A glass fiber scrim reinforcement impregnation device
By designing a glass fiber mesh reinforcement soaking device with a visible cover, partition, and steering rod, multiple soaking and debris removal were achieved, solving the problems of poor sealing and incomplete mesh soaking, thus improving product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANTONG SHENMA NEW MATERIAL TECH CO LTD
- Filing Date
- 2025-06-11
- Publication Date
- 2026-06-02
AI Technical Summary
Existing glass fiber mesh reinforcement soaking devices suffer from poor sealing, dust contamination, and incomplete soaking of the mesh, leading to a decline in the quality of the reinforcement.
An immersion device with a visible cover, partition, and steering rod was designed to ensure that the mesh fabric is fully immersed in the reinforcing agent and remove debris through multiple immersions and filtration, thus preventing dust contamination.
It improves the impregnation effect of fiberglass mesh, reduces the probability of unimpregnated reinforcing agents and the debris carrying rate, and improves product quality.
Smart Images

Figure CN224313855U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of glass fiber reinforcing agent impregnation equipment, specifically a glass fiber mesh cloth reinforcing agent impregnation device. Background Technology
[0002] Fiberglass mesh is made of woven fiberglass fabric as the base material, coated with a polymer anti-emulsion. This gives it excellent alkali resistance, flexibility, and high tensile strength in both warp and weft directions, making it widely used for thermal insulation, waterproofing, fireproofing, and crack resistance of interior and exterior walls in buildings.
[0003] Some fiberglass meshes are soaked in reinforcing agents to improve their tensile and tear resistance. Currently, most fiberglass mesh reinforcing agent soaking devices adopt a tank structure. This structure is prone to contact with dust during soaking due to its lack of sealing, which can affect the quality of the reinforcing agent. Some sealed soaking tank structures exist, but traditional sealed soaking tank structures generally only immerse the reinforcing agent once, which may result in the reinforcing agent not being completely immersed into the mesh openings of the fiberglass mesh, thus affecting the quality of the fiberglass mesh. At the same time, debris may float on the surface of the reinforcing agent, causing some debris to re-adhere to the surface of the fiberglass mesh. Therefore, an improved technology is urgently needed to solve this problem existing in the current technology. Utility Model Content
[0004] The purpose of this invention is to provide a glass fiber mesh reinforcement soaking device to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a glass fiber mesh reinforcing agent soaking device, comprising a soaking chamber, a visible cover, a first partition, and a second partition. The upper part of one side of the soaking chamber is inclined. A through groove is formed on the inclined surface of the soaking chamber, and a boss is provided around the periphery of the through groove. A visible cover is hinged to the boss. The soaking chamber contains a first partition and a second partition. Both the first and second partitions have flow channels, and a filter screen is provided at the flow channels. A top plate is provided at the top of the soaking chamber. The top plate has an inlet and an outlet. A feed guide roller is mounted on the upper surface of the top plate, near the inlet, via a bracket. A discharge steering roller is mounted on the upper surface of the top plate and located at the discharge port via a bracket. A first steering rod is located at the upper end of the soaking chamber and directly below the inlet. A second steering rod and a third steering rod are located inside the soaking chamber and on the side of the second partition near the visible cover. A fourth steering rod is located inside the soaking chamber and above the first partition. A fifth steering rod is located inside the soaking chamber and directly below the discharge port. The third and fifth steering rods are both located at the bottom of the soaking chamber. The second partition is located on the side of the line connecting the third and fourth steering rods and near the visible cover. A gap is left between the bottom of the second partition and the bottom of the soaking chamber.
[0006] Preferably, the present invention provides a glass fiber mesh reinforcement soaking device, wherein the visible cover includes a frame, glass and a handle, the inner side of the frame is provided with glass, the upper part of the frame is hinged to a boss by a hinge, and the outer surface of the lower part of the frame is provided with a handle.
[0007] Preferably, the glass fiber mesh cloth reinforcing agent soaking device provided by this utility model has a reinforcing agent addition port on the upper part of the soaking chamber away from the visible cover plate, and a waste discharge port on the bottom of the soaking chamber located on the side of the first partition plate near the visible cover plate.
[0008] Preferably, the glass fiber mesh reinforcement soaking device provided by this utility model has two air knives with opposing air outlets inside the soaking chamber and below the discharge port, and the two air knives are respectively located on both sides of the line connecting the discharge port and the fifth steering rod.
[0009] Preferably, the glass fiber mesh reinforcement soaking device provided by this utility model has a base at the bottom of the soaking chamber.
[0010] Preferably, the glass fiber mesh reinforcement soaking device provided by this utility model has a visual level gauge installed on one side of the soaking chamber.
[0011] Compared with the prior art, the beneficial effects of this utility model are:
[0012] (1) The immersion chamber is equipped with a partition, and the partition has a flow channel and a filter screen is installed at the flow channel. When the glass fiber enters the immersion chamber, it is completely immersed in the reinforcing agent through the first, second and third turning rods, leaves the reinforcing agent through the fourth turning rod, and is re-immersed in the reinforcing agent through the fifth turning rod. The reinforcing agent is immersed twice first to reduce the probability that the reinforcing agent is not immersed in the mesh of the glass fiber mesh, thereby ensuring the immersion effect.
[0013] (2) When the reinforcing agent is first immersed, the glass fiber debris remains in the reinforcing agent and is trapped in the immersion chamber by the filter screen. The second partition keeps the debris in the immersion chamber near the visible cover. By opening the visible cover, it is easy to clean the floating debris. The second partition ensures that there is no floating debris in the area where the glass fiber mesh first leaves the reinforcing agent. When the glass fiber mesh is immersed in the reinforcing agent for the second time after passing the first steering rod, the surface of the glass fiber mesh is basically free of debris, reducing the debris carrying rate on the surface of the glass fiber mesh and thus improving the quality of the glass fiber mesh.
[0014] (3) By setting a visible cover, the working status can be viewed and the soaking chamber can be closed. Compared with the open soaking tank structure, it can avoid dust from coming into contact with the reinforcing agent and improve the soaking effect. Attached Figure Description
[0015] Figure 1 This is a side view cross-sectional structural diagram of the present invention;
[0016] Figure 2 This is a side view of the appearance structure of this utility model;
[0017] Figure 3 This is a front view structural diagram of the present utility model.
[0018] In the diagram: 1. Soaking chamber; 2. Visible cover; 3. First partition; 4. Second partition; 5. Boss; 6. Filter screen; 7. Top plate; 8. Inlet; 9. Outlet; 10. Inlet guide roller; 11. Outlet guide roller; 12. First guide rod; 13. Second guide rod; 14. Third guide rod; 15. Fourth guide rod; 16. Fifth guide rod; 17. Reinforcing agent addition port; 18. Waste discharge port; 19. Air knife; 20. Base; 21. Visible level gauge; 201. Frame; 202. Glass; 203. Handle. Detailed Implementation
[0019] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0020] It should be noted that in the description of this utility model, the terms "inner", "outer", "upper", "lower", "both sides", "one end", "the other end", "left", "right", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0021] Please see Figure 1-3This utility model provides a technical solution: a glass fiber mesh reinforcement soaking device, including a soaking chamber 1, a visible cover plate 2, a first partition plate 3, and a second partition plate 4. The upper part of one side of the soaking chamber 1 is inclined, and a through groove is opened in the soaking chamber 1 at the inclined surface, and a boss 5 is provided around the through groove. The visible cover plate 2 is hinged to the boss 5. The first partition plate 3 and the second partition plate 4 are provided inside the soaking chamber 1. Both the first partition plate 3 and the second partition plate 4 are provided with flow grooves, and a filter screen 6 is provided at the flow grooves. A top plate 7 is provided at the top of the soaking chamber 1. The top plate 7 has an inlet 8 and an outlet 9. An inlet guide roller 10 is mounted on the upper surface of the top plate 7 at the inlet 8 via a bracket. An outlet guide roller 11 is mounted on the upper surface of the top plate 7 at the outlet 9 via a bracket. A first guide rod 12 is located at the upper end of the soaking chamber 1, directly below the inlet 8. A second guide rod 13 and a third guide rod 14 are located inside the soaking chamber 1, near the visible cover 2 of the second partition 4. A fourth guide rod 15 is located inside the soaking chamber 1, above the first partition 3. A fifth steering rod 16 is located directly below the discharge port 9. Both the third steering rod 14 and the fifth steering rod 16 are located at the bottom of the soaking chamber 1. A second partition 4 is located on the line connecting the third steering rod 14 and the fourth steering rod 15, near the side of the visible cover plate 2. A gap is left between the bottom of the second partition 4 and the bottom of the soaking chamber 1. An additive inlet 17 is located at the upper part of the soaking chamber 1 on the side away from the visible cover plate 2. A waste discharge port 18 is located at the bottom of the soaking chamber 1 on the side of the first partition 3 near the visible cover plate 2. The additive inlet 17 allows for the addition of additives to be processed. The reinforcing agent is added, and the waste liquid can be discharged through the waste outlet 18 during the cleaning of the soaking chamber 1. Inside the soaking chamber 1 and below the discharge outlet 9, there are two air knives 19 with air outlets facing each other. The two air knives 19 are located on both sides of the line connecting the discharge outlet 9 and the fifth steering rod 16. The two air knives 19 facilitate the blowing away of excess reinforcing agent from the surface of the glass fiber mesh. A base 20 is provided at the bottom of the soaking chamber 1 to achieve overall elevation and support. A visual liquid level gauge 21 is provided on one side of the soaking chamber 1 to facilitate quick viewing of the liquid level inside the soaking chamber 1.
[0022] like Figure 3 As shown, the visible cover 2 includes a frame 201, a glass 202, and a handle 203. The glass 202 is provided on the inner side of the frame 201. The upper part of the frame 201 is hinged to the boss 5 via a hinge. The handle 203 is provided on the outer surface of the lower part of the frame 201. Through this structure, the condition inside the soaking chamber 1 can be observed through the glass 202 on the visible cover 2, thereby determining whether the debris needs to be cleaned.
[0023] Installation method and operating principle: First, install the first steering rod 12, second steering rod 13, third steering rod 14, fourth steering rod 15, fifth steering rod 16, first partition 3, second partition 4, and two air knives 19 in their corresponding positions inside the soaking chamber 1. Filter screens 6 are installed in the flow channels of both the first partition 3 and the second partition 4. The bottom of the first partition 3 is connected to the bottom of the soaking chamber 1, and a gap is left between the bottom of the second partition 4 and the bottom of the soaking chamber 1 to ensure that the fiberglass mesh can pass underneath the second partition 4. Then, cover the chamber with the top cover and tighten it with bolts. Install the visible cover 2 onto the protrusion 5 on the inclined surface of the soaking chamber 1 using hinges to complete the installation. In use, the fiberglass mesh is guided through the feed guide roller 10 and enters the soaking chamber 1 through the feed inlet 8. It then sequentially passes through the first guide rod 12, the second guide rod 13, the third guide rod 14, the fourth guide rod 15, and the fifth guide rod 16, exiting the soaking chamber 1 through the discharge outlet 9. The reinforcing agent is added to the soaking chamber 1 through the reinforcing agent addition port 17, ensuring the liquid level does not exceed the height of the bottom of the boss 5. The fiberglass mesh is then pulled and wound up by a winding device, thus completing the soaking treatment of the fiberglass mesh with the reinforcing agent before winding (drying is required before winding). Before the fiberglass mesh leaves the soaking chamber 1, excess reinforcing liquid is blown away by two air knives 19. This utility model has a reasonable structure. The immersion chamber 1 is equipped with a partition, and the partition has a flow channel with a filter screen 6 located at the flow channel. When glass 202 fibers enter the immersion chamber 1, they are first completely immersed in the reinforcing agent through the first steering rod 12, the second steering rod 13, and the third steering rod 14. They then leave the reinforcing agent through the fourth steering rod 15 and are re-immersed through the fifth steering rod 16. This first two immersions reduce the probability of the reinforcing agent not being absorbed into the glass fiber mesh, thus ensuring the immersion effect. Secondly, during the first immersion, glass 202 fiber fragments remain in the reinforcing agent and are trapped in the immersion chamber 1 by the filter screen 6. The second partition 4 keeps debris inside the immersion chamber 1 near the visible cover 2. Opening the visible cover 2 facilitates the cleaning of floating debris. The second partition 4 ensures that there is no floating debris in the area where the fiberglass mesh first leaves the reinforcing agent. When the fiberglass mesh is immersed in the reinforcing agent for the second time after passing the first steering rod 12, the surface of the fiberglass mesh is basically free of debris, reducing the debris carrying rate on the surface of the fiberglass mesh and thus improving the quality of the fiberglass mesh. The visible cover 2 also allows for monitoring of the working status and enables the immersion chamber 1 to be closed. Compared with an open immersion tank structure, this avoids dust contact with the reinforcing agent and improves the immersion effect.
[0024] Any aspects of this utility model not described in detail are well-known technologies to those skilled in the art.
[0025] Finally, it should be noted that the above specific embodiments are only used to illustrate the technical solution of this utility model and not to limit it. Although this utility model has been described in detail with reference to the embodiments, those skilled in the art should understand that modifications and equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications and substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A device for impregnating glass fiber mesh with reinforcing agent, characterized in that: The device includes a soaking chamber (1), a viewing cover (2), a first partition (3), and a second partition (4). The upper part of one side of the soaking chamber (1) is a slope. A through groove is provided on the slope of the soaking chamber (1), and a boss (5) is provided on the periphery of the through groove. The viewing cover (2) is hinged to the boss (5). The first partition (3) and the second partition (4) are provided inside the soaking chamber (1). Both the first partition (3) and the second partition (4) are provided with flow grooves, and a filter screen (6) is provided at the flow grooves. A top plate (7) is provided at the top of the soaking chamber (1). The top plate (7) is provided with an inlet (8) and an outlet (9). A feed guide roller (10) is provided on the upper surface of the top plate (7) at the inlet (8) through a bracket. An outlet is provided on the upper surface of the top plate (7) at the outlet (9) through a bracket. A first steering rod (12) is provided at the upper end of the soaking chamber (1) and directly below the feed inlet (8). A second steering rod (13) and a third steering rod (14) are provided inside the soaking chamber (1) and on the side of the second partition (4) near the visible cover (2). A fourth steering rod (15) is provided inside the soaking chamber (1) and above the first partition (3). A fifth steering rod (16) is provided inside the soaking chamber (1) and directly below the discharge outlet (9). The third steering rod (14) and the fifth steering rod (16) are both provided at the bottom of the soaking chamber (1). The second partition (4) is located on the side of the line connecting the third steering rod (14) and the fourth steering rod (15) and near the visible cover (2). There is a gap between the bottom of the second partition (4) and the bottom of the soaking chamber (1).
2. The glass fiber mesh reinforcement impregnation device according to claim 1, characterized in that: The visible cover (2) includes a frame (201), glass (202) and a handle (203). The frame (201) has glass (202) on its inner side. The upper part of the frame (201) is hinged to the boss (5) by a hinge. The lower outer surface of the frame (201) has a handle (203).
3. The glass fiber mesh reinforcement impregnation device according to claim 1, characterized in that: The soaking chamber (1) is provided with an enhancer addition port (17) on the upper part of the side away from the visible cover plate (2), and the soaking chamber (1) is provided with a waste discharge port (18) on the bottom of the side of the first partition plate (3) near the visible cover plate (2).
4. The glass fiber mesh reinforcement impregnation device according to claim 1, characterized in that: Inside the soaking chamber (1) and below the discharge port (9), there are two air knives (19) with air outlets facing each other. The two air knives (19) are located on both sides of the line connecting the discharge port (9) and the fifth steering rod (16).
5. The glass fiber mesh reinforcement impregnation device according to claim 1, characterized in that: The soaking chamber (1) is provided with a base (20) at its bottom.
6. The glass fiber mesh reinforcement impregnation device according to claim 1, characterized in that: A visual level gauge (21) is installed on one side of the soaking chamber (1).