Reaction promotion type water-based paint synthesis equipment
By setting up a circulation system of spiral tubes, hot water tanks and cold water tanks in the water-based paint synthesis equipment, precise control of the temperature of the synthesis tank is achieved, solving the problem of temperature discomfort affecting paint synthesis and improving production efficiency and product quality.
Patent Information
- Application Number
- CN202423037125.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-10
AI Technical Summary
Inappropriate temperature will have a negative impact on the synthesis of water-based coatings. Too low temperature will limit the synthesis speed, and too high temperature will cause resin degradation and side reactions.
By setting up a circulation system of spiral tubes, hot water tanks and cold water tanks in the synthesis tank, using temperature sensors to detect temperature, and automatically adjusting the input of hot or cold water, the internal temperature of the synthesis tank can be accurately controlled to ensure the appropriate temperature range.
It effectively avoids the negative impact of temperature discomfort on the synthesis of water-based coatings, improves production efficiency and product quality, and reduces energy and water consumption.
Smart Images

Figure CN223475000U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of waterborne coating preparation technology, specifically to a reaction-promoting waterborne coating synthesis device. Background Technology
[0002] Reaction-promoting waterborne coating synthesis equipment is typically a set of devices specifically designed for synthesizing waterborne coatings, aiming to improve reaction efficiency and product quality during the synthesis process.
[0003] Chinese utility model patent application number 202322064378.5 provides a water-based coating preparation device. The material is put into the mixing tank through the feed port. The controller starts the motor to drive the rotating rod to rotate, which in turn drives the connecting plate to rotate, and then drives the rotating component to rotate. The material is more thoroughly stirred by the combination of revolution and rotation, and the scraper is driven to rotate to clean the attached material.
[0004] However, during the use of the above equipment, it was found that unsuitable temperature can have a negative impact on the synthesis of water-based coatings. When the temperature is too low, it will limit the synthesis speed of water-based coatings, the reaction rate will become very slow, and it may even prevent the reaction from proceeding. When the temperature is too high, it will lead to side reactions such as resin degradation, oxidation, and excessively rapid volatilization, which will reduce the performance of the product. Utility Model Content
[0005] To address the shortcomings of existing technologies, this invention provides a reaction-promoting waterborne coating synthesis device, which solves the problem mentioned in the background technology that unsuitable temperatures can negatively affect the synthesis of waterborne coatings.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a reaction-promoting water-based coating synthesis device, comprising a synthesis tank, a temperature sensor fixed on the outer side of the synthesis tank, a spiral tube fixedly installed inside the synthesis tank, the inlet of the spiral tube being connected to an inlet pipe, one end of the inlet pipe being connected to a hot water tank via a pump, an inlet pipe being connected to the inlet pipe, one end of the inlet pipe being connected to a cold water tank via a pump, the outlet of the spiral tube being connected to an outlet pipe, the outlet pipe being connected to a cold water tank, an outlet pipe being connected to the outlet pipe, the outlet pipe being connected to an outlet pipe, and the outlet pipe being connected to a hot water tank, the cold water tank being located below the hot water tank.
[0007] Preferably, a second temperature sensor is fixedly installed on one side of the hot water tank, and a probe is connected to the second temperature sensor, which is located inside the hot water tank.
[0008] Preferably, a connection port is provided on one side of the bottom of the hot water tank, the connection port is electrically connected to an external power source, the connection port is fixedly located on one side of the heating plate, and the heating plate is fixedly located on the bottom of the inner wall of the hot water tank.
[0009] Preferably, a heat sink is fixed on the outer surface of the cold water tank, the heat sink is connected to a heat-conducting plate, and the heat-conducting plate is disposed inside the cold water tank and fixed to the inner wall of the cold water tank.
[0010] Preferably, the top of the cold water tank is provided with a heat dissipation groove, and the top of the heat dissipation groove is provided with a dustproof net.
[0011] Preferably, valves are provided on each of the first inlet pipe, the second inlet pipe, the first outlet pipe, and the second outlet pipe.
[0012] This invention provides a reaction-promoting waterborne coating synthesis device. It has the following beneficial effects:
[0013] (1) By setting up a hot water tank, when the temperature sensor detects that the internal temperature of the synthesis tank 1 is too low, the liquid in the hot water tank enters the spiral tube and transfers heat to the inside of the synthesis tank through the tube wall to achieve heating.
[0014] (2) By setting up a cold water tank, when the temperature sensor detects that the internal temperature of the synthesis tank 1 is too high, the liquid in the cold water tank enters the spiral tube to absorb the heat transferred from the inside of the synthesis tank and achieve cooling.
[0015] This solves the problem that unsuitable temperatures can negatively affect the synthesis of water-based coatings. Attached Figure Description
[0016] Figure 1 This is a diagram showing the overall structure of the present utility model;
[0017] Figure 2 This utility model Figure 1 Display images of the intermediate cooling water tank and hot water tank;
[0018] Figure 3 This utility model Figure 2 Another perspective on the structure;
[0019] Figure 4 This utility model Figure 2 Internal structure diagram of the intercooled water tank;
[0020] Figure 5 This utility model Figure 2 A diagram showing the internal structure of a medium-sized hot water tank.
[0021] In the diagram: 1. Synthesis tank; 11. Temperature sensor one; 2. Hot water tank; 21. Pump one; 22. Temperature sensor two; 221. Probe; 23. Connection port; 231. Heating plate; 24. Inlet pipe one; 25. Outlet pipe one; 3. Cold water tank; 31. Pump two; 32. Heat sink; 33. Inlet pipe two; 34. Outlet pipe two; 35. Heat dissipation groove; 36. Heat conducting plate; 4. Valve; 5. Spiral tube. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Example 1:
[0024] Please see Figure 1-Figure 5 A reaction-promoting waterborne coating synthesis device includes a synthesis tank 1, a spiral tube 5 fixedly installed on the tank, the inlet of the spiral tube 5 being connected to an inlet pipe 24, one end of the inlet pipe 24 being connected to a hot water tank 2 via a pump 21, an inlet pipe 33 being connected to the inlet pipe 24, one end of the inlet pipe 33 being connected to a cold water tank 3 via a pump 31, the outlet of the spiral tube 5 being connected to an outlet pipe 34, the outlet pipe 34 being connected to the cold water tank 3, an outlet pipe 25 being connected to the outlet pipe 34, and the outlet pipe 25 being connected to the hot water tank 2, the cold water tank 3 being located below the hot water tank 2.
[0025] Specifically, by setting up a cold water tank 3 and a hot water tank 2, when the temperature sensor 11 detects that the internal temperature of the synthesis tank 1 is too low, it reminds the operator to use the pump 21 to draw hot water from the hot water tank 2 into the inlet pipe 24, and then into the spiral tube 5 from the inlet. The hot water passes through the spiral tube 5 and enters the outlet pipe 25 from the outlet, and then enters the hot water tank 2 through the outlet pipe 25 to achieve circulation. The spiral tube 5 is made of copper tube with good thermal conductivity. When the hot water flows in the spiral tube 5, it transfers heat to the inside of the synthesis tank 1 through the tube wall, thereby raising the temperature inside the synthesis tank 1.
[0026] When temperature sensor 11 detects that the internal temperature of synthesis tank 1 is too high, it reminds the operator to use pump 2 31 to draw cold water from cold water tank 3 into inlet pipe 2 33. The cold water enters the spiral tube 5 through the inlet of the spiral tube 5 through inlet pipe 2 33. When the cold water flows in the spiral tube 5, heat is transferred from the high-temperature interior of synthesis tank 1 to the low-temperature cold water, so that the internal temperature of synthesis tank 1 gradually decreases.
[0027] Furthermore, the internal temperature of the synthesis tank 1 is adjusted by using the cold water tank 3 and the hot water tank 2, so that the internal temperature of the synthesis tank 1 is always at a suitable temperature, which is conducive to improving the synthesis and preparation effect of water-based coatings. A suitable temperature can avoid problems such as reduced viscosity, weakened adhesion, or prolonged synthesis time and reduced production efficiency during the synthesis and preparation of water-based coatings.
[0028] Example 2:
[0029] To achieve continuous heating or cooling, please refer to [link / reference]. Figure 1-Figure 5 Based on embodiment 1, a second temperature sensor 22 is fixedly installed on one side of the hot water tank 2, and a probe 221 is connected to the second temperature sensor 22. The probe 221 is located inside the hot water tank 2.
[0030] A connection port 23 is provided on one side of the bottom of the hot water tank 2. The connection port 23 is electrically connected to an external power source. The connection port 23 is fixedly installed on one side of the heating plate 231. The heating plate 231 is fixedly installed on the bottom of the inner wall of the hot water tank 2.
[0031] A heat sink 32 is fixed on the outer surface of the cold water tank 3. The heat sink 32 is connected to the heat conduction plate 36. The heat conduction plate 36 is located inside the cold water tank 3 and fixed on the inner wall of the cold water tank 3.
[0032] The top of the cold water tank 3 is provided with a heat dissipation groove 35, and the top of the heat dissipation groove 35 is provided with a dustproof net;
[0033] Valves 4 are installed on inlet pipe 1 24, inlet pipe 2 33, outlet pipe 1 25 and outlet pipe 2 34.
[0034] Specifically, temperature sensor 22 on one side of hot water tank 2 can detect the temperature of the hot water inside hot water tank 2 through probe 221. Connection port 23 at the bottom of hot water tank 2 is used to connect to external power equipment, and the power equipment provides power to heating plate 231, so that heating plate 231 can heat the water inside hot water tank 2. Combined with temperature sensor 22 and probe 221, the heating temperature can be precisely controlled, so that the temperature of hot water can be kept within a relatively stable range to meet the needs of water-based coating synthesis. At the same time, hot water circulates between spiral tube 5 and hot water tank 2, realizing the recycling of hot water. This recycling can reduce the waste of hot water, reduce water consumption, and reduce energy consumption.
[0035] The cooling tank 3 utilizes the heat dissipation groove 35 on the top of the cooling tank 3 for heat dissipation. The heat dissipation groove 35 connects the outside world with the inside of the cooling tank 3, which can effectively dissipate the heat absorbed by the cold water to continuously carry out cooling work. The dustproof net on the top of the heat dissipation groove 35 protects the cooling tank 3 from external dust and impurities entering the cooling tank 3, ensuring the normal operation of the cooling system. At the same time, the heat conduction plate 36 is made of copper, which can effectively and quickly conduct the heat absorbed by the cold water to the heat dissipation plate 32, and then dissipate it into the air through the heat dissipation plate 32, further improving the heat dissipation efficiency and keeping the temperature of the cold water at a low level.
[0036] Valves 4 are installed on inlet pipe 24, inlet pipe 33, outlet pipe 25, and outlet pipe 34. When heating is required, the operator closes the valves 4 on inlet pipe 23 and outlet pipe 24 to allow hot water in hot water tank 2 to flow smoothly between inlet pipe 24, spiral pipe 5, and outlet pipe 25. When cooling is required, the operator closes the valves 4 on inlet pipe 24 and outlet pipe 25 to allow cold water in cold water tank 3 to flow smoothly between inlet pipe 23, spiral pipe 5, and outlet pipe 24.
[0037] Working principle: When the equipment is in use, water-based coatings are synthesized in the synthesis tank 1. During this process, the internal temperature of the synthesis tank 1 is detected by the temperature sensor 11. When the detected temperature is too high, the operator closes the valve 4 on the inlet pipe 24 and the outlet pipe 25. The pump 31 draws cold water from the cold water tank 3 into the inlet pipe 33 and flows into the spiral pipe 5 through the inlet. The flow of cold water in the spiral pipe 5 transfers heat from the inside of the synthesis tank 1 to the cold water at a lower temperature, thereby cooling the inside of the synthesis tank 1. The cold water carrying heat enters the outlet pipe 34 through the outlet and flows into the cold water tank 3 to achieve circulation. The heat dissipation tank 35 and the heat dissipation fins 32 dissipate the heat absorbed by the cold water, keeping the cold water in the cold water tank 3 at a low temperature, which facilitates the recycling of cold water.
[0038] When the detected temperature is too low, the operator closes valve 4 on inlet pipe 233 and outlet pipe 24. Pump 21 draws hot water from hot water tank 2 into inlet pipe 24, and the hot water flows into the spiral tube 5 through its inlet. The flow of hot water in the spiral tube 5 transfers heat to the synthesis tank 1 through the tube wall, thus raising the temperature inside the synthesis tank 1. The hot water that has lost some heat enters outlet pipe 25 through the outlet and flows back into hot water tank 2 for circulation. Heating plate 231 is used to reheat the partially de-heated hot water, keeping the hot water inside hot water tank 2 within a relatively stable range, facilitating the recycling of hot water. Hot and cold water are used to raise and lower the temperature inside the synthesis tank 1, ensuring that the inside of the synthesis tank 1 is always at a suitable temperature, improving the synthesis effect of water-based coatings and avoiding negative effects caused by unsuitable temperatures.
[0039] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0040] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A reaction-promoting waterborne coating synthesis apparatus, comprising a synthesis tank (1), characterized in that: A temperature sensor (11) is fixed on the outside of the synthesis tank (1). A spiral tube (5) is fixedly installed inside the synthesis tank (1). The inlet of the spiral tube (5) is connected to the liquid inlet pipe (24). One end of the liquid inlet pipe (24) is connected to the hot water tank (2) through the pump (21). A liquid inlet pipe (33) is connected to the liquid inlet pipe (24). One end of the liquid inlet pipe (33) is connected to the cold water tank (3) through the pump (31). The outlet of the spiral tube (5) is connected to the liquid outlet pipe (34). The liquid outlet pipe (34) is connected to the cold water tank (3). A liquid outlet pipe (25) is connected to the liquid outlet pipe (34). The liquid outlet pipe (25) is connected to the hot water tank (2). The cold water tank (3) is located below the hot water tank (2).
2. The reaction-promoting waterborne coating synthesis equipment according to claim 1, characterized in that: A second temperature sensor (22) is fixedly installed on one side of the hot water tank (2), and a probe (221) is connected to the second temperature sensor (22). The probe (221) is located inside the hot water tank (2).
3. The reaction-promoting waterborne coating synthesis equipment according to claim 2, characterized in that: A connection port (23) is provided on one side of the bottom of the hot water tank (2). The connection port (23) is electrically connected to an external power source. The connection port (23) is fixedly installed on one side of the heating plate (231). The heating plate (231) is fixedly installed on the bottom of the inner wall of the hot water tank (2).
4. The reaction-promoting waterborne coating synthesis equipment according to claim 1, characterized in that: A heat sink (32) is fixed on the outer surface of the cold water tank (3). The heat sink (32) is connected to a heat-conducting plate (36). The heat-conducting plate (36) is located inside the cold water tank (3) and fixed on the inner wall of the cold water tank (3).
5. The reaction-promoting waterborne coating synthesis equipment according to claim 4, characterized in that: The top of the cold water tank (3) is provided with a heat dissipation groove (35), and the top of the heat dissipation groove (35) is provided with a dustproof net.
6. The reaction-promoting waterborne coating synthesis equipment according to claim 1, characterized in that: Valves (4) are provided on the first liquid inlet pipe (24), the second liquid inlet pipe (33), the first liquid outlet pipe (25), and the second liquid outlet pipe (34).
Citation Information
Patent Citations
Water-based paint preparation device
CN220514030U