Organic chemical material reaction device

Through the load rod and rotary rod system driven by a dual-axis motor, the feed progress and the raw materials are controlled, which solves the problem of uneven mixing of raw materials in the existing equipment, and achieves fast and uniform mixing and efficient reaction.

CN223209449UActive Publication Date: 2025-08-12TIANJIN MINGNUO NEW TECHNOLOGY DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202422458338.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-11
Publication Date
2025-08-12
Estimated Expiration
2034-10-11

AI Technical Summary

Technical Problem

The centralized delivery of raw materials in existing reaction devices leads to uneven mixing and low mixing efficiency, which affects the production efficiency of chemical materials.

Method used

The dual-axis motor is used to drive the load rod and the rotary rod to rotate, and the pallet movement is driven by the reciprocating screw to control the feed progress. The raw materials are mixed with the dispersing plate and the diverter plate, combined with the stirring rod and the spiral twisting dragon to accelerate the mixing, and the electric push rod controls the opening and closing of the unloading pipe.

Benefits of technology

It realizes rapid and even mixing of raw materials, improves mixing efficiency, ensures reaction effect, and promotes the production of chemical materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an organic chemical material reaction device, which relates to the technical field of organic chemical material production and comprises two support frames, a reaction cylinder is fixed between the two support frames, a cover plate is fixed at the top of the reaction cylinder, a discharge pipe is fixedly communicated with the bottom of the reaction cylinder, and a double-shaft motor and a plurality of feed pipes are arranged on the cover plate. And the cover plate is fixedly connected to the exteriors of the multiple feeding pipes in a sleeving mode, and the top ends of the feeding pipes fixedly communicate with a feeding cylinder. The double-shaft motor is used for simultaneously driving the carrying rod and the rotating rod to rotate, so that the rotating rod pulls the reciprocating screw rod to drive the supporting plate to move back and forth in the longitudinal direction in a screw rod transmission mode, and therefore, the supporting plate can intermittently open the feeding pipe by means of the first plug body pulled by the fixing rod; the raw materials fed in the feeding cylinder can be intermittently guided into the scattering hopper through the driving of the driving device, so that the feeding progress is controlled, the carrying rod drives the scattering plate to rotate, and the raw materials in the scattering hopper can be preliminarily mixed, so that the raw materials are scattered and disordered when entering the reaction cylinder.
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Description

Technical Field

[0001] The utility model relates to the technical field of organic chemical material production, in particular to an organic chemical material reaction device. Background Art

[0002] Organic chemistry, also known as the chemistry of carbon compounds, is the science that studies the composition, structure, properties, preparation methods and applications of organic compounds. It is an extremely important branch of chemistry. Carbon-containing compounds are called organic compounds because chemists in the past believed that such substances must be produced by living organisms.

[0003] The production of organic chemical materials requires chemical reactions, typically conducted in a reaction tank. During this process, sufficient mixing of the raw materials is crucial to ensuring efficient and accelerated reactions. However, existing reaction devices typically place raw materials individually into the device. This results in the accumulation of multiple raw materials, requiring prolonged stirring to achieve uniform mixing. This not only reduces mixing efficiency but also significantly compromises the overall mixing effect, hindering chemical production. Utility Model Content

[0004] The purpose of the present application is to provide an organic chemical material reaction device to solve the problem that the existing reaction device proposed in the above background technology generally puts the raw materials into the interior of the reaction device one by one, which makes the same raw materials basically concentrated in one pile, resulting in the need for long-term stirring to mix the raw materials evenly when mixing. This not only reduces the mixing efficiency of the materials, but also greatly reduces the effect of mixing the raw materials, which is not conducive to the actual production of chemical materials.

[0005] To achieve the above-mentioned purpose, the present application provides the following technical solutions: an organic chemical material reaction device, comprising two support frames, a reaction cylinder is fixed between the two support frames, a cover is fixed on the top of the reaction cylinder, a discharge pipe is fixedly connected to the bottom of the reaction cylinder, a dual-axis motor and a plurality of feed pipes are provided on the cover, and the cover is fixedly sleeved on the outside of the plurality of feed pipes, the top of the feed pipe is fixedly connected to the feeding cylinder, a scattering bucket is fixed on the bottom of the cover, a carrying rod is fixed on the lower output end of the dual-axis motor, and the dual-axis motor is fixed on the bottom output end of the dual-axis motor. A rotating rod is fixed to the upper output end of the machine, and a plurality of scattering plates are fixed to the outer wall of the carrier rod, and the plurality of scattering plates are located inside the scattering bucket. A reciprocating screw is fixed to the top end of the rotating rod, and a support plate is provided on the outside of the reciprocating screw. A plurality of fixed rods are fixed to the bottom of the support plate, and a first plug is fixed to the bottom end of the fixed rod. The plurality of first plugs are arranged in one-to-one correspondence with a plurality of feed pipes, and the first plug slides with the inner wall of the feed pipe. A sealing assembly is provided on the reaction cylinder, and the sealing assembly is used to control the opening and closing of the discharge pipe.

[0006] Furthermore, a limit block is fixed on the top end of the reciprocating screw.

[0007] Furthermore, a diverter plate is fixedly sleeved on the outside of the carrier rod, and the diverter plate is located inside the reaction cylinder and directly below the breaking bucket.

[0008] Furthermore, a plurality of stirring rods are fixed to the outer wall of the carrier rod, and the plurality of stirring rods are all located below the diverter plate, and the diverter plate is a frustum-shaped structure.

[0009] Furthermore, a spiral auger is fixed to the bottom end of the carrier rod, and the spiral auger is located inside the reaction cylinder.

[0010] Furthermore, the sealing assembly includes a fixed block, which is fixedly mounted on the reaction cylinder, and an electric push rod is provided at the bottom of the fixed block, a connecting rod is fixedly mounted on the output end of the electric push rod, and a second plug is fixed on the top end of the connecting rod, and the second plug is slidably fitted with the inner wall of the discharge pipe.

[0011] In summary, the technical effects and advantages of the utility model are:

[0012] 1. In the utility model, a dual-axis motor is used to simultaneously drive the carrier rod and the rotating rod to rotate, so that the rotating rod drives the reciprocating screw to drive the support plate to move back and forth in the longitudinal direction in the form of screw transmission. In this way, the support plate can intermittently open the feed pipe with the help of the first plug body driven by the fixed rod, so that the raw materials put in the feeding barrel can be intermittently introduced into the interior of the breaker bucket, so as to control the feeding progress. The carrier rod drives the breaker plate to rotate, which can preliminarily mix the raw materials in the breaker bucket, so that the raw materials become scattered and disordered when entering the interior of the reaction barrel. In this way, the rapid mixing of the raw materials is facilitated, the mixing effect of the raw materials is greatly improved, and the subsequent reaction is promoted.

[0013] 2. In the present invention, when a dual-axis motor is used to drive the carrier rod to rotate, the carrier rod can drive the diverter plate to rotate, so that the raw materials discharged from the bottom of the hopper fall onto the surface of the diverter plate and can be thrown to the surrounding areas by the diverter plate, thereby further breaking up the raw materials and improving the mixing effect of the raw materials.

[0014] 3. In the present invention, the electric push rod can be used to adjust the longitudinal position of the second plug, so that the second plug can control the opening and closing of the discharge pipe, and can also prevent the raw materials from entering the interior of the discharge pipe before mixing and reaction and cannot be effectively stirred, thereby ensuring the mixing and reaction effect of the raw materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the prior art description.

[0016] Figure 1 This is a schematic diagram of the three-dimensional structure of an organic chemical material reaction device in an embodiment of the present application;

[0017] Figure 2 This is a positional relationship diagram of the reaction cylinder, feeding cylinder, stirring rod, and blocking assembly in the embodiment of this application;

[0018] Figure 3 This is a positional relationship diagram of the reciprocating screw, the support plate, the fixed rod, and the first plug body in the embodiment of the present application;

[0019] Figure 4 This is a diagram showing the positional relationship among the carrier rod, scattering plate, diverter plate, and stirring rod in the embodiment of the present application.

[0020] In the figure: 1. Support frame; 2. Reactor; 3. Cover plate; 4. Discharge pipe; 5. Double-axis motor; 6. Feed pipe; 7. Feeding barrel; 8. Scattering bucket; 9. Carrying rod; 10. Scattering plate; 11. Rotating rod; 12. Reciprocating screw; 13. Support plate; 14. Fixed rod; 15. First plug; 16. Limit block; 17. Diverter plate; 18. Stirring rod; 19. Auger; 20. Fixed block; 21. Electric push rod; 22. Connecting rod; 23. Second plug. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0022] Example: Reference Figure 1-4 The organic chemical material reaction device shown in the figure includes two support frames 1, a reaction cylinder 2 is fixed between the two support frames 1, a cover plate 3 is fixed on the top of the reaction cylinder 2, a discharge pipe 4 is fixedly connected to the bottom of the reaction cylinder 2, a double-axis motor 5 and a plurality of feed pipes 6 are provided on the cover plate 3, and the cover plate 3 is fixedly sleeved on the outside of the plurality of feed pipes 6, the top of the feed pipe 6 is fixedly connected to a feeding cylinder 7, a scattering bucket 8 is fixed to the bottom of the cover plate 3, a carrying rod 9 is fixed to the lower output end of the double-axis motor 5, a rotating rod 11 is fixed to the upper output end of the double-axis motor 5, and a plurality of scattering plates 10 are fixed to the outer wall of the carrying rod 9. Each breaking plate 10 is located inside the breaking bucket 8, a reciprocating screw 12 is fixed to the top of the rotating rod 11, a support plate 13 is sleeved on the outside of the reciprocating screw 12, and a limit block 16 is fixed to the top of the reciprocating screw 12 to prevent the support plate 13 from separating from the reciprocating screw 12, a plurality of fixing rods 14 are fixed to the bottom of the support plate 13, a first plug 15 is fixed to the bottom end of the fixing rod 14, and the plurality of first plugs 15 are arranged in a one-to-one correspondence with the plurality of feeding pipes 6, and the first plug 15 is slidably matched with the inner wall of the feeding pipe 6, a plugging assembly is provided on the reaction cylinder 2, and the plugging assembly is used to control the opening and closing of the discharge pipe 4;

[0023] The dual-axis motor 5 is used to simultaneously drive the carrier rod 9 and the rotating rod 11 to rotate, so that the rotating rod 11 drives the reciprocating screw 12 to drive the support plate 13 to move back and forth in the longitudinal direction in the form of screw transmission. In this way, the support plate 13 can intermittently open the feed pipe 6 with the help of the first plug 15 driven by the fixed rod 14, so that the raw materials put into the feeding barrel 7 can be intermittently introduced into the interior of the beating bucket 8, so as to control the feeding progress. The carrier rod 9 drives the beating plate 10 to rotate, which can preliminarily mix the raw materials in the beating bucket 8, so that the raw materials become scattered and disordered when entering the interior of the reaction barrel 2.

[0024] The outer portion of the carrier rod 9 is fixedly sleeved with a diverter plate 17, which is located inside the reaction tube 2 and directly below the dispersing bucket 8. The diverter plate 17 is a truncated cone structure, which can better remove the raw materials that fall on the diverter plate 17;

[0025] When the dual-axis motor 5 is used to drive the carrying rod 9 to rotate, the carrying rod 9 can drive the diverter plate 17 to rotate, so that the raw materials discharged from the bottom of the hopper 8 fall onto the surface of the diverter plate 17 and can be thrown to the surroundings by the diverter plate 17, further breaking up the raw materials and improving the mixing effect of the raw materials.

[0026] Among them, a plurality of stirring rods 18 are fixed to the outer wall of the carrier rod 9, and the plurality of stirring rods 18 are all located below the diverter plate 17. A spiral auger 19 is fixed to the bottom end of the carrier rod 9, and the spiral auger 19 and the plurality of stirring rods 18 are all located inside the reaction cylinder 2;

[0027] When the dual-axis motor 5 is used to drive the carrier rod 9 to rotate, the carrier rod 9 can drive the stirring rod 18 and the spiral auger 19 to rotate, so that the stirring rod 18 drives the raw materials to move in the horizontal direction, and the spiral auger 19 drives the raw materials to move in the vertical direction. In this way, not only can the efficiency of mixing the raw materials be accelerated, but also the effect of mixing the raw materials can be further improved.

[0028] The plugging assembly includes a fixed block 20, which is fixedly mounted on the reaction cylinder 2, and an electric push rod 21 is provided at the bottom of the fixed block 20, a connecting rod 22 is fixedly mounted on the output end of the electric push rod 21, and a second plug 23 is fixed on the top end of the connecting rod 22, and the second plug 23 is slidably engaged with the inner wall of the discharge pipe 4;

[0029] The electric push rod 21 can be used to adjust the longitudinal position of the second plug 23, so that the second plug 23 can control the opening and closing of the discharge pipe 4 and prevent the raw materials from entering the discharge pipe 4 before mixing and reaction and thus being unable to be effectively stirred.

[0030] Working principle of this utility model:

[0031] When in use, first put each raw material into each feeding barrel 7 in order, then start the double-axis motor 5, so that the double-axis motor 5 drives the carrying rod 9 and the rotating rod 11 to rotate, and the rotating rod 11 pulls the reciprocating screw rod 12 to rotate, so that the reciprocating screw rod 12 drives the supporting plate 13 to move back and forth in the longitudinal direction in the form of screw transmission, and the supporting plate 13 pulls the first plug body 15 into the interior of the feeding pipe 6 at intervals with the help of the fixed rod 14. When the first plug body 15 leaves the interior of the feeding pipe 6, the raw materials in the feeding barrel 7 can enter the interior of the scattering bucket 8. When the first plug body 15 enters the interior of the feeding pipe 6, the feeding pipe 6 is blocked, and the discharge of the raw materials in the feeding barrel 7 is suspended. In this way, the amount of each raw material entering the scattering bucket 8 each time is controlled, which can ensure that the multiple scattering plates 10 driven by the carrying rod 9 scatter and mix them, avoiding the problem of poor scattering effect due to excessive raw materials in the scattering bucket 8;

[0032] The raw materials dispersed by the dispersion plate 10 can be discharged along the bottom of the dispersion bucket 8 and fall onto the diverter plate 17. The diverter plate 17 driven by the carrier rod 9 can throw the raw materials around itself, so that the raw materials are further dispersed. At the same time, the stirring rod 18 and the spiral auger 19 driven by the carrier rod 9 can drive the raw materials in the reaction cylinder 2 to stir rapidly in the horizontal and vertical directions, so that the raw materials can be quickly mixed.

[0033] After a period of time, the raw materials are mixed and the reaction is completed. The electric push rod 21 is activated to extend, which can drive the second plug 23 to move downward, so that the second plug 23 no longer blocks the top of the discharge pipe 4 and moves away from the bottom of the discharge pipe 4. The chemical materials after the reaction in the reaction cylinder 2 can be discharged along the discharge pipe 4 for subsequent processing.

[0034] 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. An organic chemical material reaction device, comprising two support frames (1), characterized in that: A reaction cylinder (2) is fixed between the two support frames (1), a cover plate (3) is fixed on the top of the reaction cylinder (2), a discharge pipe (4) is fixedly connected to the bottom of the reaction cylinder (2), a double-axis motor (5) and a plurality of feed pipes (6) are provided on the cover plate (3), and the cover plate (3) is fixedly sleeved on the outside of the plurality of feed pipes (6), the top of the feed pipe (6) is fixedly connected to the feeding cylinder (7), a scattering bucket (8) is fixed on the bottom of the cover plate (3), a carrying rod (9) is fixed to the lower output end of the double-axis motor (5), a rotating rod (11) is fixed to the upper output end of the double-axis motor (5), and the outer wall of the carrying rod (9) is fixed. There are a plurality of scattering plates (10), and the plurality of scattering plates (10) are all located inside the scattering bucket (8). A reciprocating screw (12) is fixed to the top end of the rotating rod (11), and a support plate (13) is provided on the outside of the reciprocating screw (12). A plurality of fixing rods (14) are fixed to the bottom of the support plate (13), and a first plug body (15) is fixed to the bottom end of the fixing rod (14). The plurality of first plug bodies (15) are arranged in a one-to-one correspondence with the plurality of feeding pipes (6), and the first plug body (15) is slidably matched with the inner wall of the feeding pipe (6). A blocking component is provided on the reaction cylinder (2), and the blocking component is used to control the opening and closing of the discharge pipe (4).

2. The organic chemical material reaction device according to claim 1, characterized in that: A limiting block (16) is fixed at the top end of the reciprocating screw rod (12).

3. The organic chemical material reaction device according to claim 1, characterized in that: The outside of the carrier rod (9) is fixedly sleeved with a diverter plate (17), and the diverter plate (17) is located inside the reaction cylinder (2), and the diverter plate (17) is located directly below the disintegration bucket (8).

4. The organic chemical material reaction device according to claim 3, characterized in that: A plurality of stirring rods (18) are fixed to the outer wall of the carrier rod (9), and the plurality of stirring rods (18) are all located below the diverter plate (17), and the diverter plate (17) is a truncated cone structure.

5. The organic chemical material reaction device according to claim 1, characterized in that: A spiral auger (19) is fixed to the bottom end of the carrier rod (9), and the spiral auger (19) is located inside the reaction cylinder (2).

6. The organic chemical material reaction device according to claim 1, characterized in that: The blocking assembly comprises a fixed block (20), the fixed block (20) being fixedly mounted on the reaction cylinder (2), and an electric push rod (21) being provided at the bottom of the fixed block (20), a connecting rod (22) being fixedly mounted at the output end of the electric push rod (21), a second plug body (23) being fixed at the top end of the connecting rod (22), and the second plug body (23) being in sliding engagement with the inner wall of the discharge pipe (4).