A stirring tank for producing cutting fluid

By installing a motor-driven rotating component and an aeration assembly in the mixing tank, the contact area and dispersion effect are increased, solving the problem of insufficient turbulence intensity and achieving efficient mixing and improved uniformity of the cutting fluid.

CN224293261UActive Publication Date: 2026-05-29DONGGUAN JINSUO LUBRICATING OIL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DONGGUAN JINSUO LUBRICATING OIL TECH CO LTD
Filing Date
2025-06-30
Publication Date
2026-05-29

Smart Images

  • Figure CN224293261U_ABST
    Figure CN224293261U_ABST
Patent Text Reader

Abstract

The utility model relates to cutting fluid production technical field, specifically disclose a kind of stirring tank for cutting fluid production, including reaction kettle, the motor is arranged in the end surface of reaction kettle, the power output shaft of motor penetrates the end surface of reaction kettle and extends to the inside of reaction kettle, the power output shaft of motor is cooperatively installed with rotating part, adjusting assembly is uniformly arranged on the rotating part, air inlet assembly is cooperatively installed with the rotating part on the rotating part, and gas adding assembly is cooperatively installed between reaction kettle and rotating part;The utility model is equipped with motor, rotating part, gas adding assembly and adjusting assembly in a kind of stirring tank for cutting fluid production, in the process of device use, by the cooperation between above-mentioned structure, it is realized that the contact area between adjusting assembly and mixed solution is changed in the process of stirring, and greater contact area can accelerate the dispersion of solid particles or liquid component, promote dissolution or emulsification process, reach the effect of improving mixing uniformity.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model belongs to the field of cutting fluid production technology, specifically relating to a stirring tank for cutting fluid production. Background Technology

[0002] As an indispensable lubricating and cooling medium in metal processing, the performance and stability of cutting fluid directly affect processing efficiency and workpiece quality. In traditional cutting fluid production processes, the mixing tank is the core mixing equipment, which needs to uniformly disperse various components such as base oil, extreme pressure additives, rust inhibitors, and emulsifiers.

[0003] Existing stirred tanks typically have a stirring paddle installed in the reactor and driven by a motor to rotate it, thereby mixing and stirring various raw materials;

[0004] However, the turbulence intensity generated by conventional agitators is limited, making it difficult to quickly disperse high-density additives (such as extreme pressure agents and rust inhibitors), which can easily lead to local concentration deviations, affecting the lubricity, rust prevention performance and stability of the cutting fluid, thus causing insufficient mixing uniformity.

[0005] Therefore, this solution proposes a stirring vessel for cutting fluid production to solve the above problems. Utility Model Content

[0006] The purpose of this invention is to provide a mixing vessel for cutting fluid production, which solves the problem that conventional mixing paddles in the prior art have limited turbulence intensity, making it difficult to quickly disperse high-density additives, easily leading to local concentration deviations, affecting the lubricity, rust prevention performance and stability of the cutting fluid, and thus causing insufficient mixing uniformity.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a stirring tank for producing cutting fluid, comprising a reaction vessel, a motor being provided on the end face of the reaction vessel, the power output shaft of the motor passing through the end face of the reaction vessel and extending into the interior of the reaction vessel, a rotating component being fitted on the power output shaft of the motor, adjusting components being evenly arranged on the rotating component, an air inlet component being fitted on the rotating component, and an air supply component being fitted between the reaction vessel and the rotating component;

[0008] The rotating component includes a connecting plate and a positioning shaft. Connecting rods are symmetrically installed on the upper outer wall of the positioning shaft. The ends of the two connecting rods away from the positioning shaft are respectively connected to the inner wall of the connecting plate. A connecting pipe is rotatably installed on the lower outer wall of the positioning shaft.

[0009] A connecting shaft is rotatably mounted on the positioning shaft, a connecting plate is mounted on the end face of the connecting shaft, and fixing blocks are symmetrically mounted on the lower side wall of the connecting shaft. The two fixing blocks are respectively connected to the inner wall of the connecting plate.

[0010] The adjustment component includes a connecting frame. Multiple connecting frames are evenly distributed on the outer wall of the connecting pipe. The connecting frames are in communication with the interior of the connecting pipe. Multiple through slots are evenly opened on the top surface of the connecting frame. A lifting plate is slidably arranged in the through slot. A fixing plate is arranged on the bottom surface of the lifting plate. A rubber sealing sleeve is arranged between the fixing plate and the top surface of the inner cavity of the connecting frame.

[0011] The gas filling assembly includes a gas pump. The gas pump is provided on the end face of the reactor. A gas filling pipe is installed at the outlet of the gas pump. The gas filling pipe passes through the reactor and the positioning shaft in sequence on the side away from the gas pump and communicates with the interior of the connecting pipe.

[0012] Preferably, the bottom surface of the inner cavity of the connecting frame is uniformly provided with multiple sets of support columns, and each set of support columns is located below a fixed plate.

[0013] Preferably, the end of the power output shaft of the motor is connected to the connecting plate.

[0014] Preferably, the air intake assembly includes a guide tube and a second spring. The guide tubes are symmetrically arranged on the lower outer wall of the connecting tube. The guide tubes are interconnected with the inner cavity of the connecting tube. The guide tubes are L-shaped, with the opening of the guide tube away from the connecting tube facing downward. An annular frame is installed on the inner wall of the guide tube. A spring is installed on the bottom surface of the annular frame. A sealing bead is installed at the bottom end of the spring. The sealing bead is engaged with the guide tube.

[0015] Preferably, the guide tube is symmetrically fitted with limiting plates at the end away from the connecting tube, the limiting plates are arc-shaped, and the sealing bead is slidably disposed between the two limiting plates.

[0016] Preferably, a second spring is installed on the bottom surface of the inner cavity of the connecting tube, a sealing post is installed on the top surface of the second spring, and an annular frame is installed below the inner sidewall of the connecting tube, with the annular frame and the sealing post in contact with each other.

[0017] Preferably, the second annular frame is located above the guide tube.

[0018] Compared with the prior art, the beneficial effects of this utility model are:

[0019] 1. This utility model, by setting a motor, a rotating component, an aeration component, and an adjustment component in a stirring tank for cutting fluid production, allows for easy adjustment of the contact area between the adjustment component and the mixture during the stirring process through the cooperation of the above structures. A larger contact area can accelerate the dispersion of solid particles or liquid components, promote the dissolution or emulsification process, and achieve the effect of improving the uniformity of mixing.

[0020] 2. This utility model, by setting a rotating component, an air-injection component, and an air-inlet component in a mixing tank for cutting fluid production, allows air to be injected into the mixture during the mixing process through the cooperation of the above structures. The air enters the tank and disturbs the liquid during its ascent, breaking the laminar flow state, promoting the rapid dispersion of high-density additives such as sulfonates and oiliness agents, reducing local concentration differences, and further improving the mixing uniformity. Attached Figure Description

[0021] Figure 1 This is a perspective view of the present utility model;

[0022] Figure 2 This is a cross-sectional view of the present invention;

[0023] Figure 3 This is a schematic diagram of the rotating component structure in this utility model;

[0024] Figure 4 This is a cross-sectional view of the rotating component in this utility model;

[0025] Figure 5 This is a cross-sectional view of the connecting pipe in this utility model;

[0026] Figure 6 This is a cross-sectional view of the adjustment component in this utility model;

[0027] Figure 7 This is an exploded view of the adjustment component in this utility model;

[0028] Figure 8 for Figure 4 Enlarged structural diagram at point A in the middle.

[0029] In the diagram: 1. Reactor; 2. Controller; 3. Gas supply assembly; 301. Gas pump; 302. Gas supply pipe; 4. Motor; 5. Feed pipe; 6. Rotating component; 601. Connecting plate; 602. Connecting pipe; 603. Connecting rod; 604. Positioning shaft; 605. Fixing block; 606. Connecting shaft; 7. Adjusting assembly; 701. Connecting frame; 702. Lifting plate; 703. Rubber sealing sleeve; 704. Fixing plate; 705. Support column; 706. Through groove; 8. Gas inlet assembly; 801. Guide pipe; 802. Annular frame one; 803. Spring one; 804. Sealing bead; 805. Limiting plate; 806. Annular frame two; 807. Spring two; 808. Sealing column; 9. Discharge pipe; 10. Solenoid valve. Detailed Implementation

[0030] The following will be combined with the appendix Figure 1 To be continued Figure 5The technical solutions in the embodiments of this utility model are clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this utility model.

[0031] It should be noted that, in the embodiments of this utility model, the directions shown in the accompanying drawings shall prevail, such as front and back. Figure 1 For the sake of accuracy, the specific details should be as follows: Figure 1 The left side is the front. Figure 1 The right side is the rear; at the same time, as Figure 2 As shown, the horizontal direction is roughly defined as left and right, and the vertical direction is defined as up and down. If a specific orientation changes, the directional indication will also change accordingly.

[0032] Reference Figures 1-8 As shown, this utility model provides a stirring tank for cutting fluid production, including a reaction vessel 1. A motor 4 is provided on the end face of the reaction vessel 1. The power output shaft of the motor 4 passes through the end face of the reaction vessel 1 and extends into the interior of the reaction vessel 1. A rotating component 6 is installed on the power output shaft of the motor 4. Adjustment components 7 are evenly arranged on the rotating component 6. An air inlet component 8 is installed on the rotating component 6. An air supply component 3 is installed between the reaction vessel 1 and the rotating component 6.

[0033] The reactor 1 is provided with a feed pipe 5 at its end face. The feed pipe 5 is used to inject raw materials into the reactor 1. The reactor 1 is provided with a controller 2 on its outer wall. The controller 2 is connected to the electrical equipment in the device through wires and controls the operation of the electrical equipment.

[0034] The bottom surface of the further reaction vessel 1 is provided with a discharge pipe 9, which is used to discharge the mixed cutting fluid. A solenoid valve 10 is provided on the discharge pipe 9, which is used to control the closing and opening of the discharge pipe 9.

[0035] The end of the power output shaft of motor 4 is connected to the connecting plate 601;

[0036] The rotating component 6 includes a connecting plate 601 and a positioning shaft 604. Connecting rods 603 are symmetrically installed on the upper part of the outer wall of the positioning shaft 604. The ends of the two connecting rods 603 away from the positioning shaft 604 are respectively connected to the inner wall of the connecting plate 601. A connecting pipe 602 is rotatably installed on the lower part of the outer wall of the positioning shaft 604.

[0037] A connecting shaft 606 is rotatably mounted on the positioning shaft 604. A connecting plate 601 is mounted on the end face of the connecting shaft 606. Fixing blocks 605 are symmetrically mounted on the lower side wall of the connecting shaft 606. The two fixing blocks 605 are respectively connected to the inner wall of the connecting plate 601.

[0038] The adjusting component 7 includes a connecting frame 701. Multiple connecting frames 701 are evenly distributed on the outer wall of the connecting pipe 602. The connecting frames 701 are interconnected with the interior of the connecting pipe 602. Multiple through slots 706 are evenly opened on the top surface of the connecting frame 701. A lifting plate 702 is slidably arranged in the through slot 706. A fixing plate 704 is arranged on the bottom surface of the lifting plate 702. A rubber sealing sleeve 703 is arranged between the fixing plate 704 and the top surface of the inner cavity of the connecting frame 701. The rubber sealing sleeve 703 improves the sealing performance of the connecting frame 701.

[0039] The gas filling assembly 3 includes a gas filling pump 301. The gas filling pump 301 is provided on the end face of the reactor 1. A gas filling pipe 302 is installed at the gas outlet of the gas filling pump 301. The gas filling pipe 302 passes through the reactor 1 and the positioning shaft 604 in sequence on the side away from the gas filling pump 301 and communicates with the inside of the connecting pipe 602.

[0040] Multiple sets of support columns 705 are evenly arranged on the bottom surface of the inner cavity of the connecting frame 701, and each set of support columns 705 is located below a fixing plate 704.

[0041] In this example, the design of the support column 705 avoids contact between the fixed plate 704 and the bottom surface of the inner cavity of the connecting frame 701, so that when the pressure inside the connecting frame 701 increases, the lifting plate 702 and the fixed plate 704 can rise quickly.

[0042] In this embodiment, while stirring, the air pump 301 is started and the air pipe 302 is used to inflate the inside of the connecting pipe 602. As the gas is continuously injected into the connecting pipe 602, the pressure in the connecting pipe 602 and the connecting frame 701 will continue to increase. Subsequently, the fixed plate 704 and the lifting plate 702 will be lifted upward, thereby increasing the contact area between the regulating component 7 and the mixture. A larger contact area can accelerate the dispersion of solid particles or liquid components and promote the dissolution or emulsification process.

[0043] In a further embodiment, refer to Figures 1-8The intake assembly 8 includes a guide pipe 801 and a spring 807. The guide pipe 801 is symmetrically arranged on the lower outer wall of the connecting pipe 602, and is interconnected with the inner cavity of the connecting pipe 602. The guide pipe 801 is L-shaped, with its opening away from the connecting pipe 602 facing downwards. An annular frame 802 is installed on the inner wall of the guide pipe 801, and a spring 803 is installed on the bottom surface of the annular frame 802. A sealing bead 804 is installed at the bottom end of the spring 803, and the sealing bead 804 is connected to the guide pipe 801. The components are interlocked; a limiting plate 805 is symmetrically installed at the end of the guide tube 801 away from the connecting tube 602. The limiting plate 805 is arc-shaped, and the sealing bead 804 is slidably disposed between the two limiting plates 805; a spring 807 is installed on the bottom surface of the inner cavity of the connecting tube 602, and a sealing post 808 is installed on the top surface of the spring 807. An annular frame 806 is installed below the inner side wall of the connecting tube 602, and the annular frame 806 is in contact with the sealing post 808; the annular frame 806 is located above the guide tube 801.

[0044] In this embodiment, as the gas is gradually injected, the gas will press down on the annular frame 806, making the guide pipe 801 and the connecting pipe 602 interconnected. At this time, the high-pressure gas in the connecting pipe 602 will pass through the guide pipe 801 and squeeze the sealing bead 804, so that the sealing bead 804 overcomes the force applied by the spring 803 and enters the reactor 1. The air enters the reactor in the form of bubbles, disturbing the liquid during the rise, breaking the laminar flow state, promoting the rapid dispersion of high-density additives such as sulfonates and oily agents, and reducing local concentration differences.

[0045] Among them, the sealing bead 804, under the action of spring 803, will keep the guide tube 801 closed without being subjected to internal pressure. At the same time, the rising force of the bubbles entering the reaction vessel 1 can assist the stirring paddle to do work, reducing the dependence on high-power stirring equipment, which is especially suitable for high viscosity cutting fluid systems.

[0046] Furthermore, the force required to push the lifting plate 702 and the fixed plate 704 to the highest position is less than the force required to compress the spring 807, thus ensuring that the lifting plate 702 and the fixed plate 704 can be pushed to the top first during actual use.

[0047] The working principle of this utility model is as follows: During the use of the device, base oil, extreme pressure additives, rust inhibitors, emulsifiers and other components are first injected into the inner cavity of the reactor 1 through the feed pipe 5. Then, the motor 4 is started to drive the connecting plate 601, connecting shaft 606, fixing block 605, connecting pipe 602 and connecting frame 701 to rotate, thereby mixing and stirring the raw materials.

[0048] While stirring, the air pump 301 is started and air is injected into the inside of the connecting pipe 602 through the air injection pipe 302. As the gas is continuously injected into the connecting pipe 602, the pressure in the connecting pipe 602 and the connecting frame 701 will continue to increase. Subsequently, the fixed plate 704 and the lifting plate 702 will be lifted upward, thereby increasing the contact area between the regulating component 7 and the mixture.

[0049] As gas continues to be injected, the fixed plate 704 will rise to its highest point and cannot rise any further;

[0050] As the gas is gradually injected, it will press down on the annular frame 806, making the guide pipe 801 and the connecting pipe 602 interconnected. At this time, the high-pressure gas in the connecting pipe 602 will pass through the guide pipe 801 and squeeze the sealing bead 804, so that the sealing bead 804 overcomes the force applied by the spring 803 and enters the reactor 1. Air enters the reactor and disturbs the liquid during the rising process, breaking the laminar flow state, promoting the rapid dispersion of high-density additives such as sulfonates and oiliness agents, and reducing local concentration differences.

[0051] Based on the disclosure and teachings of the above specification, those skilled in the art can make changes and modifications to the above embodiments. Therefore, this utility model is not limited to the specific embodiments disclosed and described above, and some modifications and changes to this utility model should also fall within the protection scope of the claims of this utility model. Furthermore, although some specific terms are used in this specification, these terms are only for convenience of explanation and do not constitute any limitation on this utility model.

Claims

1. A stirring vessel for producing cutting fluid, comprising a reaction vessel (1), characterized in that, A motor (4) is provided on the end face of the reactor (1). The power output shaft of the motor (4) passes through the end face of the reactor (1) and extends into the interior of the reactor (1). A rotating part (6) is installed on the power output shaft of the motor (4). Adjustment components (7) are evenly arranged on the rotating part (6). An air inlet component (8) is installed on the rotating part (6). An air supply component (3) is installed between the reactor (1) and the rotating part (6). The rotating component (6) includes a connecting plate (601) and a positioning shaft (604). Connecting rods (603) are symmetrically installed on the upper outer wall of the positioning shaft (604). The ends of the two connecting rods (603) away from the positioning shaft (604) are respectively connected to the inner wall of the connecting plate (601). A connecting pipe (602) is rotatably installed on the lower outer wall of the positioning shaft (604). A connecting shaft (606) is rotatably mounted on the positioning shaft (604). A connecting plate (601) is mounted on the end face of the connecting shaft (606). Fixing blocks (605) are symmetrically mounted on the lower side wall of the connecting shaft (606). The two fixing blocks (605) are respectively connected to the inner wall of the connecting plate (601). The adjustment component (7) includes a connecting frame (701). Multiple connecting frames (701) are evenly distributed on the outer wall of the connecting pipe (602). The connecting frames (701) are interconnected with the interior of the connecting pipe (602). Multiple through slots (706) are evenly opened on the top surface of the connecting frame (701). A lifting plate (702) is slidably arranged in the through slot (706). A fixing plate (704) is arranged on the bottom surface of the lifting plate (702). A rubber sealing sleeve (703) is arranged between the fixing plate (704) and the top surface of the inner cavity of the connecting frame (701). The gas filling assembly (3) includes a gas filling pump (301). The gas filling pump (301) is provided on the end face of the reactor (1). A gas filling pipe (302) is installed at the outlet of the gas filling pump (301). The gas filling pipe (302) passes through the reactor (1) and the positioning shaft (604) in sequence on the side away from the gas filling pump (301) and communicates with the interior of the connecting pipe (602).

2. The stirring tank for producing cutting fluid according to claim 1, characterized in that: The bottom surface of the inner cavity of the connecting frame (701) is uniformly provided with multiple sets of support columns (705), and each set of support columns (705) is located below a fixing plate (704).

3. The stirring tank for producing cutting fluid according to claim 1, characterized in that: The end of the power output shaft of the motor (4) is connected to the connecting plate (601).

4. The stirring tank for producing cutting fluid according to claim 1, characterized in that: The air intake assembly (8) includes a guide pipe (801) and a second spring (807). The guide pipe (801) is symmetrically arranged on the lower outer wall of the connecting pipe (602). The guide pipe (801) is connected to the inner cavity of the connecting pipe (602). The guide pipe (801) is L-shaped. The opening of the guide pipe (801) away from the connecting pipe (602) faces downward. An annular frame (802) is installed on the inner wall of the guide pipe (801). A first spring (803) is installed on the bottom surface of the annular frame (802). A sealing bead (804) is installed at the bottom end of the first spring (803). The sealing bead (804) is engaged with the guide pipe (801).

5. The stirring tank for producing cutting fluid according to claim 4, characterized in that: A limiting plate (805) is symmetrically installed at one end of the guide pipe (801) away from the connecting pipe (602). The limiting plate (805) is arc-shaped, and the sealing bead (804) is slidably disposed between the two limiting plates (805).

6. The stirring tank for producing cutting fluid according to claim 4, characterized in that: A second spring (807) is installed on the bottom surface of the inner cavity of the connecting pipe (602), a sealing post (808) is installed on the top surface of the second spring (807), and an annular frame (806) is installed below the inner side wall of the connecting pipe (602). The annular frame (806) and the sealing post (808) are in contact with each other.

7. The stirring tank for producing cutting fluid according to claim 6, characterized in that: The annular frame 2 (806) is located above the guide tube (801).