Viscosity detection device for water-based building coating
By combining cylinders, motors, and lead screws, multi-station testing of water-based architectural coatings is achieved, solving the problem of low testing efficiency in existing devices and improving testing accuracy and uniformity.
Patent Information
- Application Number
- CN202422943312.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-11-28
AI Technical Summary
Existing viscosity testing devices for water-based architectural coatings are not convenient for sequential testing at multiple stations, making it difficult to achieve the expected testing efficiency.
The design employs a combination of cylinder-driven lifting seat, second motor-driven lead screw rotation, and first motor-driven stirring shaft rotation to achieve translation, lifting, and stirring of the paint bucket, ensuring testing accuracy and uniformity.
This improved the testing efficiency and accuracy of the testing equipment, ensuring the uniformity of the coating and the accuracy of the measurement results.
Smart Images

Figure CN223551532U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of coating viscosity testing technology, specifically a water-based architectural coating viscosity testing device. Background Technology
[0002] In the production and use of architectural coatings, viscosity is an important physical performance parameter. The viscosity directly affects the application performance and coating quality. Therefore, it is necessary to design a new type of viscosity testing device for water-based architectural coatings to meet the actual needs of the market.
[0003] A water-based architectural coating viscosity testing device, referenced in announcement CN220508718U, includes a base plate with extension plates fixedly connected to both ends. Two first connecting holes are formed through the opposite ends of the two extension plates. Clamping components are fixedly installed in the two first connecting holes on the same side, and the two clamping components clamp a container. A display is fixedly connected to the upper front of the base plate, and a fixing frame is fixedly connected to the upper rear of the base plate. A sliding groove is formed at the front end of the fixing frame, and a height adjustment component is slidably installed within the groove. This water-based architectural coating viscosity testing device, by setting the height adjustment component, facilitates testing the viscosity of coatings at different locations and makes it easier for workers to operate. The clamping components prevent accidents during testing and protect the safety of the testing site. However, while this testing device can be widely used, it is generally inconvenient for multi-station sequential viscosity testing of architectural coatings, making it difficult to achieve the expected viscosity testing efficiency, which often troubles users. Utility Model Content
[0004] The purpose of this invention is to provide a viscosity testing device for water-based architectural coatings, in order to solve the problem that although the testing devices mentioned in the background art can be well applied, they are usually not convenient for multi-station sequential viscosity testing of architectural coatings, making it difficult for the testing device to achieve the expected viscosity testing efficiency.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a water-based architectural coating viscosity testing device, comprising a testing platform, a lower connecting plate on one side of the top of the testing platform, a base plate on the other side of the top of the testing platform, a lead screw rotatably mounted on the top of the base plate via a bracket, limiting rails on the top of the base plates on both sides of the lead screw, two bearing plates mounted on the outer wall of the lead screw via a nut pair, the bottom end of the bearing plate slidably connected to the top of the limiting rails, a paint bucket on the top of each bearing plate, a lifting seat above one of the paint buckets, and a control panel mounted on one side of the surface of the testing platform.
[0006] Preferably, a cylinder is installed at the center of the top of the lower connecting plate. The input end of the cylinder is electrically connected to the output end of the microcontroller inside the control panel, and the top end of the cylinder is connected to the bottom end of the lifting seat. The cylinder is configured to drive the lifting seat to perform lifting and lowering operations.
[0007] Preferably, each of the lower connecting plates on both sides of the cylinder is provided with a column, and an upper connecting plate is fixed to the top of the two columns. A guide cylinder is movably connected to the outer wall of each column. The guide cylinder is fixedly connected to the lifting seat. The lifting range of the lifting seat is limited by the setting of the guide cylinder.
[0008] Preferably, a support frame is provided on one side of the top of the lifting seat, and a first motor is installed at the top of the support frame. The input end of the first motor is electrically connected to the output end of the microcontroller inside the control panel. A stirring shaft is provided at the bottom of the first motor. The bottom end of the stirring shaft extends through to the bottom of the lifting seat and is provided with a mounting base. The first motor is configured to drive the stirring shaft to rotate.
[0009] Preferably, a second motor is mounted on one side of the top of the substrate via a bracket. The input end of the second motor is electrically connected to the output end of the microcontroller inside the control panel. One end of the second motor is connected to one end of the lead screw. The second motor is configured to drive the lead screw to rotate.
[0010] Preferably, the outer wall of the placement base is provided with equally spaced stirring blades, and a viscometer is provided on one side of the top of the placement base. The output end of the viscometer is electrically connected to the input end of the microcontroller inside the control panel. The stirring blades are arranged to stir the architectural coating.
[0011] Compared with the prior art, the beneficial effects of this utility model are: the viscosity testing device for water-based building coatings not only improves the viscosity testing efficiency of building coatings when the testing equipment is used, but also ensures the testing accuracy of the viscosity of building coatings when the testing equipment is used, and maintains the uniformity of building coatings, and ensures the accuracy and reliability of the measurement results of building coatings by the testing device.
[0012] (1) The screw is rotated by the second motor, so that the nut pair on the outer wall of the screw drives the bearing plate to slide at the top of the limit rail, so that the two bearing plates drive the paint bucket to move synchronously. When different types of building paint are filled into the two paint buckets in sequence, the two paint buckets can carry the building materials to the bottom of the lifting seat in sequence, so as to achieve the purpose of dual-station sequential viscosity testing of building paint, thereby improving the viscosity testing efficiency of building paint when the testing equipment is used;
[0013] (2) The lifting seat is driven by the cylinder to lift and lower, so that the lifting seat drives the guide cylinder to slide on the outer wall of the column, so that the lifting seat drives the viscometer and other related components to lift and lower smoothly. The viscometer can then detect the viscosity of the building coating at different depths inside the paint bucket, thus ensuring the accuracy of the detection of the viscosity of the building coating when the detection equipment is used.
[0014] (3) The first motor drives the placement seat and the stirring blade to rotate through the stirring shaft. When the stirring blade moves down into the paint bucket, the stirring blade can stir the building paint inside the paint bucket, thereby maintaining the uniformity of the building paint and ensuring the accuracy and reliability of the measurement results of the building paint by the detection device. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0016] Figure 2 This is a top view of the substrate structure of this utility model;
[0017] Figure 3 This is a top view schematic diagram of the stirring blade structure of this utility model;
[0018] Figure 4 This is a side view of the lifting seat structure of this utility model.
[0019] In the diagram: 1. Testing platform; 2. Control panel; 3. Lower connecting plate; 4. Cylinder; 5. Upper connecting plate; 6. Lifting seat; 7. Support frame; 8. First motor; 9. Stirring shaft; 10. Base plate; 11. Bearing plate; 12. Second motor; 13. Lead screw; 14. Limiting rail; 15. Paint bucket; 16. Placement seat; 17. Stirring blade; 18. Viscometer; 19. Column; 20. Guide cylinder. Detailed Implementation
[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0021] Please see Figure 1-4 An embodiment of this utility model is provided: a water-based building coating viscosity testing device, including a testing platform 1, a lower connecting plate 3 is provided on one side of the top of the testing platform 1, a cylinder 4 is installed at the center of the top of the lower connecting plate 3, the input end of the cylinder 4 is electrically connected to the output end of the microcontroller inside the control panel 2, and the top end of the cylinder 4 is connected to the bottom end of the lifting seat 6.
[0022] In use, the cylinder 4 is used to drive the lifting seat 6 to perform lifting and lowering operations;
[0023] The top of the lower connecting plate 3 on both sides of the cylinder 4 is provided with a column 19, and the top of the two columns 19 is fixed with an upper connecting plate 5. The outer wall of the column 19 is movably connected with a guide cylinder 20, and the guide cylinder 20 is fixedly connected to the lifting seat 6.
[0024] In use, the guide cylinder 20 is used to limit the lifting range of the lifting seat 6;
[0025] On the other side of the top of the testing table 1, there is a base plate 10. A second motor 12 is mounted on one side of the top of the base plate 10 via a bracket. The input end of the second motor 12 is electrically connected to the output end of the microcontroller inside the control panel 2. One end of the second motor 12 is connected to one end of the lead screw 13.
[0026] In use, the second motor 12 is configured to drive the lead screw 13 to rotate;
[0027] A lead screw 13 is rotatably mounted on the top of the substrate 10 via a bracket. Limiting rails 14 are provided on the top of the substrate 10 on both sides of the lead screw 13. Two bearing plates 11 are mounted on the outer wall of the lead screw 13 via a nut pair. The bottom end of the bearing plate 11 is slidably connected to the top end of the limiting rail 14. A paint bucket 15 is provided on the top of each bearing plate 11. A lifting seat 6 is provided above one of the paint buckets 15. A support frame 7 is provided on one side of the top of the lifting seat 6. A first motor 8 is mounted on the top of the support frame 7. The input end of the first motor 8 is electrically connected to the output end of the microcontroller inside the control panel 2. A stirring shaft 9 is provided at the bottom of the first motor 8. The bottom end of the stirring shaft 9 extends through to the bottom of the lifting seat 6 and is provided with a placement seat 16.
[0028] In use, the first motor 8 is configured to drive the stirring shaft 9 to rotate;
[0029] The outer wall of the mounting base 16 is provided with equally spaced stirring blades 17, and a viscometer 18 is provided on one side of the top of the mounting base 16. The output end of the viscometer 18 is electrically connected to the input end of the microcontroller inside the control panel 2.
[0030] When in use, the mixing blades 17 are set to mix the architectural coating.
[0031] A control panel 2 is installed on one side of the surface of the testing station 1.
[0032] In this embodiment, the architectural coating is first injected into the coating bucket 15. The lifting seat 6 is then raised and lowered by the cylinder 4, causing the guide cylinder 20 to slide along the outer wall of the column 19. This allows the lifting seat 6 to smoothly raise and lower the viscometer 18 and other related components. When the viscometer 18 descends to a designated depth within the coating bucket 15, it accurately measures the viscosity of the coating at different depths. After testing, the viscometer 18 rises and returns to its original position to test the viscosity of the next batch of coating. Then, the second motor 12 drives the lead screw 13 to rotate. The nut pair on the outer wall of 13 drives the bearing plate 11 to slide on the top of the limiting rail 14, so that the two bearing plates 11 drive the paint bucket 15 to move synchronously. When the two paint buckets 15 carrying the building material are successively moved to the bottom of the lifting seat 6, the viscosity of the building paint can be tested in two stations in sequence. Finally, the first motor 8 drives the stirring blade 17 to rotate through the stirring shaft 9 and the placement seat 16. When the stirring blade 17 moves down into the paint bucket 15, the stirring blade 17 can stir the building paint inside the paint bucket 15 to ensure the uniformity of the building paint and reduce the phenomenon of sedimentation of the building paint, thus completing the use of the testing device.
Claims
1. A viscosity testing device for water-based architectural coatings, characterized in that: The test platform (1) includes a test bench (1), a lower connecting plate (3) on one side of the top of the test bench (1), a base plate (10) on the other side of the top of the test bench (1), a lead screw (13) rotatably mounted on the top of the base plate (10) via a bracket, a limiting rail (14) on the top of the base plate (10) on both sides of the lead screw (13), two bearing plates (11) are mounted on the outer wall of the lead screw (13) via a nut pair, the bottom end of the bearing plate (11) is slidably connected to the top of the limiting rail (14), a paint bucket (15) is provided on the top of each bearing plate (11), a lifting seat (6) is provided above one of the paint buckets (15), and a control panel (2) is installed on one side of the surface of the test bench (1).
2. The viscosity testing device for water-based architectural coatings according to claim 1, characterized in that: A cylinder (4) is installed at the center of the top of the lower connecting plate (3). The input end of the cylinder (4) is electrically connected to the output end of the microcontroller inside the control panel (2). The top end of the cylinder (4) is connected to the bottom end of the lifting seat (6).
3. The viscosity testing device for water-based architectural coatings according to claim 2, characterized in that: The cylinder (4) has a column (19) at the top of the lower connecting plate (3) on both sides. The top of the two columns (19) is fixed with an upper connecting plate (5). The outer wall of the column (19) is movably connected with a guide cylinder (20). The guide cylinder (20) is fixedly connected to the lifting seat (6).
4. The viscosity testing device for water-based architectural coatings according to claim 1, characterized in that: A support frame (7) is provided on one side of the top of the lifting seat (6). A first motor (8) is installed on the top of the support frame (7). The input end of the first motor (8) is electrically connected to the output end of the microcontroller inside the control panel (2). A stirring shaft (9) is provided at the bottom of the first motor (8). The bottom end of the stirring shaft (9) extends through to the bottom of the lifting seat (6) and is provided with a placement seat (16).
5. The viscosity testing device for water-based architectural coatings according to claim 1, characterized in that: A second motor (12) is mounted on one side of the top of the substrate (10) via a bracket. The input end of the second motor (12) is electrically connected to the output end of the microcontroller inside the control panel (2). One end of the second motor (12) is connected to one end of the lead screw (13).
6. The viscosity testing device for water-based architectural coatings according to claim 4, characterized in that: The outer wall of the mounting base (16) is provided with equally spaced stirring blades (17), and a viscometer (18) is provided on one side of the top of the mounting base (16). The output end of the viscometer (18) is electrically connected to the input end of the microcontroller inside the control panel (2).
Citation Information
Patent Citations
Viscosity detection device for water-based building coating
CN220508718U