan blade kit; 2051, connecting ring; 2052, connecting rod; 2053, fan blade; 206, rotating rod; 207, guiding vane; 3, high-pressure component; 301, base; 302, connecting block; 303, air pump; 304, first air pipe; 305, connecting air pipe; 306, second air pipe; 307, air valve. Detailed implementation manners
[0030] Next, the technical solutions in the present invention will be clearly and completely described in conjunction with the drawings in the present invention. In addition, the forms of the respective structures described in the following embodiments are merely examples, and the high-pressure synthesis reaction device based on the NRPC-coupled amino acid synergistic factor involved in the present invention is not limited to the respective structures described in the following embodiments. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.
[0031] Refer to Figure 1 , the present invention provides a high-pressure synthesis reaction device based on the NRPC-coupled amino acid synergistic factor, including a pressure charging and capping component 1. One end of the pressure charging and capping component 1 is fixedly communicated with a reactor component 2, and the bottom of the other end of the pressure charging and capping component 1 is fixedly communicated with a high-pressure component 3. The top of the high-pressure component 3 is fixedly connected to the bottom of the reactor component 2.
[0032] In this embodiment, it should be specifically supplemented that the pressure charging and capping component 1 avoids manually holding pliers to rotate bolts to fix the reactor top cover and unscrew the bolts, saving manpower. The reactor component 2 plays the role of stirring the test tube, which is beneficial to improving the reaction efficiency. The specific structures and working principles of the above components will be described in detail later.
[0033] Refer to Figure 2, the pressurizing and capping assembly 1 includes a channel assembly 101. Linkage assemblies 102 are fixedly connected to both sides of the channel assembly 101. Lock pin assemblies 103 are movably sleeved on the rear ends of the two linkage assemblies 102. One ends of the two lock pin assemblies 103 are threadedly connected to a sealing top cover 104, and are located on both sides of the sealing top cover 104. One ends of the two linkage assemblies 102 and the lock pin assemblies 103 are rotatably connected to a fixing plate 105, and are located at the top end on one side of the fixing plate 105. The sides of the two fixing plates 105 connecting the linkage assemblies 102 and the lock pin assemblies 103 face each other. A mounting plate 106 is fixedly connected to the bottom ends of the sides of the two fixing plates 105 connecting the linkage assemblies 102 and the lock pin assemblies 103. The mounting plate 106 is fixedly sleeved on the side of the reaction kettle assembly 2.
[0034] In this embodiment, it should be specifically supplemented that the fixing plate 105 and the mounting plate 106 provide support for the transmission between the linkage assembly 102 and the lock pin assembly 103, enabling the linkage assembly 102 and the lock pin assembly 103 to rotate stably.
[0035] Refer to Figure 3 , the channel assembly 101 includes a channel housing 1011. A rotating shaft 1012 is rotatably connected to the inner sides of the front and back of the channel housing 1011, and both ends of the rotating shaft 1012 pass through the wall shells of the front and back of the channel housing 1011 and are located outside. A fan wheel 1013 is fixedly sleeved on the side of the rotating shaft 1012. A first semi-circular block 1014 and a second semi-circular block 1015 are fixedly connected to the inner side of the bottom of the channel housing 1011, and the rotating shaft 1012 and the fan wheel 1013 are located between the first semi-circular block 1014 and the second semi-circular block 1015. One end of the first semi-circular block 1014 is located inside the channel housing 1011, and one end of the second semi-circular block 1015 is located at the other end inside the channel housing 1011. One end of the channel housing 1011 is fixedly communicated with a second air pipe 306, and the second air pipe 306 and the second semi-circular block 1015 are located at the same end of the channel housing 1011.
[0036] In this embodiment, it should be specifically supplemented that the second air pipe 306 introduces the high-pressure air flow of the air pump into the channel housing 1011. The second semi-circular block 1015 enables the air flow to flow through the inner top of the channel housing 1011 and directly act on the fan wheel 1013. The fan wheel 1013 is pushed by the wind force and rotates. When the reaction ends and the air pressure is discharged, the high-pressure air flow enters the channel housing 1011 from the position of the first semi-circular block 1014, which has the same effect as the second semi-circular block 1015. The first semi-circular block 1014 makes the air flow blow towards the fan wheel 1013, causing the fan wheel 1013 to rotate in the reverse direction. The first semi-circular block 1014 and the second semi-circular block 1015 have the same structure. The first semi-circular block 1014 is used to change the path of the discharged gas, and the second semi-circular block 1015 is used to change the path of the incoming gas.
[0037] Refer to Figure 4 , the linkage assembly 102 includes a roller 1021 and a crawler 1022. One end of the roller 1021 is fixedly connected to a rotating shaft 1012. The crawler 1022 is movably sleeved on the side of the other end of the roller 1021. The inner side of the end of the rotating shaft 1012 away from the roller 1021 is movably sleeved with a locking pin assembly 103.
[0038] In this embodiment, it should be specifically noted that the crawler 1022 is used for the transmission between the roller 1021 and the locking pin assembly 103, so that the locking pin assembly 103 rotates synchronously with the roller 1021.
[0039] Refer to Figure 5 , the locking pin assembly 103 includes a pin tube 1031, a groove 1032, a threaded rod 1033, and a limit block 1034. One end of the pin tube 1031 is provided with a groove 1032. The side of the pin tube 1031 is provided with a slot. The threaded rod 1033 is movably sleeved inside the pin tube 1031. Half of the threaded rod 1033 is in the shape of a smooth cylinder and half is in the shape of a thread. The top of the cylindrical end of the threaded rod 1033 is fixedly connected to a limit block 1034. The limit block 1034 moves in the slot of the pin tube 1031.
[0040] In this embodiment, it should be specifically noted that when the locking pin assembly 103 rotates, the limit block 1034 transversely clamps the pin tube 1031, so that the pin tube 1031 and the threaded rod 1033 rotate together. The threaded end of the threaded rod 1033 enters the threaded hole of the top cover. When rotating, under the action of the thread, the threaded rod 1033 gradually enters the threaded hole. The limit block 1034 can move longitudinally in the slot of the pin tube 1031. Therefore, while the threaded rod 1033 enters the threaded hole, it gradually moves out of the pin tube 1031, but the cylindrical part of the threaded rod 1033 is always inside the pin tube 1031, so that when the top cover is fixed and the air pressure is discharged, reverse rotation is the same as above, and the above components are reset. Through the cooperation between the channel assembly 101, the linkage assembly 102, and the locking pin assembly 103, it is avoided that manual pliers are used to rotate bolts to fix the reaction kettle top cover and unscrew the bolts, saving manpower.
[0041] Refer to Figure 6, the reactor assembly 2 includes an outer shell 201. An inner sealing ring 202 is fixedly sleeved inside the top of the outer shell 201. An inner reactor 203 is fixedly sleeved inside the sealing ring 202. A threaded hole is provided on the side of the top of the inner reactor 203. The bottom of the inner reactor 203 is rotatably connected to a rotating chassis 204. A fan blade assembly 205 is fixedly sleeved on the side of the rotating chassis 204. A rotating rod 206 is fixedly connected to the middle of the bottom of the rotating chassis 204. Six round holes are provided on the side of the middle part of the inner reactor 203. Guide vanes 207 are fixedly connected to the inside of the six round holes. The guide vanes 207 are at a 45° angle to the round holes.
[0042] In this embodiment, it should be specifically supplemented that the function of the angle of the guide vane 207 is to change the direction of the airflow flowing out of the round hole.
[0043] Refer to Figure 7 , the fan blade assembly 205 includes a connecting ring 2051, a connecting rod 2052, and fan blades 2053. Six connecting rods 2052 are fixedly connected to the top of the connecting ring 2051. The tops of the six connecting rods 2052 are fixedly connected to the fan blades 2053. The fan blades 2053 are at a 45° angle to a horizontal line.
[0044] In this embodiment, it should be specifically supplemented that each fan blade 2053 is located between two adjacent guide vanes 207. When the high-pressure airflow is discharged into the inner reactor 203, the airflow first discharges from the inner reactor 203 through the round holes to the outer shell 201. Under the action of the guide vanes 207, the high-pressure airflow directly blows on the fan blades 2053, causing the fan blades 2053 to rotate, and then causing the connecting ring 2051 to rotate. The connecting ring 2051 is fixedly sleeved on the side of the rotating chassis 204, and then the rotating chassis 204 rotates. A reaction test tube is placed on the top of the rotating chassis 204, causing the test tube to rotate with the rotating chassis 204, achieving the effect of stirring the test tube and being beneficial to improving the reaction efficiency.
[0045] Refer to Figure 8 , the high-pressure assembly 3 includes a base 301. A connecting block 302 is fixedly connected to one side of the base 301. An air pump 303 is fixedly connected to one side of the connecting block 302. A first air pipe 304 is fixedly connected to the top of the air pump 303. A connecting air pipe 305 is fixedly connected to the top of the first air pipe 304. A second air pipe 306 is fixedly connected to one side of the connecting air pipe 305. An air valve 307 is movably connected to the other side of the connecting air pipe 305. The outer shell 201 is fixedly connected to the top of the base 301.
[0046] In this embodiment, it should be specifically supplemented that the opening and closing principle of the air valve 307 is prior art and will not be described in detail.
[0047] Working principle of the present invention: The air pump 303 fills the channel assembly 101 with air flow through the first air pipe 304 and the connecting air pipe 305 to increase the air pressure in the reaction kettle. When the air flow passes through the channel pipe shell 1011, the second semi-circular block 1015 changes the air flow path to the upper part of the pipe, so that the air flow directly blows to the upper part of the fan wheel 1013, causing the fan wheel 1013 to rotate, and then driving the rotating shaft 1012 to rotate. The rotating shaft 1012 is connected to the roller 1021, and the track 1022 is used to make the locking pin assembly 103 rotate, and then the threaded rod 1033 is rotated into the sealing top cover 104, avoiding manual rotation of bolts to fix the reaction kettle top cover. When the reaction is completed, the air valve 307 is opened, and the air in the inner reaction kettle 203 quickly flows through the channel assembly 101 under high pressure. Similarly, under the action of the first semi-circular block 1014 changing the air flow direction, the fan wheel 1013 rotates in the reverse direction, and then the threaded rod 1033 is screwed out of the sealing top cover 104, avoiding manual use of pliers to unscrew the bolts, which is beneficial to saving manpower.
[0048] In addition, when the air pump 303 discharges high-pressure air flow into the reaction device, the air flow first discharges from the inner reaction kettle 203 to the outer shell 201 through the round holes. Under the action of the guide vanes 207, the high-pressure air flow directly blows to the fan blades 2053, causing the fan blades 2053 to rotate, and then the rotating chassis 204 rotates. The reaction test tube is placed on the top of the rotating chassis 204, so that the test tube rotates with the rotating chassis 204, achieving the effect of stirring the test tube, which is beneficial to improving the reaction efficiency.
[0049] Finally, several points should be noted: First, in the description of the present application, it should be noted that unless otherwise specified and limited, the terms "installation", "connection", and "connection" should be understood in a broad sense, which can be mechanical connection or electrical connection, and can also be the communication inside two components. It can be directly connected. "Upper", "lower", "left", "right", etc. are only used to represent the relative position relationship. When the absolute position of the described object changes, the relative position relationship may change;
[0050] Second: In the drawings of the disclosed embodiments of the present invention, only the structures related to the disclosed embodiments of the present disclosure are involved. Other structures can refer to the general design. Without conflict, the same embodiment and different embodiments of the present invention can be combined with each other;
[0051] Finally: The above are only the preferred embodiments of the present invention and are not used to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A high-pressure synthesis reaction device based on an NRPC-coupled amino acid synergistic factor, comprising a pressurization and capping assembly (1), characterized in that, The pressure charging and capping assembly (1) includes a channel assembly (101). Both sides of the channel assembly (101) are fixedly connected with linkage assemblies (102). The rear ends of the two linkage assemblies (102) are movably sleeved with locking pin assemblies (103). One end of the two locking pin assemblies (103) is threadedly connected with a sealing top cover (104). The channel assembly (101) includes a channel housing (1011). A rotating shaft (1012) is rotatably connected to the inner sides of the front and rear of the channel housing (1011). A fan wheel (1013) is fixedly sleeved on the side of the rotating shaft (1012). A first semi-circular block (1014) and a second semi-circular block (1015) are fixedly connected to the inner side of the bottom of the channel housing (1011). The first semi-circular block (1014) and the second semi-circular block (1015) enable the air flow to circulate at the inner top of the channel housing (1011). During the pressurization and depressurization processes of the channel housing (1011), under the action of the first semi-circular block (1014) and the second semi-circular block (1015), it rotates in opposite directions respectively, and is linked with the linkage assembly (102) and the locking pin assembly (103) to control the screwing in and out of the locking pin assembly (103).
2. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen amino acid synergistic factor according to claim 1, wherein: One end of the two linkage assemblies (102) and the locking pin assemblies (103) is rotatably connected to a fixed plate (105), and is located at the top of one side of the fixed plate (105). The sides of the two fixed plates (105) connecting the linkage assembly (102) and the locking pin assembly (103) are opposite to each other. At the bottom end of one side of the two fixed plates (105) connecting the linkage assembly (102) and the locking pin assembly (103), a mounting plate (106) is fixedly connected. The mounting plate (106) is fixedly sleeved with a reaction kettle assembly (2). The rotating shaft (1012) and the fan wheel (1013) are located between the first semi-circular block (1014) and the second semi-circular block (1015). The first semi-circular block (1014) is located at one end inside the channel housing (1011), and the second semi-circular block (1015) is located at the other end inside the channel housing (1011).
3. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen-based amino acid synergistic factor according to claim 1, wherein: One end of the channel housing (1011) is fixedly communicated with a second air pipe (306), and the second air pipe (306) is at the same end of the channel housing (1011) as the second semi-circular block (1015).
4. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen-based amino acid synergistic factor according to claim 1, wherein: The linkage assembly (102) includes a roller (1021) and a track (1022). One end of the roller (1021) is fixedly connected with a rotating shaft (1012). The track (1022) is movably sleeved on the side of the other end of the roller (1021). The inner side of the end of the rotating shaft (1012) away from the roller (1021) is movably sleeved with a locking pin assembly (103).
5. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen-based amino acid synergistic factor according to claim 1, wherein: The locking pin assembly (103) includes a pin tube (1031), a groove (1032), a threaded rod (1033), and a limit block (1034). One end of the pin tube (1031) is provided with a groove (1032), and a slot gap is provided on the side surface of the pin tube (1031). A threaded rod (1033) is movably sleeved inside the pin tube (1031). Half of the threaded rod (1033) is in the shape of a smooth cylinder and the other half is threaded. A limit block (1034) is fixedly connected to the top of the cylindrical end of the threaded rod (1033), and the limit block (1034) moves in the slot gap of the pin tube (1031).
6. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen-based amino acid synergistic factor according to claim 1, wherein: One end of the pressure charging and capping assembly (1) is fixedly communicated with a reaction kettle assembly (2). The bottom of the other end of the pressure charging and capping assembly (1) is fixedly communicated with a high-pressure assembly (3). The top of the high-pressure assembly (3) is fixedly connected to the bottom of the reaction kettle assembly (2).
7. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen amino acid synergistic factor according to claim 6, characterized in that: The reaction kettle assembly (2) includes an outer shell (201). A sealing ring (202) is fixedly sleeved inside the top of the outer shell (201). An inner reaction kettle (203) is fixedly sleeved inside the sealing ring (202). A threaded hole is provided on the side surface of the top of the inner reaction kettle (203). The bottom of the inner reaction kettle (203) is rotatably connected to a rotating chassis (204). A fan blade kit (205) is fixedly sleeved on the side surface of the rotating chassis (204). A rotating rod (206) is fixedly connected to the middle of the bottom of the rotating chassis (204).
8. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen amino acid synergistic factor according to claim 7, characterized in that: Six circular holes are provided on the side surface of the middle part of the inner reaction kettle (203), and guide vanes (207) are fixedly connected to the inside of the six circular holes respectively.
9. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen-based amino acid synergistic factor according to claim 7, wherein: The fan blade kit (205) includes a connecting ring (2051), connecting rods (2052), and fan blades (2053). Six connecting rods (2052) are fixedly connected to the top of the connecting ring (2051), and fan blades (2053) are fixedly connected to the tops of the six connecting rods (2052).
10. The high-pressure synthesis reaction device based on the NRPC-coupled hydrogen-based amino acid synergistic factor according to claim 6, wherein: The high-pressure assembly (3) includes a base (301). A connecting block (302) is fixedly connected to one side of the base (301). An air pump (303) is fixedly connected to one side of the connecting block (302). A first air pipe (304) is fixedly communicated with the top of the air pump (303). A connecting air pipe (305) is fixedly communicated with the top of the first air pipe (304). A second air pipe (306) is fixedly communicated with one side of the connecting air pipe (305). An air valve (307) is movably connected to the other side of the connecting air pipe (305). The outer shell (201) is fixedly connected to the top of the base (301).