Viscosity detection device for coating prepared from organic bentonite

By designing the detection stability mechanism and the detection positioning mechanism in the viscosity detection device, the problem of position shift and pouring of the sample cup during the detection process is solved, and the stability and positioning accuracy of the coating detection are significantly improved.

CN222866471UActive Publication Date: 2025-05-13CHANGXING XING SHENG NEW MATERIAL
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Patent Information

Application Number
CN202421402374.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-19
Publication Date
2025-05-13
Estimated Expiration
2034-06-19

AI Technical Summary

Technical Problem

When the existing viscosity detection device is working, the stability seat is placed directly on the tabletop or the detection table, and the position is relatively flexible and the stability force is limited, resulting in position offset, pouring, or collision with the rotor during the inspection process, affecting the stability of the coating detection.

Method used

A viscosity detection device including a detection stabilization mechanism and a detection positioning mechanism is designed. The detection and stabilization mechanism provides stable support and positioning through components such as stability seats, stabilizing columns, anti-slip blocks and screws; the detection and positioning mechanism ensures the stable positioning of the sample cup through components such as positioning seats, connection ports, connection seats and magnetic rings.

Benefits of technology

By setting up a detection and stabilization mechanism and a detection and positioning mechanism, the position deviation and pouring of the sample cup during the detection process are effectively avoided, and the stability and positioning accuracy of the coating detection are improved.

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Abstract

The utility model provides a viscosity detection device for a coating prepared from organic bentonite, and belongs to the technical field of viscosity detection. The viscosity detection device for the coating prepared from the organic bentonite comprises a base and a detection stabilizing mechanism, a main control box is installed at the top of the base, a rotor is installed at the bottom of the main control box, a stabilizing seat is movably connected to the inner side of the base, a stabilizing cavity is formed in the stabilizing seat, and stabilizing columns are movably connected to the two sides in the stabilizing cavity; the outer side of the stabilizing column is fixedly connected with an anti-skid block in contact with the base, the spiral groove is formed in the inner side of the stabilizing column, and by arranging the detection stabilizing mechanism, a stable supporting medium can be provided for an external sample cup filled with a coating when the main control box is matched with the rotor to work; and the situation that coating detection is affected due to position deviation of the sample cup when the rotor detects the coating in the sample cup is avoided, so that the stability of coating detection is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of viscosity detection, in particular to a viscosity detection device for preparing coatings using organic bentonite. Background Art

[0002] Organic bentonite-prepared coatings are a special type of coating, in which bentonite is a natural or synthetic clay mineral prepared by modification with organic matter. This type of coating has high adhesion and durability when applied to the surface, and can provide good anti-corrosion, waterproof and weather resistance. After preparation, the organic bentonite-prepared coating will be tested with the help of a viscosity testing device to evaluate the viscosity characteristics of the coating to ensure that it meets the requirements of production or construction. When the viscosity testing device is working, an electric motor is used to drive the rotation of the rotor, and a sensor is used to measure the driving force and rotation speed. These data can be used to calculate the viscosity of the coating sample. The device is usually equipped with a display screen or computer interface for displaying and recording the measurement results. Since the stability of the sample cup during the coating testing process directly affects the test effect, it is necessary to perform a stable test on the sample cup.

[0003] In the related art, when the viscosity detection device is working, a stabilizing seat is generally placed to support and stabilize the sample cup, thereby ensuring the stability of the paint inside the sample cup during the detection process, so that the sample cup can be used.

[0004] However, during the operation of the viscosity detection device, since the stabilizing seat is directly placed on the desktop or the top of the detection table, the position is relatively flexible and the stabilizing force is relatively limited. When the rotor rotates at high speed to detect the paint inside the sample cup, the sample cup is prone to position displacement, or even tipping over or colliding with the rotor, affecting the stability of the paint detection. Utility Model Content

[0005] In order to make up for the above deficiencies, the utility model provides a viscosity detection device for preparing coatings with organic bentonite, which overcomes the above technical problems or at least partially solves the above problems.

[0006] The utility model is achieved in this way:

[0007] The utility model provides a viscosity detection device for preparing coatings with organic bentonite, comprising a base, a main control box is installed on the top of the base, and a rotor is installed on the bottom of the main control box;

[0008] A detection stabilization mechanism, the detection stabilization mechanism comprising:

[0009] A stabilizing seat; the stabilizing seat is movably connected to the inner side of the base, and a stabilizing cavity is provided inside the stabilizing seat;

[0010] A stabilizing column; the stabilizing column is movably connected to two sides of the stabilizing cavity, and an anti-sliding block in contact with the base is fixedly connected to the outer side of the stabilizing column;

[0011] Screw groove; the screw groove is opened on the inner side of the stabilizing column, and the inner thread of the screw groove is connected with forward and reverse screw rods;

[0012] Detection and positioning mechanism; the detection and positioning mechanism is movably connected to both sides of the top of the stable seat.

[0013] In a preferred embodiment, the detection and positioning mechanism includes a positioning seat, a connecting port and a connecting seat, the positioning seat is movably connected to both sides of the top of the stabilizing seat, the connecting port is opened on the front and rear sides of both sides of the top of the stabilizing seat, the connecting seat is movably connected inside the connecting port, and the top of the connecting seat is fixedly connected to the bottom of the positioning seat.

[0014] In a preferred solution, a lifting cavity is provided at the bottom of the positioning seat, and racks are movably connected to both sides of the lifting cavity.

[0015] In a preferred solution, slots are provided on both sides of the top of the stabilizing seat, the slots are located at the bottom of the positioning seat, and the bottom of the inserting bracket is located inside the slots.

[0016] In a preferred solution, a lifting frame is movably connected inside the lifting cavity, the insertion frame is located inside the lifting frame, a force application rod is fixedly connected to the top of the lifting frame, and the top of the force application rod passes through the top of the positioning seat.

[0017] In a preferred solution, a magnetic ring is embedded and connected to the top of the positioning seat, the magnetic ring is located on the outside of the force applying rod, and the inner side of the magnetic ring is magnetically connected to the surface of the force applying rod.

[0018] In a preferred solution, limiting grooves are provided on both sides of the interior of the stabilizing cavity, and limiting blocks located on the outside of the stabilizing column are movably connected to both sides of the limiting grooves, and the inner side of the limiting blocks is fixedly connected to the outer side of the stabilizing column.

[0019] In a preferred solution, a rotating opening is provided inside the stabilizing cavity, a rotating disk is movably connected inside the rotating opening, and the inner side of the rotating disk is fixedly connected to the surface of the forward and reverse screws.

[0020] The utility model provides a viscosity detection device for preparing coatings with organic bentonite, and its beneficial effects include:

[0021] 1. By setting up a detection stabilization mechanism, when the main control box cooperates with the rotor to work, a stable supporting medium can be provided for the sample cup filled with paint outside, so as to avoid the situation where the sample cup is offset when the rotor detects the paint inside the sample cup, which affects the paint detection, thereby improving the stability of the paint detection.

[0022] 2. By setting up a detection and positioning mechanism, when the stable seat cooperates with the rotor to work, a medium for stably positioning the external sample cup can be provided to the user, thereby avoiding the situation where it is difficult to effectively stably position the external sample cup when the stable seat is used, thereby improving the stable positioning effect of the stable seat.

[0023] 3. By setting up the lifting cavity and the insertion frame, when the positioning seat is used in conjunction with the stabilizing seat, a medium for positioning the positioning seat and the stabilizing seat can be provided to the user, thereby avoiding the situation where the positioning seat is difficult to position when used, thereby improving the convenience of positioning the positioning seat. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the technical solution of the implementation mode of the utility model, the drawings required for use in the implementation mode will be briefly introduced below. It should be understood that the following drawings only show certain embodiments of the utility model and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying creative work.

[0025] Figure 1 It is an overall stereogram provided by the embodiment of the utility model;

[0026] Figure 2 A schematic diagram of a three-dimensional cross-sectional structure of a stabilizing seat provided in an embodiment of the utility model;

[0027] Figure 3 A schematic diagram of a three-dimensional cross-sectional structure of a stabilizing column provided in an embodiment of the utility model;

[0028] Figure 4 A schematic diagram of a three-dimensional cross-sectional structure of a positioning seat provided in an embodiment of the utility model;

[0029] In the figure: 1. base; 2. main control box; 3. rotor; 4. stabilizing seat; 5. stabilizing cavity; 6. stabilizing column; 7. anti-sliding block; 8. screw groove; 9. forward and reverse screws; 10. positioning seat; 11. connecting port; 12. connecting seat; 13. lifting cavity; 14. rack; 15. slot; 16. lifting rack; 17. force rod; 18. magnetic ring; 19. limit groove; 20. limit block; 21. rotating port; 22. turntable. DETAILED DESCRIPTION

[0030] In order to make the purpose, technical solution and advantages of the implementation of the utility model clearer, the technical solution in the implementation of the utility model will be clearly and completely described below in conjunction with the drawings in the implementation of the utility model. Obviously, the described implementation is a part of the implementation of the utility model, not all of the implementations. Based on the implementation of the utility model, all other implementations obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0031] Reference Figure 1-Figure 4 The utility model provides a technical solution: a viscosity detection device for preparing paint with organic bentonite, comprising a base 1 and a detection stabilization mechanism, a main control box 2 is installed on the top of the base 1, and a rotor 3 is installed on the bottom of the main control box 2. When the main control box 2 cooperates with the rotor 3 to work, a stable supporting medium can be provided for a sample cup filled with paint outside, so as to avoid the situation that the sample cup is offset when the rotor 3 detects the paint inside the sample cup, resulting in the coating detection being affected, thereby improving the stability of the coating detection.

[0032] Reference Figure 1-Figure 4 In a preferred embodiment, the detection and stabilization mechanism includes a stabilization seat 4, which is movably connected to the inner side of the base 1, and a stabilization cavity 5 is provided inside the stabilization seat 4. A stabilization column 6 is movably connected to both sides of the inside of the stabilization cavity 5. The outer side of the stabilization column 6 is fixedly connected with an anti-sliding block 7 in contact with the base 1, and a screw groove 8 is provided on the inner side of the stabilization column 6. The inner thread of the screw groove 8 is connected with a forward and reverse screw rod 9. The detection and positioning mechanism is movably connected to both sides of the top of the stabilization seat 4. The stabilization seat 4 is placed on the inner side of the base 1 by hand, and the stabilization seat 4 is made perpendicular to the bottom of the rotor 3. The forward and reverse screw rods 9 are rotated to apply a thrust to the stabilization column 6 to move outward through the screw groove 8, so that the stabilization column 6 drives the anti-sliding block 7 to contact and press against the inner side of the base 1, thereby tightening the stabilization seat 4 and the bottom. The seats 1 are pressed and stabilized to provide a stable supporting medium for the subsequent placement of the sample cup, ensuring the stability of the sample cup during paint detection. The detection and positioning mechanism includes a positioning seat 10, a connecting port 11 and a connecting seat 12. The positioning seat 10 is movably connected to both sides of the top of the stabilizing seat 4, and the connecting port 11 is opened on the front and rear sides of both sides of the top of the stabilizing seat 4. The connecting seat 12 is movably connected to the inside of the connecting port 11, and the top of the connecting seat 12 is fixedly connected to the bottom of the positioning seat 10. When the stabilizing seat 4 cooperates with the rotor 3 to work, a medium for stably positioning the external sample cup can be provided to the user, thereby avoiding the situation where it is difficult to effectively stably position the external sample cup when the stabilizing seat 4 is used, thereby improving the stable positioning effect of the stabilizing seat 4.

[0033] Reference Figure 2-Figure 4In a preferred embodiment, a lifting chamber 13 is provided at the bottom of the positioning seat 10, and both sides of the lifting chamber 13 are movably connected with a rack 14, so that when the positioning seat 10 is used in conjunction with the stabilizing seat 4, a medium for positioning between the positioning seat 10 and the stabilizing seat 4 can be provided to the user, thereby avoiding the situation where the positioning seat 10 is difficult to position when in use, thereby improving the positioning convenience of the positioning seat 10, and slots 15 are provided on both sides of the top of the stabilizing seat 4, and the slots 15 are located at the bottom of the positioning seat 10, and the bottom of the rack 14 is located inside the slots 15, so that when the rack 14 is used in conjunction with the positioning seat 10, the slots 15 on both sides of the top of the stabilizing seat 4 are staggered, providing multiple plug-in positioning spaces for the rack 14, thereby avoiding the situation where it is difficult to effectively position the positioning seat 10 when the rack 14 is in use, thereby improving the plug-in positioning effect of the rack 14.

[0034] Reference Figure 4 In a preferred embodiment, a lifting frame 16 is movably connected inside the lifting chamber 13, the inserting frame 14 is located inside the lifting frame 16, and a force rod 17 is fixedly connected to the top of the lifting frame 16. The top of the force rod 17 passes through the top of the positioning seat 10, and when the inserting frame 14 is used in conjunction with the slot 15, a medium for moving the inserting frame 14 can be provided to the user, thereby avoiding the situation where the inserting frame 14 is difficult to effectively enter or escape from the slot 15 when in use, thereby improving the flexibility of use of the inserting frame 14, and a magnetic ring 18 is embedded and connected to the top of the positioning seat 10, and the magnetic ring 18 is located on the outside of the force rod 17, and the inner side of the magnetic ring 18 is magnetically connected to the surface of the force rod 17, so that when the force rod 17 is used in conjunction with the lifting frame 16, the force rod 17 can be used to perform magnetic attraction and positioning work on the moved lifting frame 16, thereby avoiding the situation where the lifting frame 16 is difficult to position when in use, thereby improving the convenience of positioning the lifting frame 16.

[0035] Reference Figure 3 In a preferred embodiment, by providing limiting grooves 19 on both sides inside the stabilizing chamber 5, both sides inside the limiting grooves 19 are movably connected with limiting blocks 20 located on the outside of the stabilizing column 6, and the inner side of the limiting block 20 is fixedly connected to the outer side of the stabilizing column 6. When the stabilizing chamber 5 is used in conjunction with the stabilizing column 6, the stabilizing column 6 can be movably limited between the stabilizing chamber 5 to avoid the stabilizing column 6 from being separated from the stabilizing chamber 5 during operation, thereby improving the working stability of the stabilizing column 6. A turning port 21 is provided inside the stabilizing chamber 5, and a turntable 22 is movably connected inside the turning port 21. The inner side of the turntable 22 is fixedly connected to the surface of the forward and reverse screws 9. When the forward and reverse screws 9 work in conjunction with the stabilizing column 6, a medium for rotating the forward and reverse screws 9 can be provided to the user, thereby avoiding the forward and reverse screws 9 being difficult to rotate during use, thereby improving the rotation convenience of the forward and reverse screws 9.

[0036] Specifically, the working process or working principle of the viscosity detection device for preparing coatings with organic bentonite is as follows: when in use, the handheld stabilizing seat 4 is placed on the inner side of the base 1, and the stabilizing seat 4 is made perpendicular to the bottom of the rotor 3, and then the turntable 22 is used to rotate the forward and reverse screws 9 to apply a thrust to the stabilizing column 6 to move outward through the screw groove 8. At this time, the limit block 20 follows the stabilizing column 6 to move inside the limit groove 19 to perform active limiting work between the stabilizing column 6 and the stabilizing cavity 5, so that the stabilizing column 6 drives the anti-sliding block 7 to contact and press against the inner side of the base 1, and performs a press and stabilize work between the stabilizing seat 4 and the base 1, providing a stable supporting medium for the subsequent placement of the sample cup, and then, the handheld force applying rod 17 drives the inserting frame 14 to move upward through the lifting frame 16 to disengage from the slot 15 and enter the lifting cavity 13. At this time, the magnetic ring 18 moves the moving After that, the lifting frame 16 performs magnetic positioning, and the positioning seat 10 is held and moved to both sides. At this time, the connecting seat 12 follows the positioning seat 10 to move inside the connecting port 11, and the sliding connection work is performed between the positioning seat 10 and the stable seat 4. Then, the sample cup containing the paint to be tested is held and placed on the top of the stable seat 4, and the sample cup is located on the inner side of the positioning seat 10. Then, the positioning seat 10 is held and moved inward to contact and press the sample cup tightly, and the sample cup and the stable seat 4 are stabilized. Positioning operation is performed, and then the force rod 17 is held and driven to move the lifting frame 16 downward, so that the insertion frame 14 moves downward into the slot 15, and the positioning seat 10 and the stable seat 4 are plugged and positioned to ensure the stabilizing effect of the stable seat 4 and the positioning seat 10 on the sample cup. Subsequently, the rotor 3 can be started through the main control box 2 to perform a detection operation on the paint inside the sample cup.

[0037] It should be noted that the main control box 2 and the rotor 3 are devices or equipment existing in the prior art, or are devices or equipment that can be realized in the prior art. Their power supply, specific composition and principles are clear to those skilled in the art, so they will not be described in detail.

Claims

1. A viscosity detection device for preparing coatings with organic bentonite, comprising a base (1), a main control box (2) installed on the top of the base (1), a rotor (3) installed on the bottom of the main control box (2), characterized in that ; A detection stabilization mechanism, the detection stabilization mechanism comprising: A stabilizing seat (4); the stabilizing seat (4) is movably connected to the inner side of the base (1), and a stabilizing cavity (5) is provided inside the stabilizing seat (4); A stabilizing column (6); the stabilizing column (6) is movably connected to two sides of the interior of the stabilizing cavity (5); an anti-sliding block (7) in contact with the base (1) is fixedly connected to the outer side of the stabilizing column (6); A screw groove (8); the screw groove (8) is provided on the inner side of the stabilizing column (6), and the inner thread of the screw groove (8) is connected with forward and reverse screw rods (9); Detection and positioning mechanism; the detection and positioning mechanism is movably connected to both sides of the top of the stabilizing seat (4).

2. The viscosity detection device for preparing coatings using organic bentonite according to claim 1, characterized in that: The detection and positioning mechanism comprises a positioning seat (10), a connecting port (11) and a connecting seat (12); the positioning seat (10) is movably connected to the two sides of the top of the stabilizing seat (4); the connecting port (11) is provided at the front and rear sides of the two sides of the top of the stabilizing seat (4); the connecting seat (12) is movably connected inside the connecting port (11); and the top of the connecting seat (12) is fixedly connected to the bottom of the positioning seat (10).

3. The viscosity detection device for preparing coatings using organic bentonite according to claim 2, characterized in that: A lifting chamber (13) is provided at the bottom of the positioning seat (10), and plug-in racks (14) are movably connected to both sides of the lifting chamber (13).

4. The viscosity detection device for preparing coatings using organic bentonite according to claim 3, characterized in that: Slots (15) are provided on both sides of the top of the stabilizing seat (4), the slots (15) are located at the bottom of the positioning seat (10), and the bottom of the inserting frame (14) is located inside the slots (15).

5. The viscosity detection device for preparing coatings using organic bentonite according to claim 3, characterized in that: The lifting chamber (13) is movably connected to a lifting frame (16) inside, the insertion frame (14) is located inside the lifting frame (16), the top of the lifting frame (16) is fixedly connected to a force application rod (17), and the top of the force application rod (17) penetrates to the top of the positioning seat (10).

6. The viscosity detection device for preparing coatings using organic bentonite according to claim 5, characterized in that: A magnetic ring (18) is embedded and connected on the top of the positioning seat (10); the magnetic ring (18) is located on the outside of the force-applying rod (17); and the inside of the magnetic ring (18) is magnetically connected to the surface of the force-applying rod (17).

7. The viscosity detection device for preparing coatings using organic bentonite according to claim 1, characterized in that: Limiting grooves (19) are provided on both sides of the interior of the stabilizing cavity (5), and limiting blocks (20) located on the outside of the stabilizing column (6) are movably connected to both sides of the interior of the limiting grooves (19), and the inner side of the limiting block (20) is fixedly connected to the outer side of the stabilizing column (6).

8. The viscosity detection device for preparing coatings using organic bentonite according to claim 1, characterized in that: A rotating port (21) is provided inside the stabilizing chamber (5), and a rotating disk (22) is movably connected inside the rotating port (21), and the inner side of the rotating disk (22) is fixedly connected to the surface of the forward and reverse screw rods (9).