Calcium-zinc stabilizer coprecipitation reaction kettle

By setting a connecting frame, limiting post and locking tongue on the lid, the problem of fixed number of feed inlets is solved, the feed inlets can be flexibly adjusted, the material mixing uniformity and reaction efficiency are improved, and the sealing of the reactor is enhanced.

CN223655022UActive Publication Date: 2025-12-12HUBEI BENXING NEW MATERIAL CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202423175034.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-12-12
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

The number of feed inlets in existing calcium-zinc stabilizer coprecipitation reactors is fixed and cannot be flexibly adjusted according to different reaction requirements.

Method used

Three connecting brackets are set around the lid of the vessel. The feed pipe can be detachably connected and fixed through structures such as limiting posts, locking tongues and damping blocks, which increases the number and positional flexibility of the feed inlets.

Benefits of technology

It enables flexible adjustment of the number of feed inlets according to different reaction requirements, improves the uniformity of material mixing and reaction efficiency, prevents material aggregation, and enhances the sealing of the reactor.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223655022U_ABST
    Figure CN223655022U_ABST
Patent Text Reader

Abstract

The utility model provides a calcium zinc stabilizer coprecipitation reaction kettle, which relates to the technical field of reaction kettles and comprises a reaction kettle main body, a kettle cover is arranged at the top of the reaction kettle main body, two feed ports are arranged at the top of the kettle cover, a direct current motor is arranged between the two feed ports, and three connecting frames are arranged around the outer surface of the kettle cover. The surfaces of the three connecting frames are each provided with two limiting columns, the sides, away from the kettle cover, of the three connecting frames are each provided with a feeding pipe, one end of each feeding pipe is provided with a mounting frame, the three connecting frames are welded to the outer surface of the kettle cover in a surrounding mode, the connecting frames are communicated with the kettle cover, and the feeding pipes can be in butt joint with the connecting frames through the mounting frames at one ends; after butt joint, the mounting frame is fixed on the connecting frame through the limiting column and the spring bolt, so that the feeding pipe is communicated with a pipeline of the connecting frame, and the feeding pipe is mounted on the connecting frame, so that a feeding hole for adding raw materials is additionally formed in the kettle cover, and the defect that the number of the feeding holes cannot be flexibly adjusted according to different reaction requirements is overcome.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of reaction kettle, especially relates to a calcium zinc stabilizer coprecipitation reaction kettle. BACKGROUND

[0002] According to the calcium zinc stabilizer reaction kettle of Chinese open (announcement) no. CN221310662U discloses a kind of calcium zinc stabilizer reaction kettle, including connecting plate and stirring assembly one, the stirring assembly one is set in the lower end of connecting plate, the stirring assembly one includes fixed rod, the fixed rod is fixedly installed in the left and right ends of connecting plate lower end, the lower end of the outer end of fixed rod is movably installed gear one, the outer end of gear one is engaged with gear two, the left and right ends of gear two lower end are fixedly installed with connecting rod one, the lower end of connecting rod one is fixedly installed with rotating rod one.The calcium zinc stabilizer reaction kettle, by installing stirring assembly one, gear three can drive gear one to rotate, make stirring rod one and stirring rod two carry out the stirring of raw materials in opposite direction, then start heating pipe, can heat and mix raw materials and calcium zinc stabilizer, so that when carrying out normal stirring mixing, raw materials can be turned over from different angles, make raw materials and calcium zinc stabilizer mix more evenly.

[0003] The above-mentioned technology and the calcium zinc stabilizer coprecipitation reaction kettle of prior art have only one or a few fixed feed ports, and the structure is relatively simple. The position and number of the feed ports are determined during the design and manufacture of the reaction kettle, and it is difficult to change them later. Therefore, the number of the feed ports cannot be flexibly adjusted according to different reaction requirements for producing calcium zinc stabilizer. SUMMARY

[0004] The utility model discloses a calcium zinc stabilizer coprecipitation reaction kettle, which can flexibly adjust the number of feed ports according to different reaction requirements, thereby solving the problem that the number of feed ports cannot be flexibly adjusted according to different reaction requirements in the prior art.

[0005] In order to achieve the above object, the utility model discloses the following technical scheme: a calcium zinc stabilizer coprecipitation reaction kettle, including the reaction kettle main part, the top of reaction kettle main part is equipped with the kettle cover, the top of kettle cover is equipped with two feed ports, the middle of two feed ports is equipped with the DC motor, the outer surface of kettle cover surrounds and is equipped with three connecting frames, the surface of three connecting frames is equipped with two limit posts, the side that three feed pipes are away from kettle cover is equipped with, the one end of three feed pipes is equipped with the mounting bracket, the surface of three connecting frames is equipped with the mounting groove, the bottom of three mounting grooves is equipped with the sealing washer, the both sides of three mounting grooves are equipped with the sliding slot, the side of two sliding slots is equipped with the damping block, the inside of three mounting grooves is equipped with the lock tongue, the both sides of three lock tongues are equipped with the sliding block, the surface of three lock tongues is equipped with two guide rods, the outside of six guide rods is equipped with the reset spring, the bottom of kettle cover is equipped with the stirring shaft.

[0006] Preferably, the kettle cover is connected with the reaction kettle main body flange, the DC motor is installed at the middle position of the top surface of the kettle cover, and the DC motor is bolted with the kettle cover, the stirring shaft is installed in the inside of the reaction kettle main body, and the one end of the stirring shaft penetrates out of the kettle cover and is connected with the shaft of the DC motor.

[0007] Preferably, two feed ports are evenly arranged on both sides of the kettle cover, and the feed port is integrally formed with the kettle cover, and three connecting frames are equidistantly welded on the surface of the kettle cover.

[0008] Preferably, three sealing washers are embedded in the middle position of the surface of the connecting frame, two limit posts are mirror imaged arranged on the surface of the connecting frame with the sealing washer as the center, and the limit post is integrally formed with the connecting frame.

[0009] Preferably, three mounting brackets are welded on one end of the feed pipe, three mounting brackets of the feed pipe are installed on the connecting frame through two limit posts, and the two ends of the three mounting brackets are clamped in the limit post.

[0010] Preferably, two sliding blocks are mirror imaged arranged with the lock tongue as the center, and the two sliding blocks are integrally formed with the lock tongue, the lock tongue is installed in the mounting groove, and the two sliding blocks are installed in the sliding slot.

[0011] Preferably, six damping blocks are arranged at positions corresponding to the positions of the sliding slots, and the damping blocks are bolted with the connecting frame, two guide rods are integrally formed with the three lock tongues, and the guide rod and the reset spring are installed in the mounting groove.

[0012] Beneficial effects

[0013] The utility model discloses a kettle cover is provided with three connecting frames, and the connecting frame is communicated with the kettle cover, and the feeding pipe can be connected with the connecting frame through the mounting frame of one end, and the mounting frame is fixed on the connecting frame through the limiting column and the lock tongue after butt joint, and the feeding pipe is communicated with the connecting frame pipeline, and the feeding pipe is installed on the connecting frame to add the feeding port of raw material for the kettle cover, and the number of feeding ports can be adjusted flexibly according to different reaction requirements. BRIEF DESCRIPTION OF DRAWINGS

[0014] Figure 1 It is the isometric view of the utility model;

[0015] Figure 2 It is the front view of the utility model;

[0016] Figure 3 It is the Figure 2 A-A section view of the utility model;

[0017] Figure 4 It is the partial isometric view of the utility model;

[0018] Figure 5 It is the partial parts drawing of the utility model;

[0019] Figure 6 It is the Figure 5 b-b section view of the utility model;

[0020] Figure 7 It is the perspective view of the utility model.

[0021] Legend:

[0022] 1, reaction kettle main body;2, kettle cover;3, feeding port;4, connecting frame;5, limiting column;6, sealing pad;7, mounting frame;8, feeding pipe;9, damping block;10, sliding slot;11, lock tongue;12, sliding block;13, guide rod;14, reset spring;15, installation slot;16, DC motor;17, stirring shaft;18, cover plate;19, handle. DETAILED DESCRIPTION

[0023] In order to make the technical means, creative features, purposes and effects realized by the utility model easy to understand, the following further describes the utility model in combination with specific embodiments and drawings, but the following embodiments are only preferred embodiments of the utility model, not all. Based on the embodiments in the embodiment, other embodiments obtained by those skilled in the art without creative labor all belong to the protection scope of the utility model.

[0024] The specific embodiments of the utility model are described below in combination with the drawings. Specific embodiment one

[0026] Referring to Figures 1-7 A calcium zinc stabilizer coprecipitation reactor includes a reactor main body 1, a cover 2 is arranged on the top of the reactor main body 1, two feed ports 3 are arranged on the top of the cover 2, a DC motor 16 is arranged in the middle of the two feed ports 3, three connecting frames 4 are arranged around the outer surface of the cover 2, two limiting columns 5 are arranged on the surface of each of the three connecting frames 4, a feed pipe 8 is arranged on the side of each of the three connecting frames 4 away from the cover 2, a mounting frame 7 is arranged at one end of each of the three feed pipes 8, a mounting groove 15 is arranged on the surface of each of the three connecting frames 4, a sealing gasket 6 is arranged at the bottom of each of the three mounting grooves 15, a sliding groove 10 is arranged on the two sides of each of the three mounting grooves 15, a damping block 9 is arranged on one side of each of the two sliding grooves 10, a lock tongue 11 is arranged in the inside of each of the three mounting grooves 15, a sliding block 12 is arranged on the two sides of each of the three lock tongues 11, two guide rods 13 are arranged on the surface of each of the three lock tongues 11, a reset spring 14 is sleeved around the outside of each of the six guide rods 13, a stirring shaft 17 is arranged at the bottom of the cover 2, the cover 2 is flange-connected with the reactor main body 1, the DC motor 16 is installed at the middle of the top surface of the cover 2, and the DC motor 16 is bolted with the cover 2, the stirring shaft 17 is installed in the inside of the reactor main body 1, and one end of the stirring shaft 17 penetrates through the cover 2 and is shaft-connected with the DC motor 16, the two feed ports 3 are evenly arranged on the two sides of the cover 2, and the feed ports 3 are integrally formed with the cover 2, the three connecting frames 4 are equidistantly welded on the surface of the cover 2, the three sealing gaskets 6 are inlaid in the middle of the surface of each of the connecting frames 4, the two limiting columns 5 are mirror-imaged arranged on the surface of each of the connecting frames 4 with the sealing gaskets 6 as the center, and the limiting columns 5 are integrally formed with the connecting frames 4, the three mounting frames 7 are welded at one end of each of the three feed pipes 8, the mounting frames 7 of the three feed pipes 8 are installed on the connecting frames 4 through the two limiting columns 5, and the two ends of the three mounting frames 7 are clamped in the limiting columns 5, the two sliding blocks 12 are mirror-imaged arranged with the lock tongues 11 as the center, and the two sliding blocks 12 are integrally formed with the lock tongues 11, the lock tongues 11 are installed in the mounting grooves 15, and the two sliding blocks 12 are installed in the sliding grooves 10, the six damping blocks 9 are arranged at positions corresponding to the positions where the sliding grooves 10 are arranged, and the damping blocks 9 are bolted with the connecting frames 4, the six guide rods 13 are integrally formed with the three lock tongues 11, and the guide rods 13 and the reset springs 14 are installed in the mounting grooves 15.

[0027] The kettle cover 2 is connected with the kettle body 1 flange, through the kettle cover 2 will be sealed inside the kettle body 1 space, DC motor 16 is installed in the middle of the kettle cover 2 top surface position, and the stirring shaft 17 inside the kettle body 1 one end of the kettle cover 2 and DC motor 16 shaft, two feed inlet 3 evenly set up in the kettle cover 2 both sides, so when the calcium salt and zinc salt and other raw materials from the kettle cover 2 top surface feed inlet 3 into the kettle body 1 inside, and in the kettle body 1 inside the chemical reaction occurs, can be opened through the external control system DC motor 16, make DC motor 16 drive stirring shaft 17 rotation, through the rotating stirring shaft 17 to the material into the kettle body 1 inside stirring, due to the stirring effect, they can be evenly dispersed in the whole reaction system, and will not gather in the kettle bottom or other local area, so as to increase the reaction efficiency of the material, three connecting frame 4 equidistantly around the surface of the welding kettle cover 2, and in the middle of the three connecting frame 4 position are provided with holes, connecting frame 4 for installing feed pipe 8, thereby increasing the efficiency of the reaction material into the kettle body 1, three sealing pads 6 are embedded in the connecting frame 4 hole position, so when the feed pipe 8 through the mounting bracket 7 is installed on the connecting frame 4, sealing pad 6 will seal the connecting frame 4 hole and mounting bracket 7 feed pipe 8 connection, two limit column 5 as a group of every two, and every two limit column 5 group with sealing pad 6 as the center mirror image set up in the surface of the connecting frame 4, and limit column 5 and connecting frame 4 integral molding, so that when the feed pipe 8 through the mounting bracket 7 is installed on the connecting frame 4, limit column 5 will be fixed feed pipe 8 mounting bracket 7, prevent mounting bracket 7 left and right deviation, three mounting bracket 7 are welded on one end of the feed pipe 8, the height of the mounting slot 15 on the surface of the connecting frame 4 will be slightly higher than the height of the mounting bracket 7 installed on the connecting frame 4, locking tongue 11 is arranged in the mounting slot 15, the mounting bracket 7 of the feed pipe 8 is fixed on the connecting frame 4 through the locking tongue 11, to prevent the mounting bracket 7 of the feed pipe 8 moves up and down on the connecting frame 4, the mounting bracket 7 of the feed pipe 8 is fixed and installed on the connecting frame 4 through the cooperation of the locking tongue 11 and the limit column 5, since the mounting bracket 7 is welded on the feed pipe 8, when the mounting bracket 7 is installed on the connecting frame 4, the feed pipe 8 will also be installed on the connecting frame 4, two sliders 12 are arranged as mirror images with the locking tongue 11 as the center, and the two sliders 12 are integrally formed with the locking tongue 11, the locking tongue 11 is installed in the mounting slot 15, so that when the locking tongue 11 is squeezed back and forth by the mounting bracket 7 and the return spring 14, the slider 12 also moves back and forth in the sliding slot 10, the movement of the locking tongue 11 is guided by the movement of the slider 12 in the sliding slot 10, six damping blocks 9 are installed on the connecting frame 4 through fixing bolts, and the positions of the damping blocks 9 correspond to the positions of the sliding slots 10, the sliding slots 10 are blocked by the damping blocks 9, so that when the slider 12 moves in the sliding slot 10, the damping blocks 9 will block the movement of the slider 12, thereby preventing the locking tongue 11 from being squeezed out of the mounting slot 15 by the return spring 14,And the damping block 9 is bolted with the connecting frame 4, the six guide rods 13 are integrally formed with the three locking tongues 11, and the reset spring 14 is sleeved on each guide rod 13, the guide rod 13 will limit the reset spring 14, when the locking tongue 11 is pressed into the installation slot 15, the locking tongue 11 will press the reset spring 14, the reset spring 14 will be deformed and store energy when being pressed, after the pressing force of the locking tongue 11 disappears, due to the resilience of the reset spring 14, it will automatically restore to the original state and release the stored energy to extrude the locking tongue 11 out of the installation slot 15.

[0028] When the feeding pipe 8 is installed, the mounting frame 7 at one end of the feeding pipe 8 is aligned with the connecting frame 4, the mounting frame 7 is located between the two limiting columns 5 and close to the sealing gasket 6. At this time, the locking tongue 11 is in an uncompressed state, the mounting frame 7 is pushed towards the connecting frame 4, when the mounting frame 7 contacts the limiting column 5, since the limiting column 5 is integrally formed with the connecting frame 4, the feeding pipe 8 of the mounting frame 7 is limited to move left and right by the limiting column 5, thereby realizing the preliminary positioning and fixing of the feeding pipe 8 in the horizontal direction, with the mounting frame 7 continuing to advance towards the connecting frame 4, the mounting frame 7 will contact the locking tongue 11 and apply a downward pressure to it. After the locking tongue 11 is pressed, it begins to compress the reset spring 14 and retract into the installation slot 15, at the same time, the sliding blocks 12 on both sides of the locking tongue 11 will also slide in the sliding groove 10 to provide guidance for the movement of the locking tongue 11. When the mounting frame 7 is completely pushed onto the connecting frame 4 at the appropriate position, the mounting frame 7 passes over the locking tongue 11, at this time, the locking tongue 11 is popped up under the resilience of the reset spring 14, clamping the mounting frame 7 on the connecting frame 4, preventing the mounting frame 7 from moving up and down in the vertical direction, thereby realizing the fixing of the feeding pipe 8 in the vertical direction, during the installation of the mounting frame 7 onto the connecting frame 4, the sealing gasket 6 will tightly fit at the connecting part of the hole of the connecting frame 4 and the feeding pipe 8 of the mounting frame 7, playing a sealing role. This sealing structure can effectively prevent the leakage of materials in the reaction kettle during the feeding process, ensuring the sealing of the inside of the reaction kettle, after the locking tongue 11 is popped out to fix the mounting frame 7 under the action of the reset spring 14, due to the position of the sliding block 12 in the sliding groove 10 and the blocking effect of the damping block 9 on the sliding groove 10, the locking tongue 11 will not fall off from the installation slot 15 due to the excessive resilience of the reset spring 14 or other external factors. In this way, it is ensured that the feeding pipe 8 is stably installed on the connecting frame 4 through the mounting frame 7, providing reliable protection for the smooth entry of materials into the reaction kettle. Specific embodiment two:

[0030] Reference Figures 1-7The calcium-zinc stabilizer co-precipitation reactor further based on the basic structure in embodiment one, can be provided with cover plates 18 on the three connecting frames 4, and the two sides of the cover plates 18 are provided with handles 19, the handles 19 are integrally formed with the cover plates 18, when the connecting pipes 8 are not needed and are not installed, the handles 19 can be held to paste the cover plates 18 on the connecting frames 4, and the cover plates 18 are pressed downwards through the handles 19, when the cover plates 18 are moved downwards, the locking tongues 11 are pressed and enter the installation grooves 15, when the cover plates 18 continue to move downwards, the cover plates 18 are clamped by the two limiting columns 5, so that the cover plates 18 are fixed on the connecting frames 4, when the cover plates 18 abut against the limiting columns 5, the locking tongues 11 lose the pressing force of the cover plates 18, so that the locking tongues 11 are pushed out of the installation grooves 15 by the reset springs 14 and clamp the cover plates 18, the cover plates 18 are fixed on the limiting columns 5, so that the cover plates 18 cover the holes of the connecting frames 4, and foreign matters in the outside are prevented from falling into the inside of the reactor main body 1 through the holes of the connecting frames 4, so that the reaction efficiency of materials in the inside of the reactor main body 1 is affected.

[0031] In summary:

[0032] 1, the outer surface of the kettle cover 2 is surrounded by three connecting frames 4 welded, the connecting frame 4 is communicated with the kettle cover 2, and the feeding pipe 8 can be connected with the connecting frame 4 through the mounting frame 7 at one end, after the butt joint, the mounting frame 7 is fixed on the connecting frame 4 through the limiting column 5 and the locking tongue 11, so that the feeding pipe 8 is communicated with the connecting frame 4, the feeding pipe 8 is installed on the connecting frame 4, so that the kettle cover 2 is provided with the feeding port 3 for adding raw materials, and the number of the feeding port 3 cannot be flexibly adjusted according to different reaction requirements.

[0033] In the present application, unless otherwise explicitly specified and limited, the first feature is "on" or "under" the second feature, which can include direct contact between the first and second features, or indirect contact between the first and second features through another feature therebetween. Moreover, the first feature "above", "over" and "on" the second feature includes the first feature directly above and obliquely above the second feature, or only indicates that the first feature is higher than the second feature in horizontal height. The first feature "below", "under" and "under" the second feature includes the first feature directly below and obliquely below the second feature, or only indicates that the first feature is lower than the second feature in horizontal height.

[0034] The basic principle, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only preferred examples of the present application and are not intended to limit the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. A calcium-zinc stabilizer co-precipitation reactor, comprising a reactor body (1), characterized in that: The reactor body (1) is provided with a lid (2) on top. The lid (2) has two feed inlets (3) on top. A DC motor (16) is provided between the two feed inlets (3). The outer surface of the lid (2) is surrounded by three connecting brackets (4). Each of the three connecting brackets (4) has two limiting posts (5) on its surface. Each of the three connecting brackets (4) has a feed pipe (8) on the side away from the lid (2). Each of the three feed pipes (8) has a mounting bracket (7) at one end. Each of the three connecting brackets (4) has a mounting groove (15) on its surface. The bottom of each of the three mounting slots (15) is provided with a sealing gasket (6), the two sides of each of the three mounting slots (15) are provided with a sliding groove (10), the two sides of each sliding groove (10) are provided with a damping block (9), the interior of each of the three mounting slots (15) is provided with a locking tongue (11), the two sides of each of the three locking tongues (11) are provided with a slider (12), the surface of each of the three locking tongues (11) is provided with two guide rods (13), the exterior of each of the six guide rods (13) is surrounded by a return spring (14), and the bottom of the lid (2) is provided with a stirring shaft (17).

2. The calcium-zinc stabilizer co-precipitation reactor according to claim 1, characterized in that: The vessel cover (2) is connected to the flange of the reactor body (1). The DC motor (16) is installed in the middle of the top surface of the vessel cover (2) and is bolted to the vessel cover (2). The stirring shaft (17) is installed inside the reactor body (1) and one end of the stirring shaft (17) passes through the vessel cover (2) and is shaft-connected to the DC motor (16).

3. The calcium-zinc stabilizer co-precipitation reactor according to claim 1, characterized in that: The two feed inlets (3) are evenly arranged on both sides of the lid (2), and the feed inlets (3) are integrally formed with the lid (2). The three connecting brackets (4) are welded around the surface of the lid (2) at equal intervals.

4. The calcium-zinc stabilizer co-precipitation reactor according to claim 1, characterized in that: The three sealing gaskets (6) are all embedded in the middle of the surface of the connecting frame (4), and the two limiting posts (5) are mirror images of the sealing gaskets (6) on the surface of the connecting frame (4), and the limiting posts (5) are integrally formed with the connecting frame (4).

5. The calcium-zinc stabilizer co-precipitation reactor according to claim 1, characterized in that: All three mounting brackets (7) are welded to one end of the feed pipe (8). The mounting brackets (7) of the three feed pipes (8) are all mounted on the connecting frame (4) through two limiting posts (5), and both ends of the three mounting brackets (7) are snapped into the limiting posts (5).

6. The calcium-zinc stabilizer co-precipitation reactor according to claim 1, characterized in that: The two sliders (12) are mirror images of the latch (11) and are integrally formed with the latch (11). The latch (11) is installed in the mounting groove (15) and the two sliders (12) are installed in the sliding groove (10).

7. The calcium-zinc stabilizer co-precipitation reactor according to claim 1, characterized in that: The positions of the six damping blocks (9) correspond one-to-one with the positions of the slide groove (10), and the damping blocks (9) are bolted to the connecting frame (4). The two guide rods (13) are uniformly integrally formed with the three locking tongues (11). The guide rods (13) and the return spring (14) are both installed in the mounting groove (15).

Citation Information

Patent Citations

  • Calcium-zinc stabilizer reaction kettle

    CN221310662U