A modular, assembled fiberglass bamboo raft structure
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-03
- Publication Date
- 2026-08-14
AI Technical Summary
[0002]玻璃钢,学名纤维增强塑料,俗称FRP(Fiber Reinforced Plastics),即纤维增强复合塑料,一般指用玻璃纤维增强不饱和聚酯、环氧树脂与酚醛树脂基体,以玻璃纤维或其制品作增强材料的增强塑料,称为玻璃纤维增强塑料,或称为玻璃钢,不同于钢化玻璃,由于所使用的树脂品种不同,因此有聚酯玻璃钢、环氧玻璃钢、酚醛玻璃钢之别,质轻而硬,不导电,性能稳定,机械强度高,回收利用少,耐腐蚀,可以代替钢材制造机器零件和汽车、船舶外壳等,但现有的玻璃钢竹筏采用一体式结构,导致其有一处损坏后需要整个进行维修更换,从而增加了成本,为此,我们提出一种模块化拼装的玻璃钢竹筏结构
[0013]1、本实用新型可根据需要将多个第一玻璃钢板拼接在一起,然后将第二玻璃钢板铺在第一玻璃钢板的顶部,并使第一玻璃钢侧板位于第二玻璃钢侧板的上方,最后将螺栓拧入螺孔内,从而可实现对本玻璃钢竹筏进行模块化拼装的目的。
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Figure CN224631878U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fiberglass bamboo raft technology, specifically a modular fiberglass bamboo raft structure. Background Technology
[0002] Fiberglass, scientifically known as fiber-reinforced plastic, commonly called FRP (Fiber Reinforced Plastics), is a type of fiber-reinforced composite plastic. It generally refers to reinforced plastics using glass fibers to reinforce unsaturated polyester, epoxy resin, and phenolic resin matrices, with glass fibers or their products as the reinforcing material. Unlike tempered glass, it is classified as polyester fiberglass, epoxy fiberglass, and phenolic fiberglass due to the different types of resins used. It is lightweight yet hard, non-conductive, stable in performance, has high mechanical strength, low recyclability, and is corrosion-resistant. It can replace steel in the manufacture of machine parts and the outer shells of automobiles and ships. However, existing fiberglass bamboo rafts use a one-piece structure, which means that if one part is damaged, the entire structure needs to be repaired and replaced, increasing costs. Therefore, we propose a modular, assembled fiberglass bamboo raft structure. Utility Model Content
[0003] The purpose of this invention is to provide a modularly assembled fiberglass bamboo raft structure to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a modularly assembled fiberglass bamboo raft structure, comprising a first fiberglass plate and a second fiberglass plate, wherein a first fiberglass side plate is fixedly connected to the upper end of the outer side of the first fiberglass plate, and a second fiberglass side plate is fixedly connected to the lower end of the outer side of the first fiberglass plate; the inner surfaces of the second fiberglass plate, the second fiberglass side plate, and the first fiberglass side plate are all provided with multiple equally spaced screw holes, and the second fiberglass plate, the second fiberglass side plate, and the first fiberglass side plate are connected by bolts.
[0005] Preferably, the outer surfaces of the first fiberglass plate, the second fiberglass plate, the first fiberglass side plate, and the second fiberglass side plate are all provided with a first protective layer, and the outer surface of the first protective layer is provided with a second protective layer.
[0006] Preferably, the first protective layer comprises a magnesium hydroxide coating and a modified high-chlorinated polyethylene coating, and the second protective layer comprises a tungsten carbide coating and an aluminum oxide coating.
[0007] Preferably, the magnesium hydroxide coating is applied to the outer surfaces of the first fiberglass plate, the second fiberglass plate, the first fiberglass side plate, and the second fiberglass side plate, and the modified high-chlorinated polyethylene coating is applied to the outer surface of the magnesium hydroxide coating.
[0008] Preferably, the magnesium hydroxide coating and the modified high-chlorinated polyethylene coating have the same thickness, and the thickness of the modified high-chlorinated polyethylene coating is 150 to 250 micrometers.
[0009] Preferably, the tungsten carbide coating is applied to the outer surface of the modified high-chlorinated polyethylene coating, and the alumina coating is applied to the outer surface of the tungsten carbide coating.
[0010] Preferably, the tungsten carbide coating and the alumina coating have the same thickness, and the thickness of the alumina coating is two hundred to four hundred micrometers.
[0011] Preferably, the second fiberglass sheet, the second fiberglass side plate, and the first fiberglass side plate have the same thickness, and the second fiberglass side plate and the first fiberglass side plate have the same width.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] 1. This utility model can splice multiple first fiberglass plates together as needed, then lay the second fiberglass plate on top of the first fiberglass plate, and place the first fiberglass side plate above the second fiberglass side plate. Finally, screw the bolts into the screw holes, thereby achieving the purpose of modular assembly of this fiberglass bamboo raft.
[0014] 2. This utility model provides a second protective layer, which includes an alumina coating that provides a first layer of wear-resistant protection to the outer surfaces of the first fiberglass plate, the second fiberglass plate, the first fiberglass side plate, and the second fiberglass side plate. Furthermore, the tungsten carbide coating provides a second layer of wear-resistant protection to the outer surfaces of the first fiberglass plate, the second fiberglass plate, the first fiberglass side plate, and the second fiberglass side plate after the alumina coating is damaged. The first protective layer also includes a modified high-chlorinated polyethylene coating that provides a first layer of fire-resistant protection to the outer surfaces of the first fiberglass plate, the second fiberglass plate, the first fiberglass side plate, and the second fiberglass side plate after the tungsten carbide coating is damaged. Additionally, the magnesium hydroxide coating provides a second layer of fire-resistant protection to the outer surfaces of the first fiberglass plate, the second fiberglass plate, the first fiberglass side plate, and the second fiberglass side plate after the modified high-chlorinated polyethylene coating is damaged. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is a schematic diagram of the first fiberglass plate structure of this utility model;
[0017] Figure 3 This is a schematic diagram showing the connection between the first protective layer, the second protective layer, and the first fiberglass plate of this utility model;
[0018] Figure 4This is a schematic diagram of the first protective layer structure of this utility model;
[0019] Figure 5 This is a schematic diagram of the second protective layer structure of this utility model.
[0020] In the figure: First fiberglass plate 1, Second fiberglass plate 2, Screw hole 3, First fiberglass side plate 4, Second fiberglass side plate 5, First protective layer 6, Magnesium hydroxide coating 61, Modified high-chlorinated polyethylene coating 62, Second protective layer 7, Tungsten carbide coating 71, Alumina coating 72, Bolt 8. Detailed Implementation
[0021] The technical solutions of the present 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 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.
[0022] The components of this application, including the first fiberglass plate 1, the second fiberglass plate 2, the screw hole 3, the first fiberglass side plate 4, the second fiberglass side plate 5, the first protective layer 6, the magnesium hydroxide coating 61, the modified high-chlorinated polyethylene coating 62, the second protective layer 7, the tungsten carbide coating 71, the alumina coating 72, and the bolt 8, are all general standard parts or parts known to those skilled in the art. Their structures and principles can be learned by those skilled in the art through technical manuals or conventional experimental methods.
[0023] Example 1:
[0024] Please see Figure 1 and Figure 2 The following technical solution is provided, specifically disclosed: It includes a first fiberglass plate 1 and a second fiberglass plate 2. A first fiberglass side plate 4 is fixedly connected to the upper outer end of the first fiberglass plate 1, and a second fiberglass side plate 5 is fixedly connected to the lower outer end of the first fiberglass plate 1. Multiple equally spaced screw holes 3 are provided on the inner surfaces of the second fiberglass plate 2, the second fiberglass side plate 5, and the first fiberglass side plate 4. The second fiberglass plate 2, the second fiberglass side plate 5, and the first fiberglass side plate 4 are connected by bolts 8. The thickness of the second fiberglass plate 2, the second fiberglass side plate 5, and the first fiberglass side plate 4 are all the same, and the width of the second fiberglass side plate 5 and the first fiberglass side plate 4 are the same. Multiple first fiberglass plates 1 can be spliced together as needed, then the second fiberglass plate 2 is laid on top of the first fiberglass plate 1, with the first fiberglass side plate 4 positioned above the second fiberglass side plate 5. Finally, the bolts 8 are screwed into the screw holes 3, thereby achieving the modular assembly of this fiberglass bamboo raft.
[0025] Example 2:
[0026] Please see Figures 3-5 The following technical solution is provided, specifically disclosing that: a first protective layer 6 is provided on the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5, and a second protective layer 7 is provided on the outer surface of the first protective layer 6. The first protective layer 6 includes a magnesium hydroxide coating 61 and a modified high-chlorinated polyethylene coating 62, and the second protective layer 7 includes a tungsten carbide coating 71 and an alumina coating 72. The magnesium hydroxide coating 61 is applied to the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5, and the modified high-chlorinated polyethylene coating 62 is applied to the outer surface of the magnesium hydroxide coating 61. The magnesium hydroxide coating 61 and the modified high-chlorinated polyethylene coating 62 have the same thickness, and the thickness of the modified high-chlorinated polyethylene coating 62 is 150 to 250 micrometers. The tungsten carbide coating 71 is applied to the outer surface of the modified high-chlorinated polyethylene coating 62, and the alumina coating 72 is applied to the outer surface of the tungsten carbide coating 71. The tungsten carbide coating 71 and the alumina coating 72... The thickness of the alumina coating 72 is the same, and the thickness of the alumina coating 72 is two hundred to four hundred micrometers. A second protective layer 7 is provided, which includes the alumina coating 72 to provide a first layer of wear-resistant protection for the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5. The tungsten carbide coating 71 can provide a second layer of wear-resistant protection for the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5 after the alumina coating 72 is damaged. A first protective layer 6 is provided, which includes the modified high-chlorinated polyethylene coating 62 to provide a first layer of fire-resistant protection for the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5 after the tungsten carbide coating 71 is damaged. The magnesium hydroxide coating 61 can provide a second layer of fire-resistant protection for the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5 after the modified high-chlorinated polyethylene coating 62 is damaged.
[0027] The working principle of this application is as follows: multiple first fiberglass plates 1 can be spliced together as needed, then a second fiberglass plate 2 is laid on top of the first fiberglass plate 1, and the first fiberglass side plate 4 is positioned above the second fiberglass side plate 5. Finally, bolts 8 are screwed into screw holes 3, thereby achieving the purpose of modular assembly of this fiberglass bamboo raft. A second protective layer 7 is provided, which includes an alumina coating 72 that can provide a first layer of wear-resistant protection for the outer surfaces of the first fiberglass plate 1, the second fiberglass plate 2, the first fiberglass side plate 4, and the second fiberglass side plate 5. Furthermore, the tungsten carbide coating 71 can protect the first fiberglass bamboo raft after the alumina coating 72 is damaged. The outer surfaces of fiberglass plate 1, second fiberglass plate 2, first fiberglass side plate 4, and second fiberglass side plate 5 are treated with a second layer of wear-resistant protection. A first protective layer 6 is provided, which includes a modified high-chlorinated polyethylene coating 62 that can provide a first layer of fire-resistant protection to the outer surfaces of the first fiberglass plate 1, second fiberglass plate 2, first fiberglass side plate 4, and second fiberglass side plate 5 after the tungsten carbide coating 71 is damaged. The magnesium hydroxide coating 61 can also provide a second layer of fire-resistant protection to the outer surfaces of the first fiberglass plate 1, second fiberglass plate 2, first fiberglass side plate 4, and second fiberglass side plate 5 after the modified high-chlorinated polyethylene coating 62 is damaged.
[0028] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A modularly assembled fiberglass bamboo raft structure, comprising a first fiberglass plate (1) and a second fiberglass plate (2), characterized in that: The upper end of the outer side of the first fiberglass plate (1) is fixedly connected to a first fiberglass side plate (4), and the lower end of the outer side of the first fiberglass plate (1) is fixedly connected to a second fiberglass side plate (5). The inner surfaces of the second fiberglass plate (2), the second fiberglass side plate (5) and the first fiberglass side plate (4) are provided with multiple equally spaced screw holes (3), and the second fiberglass plate (2), the second fiberglass side plate (5) and the first fiberglass side plate (4) are connected by bolts (8).
2. The modularly assembled fiberglass bamboo raft structure according to claim 1, characterized in that: The outer surfaces of the first fiberglass plate (1), the second fiberglass plate (2), the first fiberglass side plate (4), and the second fiberglass side plate (5) are all provided with a first protective layer (6), and the outer surface of the first protective layer (6) is provided with a second protective layer (7).
3. The modularly assembled fiberglass bamboo raft structure according to claim 2, characterized in that: The first protective layer (6) includes a magnesium hydroxide coating (61) and a modified high-chlorinated polyethylene coating (62), and the second protective layer (7) includes a tungsten carbide coating (71) and an aluminum oxide coating (72).
4. The modularly assembled fiberglass bamboo raft structure according to claim 3, characterized in that: The magnesium hydroxide coating (61) is applied to the outer surfaces of the first fiberglass plate (1), the second fiberglass plate (2), the first fiberglass side plate (4), and the second fiberglass side plate (5), and the modified high-chlorinated polyethylene coating (62) is applied to the outer surface of the magnesium hydroxide coating (61).
5. The modularly assembled fiberglass bamboo raft structure according to claim 3, characterized in that: The magnesium hydroxide coating (61) and the modified high-chlorinated polyethylene coating (62) have the same thickness, and the thickness of the modified high-chlorinated polyethylene coating (62) is between 150 and 250 micrometers.
6. The modularly assembled fiberglass bamboo raft structure according to claim 3, characterized in that: The tungsten carbide coating (71) is applied to the outer surface of the modified high-chlorinated polyethylene coating (62), and the alumina coating (72) is applied to the outer surface of the tungsten carbide coating (71).
7. The modularly assembled fiberglass bamboo raft structure according to claim 3, characterized in that: The tungsten carbide coating (71) and the alumina coating (72) have the same thickness, and the thickness of the alumina coating (72) is two hundred to four hundred micrometers.
8. The modularly assembled fiberglass bamboo raft structure according to claim 1, characterized in that: The second fiberglass plate (2), the second fiberglass side plate (5) and the first fiberglass side plate (4) have the same thickness, and the second fiberglass side plate (5) and the first fiberglass side plate (4) have the same width.