Stone coating storage device

By designing a stone coating storage device and employing a shell mechanism and a stirring mechanism, the problems of deposition and temperature influence during coating storage were solved, achieving high-quality and long-term storage of the coating.

CN223962607UActive Publication Date: 2026-03-03GUANGDONG FIFANGFANG HIGH-TECH MATERIALS TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-10
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Traditional methods of storing stone coatings can easily lead to sediment buildup, resulting in a decline in quality. Furthermore, the coating materials are susceptible to damage from external temperatures, making them unsuitable for storage.

Method used

Design a stone coating storage device, comprising a shell mechanism and a stirring mechanism, equipped with a thermostat and a temperature sensor, to prevent deposition through the stirring mechanism, and to regulate the temperature using the thermostat and a semiconductor cooling plate to ensure suitable storage conditions.

Benefits of technology

It effectively prevents coating material deposition, maintains quality, and ensures long-term storage through temperature control, preventing quality degradation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a stone coating storage device, which relates to the technical field of corrosion-resistant coating production and comprises a shell mechanism, a stirring mechanism is arranged in the shell mechanism, a temperature controller is arranged on the lower surface of the shell mechanism, and a temperature sensor is arranged on the inner wall in the shell mechanism. By arranging the shell mechanism composed of the shell, the fixing frame, the non-slip mat, the discharging port, the electromagnetic valve, the connecting pipe, the conical flow guide groove, the sealing cushion block, the sealing cover, the feeding port and the filtering plate, coating raw materials entering the device can be filtered, and impurities are prevented from being contained in a coating; a coating raw material only needs to enter the device through the feeding port and then is stirred at regular time through the stirring mechanism, the phenomenon that deposition is formed and influences the quality of the coating raw material is avoided, then the stirred raw material is filtered through the filter plate, the phenomenon that the raw material contains impurities is avoided, and then the electromagnetic valve is opened; and the raw materials are discharged through a discharge hole in the bottom of the connecting pipe.
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Description

Technical Field

[0001] This utility model relates to the field of corrosion-resistant coating production technology, specifically to a stone coating storage device. Background Technology

[0002] Stone, as an important material in the building decoration field, often requires surface coating treatments (such as waterproofing, stain resistance, and gloss enhancement) to improve its performance and aesthetics. Coated stone needs to be stored under specific conditions to ensure the coating's curing effect and surface integrity. Stone coatings (such as resins and hardeners) require temporary storage during processing. However, traditional storage methods, often using open containers or simple sealed barrels, present the following problems:

[0003] 1. Traditional storage methods can easily lead to sedimentation of coating materials in storage containers, resulting in a decline in quality;

[0004] 2. Traditional storage methods for coating materials in storage containers are affected by external temperature, which is not conducive to the storage of the materials. Utility Model Content

[0005] The purpose of this invention is to provide a stone coating storage device to solve the problems mentioned in the background art.

[0006] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0007] A stone coating storage device includes a shell mechanism, an internal stirring mechanism, a temperature controller on the lower surface of the shell mechanism, and a temperature sensor on the inner wall of the shell mechanism.

[0008] The housing mechanism includes a housing, a fixing frame is fixedly connected to the lower outer wall of the housing, and anti-slip pads are fixedly installed on the bottom surface of the fixing frame. The number of anti-slip pads is multiple.

[0009] A further improvement of this utility model is that: a sealing cover is fixedly connected to the top of the shell, a feed inlet is fixedly connected to the top surface of the sealing cover, the feed inlet is connected to the interior of the shell, and a sealing gasket is fixedly connected to the upper outer wall of the shell.

[0010] A further improvement of this utility model is that: a conical guide groove is fixedly connected to the bottom end of the shell, the conical guide groove is connected to the shell, a connecting pipe is fixedly connected to the bottom surface of the conical guide groove, the connecting pipe is connected to the conical guide groove, a discharge port is opened on the bottom surface of the conical guide groove, a solenoid valve is installed inside the connecting pipe, and a filter plate is fixedly connected inside the shell.

[0011] A further improvement of the present invention is that the stirring mechanism includes a rotating motor and a rotating bearing. The rotating bearing is disposed on the top surface of the filter plate, and a connecting rod is fixedly connected to the inner wall of the rotating bearing. A second helical gear is fixedly connected to the top surface of the connecting rod.

[0012] A further improvement of this utility model is that: a semiconductor cooling plate is fixedly connected to the outer wall of the connecting rod, the semiconductor cooling plate is electrically connected to the temperature controller, and a second stirring propeller is provided below the semiconductor cooling plate, the second stirring propeller being fixedly connected to the outer wall of the connecting rod.

[0013] A further improvement of this utility model is that: the outer wall of the second helical gear is meshed with a first helical gear, the output shaft of the rotating motor is fixedly connected to the back of the first helical gear, and the outer wall of the first helical gear is meshed with a third helical gear.

[0014] A further improvement of this utility model is that: a connecting cylinder is fixedly connected to the bottom surface of the No. 3 helical gear, a stirring rod is fixedly connected to the outer wall of the connecting cylinder, a heating rod is fixedly connected to the bottom surface of the stirring rod, a No. 1 stirring propeller is fixedly connected to the end of the connecting cylinder, the inner wall of the connecting cylinder is rotatably connected to the outer wall of the connecting rod, the heating rod is electrically connected to the temperature controller, and the temperature controller is electrically connected to the temperature sensor.

[0015] Due to the adoption of the above technical solution, the technological progress achieved by this utility model compared to the prior art is as follows:

[0016] 1. This utility model provides a stone coating storage device. By setting up a shell structure consisting of a shell, a fixing frame, an anti-slip pad, a discharge port, a solenoid valve, a connecting pipe, a conical guide groove, a sealing gasket, a sealing cover, a feed port, and a filter plate, the coating material entering the device can be filtered to prevent impurities from affecting the coating of the stone slab. In use, the coating material is simply fed into the device through the feed port, and then stirred at regular intervals by the stirring mechanism to prevent sedimentation that could affect the quality of the coating material. After stirring, the material is filtered through the filter plate to prevent impurities from being present. Then, the solenoid valve is opened, allowing the material to be discharged through the discharge port at the bottom of the connecting pipe.

[0017] 2. This utility model provides a stone coating storage device. It comprises a stirring mechanism consisting of a rotating motor, a first helical gear, a second helical gear, a third helical gear, a connecting rod, a connecting cylinder, a stirring rod, a heating rod, a first stirring propeller, a semiconductor cooling plate, a second stirring propeller, and a rotating bearing. A temperature controller and a temperature sensor work together to control the internal temperature of the casing, facilitating long-term storage of the coating material. The stirring mechanism also prevents sedimentation of the coating material during long-term storage, thus avoiding quality degradation. When needed, the rotating motor is activated. The output shaft of the motor drives the first helical gear to rotate, which in turn rotates the second helical gear, which is meshed with the upper end of the first helical gear. This, in turn, rotates the connecting rod, which is fixedly connected to the second helical gear, thereby driving the... The rotation of the No. 2 stirring propeller agitates the coating material in the upper part of the shell. Simultaneously, the rotation of the No. 1 helical gear causes the No. 3 helical gear, which meshes with the lower end of the No. 1 helical gear, to rotate. This, in turn, causes the connecting cylinder, which is fixedly connected to the bottom of the No. 3 helical gear, to rotate. This, in turn, drives the No. 1 stirring propeller, which is fixedly connected to the connecting cylinder, to rotate inside the shell. The fact that the No. 2 stirring propeller and the No. 1 stirring propeller rotate in opposite directions improves the stirring effect. When the temperature sensor detects that the temperature change inside the shell exceeds the range suitable for long-term storage of the coating material, it sends a signal to the temperature controller electrically connected to it. The temperature controller's heating or cooling module then controls the heating rod or semiconductor cooling plate to heat or cool the coating material inside the shell, adjusting the temperature inside the shell to a suitable level. Attached Figure Description

[0018] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0019] Figure 2 This is a schematic diagram of the cross-sectional structure of the present invention;

[0020] Figure 3 This is a schematic diagram of the shell mechanism of this utility model;

[0021] Figure 4 This is a schematic diagram of the stirring mechanism of this utility model.

[0022] In the diagram: 1. Shell mechanism; 11. Shell; 12. Fixing frame; 13. Anti-slip pad; 14. Discharge port; 15. Solenoid valve; 16. Connecting pipe; 17. Conical guide channel; 18. Sealing gasket; 19. Sealing cover; 110. Feed inlet; 111. Filter plate; 2. Stirring mechanism; 21. Rotary motor; 22. Helical gear No. 1; 23. Helical gear No. 2; 24. Helical gear No. 3; 25. Connecting rod; 26. Connecting cylinder; 27. Stirring rod; 28. Heating rod; 29. ​​Stirring propeller No. 1; 210. Semiconductor cooling plate; 211. Stirring propeller No. 2; 212. Rotating bearing; 3. Temperature controller; 4. Temperature sensor. Detailed Implementation

[0023] The present invention will be further described in detail below with reference to embodiments:

[0024] Example 1

[0025] like Figure 1-4 As shown, this utility model provides a stone coating storage device, including a shell mechanism 1. A stirring mechanism 2 is installed inside the shell mechanism 1. A temperature controller 3 is installed on the lower surface of the shell mechanism 1. A temperature sensor 4 is installed on the inner wall of the shell mechanism 1. The shell mechanism 1 includes a shell 11. A fixing frame 12 is fixedly connected to the lower outer wall of the shell 11. Multiple anti-slip pads 13 are fixedly installed on the bottom surface of the fixing frame 12. A sealing cover 19 is fixedly connected to the top of the shell 11. The top surface of the sealing cover 19 is fixedly connected to... The housing is connected to a feed inlet 110, which is connected to the interior of the housing 11. A sealing gasket 18 is fixedly connected to the upper outer wall of the housing 11. A conical guide channel 17 is fixedly connected to the bottom of the housing 11 and is connected to the housing 11. A connecting pipe 16 is fixedly connected to the bottom surface of the conical guide channel 17 and is connected to the conical guide channel 17. A discharge port 14 is opened on the bottom surface of the conical guide channel 17. A solenoid valve 15 is installed inside the connecting pipe 16. A filter plate 111 is fixedly connected to the interior of the housing 11.

[0026] In this embodiment, by setting up a housing mechanism 1 consisting of a housing 11, a fixing frame 12, an anti-slip pad 13, a discharge port 14, a solenoid valve 15, a connecting pipe 16, a conical guide groove 17, a sealing pad 18, a sealing cover 19, a feed port 110, and a filter plate 111, the coating material entering the device can be filtered to prevent impurities from affecting the coating of the stone slab. In use, the coating material only needs to be fed into the device through the feed port 110, and then stirred at a time by the stirring mechanism 2 to prevent sedimentation from affecting the quality of the coating material. The stirred material is then filtered through the filter plate 111 to prevent impurities from being present in the material. Then, the solenoid valve 15 is opened, and the material is discharged through the discharge port 14 at the bottom of the connecting pipe 16.

[0027] Example 2

[0028] like Figure 1-4 As shown, based on Embodiment 1, this utility model provides a technical solution: Preferably, the stirring mechanism 2 includes a rotating motor 21 and a rotating bearing 212. The rotating bearing 212 is disposed on the top surface of the filter plate 111. A connecting rod 25 is fixedly connected to the inner wall of the rotating bearing 212. A second helical gear 23 is fixedly connected to the top surface of the connecting rod 25. A semiconductor cooling plate 210 is fixedly connected to the outer wall of the connecting rod 25. The semiconductor cooling plate 210 is electrically connected to the temperature controller 3. A second stirring propeller 211 is disposed below the semiconductor cooling plate 210. The second stirring propeller 211 is fixedly connected to the outer wall of the connecting rod 25. The outer wall of the second helical gear 23 is meshed with the first helical gear 22. The output shaft of the rotating motor 21 is fixedly connected to the back of the first helical gear 22. The outer wall of the first helical gear 22 is meshed with the third helical gear 24. The bottom surface of the third helical gear 24 is fixedly connected to the connecting cylinder 26. The outer wall of the connecting cylinder 26 is fixedly connected to the stirring rod 27. The bottom surface of the stirring rod 27 is fixedly connected to the heating rod 28. The end of the connecting cylinder 26 is fixedly connected to the first stirring propeller 29. The inner wall of the connecting cylinder 26 is rotatably connected to the outer wall of the connecting rod 25. The heating rod 28 is electrically connected to the temperature controller 3. The temperature controller 3 is electrically connected to the temperature sensor 4.

[0029] In this embodiment, by setting up a stirring mechanism 2 consisting of a rotating motor 21, a first helical gear 22, a second helical gear 23, a third helical gear 24, a connecting rod 25, a connecting cylinder 26, a stirring rod 27, a heating rod 28, a first stirring propeller 29, a semiconductor cooling plate 210, a second stirring propeller 211, and a rotating bearing 212, and by using a temperature controller 3 and a temperature sensor 4, the temperature inside the housing 11 can be controlled to facilitate the long-term storage of the coating material. Simultaneously, the stirring mechanism 2 can prevent sedimentation of the coating material during long-term storage, thus avoiding quality degradation. When needed, simply start the rotating motor 21. The output shaft of the rotating motor 21 drives the first helical gear 22 to rotate, which in turn rotates the second helical gear 23, which is meshed with the upper end of the first helical gear 22. This, in turn, rotates the connecting rod 25, which is fixedly connected to the second helical gear 23, thereby driving the second stirring rod 27. The rotation of the stirring propeller 211 can stir the coating material on the upper part of the shell 11. At the same time, as the first helical gear 22 rotates, the third helical gear 24, which is meshed with the lower end of the first helical gear 22, will rotate, which will in turn cause the connecting cylinder 26, which is fixedly connected to the bottom surface of the third helical gear 24, to rotate. This will drive the first stirring propeller 29, which is fixedly connected to the connecting cylinder 26, to rotate inside the shell 11. Meanwhile, the second stirring propeller 211 and the first stirring propeller 29 are in opposite directions, which can improve the stirring effect. When the temperature sensor 4 senses that the temperature change inside the shell 11 exceeds the range that the coating material is suitable for long-term storage, it will send a signal to the temperature controller 3, which is electrically connected to it. The heating module or cooling module of the temperature controller 3 will control the heating rod 28 or the semiconductor cooling plate 210 to heat up or cool down the coating material inside the shell 11, so that the temperature inside the shell 11 is adjusted to a suitable temperature.

[0030] The working principle of this stone coating storage device will be explained in detail below.

[0031] like Figure 1-4As shown, during use, the coating material is first fed into the device through the feed inlet 110. Then, the rotating motor 21 is started. The output shaft of the rotating motor 21 drives the first helical gear 22 to rotate, which in turn causes the second helical gear 23, which is meshed with the upper end of the first helical gear 22, to rotate. This causes the connecting rod 25, which is fixedly connected to the second helical gear 23, to rotate, which in turn drives the second stirring propeller 211 to rotate. This can stir the coating material in the lower part of the shell 11. At the same time, as the first helical gear 22 rotates, the third helical gear 24, which is meshed with the lower end of the first helical gear 22, to rotate. This causes the connecting cylinder 26, which is fixedly connected to the bottom surface of the third helical gear 24, to rotate, which in turn drives the first stirring propeller 29, which is fixedly connected to the connecting cylinder 26, to rotate in the shell. The internal rotation of the body 11, with the second stirring propeller 211 and the first stirring propeller 29 moving in opposite directions, can improve the stirring effect. When the temperature sensor 4 senses that the temperature change inside the shell 11 exceeds the range suitable for long-term storage of the coating material, it will send a signal to the temperature controller 3, which is electrically connected to it. The heating or cooling module of the temperature controller 3 will control the heating rod 28 or the semiconductor cooling plate 210 to heat or cool the coating material inside the shell 11, so that the temperature inside the shell 11 is adjusted to a suitable temperature. Then, the stirred material is filtered through the filter plate 111 to avoid impurities in the material. Then, the solenoid valve 15 is opened, and the material is discharged through the discharge port 14 at the bottom of the connecting pipe 16.

[0032] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.

Claims

1. A stone coating storage device comprising a housing mechanism (1), characterized in that: The inside of the shell mechanism (1) is provided with a stirring mechanism (2), the lower surface of the shell mechanism (1) is provided with a temperature controller (3), and the inner wall of the inside of the shell mechanism (1) is provided with a temperature sensor (4). The shell mechanism (1) comprises a shell (11), the lower outer wall of the shell (11) is fixedly connected with a fixing frame (12), the bottom surface of the fixing frame (12) is fixedly installed with anti-skid pads (13), and the number of the anti-skid pads (13) is plural.

2. A stone coating storage device according to claim 1, characterized in that: The top end of the shell (11) is fixedly connected with a sealing cover (19), the top surface of the sealing cover (19) is fixedly connected with a feeding port (110), the feeding port (110) is communicated with the inside of the shell (11), and the upper end outer wall of the shell (11) is fixedly connected with a sealing pad block (18).

3. A stone coating storage device according to claim 2, characterized in that: The bottom end of the shell (11) is fixedly connected with a conical flow guide groove (17), the conical flow guide groove (17) is communicated with the shell (11), the bottom surface of the conical flow guide groove (17) is fixedly connected with a connecting pipe (16), the connecting pipe (16) is communicated with the conical flow guide groove (17), the bottom surface of the conical flow guide groove (17) is provided with a discharging port (14), the inside of the connecting pipe (16) is provided with an electromagnetic valve (15), and the inside of the shell (11) is fixedly connected with a filter plate (111).

4. A stone coating storage device according to claim 3, characterized in that: The stirring mechanism (2) comprises a rotating motor (21) and a rotating bearing (212), the rotating bearing (212) is arranged on the top surface of the filter plate (111), the inner wall of the rotating bearing (212) is fixedly connected with a connecting rod (25), and the top surface of the connecting rod (25) is fixedly connected with a second bevel gear (23).

5. A stone coating storage device according to claim 4, characterized in that: The outer wall of the connecting rod (25) is fixedly connected with a semiconductor refrigeration plate (210), the semiconductor refrigeration plate (210) is electrically connected with the temperature controller (3), and the lower portion of the semiconductor refrigeration plate (210) is provided with a second stirring propeller (211), which is fixedly connected with the outer wall of the connecting rod (25).

6. A stone coating storage device according to claim 5, characterized in that: The outer wall of the second bevel gear (23) is engaged with a first bevel gear (22), the output shaft of the rotating motor (21) is fixedly connected with the back surface of the first bevel gear (22), and the outer wall of the first bevel gear (22) is engaged with a third bevel gear (24).

7. A stone coating storage device according to claim 6, characterized in that: The bottom surface of the third bevel gear (24) is fixedly connected with a connecting cylinder (26), the outer wall of the connecting cylinder (26) is fixedly connected with a stirring rod (27), the bottom surface of the stirring rod (27) is fixedly connected with a heating rod (28), the tail end of the connecting cylinder (26) is fixedly connected with a first stirring propeller (29), the inner wall of the connecting cylinder (26) is rotationally connected with the outer wall of the connecting rod (25), the heating rod (28) is electrically connected with the temperature controller (3), and the temperature controller (3) is electrically connected with the temperature sensor (4).