Storage tank for producing glass fiber emulsion
Through innovative design of tank components, including a support layer, a main body layer, and an inner lining layer, combined with temperature control and inert gas replacement, the problem of unsuitable storage environment for glass fiber emulsions has been solved, achieving stable storage and uniformity of the emulsions and simplifying cleaning operations.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZIBO KUNHAN FINE CHEM INSTALLATION CO LTD
- Filing Date
- 2025-06-17
- Publication Date
- 2026-05-19
AI Technical Summary
Existing storage tanks cannot effectively create a suitable storage environment for glass fiber emulsions, resulting in the emulsions being prone to deterioration after long-term storage and being inconvenient to clean.
The tank assembly design includes a support layer, a main body layer, an inner lining layer, and heat-conducting copper pipes. Combined with a temperature sensor and a circulation pump system, it maintains a suitable storage temperature through inert gas replacement and a heater, and uses a motor-driven agitator to stir and prevent sedimentation.
It effectively prevents emulsion oxidation and deterioration, maintains uniformity, improves storage performance, simplifies the cleaning process, and increases storage efficiency.
Smart Images

Figure CN224257435U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass fiber emulsion production technology, specifically a storage tank for glass fiber emulsion production. Background Technology
[0002] Glass fiber emulsion is a key chemical agent used to enhance the performance of composite materials. It is mainly composed of a resin matrix (such as unsaturated polyester, vinyl ester or epoxy resin) and a glass fiber dispersion system. The interfacial bonding between glass fiber and resin is optimized by using a wetting agent. Glass fiber emulsion has certain environmental requirements for storage, and a storage tank is needed for the production of glass fiber emulsion.
[0003] The existing patent, CN217946303U, entitled "A Storage Tank for Acrylic Emulsion Raw Materials," discloses a storage tank for acrylic emulsion raw materials, relating to the field of chemical technology. The storage tank includes a tank with a cover plate threaded to its upper side. A rotating ring is rotatably connected to the inner side of the cover plate. A connecting rod is fixedly connected to the surface of the rotating ring, and a stirring rod is fixedly connected to the surface of the connecting rod. In this storage tank for acrylic emulsion raw materials, the connecting rod, through a sliding rod, drives a cleaning plate to scrape and clean the inside of the storage tank. This method improves upon the traditional method, which requires manual cleaning of the inside of the storage tank, saving time and effort. It also simplifies the stirring, dilution, and scraping of the inside of the storage tank, greatly increasing the ease and speed of cleaning the acrylic emulsion raw materials inside the storage tank.
[0004] The aforementioned device stores the emulsion in a storage tank, but it does not create a suitable environment for emulsion storage. After long-term storage, the emulsion is prone to denaturation and cannot meet people's usage needs. In view of the above situation, technological innovation is carried out on the basis of existing storage tanks. Utility Model Content
[0005] The purpose of this invention is to provide a storage tank for the production of glass fiber emulsions, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a storage tank for glass fiber emulsion production, comprising a tank assembly and a circulation pump. A motor is installed on the right side of the tank assembly, and the circulation pump is installed below the tank assembly. A heater is installed on one side of the circulation pump, and an external connecting pipe is connected to one side of the heater. A temperature sensor is installed on the upper left side inside the tank assembly to detect the internal temperature. The external connecting pipe connects a heat-conducting copper pipe to the heater and the circulation pump. Water in the heat-conducting copper pipe flows through the heater under the drive of the circulation pump and is heated to a suitable temperature, thus maintaining the glass fiber emulsion at a suitable storage temperature.
[0007] Furthermore, the tank assembly includes a support layer and a main body layer, and the main body layer is installed inside the support layer. The support layer is made of steel, which has high mechanical strength and better material storage effect, while the main body layer is made of fiberglass, which is corrosion-resistant, lightweight, high-strength, and impermeable.
[0008] Furthermore, the tank assembly also includes a heat-conducting copper pipe and an inner lining layer. The heat-conducting copper pipe is embedded and connected inside the main body layer, and an inner lining layer is installed on the inner side of the main body layer. The inner lining layer is composed of vinyl ester resin and surface felt, which is resistant to strong acids and alkalis and improves corrosion resistance.
[0009] Furthermore, an outer disturbance plate is installed inside the inner lining layer, and an inner disturbance plate is provided on the inner side of the outer disturbance plate.
[0010] Furthermore, a main shaft is installed on the inner side of the inner disturbance plate, and the main shaft is welded to the inner disturbance plate. The motor drives the inner disturbance plate and the outer disturbance plate to rotate through the main shaft, thereby agitating the glass fiber emulsion, ensuring the uniformity of the emulsion and preventing sedimentation.
[0011] Furthermore, an inlet is installed on the upper left side of the support layer, and a multi-stage filter screen is installed inside the inlet. The glass fiber emulsion is poured into the tank assembly through the inlet, and the multi-stage filter screen sequentially intercepts impurities of different particle sizes to prevent external contaminants from entering the emulsion.
[0012] Furthermore, an air inlet is provided on the right side of the feed port, and an air outlet is provided on the right side of the air inlet. A gas sensor is installed on one side of the air outlet.
[0013] Furthermore, a discharge port is installed on the left side of the support layer, and the discharge port is embedded in the support layer, which facilitates the discharge of materials.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: Glass fiber emulsion is poured into the tank assembly through the inlet. Multi-stage filters sequentially intercept impurities of different particle sizes, preventing external contaminants from entering the emulsion. Inert gas is introduced through the air inlet. When the gas sensor at the outlet detects continuous inert gas output, the introduction of inert gas is stopped. The inert gas replaces the air inside the tank, preventing the emulsion from oxidizing and deteriorating. The inner lining is composed of vinyl ester resin and surface felt, which is resistant to strong acids and alkalis, improving corrosion resistance. The main body layer is made of fiberglass, which is corrosion-resistant, lightweight, high-strength, and impermeable. The support layer uses steel, which has high mechanical strength and better material storage effect. An internal temperature sensor detects the internal temperature. An external connecting pipe connects the heat-conducting copper pipe to the heater and circulating pump. Water in the heat-conducting copper pipe flows through the heater under the drive of the circulating pump, heating it to a suitable temperature and maintaining the glass fiber emulsion at a suitable storage temperature. The motor drives the inner and outer disturbance plates to rotate through the main shaft, thereby agitating the glass fiber emulsion, ensuring emulsion uniformity, preventing sedimentation, and facilitating material discharge.
[0015] 1. This utility model pours fiberglass emulsion into the tank assembly through the inlet. Multi-stage filters sequentially intercept impurities of different particle sizes to prevent external contaminants from entering the emulsion. Inert gas is introduced through the air inlet. When the gas sensor at the air outlet detects continuous inert gas output, the introduction of inert gas is stopped. The inert gas replaces the air inside the tank, preventing the emulsion from oxidizing and deteriorating. The inner lining is composed of vinyl ester resin and surface felt, which is resistant to strong acids and alkalis and improves corrosion resistance. The main body is made of fiberglass, which is corrosion-resistant, lightweight, high-strength, and impermeable. The support layer uses steel with high mechanical strength, resulting in better material storage effect.
[0016] 2. This utility model uses a temperature sensor to detect the internal temperature. An external connecting pipe connects the heat-conducting copper pipe to the heater and the circulating pump. Water in the heat-conducting copper pipe flows through the heater under the drive of the circulating pump and is heated to a suitable temperature to maintain the glass fiber emulsion at a suitable storage temperature. The motor drives the inner and outer disturbance plates to rotate through the main shaft, thereby agitating the glass fiber emulsion, ensuring the uniformity of the emulsion, preventing sedimentation, and facilitating material discharge. Attached Figure Description
[0017] Figure 1 This is a front cross-sectional view of a storage tank for glass fiber emulsion production according to the present invention.
[0018] Figure 2 This is a partial three-dimensional cross-sectional view of the tank body of a storage tank for the production of glass fiber emulsion according to the present invention.
[0019] Figure 3 This is a partial three-dimensional structural diagram of the main shaft of a storage tank for glass fiber emulsion production according to the present invention.
[0020] In the diagram: 1. Tank assembly; 101. Support layer; 102. Main body layer; 103. Heat-conducting copper pipe; 104. Inner lining layer; 2. Motor; 3. Main shaft; 4. Inner disturbance plate; 5. Outer disturbance plate; 6. Circulation pump; 7. Heater; 8. External connecting pipe; 9. Temperature sensor; 10. Feed inlet; 11. Multi-stage filter; 12. Air inlet; 13. Air outlet; 14. Gas sensor; 15. Discharge outlet. Detailed Implementation
[0021] like Figure 1-3 As shown, a storage tank for glass fiber emulsion production includes a tank assembly 1 and a circulation pump 6. A motor 2 is installed on the right side of the tank assembly 1. The circulation pump 6 is installed below the tank assembly 1, and a heater 7 is installed on one side of the circulation pump 6. An external connecting pipe 8 is connected to one side of the heater 7. A temperature sensor 9 is installed on the upper left side inside the tank assembly 1. The tank assembly 1 also includes a heat-conducting copper pipe 103 and an inner liner 104. The heat-conducting copper pipe 103 is embedded inside the main body layer 102, and the inner liner 104 is installed inside the main body layer 102. An external disturbance is installed inside the inner liner 104. The outer disturbance plate 5 has an inner disturbance plate 4 on its inner side. The inner disturbance plate 4 has a main shaft 3 installed on its inner side, and the main shaft 3 is welded to the inner disturbance plate 4. The internal temperature is detected by the temperature sensor 9. The outer connecting pipe 8 connects the heat-conducting copper pipe 103 to the heater 7 and the circulation pump 6. The water in the heat-conducting copper pipe 103 flows through the heater 7 under the drive of the circulation pump 6 and is heated to a suitable temperature to maintain the glass fiber emulsion at a suitable storage temperature. The motor 2 drives the inner disturbance plate 4 and the outer disturbance plate 5 to rotate through the main shaft 3, thereby agitating the glass fiber emulsion, ensuring the uniformity of the emulsion, preventing sedimentation, and the discharge port 15 facilitates material processing.
[0022] like Figure 1-3As shown, an inlet 10 is installed on the upper left side of the support layer 101, and a multi-stage filter screen 11 is installed inside the inlet 10. The tank assembly 1 includes a support layer 101 and a main body layer 102, and the main body layer 102 is installed inside the support layer 101. An air inlet 12 is provided on the right side of the inlet 10, and an air outlet 13 is provided on the right side of the air inlet 12. A gas sensor 14 is installed on one side of the air outlet 13. An outlet 15 is installed on the left side of the support layer 101, and the outlet 15 is embedded in the support layer 101. Glass fiber emulsion is poured into the tank through the inlet 10. In tank assembly 1, multi-stage filters 11 sequentially intercept impurities of different particle sizes to prevent external contaminants from entering the emulsion. Inert gas is introduced through air inlet 12. When the gas sensor 14 at air outlet 13 detects continuous inert gas output, the introduction of inert gas can be stopped. The inert gas replaces the air inside the tank to prevent the emulsion from oxidizing and deteriorating. The inner lining layer 104 is composed of vinyl ester resin and surface felt, which is resistant to strong acids and alkalis and improves corrosion resistance. The main body layer 102 is made of fiberglass, which is corrosion-resistant, lightweight, high-strength, and impermeable. The support layer 101 is made of steel with high mechanical strength and better material storage effect.
[0023] Working principle: When using this storage tank for glass fiber emulsion production, firstly, the glass fiber emulsion is poured into the tank assembly 1 through the inlet 10. Multi-stage filters 11 sequentially intercept impurities of different particle sizes, preventing external contaminants from entering the emulsion. Inert gas is introduced through the air inlet 12. When the gas sensor 14 at the outlet 13 detects continuous inert gas output, the introduction of inert gas is stopped. The inert gas replaces the air inside the tank, preventing the emulsion from oxidizing and deteriorating. The inner lining layer 104 is composed of vinyl ester resin and surface felt, which is resistant to strong acids and alkalis, improving corrosion resistance. The main body layer 102... Made of fiberglass, it is corrosion-resistant, lightweight, high-strength, and impermeable. The support layer 101 is made of steel with high mechanical strength, resulting in better material storage. The internal temperature is detected by temperature sensor 9. The external connecting pipe 8 connects the heat-conducting copper pipe 103 to the heater 7 and the circulation pump 6. The water in the heat-conducting copper pipe 103 flows through the heater 7 under the drive of the circulation pump 6 and is heated to a suitable temperature to maintain the fiberglass emulsion at a suitable storage temperature. The motor 2 drives the inner disturbance plate 4 and the outer disturbance plate 5 to rotate through the main shaft 3, thereby agitating the fiberglass emulsion, ensuring the uniformity of the emulsion, preventing sedimentation, and the discharge port 15 facilitates material handling.
Claims
1. A storage tank for glass fiber emulsion production, comprising a tank assembly (1) and a circulation pump (6), characterized in that, A motor (2) is installed on the right side of the tank assembly (1), a circulation pump (6) is installed below the tank assembly (1), and a heater (7) is installed on one side of the circulation pump (6). An external connecting pipe (8) is connected to one side of the heater (7). A temperature sensor (9) is installed on the upper left side inside the tank assembly (1).
2. A storage tank for glass fiber emulsion production according to claim 1, characterized in that, The tank assembly (1) includes a support layer (101) and a main body layer (102), and the main body layer (102) is installed on the inner side of the support layer (101).
3. A storage tank for glass fiber emulsion production according to claim 2, characterized in that, The tank assembly (1) also includes a heat-conducting copper pipe (103) and an inner lining (104). The heat-conducting copper pipe (103) is embedded in the interior of the main body layer (102), and the inner lining (104) is installed on the inner side of the main body layer (102).
4. A storage tank for glass fiber emulsion production according to claim 3, characterized in that, An outer disturbance plate (5) is installed inside the inner lining layer (104), and an inner disturbance plate (4) is provided on the inner side of the outer disturbance plate (5).
5. A storage tank for glass fiber emulsion production according to claim 4, characterized in that, The inner side of the inner disturbance plate (4) is equipped with a main shaft (3), and the main shaft (3) and the inner disturbance plate (4) are welded together.
6. A storage tank for glass fiber emulsion production according to claim 2, characterized in that, The support layer (101) has an inlet (10) installed on the upper left side, and the inlet (10) has a multi-stage filter screen (11) installed inside.
7. A storage tank for glass fiber emulsion production according to claim 6, characterized in that, An air inlet (12) is provided on the right side of the feed inlet (10), and an air outlet (13) is provided on the right side of the air inlet (12). A gas sensor (14) is installed on one side of the air outlet (13).
8. A storage tank for glass fiber emulsion production according to claim 2, characterized in that, The support layer (101) has a discharge port (15) installed on its left side, and the discharge port (15) is embedded in the support layer (101).