Concrete release agent raw material reaction kettle with multi-stage filtering function

By designing a multi-stage filtration concrete release agent raw material reactor, the problem of difficulty in removing impurities in the reactor is solved, and the effect of efficiently removing impurities and improving product quality is achieved.

CN222998773UActive Publication Date: 2025-06-20HUIZHOU QILIN ENVIRONMENTAL PROTECTION MATERIALS CO LTD
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Patent Information

Application Number
CN202421761787.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-23
Publication Date
2025-06-20
Estimated Expiration
2034-07-23

AI Technical Summary

Technical Problem

When producing concrete release agent, it is difficult to effectively remove impurities generated in the reactor, which affects product quality.

Method used

A multi-stage filtration concrete mold release agent raw material reactor is designed, and raw materials are injected through the raw material inlet and auxiliary material inlet on the barrel cover. After stirring, it passes through the filter chamber under the action of vertically installed filter tubes and the built-in pressure to achieve multi-stage filtration.

Benefits of technology

It realizes efficient removal of impurities in the reactor and improves the product quality and purity of the concrete release agent.

✦ Generated by Eureka AI based on patent content.

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Abstract

The concrete release agent raw material reaction kettle with the multi-stage filtering function comprises a barrel body, an inner cavity is formed in the barrel body, and an outlet is formed in the bottom of the inner cavity; a raw material inlet and an auxiliary material inlet are formed in the barrel cover; the stirring mechanism is arranged on the barrel cover and is used for stirring the raw materials in the inner cavity; the protection shell is arranged on the periphery of the barrel body in a sleeving mode and arranged on the barrel body in a spaced mode; the filter pipe comprises a pipe body connected with the outlet and a filter bin arranged in the pipe body, the filter bin is detachably connected with the pipe body, and the pipe body is vertically arranged; and the support frame is arranged on the barrel body and is exposed out of the protective shell. According to the concrete release agent raw material reaction kettle with the multi-stage filtering function, raw materials for generating a concrete release agent are injected through the raw material inlet in the barrel cover, stirred by the stirring mechanism at the barrel body and then discharged through the filtering pipe, and the efficient filtering effect is achieved.
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Description

Technical Field

[0001] The utility model relates to the field of concrete release agents, and particularly relates to a reaction kettle for raw materials of concrete release agents with multi-stage filtration. Background Technique

[0002] When producing concrete release agents, a variety of raw materials need to be mixed and reacted. The produced concrete release agents contain impurities, and the sources of impurities include those from the reaction kettle, those contained in the raw materials, and those generated during the reaction process. Content of the Utility Model

[0003] To solve the above problems, the technical solution provides a reaction kettle for raw materials of concrete release agents with multi-stage filtration.

[0004] To achieve the above purpose, the technical solution is as follows:

[0005] A reaction kettle for raw materials of concrete release agents with multi-stage filtration, comprising

[0006] A barrel body, which has an inner cavity, and an outlet is provided at the bottom of the inner cavity;

[0007] A barrel cover, on which a raw material inlet and an auxiliary material inlet are provided;

[0008] A stirring mechanism, which is arranged on the barrel cover and is used for stirring the raw materials in the inner cavity;

[0009] A protective shell, which is sleeved on the outer periphery of the barrel body and is arranged at an interval with the barrel body;

[0010] A filter pipe, which includes a pipe body connected to the outlet, and a filter chamber arranged in the pipe body. The filter chamber is detachably connected to the pipe body, and the pipe body is vertically arranged;

[0011] A support frame, which is arranged on the barrel body and exposes outside the protective shell.

[0012] For a reaction kettle for raw materials of concrete release agents with multi-stage filtration as described above, the stirring mechanism includes a motor, a transmission rod meshed with the output end of the motor, a coupling connected to the transmission rod, and a stirring rod connected to the coupling and extending into the barrel body.

[0013] For a reaction kettle for raw materials of concrete release agents with multi-stage filtration as described above, a support seat is arranged on the barrel cover. The support seat includes a cylinder body, a first support platform, a second support platform and a third support platform arranged in sequence along the axis direction of the cylinder body. The first support platform is used for supporting the motor, the second support platform is used for supporting the coupling, and the third support platform is used for connecting with the barrel cover.

[0014] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein the second support platform is in an inverted conical shape for the coupling to be inserted therein.

[0015] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein an observation tube is further provided on the barrel cover, an upper cover for covering the observation tube, and a locking mechanism for locking the upper cover on the observation tube.

[0016] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein the locking mechanism includes a bracket provided on the observation tube, an arm hinged to the bracket, and a locking member hinged to the observation tube. The arm is connected to the upper cover to drive it to flip, and the locking member flips to engage with the arm to limit the flipping of the upper cover.

[0017] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein a U-shaped opening is provided at the end of the arm. The locking member includes a locking rod hinged to the observation tube at one end and a clamping member provided at the other end of the locking rod. The clamping member is threadedly connected to the locking rod. After the locking rod flips into the U-shaped opening, the clamping member moves closer to the locking rod to abut against the arm.

[0018] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein the filter tube is located outside the barrel body, and a plurality of filter layers are provided in the filter chamber and arranged in sequence along the axial direction.

[0019] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein the filter tube is located inside the barrel body, and a plurality of filter layers are provided in the filter chamber and sleeved and stacked in sequence along the radial direction.

[0020] A reactor for raw materials of a multi-stage filtered concrete release agent as described above, wherein an opening is provided between the top of the protective shell and the barrel body, and the opening communicates with the gap between the protective shell and the barrel body.

[0021] The beneficial effects of the present application are as follows:

[0022] The present utility model provides a reactor for raw materials of a multi-stage filtered concrete release agent. The raw materials for generating the concrete release agent are injected through the raw material inlet on the barrel cover. According to requirements, other auxiliary materials are selectively added through the auxiliary material inlet. After being stirred by the stirring mechanism at the barrel body, the materials are discharged through the filter tube. The tube body is vertically arranged and passes through the filter chamber under its own pressure, achieving the effect of efficient filtration. Description of the Drawings

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model, the drawings required for the description of the embodiments will be briefly introduced below.

[0024] Figure 1 is a schematic structural view of the present utility model;

[0025] Figure 2 is a schematic structural view of the external filter tube;

[0026] Figure 3 is a schematic structural view of the internal filter tube. Specific embodiments

[0027] In order to make the technical problems, technical solutions and beneficial effects solved by the present utility model more clear and understandable, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.

[0028] A multi-stage filtering reaction kettle for raw materials of concrete release agent, comprising

[0029] a barrel body 1, which has an inner cavity 11, and an outlet 12 is provided at the bottom of the inner cavity 11;

[0030] a barrel cover 2, on which a raw material inlet 21 and an auxiliary material inlet 22 are provided;

[0031] a stirring mechanism 3, which is arranged on the barrel cover 2 and is used for stirring the raw materials in the inner cavity 11;

[0032] a protective shell 4, which is sleeved on the outer periphery of the barrel body 1 and is arranged at intervals with the barrel body 1;

[0033] a filter tube 5, which comprises a tube body 51 connected to the outlet 12, and a filter chamber 52 arranged in the tube body 51, the filter chamber 52 is detachably connected to the tube body 51, and the tube body 51 is vertically arranged;

[0034] a support frame 6, which is arranged on the barrel body 1 and exposes outside the protective shell 4.

[0035] The present utility model provides a multi-stage filtering reaction kettle for raw materials of concrete release agent. The raw materials for generating the concrete release agent are injected through the raw material inlet on the barrel cover. According to requirements, other auxiliary materials are selectively added through the auxiliary material inlet. After being stirred by the stirring mechanism at the barrel body, they are discharged through the filter tube. The tube body is vertically arranged and passes through the filter chamber under the action of its own pressure, achieving the effect of efficient filtration.

[0036] Further, as a preferred implementation manner of this solution rather than a limitation, the stirring mechanism 3 includes a motor 31, a transmission rod 32 meshed with the output end of the motor 31, a coupling 33 connected to the transmission rod 32, and a stirring rod 34 connected to the coupling 33 and extending into the barrel body 1. The coupling can effectively avoid the situation where the liquid is too viscous, resulting in large resistance and causing the motor to be overloaded.

[0037] Further, as a preferred implementation manner of this solution rather than a limitation, a support seat 7 is provided on the barrel cover 2. The support seat 7 includes a cylinder body 71, a first support platform 72, a second support platform 73, and a third support platform 74 arranged in sequence along the axis direction of the cylinder body 71. The first support platform 72 is used to support the motor 31, the second support platform 73 is used to support the coupling 33, and the third support platform 74 is used to connect with the barrel cover 2. It can maintain a stable rotation effect under the condition of long-distance transmission and force.

[0038] Further, as a preferred implementation manner of this solution rather than a limitation, the second support platform 73 is in an inverted cone shape for the coupling 33 to be embedded. The installation is quick and simple, and it has a good support effect.

[0039] Further, as a preferred implementation manner of this solution rather than a limitation, an observation tube 23 is also provided on the barrel cover 2, an upper cover 24 for covering the observation tube 23, and a locking mechanism 8 for locking the upper cover 24 on the observation tube 23.

[0040] Further, as a preferred implementation manner of this solution rather than a limitation, the locking mechanism 8 includes a bracket 81 provided on the observation tube 23, an arm 82 hinged to the bracket 81, and a locking member 83 hinged to the observation tube 23. The arm 82 is connected to the upper cover 24 to drive it to flip, and the locking member 83 flips to engage with the arm 82 to limit the flipping of the upper cover 24. The observation tube can be used not only for observing the reaction inside the tube, but also for a large amount of feeding or cleaning the barrel body.

[0041] Further, as a preferred implementation manner of this solution rather than a limitation, a U-shaped opening 821 is provided at the end of the arm 82. The locking member 83 includes a locking rod 831 with one end hinged to the observation tube 23, and a clamping member 832 provided at the other end of the locking rod 831. The clamping member 832 is threadedly connected to the locking rod 831. After the locking rod 831 flips into the U-shaped opening 821, the clamping member 832 moves closer to the direction of the locking rod 831 to abut against the arm 82. The locking method is simple and fast.

[0042] Further, as a preferred implementation manner rather than a limitation of this solution, the filter tube 5 is located outside the barrel body 1, and a plurality of filter layers 53 are provided in the filter chamber 52 and arranged in sequence along the axial direction. The filter tube is located directly below the barrel body, and enters the filter tube under the action of gravity for filtration. This is a coarse filtration method. According to requirements, the filter layer can be filter materials such as cotton and filter screens.

[0043] Further, as a preferred implementation manner rather than a limitation of this solution, the filter tube 5 is located inside the barrel body 1, and a plurality of filter layers 53 are provided in the filter chamber 52 and sleeved and stacked in sequence along the radial direction. Filtration can be carried out by means of osmosis, and this is a fine filtration method. The filter chamber can be disassembled and tilted, and the filter layer can be replaced.

[0044] Further, as a preferred implementation manner rather than a limitation of this solution, an opening 41 is provided between the top of the protective shell 4 and the barrel body 1, and the opening 41 communicates with the gap 42 between the protective shell 4 and the barrel body 1. The protective shell can achieve the effect of anti-collision, and heat dissipation can be carried out at the opening.

[0045] The above are only the preferred embodiments of the present application, and are not used to limit the scope of implementation of the present application. Other principles and basic structures that are the same as or similar to those of the present application are all within the protection scope of the present application.

Claims

1. A multi-stage filtration concrete release agent raw material reactor, characterized in that: include A barrel body (1) having an inner cavity (11), wherein an outlet (12) is provided at the bottom of the inner cavity (11); A barrel cover (2) is provided with a raw material inlet (21) and an auxiliary material inlet (22); a stirring mechanism (3), which is arranged on the barrel cover (2) and is used to stir the raw materials in the inner cavity (11); A protective shell (4) is sleeved on the outer periphery of the barrel body (1) and is arranged at intervals on the barrel body (1); A filter tube (5), comprising a tube body (51) connected to the outlet (12), and a filter chamber (52) arranged in the tube body (51), wherein the filter chamber (52) is detachably connected to the tube body (51), and the tube body (51) is arranged vertically; A support frame (6) is arranged on the barrel body (1) and exposed outside the protective shell (4).

2. The multi-stage filtration concrete release agent raw material reactor according to claim 1, characterized in that: The stirring mechanism (3) comprises a motor (31), a transmission rod (32) meshed with the output end of the motor (31), a coupling (33) connected to the transmission rod (32), and a stirring rod (34) connected to the coupling (33) and extending into the barrel (1).

3. The multi-stage filtration concrete release agent raw material reactor according to claim 2, characterized in that: A support base (7) is provided on the barrel cover (2), and the support base (7) comprises a barrel (71), a first support platform (72), a second support platform (73) and a third support platform (74) arranged in sequence along the axial direction of the barrel (71), the first support platform (72) is used to support the motor (31), the second support platform (73) is used to support the coupling (33), and the third support platform (74) is used to connect with the barrel cover (2).

4. The multi-stage filtration concrete release agent raw material reactor according to claim 3, characterized in that: The second supporting platform (73) is in an inverted cone shape for the coupling (33) to be embedded.

5. The multi-stage filtration concrete release agent raw material reactor according to claim 1, characterized in that: The barrel cover (2) is also provided with an observation tube (23), an upper cover (24) for covering the observation tube (23), and a locking mechanism (8) for locking the upper cover (24) on the observation tube (23).

6. The multi-stage filtration concrete release agent raw material reactor according to claim 5, characterized in that: The locking mechanism (8) comprises a bracket (81) arranged on the observation tube (23), a support arm (82) hinged to the bracket (81), and a locking member (83) hinged to the observation tube (23); the support arm (82) is connected to the upper cover (24) to drive the upper cover (24) to flip; the locking member (83) flips to engage with the support arm (82) to limit the flipping of the upper cover (24).

7. The multi-stage filtration concrete release agent raw material reactor according to claim 6, characterized in that: The end of the support arm (82) is provided with a U-shaped opening (821), and the locking member (83) comprises a locking rod (831) having one end hinged to the observation tube (23), and a retaining member (832) provided on the other end of the locking rod (831), wherein the retaining member (832) is threadedly connected to the locking rod (831), and after the locking rod (831) is turned over to enter the U-shaped opening (821), the retaining member (832) moves closer to the locking rod (831) to abut against the support arm (82).

8. The multi-stage filtration concrete release agent raw material reactor according to claim 1, characterized in that: The filter tube (5) is located outside the barrel body (1), and the filter chamber (52) is provided with a plurality of filter layers (53) arranged in sequence along the axial direction.

9. The multi-stage filtration concrete release agent raw material reactor according to claim 1, characterized in that: The filter tube (5) is located in the barrel body (1), and the filter chamber (52) is provided with a plurality of filter layers (53) stacked in sequence along the radial direction.

10. The multi-stage filtration concrete release agent raw material reactor according to claim 1, characterized in that: An opening (41) is provided between the top of the protective shell (4) and the barrel body (1), and the opening (41) is connected to a gap (42) between the protective shell (4) and the barrel body (1).