Fireproof corrosion-resistant aluminum veneer reinforcing structure
By setting a fire-proof layer of inorganic fire-resistant fiber material, a corrosion-resistant layer of fluorocarbon coating and an internal reinforcement mechanism of high-strength fiber reinforcement on the aluminum veneer, the problem of degraded fire-resistant performance and poor corrosion resistance in special environments is solved, and higher fire-resistant and corrosion-resistant performance is achieved, and the service life is extended.
Patent Information
- Application Number
- CN202510453422.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2025-05-30
AI Technical Summary
In special environments such as high-rise buildings, fire-resistant coatings are prone to fall off, resulting in a degradation of fire resistance. When facing harsh environments such as strong acid and alkali, the corrosion resistance effect is not ideal, resulting in surface corrosion spots, affecting service life and aesthetics.
A fire-resistant and corrosion-resistant aluminum veneer reinforced structure is adopted, including an aluminum veneer body, a fire-resistant layer, a corrosion-resistant layer and an internal reinforcement mechanism. The fire-resistant layer uses inorganic fire-resistant fiber material, and the corrosion-resistant layer uses a coating formed by the fluorocarbon coating process. The internal reinforcement mechanism is composed of high-strength fiber reinforcement, and an external reinforcement mechanism is provided on the outside to improve overall strength and wear resistance.
It effectively improves the fire resistance and corrosion resistance of aluminum veneer, meets the requirements of fire resistance levels in high-rise buildings, and the fire-proof layer is not easy to fall off. The corrosion-resistant layer can effectively resist the corrosion of chemical substances such as acid and alkali, extends the service life and improves the aesthetics.
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Figure CN120061530A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building decoration materials, and particularly to a fireproof and corrosion-resistant aluminum single plate reinforcement structure. Background Technique
[0002] As a commonly used building decoration material, aluminum single plates have been widely used in fields such as building curtain walls and interior decoration due to their advantages of light weight, high strength, and easy processing and forming. However, in some special use environments, such as high-rise buildings, chemical factories, etc., higher requirements are put forward for the fireproof performance and corrosion resistance of aluminum single plates.
[0003] During the long-term use of existing aluminum single plates, the fireproof coating is prone to peeling off, resulting in a decline in fireproof performance. In terms of corrosion resistance, the existing surface treatment process has an unsatisfactory corrosion resistance effect when facing harsh environments such as strong acids and alkalis. Corrosion spots easily appear on the surface of aluminum single plates, affecting their service life and aesthetics. In view of the above problems, a fireproof and corrosion-resistant aluminum single plate reinforcement structure is proposed. Summary of the Invention
[0004] The purpose of the present invention is to provide a fireproof and corrosion-resistant aluminum single plate reinforcement structure to solve the problems in the prior art that the fireproof coating is prone to peeling off during operation, resulting in a decline in fireproof performance, and in terms of corrosion resistance, the existing surface treatment process has an unsatisfactory corrosion resistance effect when facing harsh environments such as strong acids and alkalis, and corrosion spots easily appear on the surface of aluminum single plates, affecting their service life and aesthetics.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A fireproof and corrosion-resistant aluminum single plate reinforcement structure, including an aluminum single plate body. On one side of the outer wall of the aluminum single plate body, there is a fireproof layer. On the other side of the outer wall of the aluminum single plate body, there is a corrosion-resistant layer connected. Inside the aluminum single plate body, there is an internal reinforcement mechanism. The aluminum single plate body includes a base aluminum plate. The internal reinforcement mechanism includes an internal reinforcement plate body. Inside the internal reinforcement plate body, a number of internal support square bars are vertically arranged and distributed. Inside the internal reinforcement plate body, a number of vertical ribs are horizontally arranged and distributed. The internal support square bars and the vertical ribs are cross-distributed. On both sides of the outer wall of the internal reinforcement plate body, a number of reinforcement vertical bars are horizontally arranged and distributed. On both sides of the internal reinforcement plate body, a number of reinforcement horizontal bars are vertically arranged and distributed. The reinforcement vertical bars and the reinforcement horizontal bars are cross-distributed.
[0006] Preferably, an external reinforcement mechanism is provided on the outer side of the fireproof layer. The corrosion-resistant layer is arranged on the other side inside the external reinforcement mechanism. The external reinforcement mechanism includes an outer shell body. A number of wear-resistant convex points are evenly distributed on both sides of the outer shell body.
[0007] Preferably, one end of the outer strengthening mechanism is fixedly installed with a docking mechanism, and several splicing mechanisms are evenly distributed at the other end of the outer strengthening mechanism. The docking mechanism and the splicing mechanism are connected by clamping.
[0008] Preferably, the docking mechanism includes a docking strip, and several docking grooves are evenly opened on one side of the docking strip.
[0009] Preferably, several limiting blocks are evenly and symmetrically distributed on both sides of the docking strip, and limiting nails are connected to the sides of the limiting blocks.
[0010] Preferably, the splicing mechanism includes a splicing block. Telescopic sleeves are fixedly installed on both sides of the splicing block. The two ends of the inner side of the telescopic sleeve are movably connected with telescopic rods, and positioning holes are opened through one ends of the telescopic rods.
[0011] Preferably, a guiding groove is opened on one side of the telescopic sleeve, and sliding blocks are symmetrically and movably connected inside the guiding groove.
[0012] Preferably, a handle is fixedly installed on one side of the sliding block, a docking seat is fixedly connected to the sliding block, and a spring member is connected between the two docking seats.
[0013] Preferably, several embedding vertical grooves are evenly distributed horizontally inside the base aluminum plate, and several embedding horizontal grooves are evenly distributed vertically inside the base aluminum plate. The embedding vertical grooves and the embedding horizontal grooves are cross-distributed.
[0014] Preferably, a limiting hole is opened on the side of the limiting block, and the limiting nail is connected inside the limiting hole.
[0015] Compared with the prior art, the beneficial effects of the present invention are: 1. In the present invention, an embedded vertical groove and an embedded horizontal groove are provided on the inner side of the base aluminum plate. The base aluminum plate is a plate body made of high-quality aluminum alloy material with a thickness of 1 - 3 mm. The aluminum alloy material contains appropriate amounts of alloy elements such as magnesium and manganese to improve the strength and hardness of the aluminum plate, facilitating the clamping connection with the reinforcing vertical bars and reinforcing horizontal bars distributed on the inner reinforcing plate body, thereby enhancing the inner support stability. At the same time, inner support square bars and vertical ribs are vertically and horizontally interspersed on the inner side of the inner reinforcing plate body, which is conducive to providing the effect of cross inner support, enhancing the overall inner support stability, ensuring the stable use of the whole, and improving the overall strength. By distributing the fireproof layer and the corrosion-resistant layer on the outer side of the aluminum single plate body, it is conducive to providing fireproof and anti-corrosion effects. The fireproof layer is arranged on one side surface of the base aluminum plate and is made of inorganic fireproof fiber material with a thickness of 0.5 - 2 mm. The inorganic fireproof fiber material has good heat insulation performance and incombustibility, which can effectively prevent the transfer of heat and improve the fireproof grade of the aluminum single plate. The fireproof and corrosion-resistant aluminum single plate reinforcing structure effectively improves the fireproof performance of the aluminum single plate by setting the fireproof layer and using inorganic fireproof fiber material, which can meet the requirements of high-rise buildings and other for fireproof grades, and the fireproof layer is not easy to fall off, and the fireproof performance is stable during long-term use. The corrosion-resistant layer is arranged on the other side surface of the base aluminum plate, and the corrosion-resistant layer is a coating formed by fluorocarbon coating process with a thickness of 20 - 40 μm. The fluorocarbon coating has excellent chemical stability and weather resistance, which can effectively resist the erosion of chemical substances such as acids, alkalis, and salts, and improve the corrosion-resistant performance of the aluminum single plate. The internal reinforcing mechanism is arranged inside the base aluminum plate and is composed of several high-strength fiber ribs. The high-strength fiber ribs are evenly distributed inside the base aluminum plate, the diameter of the fiber ribs is 0.1 - 0.5 mm, and the distance between adjacent fiber ribs is 10 - 30 mm. The high-strength fiber ribs are made of glass fiber or carbon fiber, which can significantly improve the strength and rigidity of the aluminum single plate without adding too much weight.
[0016] 2. In the present invention, the outer shell is sleeved on the outermost side. The outer shell can improve the external strength, further enhance the overall strength, and is conducive to further improving the durability. At the same time, a number of wear-resistant convex points are evenly distributed on the outer wall of the outer shell, which is conducive to increasing the wear-resistant performance, effectively improving the wear-resistant performance, and extending the service life of the aluminum single plate.
[0017] 3. In the present invention, by arranging the docking mechanism and the splicing mechanism on both sides of the outer strengthening mechanism respectively, a docking groove is provided on the side of the docking strip and is connected to the splicing block, thereby forming an effect of rapid splicing. The rapid splicing is beneficial to improving the convenience of installation. Moreover, the base aluminum plate is designed as a narrow-body structure, which is beneficial to reducing the weight and thus effectively improving the convenience of use. The spring member inside the telescopic sleeve uses elasticity to push the telescopic rod to extend towards both ends, and then pushes the telescopic rod to insert into the inside of the limit block, which is beneficial to realizing the limiting function after splicing, and thus is beneficial to realizing the function of rapid limiting. The positioning hole and the limiting nail can realize a further stable limiting function, which is beneficial to improving the stability of use. The guide groove provides an accurate sliding space for the sliding block, which is convenient for pulling inward in cooperation with the handle during disassembly, so that the telescopic rod is withdrawn from the inside of the limiting nail, and thus is beneficial to realizing the function of rapid disassembly, ensuring the convenience and improving the operation efficiency. The docking seat is beneficial to providing a connection limit for the spring member and further improving the stability during the movement process. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is an exploded perspective view of a fireproof and corrosion-resistant aluminum single board strengthening structure of the present invention; Figure 2 is a three-dimensional structure schematic diagram of a fireproof and corrosion-resistant aluminum single board strengthening structure of the present invention; Figure 3 is a schematic diagram of the structure of another angle of a fireproof and corrosion-resistant aluminum single board strengthening structure of the present invention; Figure 4 is a partial structure schematic diagram of a fireproof and corrosion-resistant aluminum single board strengthening structure of the present invention; Figure 5 In the present invention Figure 1 is an enlarged structure schematic diagram of part A; Figure 6 is a structure schematic diagram of the splicing mechanism of a fireproof and corrosion-resistant aluminum single board strengthening structure of the present invention; Figure 7 is a partial structure schematic diagram of the docking mechanism of a fireproof and corrosion-resistant aluminum single board strengthening structure of the present invention.
[0019] In the figure: 1. Aluminum single plate body; 101. Base aluminum plate; 102. Embedded vertical groove; 103. Embedded horizontal groove; 2. Fireproof layer; 3. Corrosion-resistant layer; 4. Internal reinforcement mechanism; 401. Inner reinforcement plate body; 402. Inner support square bar; 403. Vertical rib; 404. Reinforcing vertical bar; 405. Reinforcing horizontal bar; 5. Outer reinforcement mechanism; 501. Outer shell; 502. Wear-resistant bump; 6. Docking mechanism; 601. Docking bar; 602. Docking groove; 603. Limit block; 604. Limit nail; 7. Splicing mechanism; 701. Splicing block; 702. Telescopic sleeve; 703. Telescopic rod; 704. Positioning hole; 705. Guide groove; 706. Sliding block; 707. Handle; 708. Docking seat; 709. Spring member. Detailed implementation mode
[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0021] Embodiment 1: As Figures 1 - 7 shown, the present invention provides a technical solution: a fireproof and corrosion-resistant aluminum single plate reinforcement structure, including an aluminum single plate body 1. A fireproof layer 2 is provided on one side of the outer wall of the aluminum single plate body 1, and a corrosion-resistant layer 3 is connected to the other side of the outer wall of the aluminum single plate body 1. An internal reinforcement mechanism 4 is provided inside the aluminum single plate body 1. The aluminum single plate body 1 includes a base aluminum plate 101. The internal reinforcement mechanism 4 includes an inner reinforcement plate body 401. A plurality of inner support square bars 402 are vertically arranged and distributed inside the inner reinforcement plate body 401. A plurality of vertical ribs 403 are horizontally arranged and distributed inside the inner reinforcement plate body 401. The inner support square bars 402 and the vertical ribs 403 are cross-distributed. A plurality of reinforcing vertical bars 404 are horizontally arranged and distributed on both sides of the outer wall of the inner reinforcement plate body 401. A plurality of reinforcing horizontal bars 405 are vertically arranged and distributed on both sides of the inner reinforcement plate body 401. The reinforcing vertical bars 404 and the reinforcing horizontal bars 405 are cross-distributed. A plurality of embedded vertical grooves 102 are horizontally and evenly distributed and opened inside the base aluminum plate 101. A plurality of embedded horizontal grooves 103 are vertically and evenly distributed and opened inside the base aluminum plate 101. The embedded vertical grooves 102 and the embedded horizontal grooves 103 are cross-distributed.
[0022] In this embodiment, an embedded vertical groove 102 and an embedded horizontal groove 103 are provided on the inner side of the base aluminum plate 101. The base aluminum plate 101 is a plate body made of high-quality aluminum alloy material with a thickness of 1-3 mm. The aluminum alloy material contains appropriate amounts of alloy elements such as magnesium and manganese to improve the strength and hardness of the aluminum plate, facilitating the clamping connection between the reinforcing vertical bars 404 and the reinforcing horizontal bars 405 distributed on the inner reinforcing plate body 401, thereby enhancing the inner support stability. At the same time, inner support square bars 402 and vertical rib bars 403 are vertically and horizontally interspersed on the inner side of the inner reinforcing plate body 401, which is conducive to providing the effect of cross inner support, improving the overall inner support stability, ensuring the stable use of the whole, and enhancing the overall strength. By arranging the fireproof layer 2 and the corrosion-resistant layer 3 on the outer side of the aluminum veneer body 1, it is conducive to providing fireproof and corrosion-resistant effects. The fireproof layer 2 is arranged on one side surface of the base aluminum plate 101 and is made of inorganic fireproof fiber material with a thickness of 0.5-2 mm. The inorganic fireproof fiber material has good heat insulation performance and non-combustibility, can effectively prevent the transfer of heat, and improve the fireproof grade of the aluminum veneer. The fireproof and corrosion-resistant aluminum veneer reinforcement structure effectively improves the fireproof performance of the aluminum veneer by arranging the fireproof layer 2 and using inorganic fireproof fiber material, can meet the requirements for fireproof grades in high-rise buildings, etc., and the fireproof layer is not easy to fall off, and the fireproof performance is stable during long-term use. The corrosion-resistant layer 3 is arranged on the other side surface of the base aluminum plate 101. The corrosion-resistant layer 3 is a coating formed by a fluorocarbon coating process with a thickness of 20-40 μm. The fluorocarbon coating has excellent chemical stability and weather resistance, can effectively resist the erosion of chemical substances such as acids, alkalis, and salts, and improve the corrosion resistance of the aluminum veneer. The internal reinforcement mechanism 4 is arranged inside the base aluminum plate 101. The internal reinforcement mechanism 4 is composed of several high-strength fiber ribs. The high-strength fiber ribs are evenly distributed in the base aluminum plate 101. The diameter of the fiber ribs is 0.1-0.5 mm, and the distance between adjacent fiber ribs is 10-30 mm. The high-strength fiber ribs are made of glass fiber or carbon fiber, which can significantly improve the strength and rigidity of the aluminum veneer without adding too much weight.
[0023] Embodiment 2: As Figures 1 - 7 shown, an outer reinforcement mechanism 5 is arranged on the outer side of the fireproof layer 2, and the corrosion-resistant layer 3 is arranged on the other side inside the outer reinforcement mechanism 5. The outer reinforcement mechanism 5 includes an outer shell body 501, and a number of wear-resistant bumps 502 are evenly distributed on both sides of the outer shell body 501.
[0024] In this embodiment, by sleeving the outer shell body 501 on the outermost side, the outer shell body 501 can improve the external strength, thereby enhancing the overall strength, which is conducive to further improving the durability. At the same time, a number of wear-resistant bumps 502 are evenly distributed on the outer wall of the outer shell body 501, which is conducive to increasing the wear resistance, effectively improving the wear resistance, and extending the service life of the aluminum veneer.
[0025] Example 3: As Figures 1 - 7 shown, a docking mechanism 6 is fixedly installed at one end of the outer strengthening mechanism 5, and a plurality of splicing mechanisms 7 are evenly distributed at the other end of the outer strengthening mechanism 5. The docking mechanism 6 and the splicing mechanism 7 are connected by clamping. The docking mechanism 6 includes a docking strip 601, and a plurality of docking grooves 602 are evenly opened on one side of the docking strip 601. A plurality of limiting blocks 603 are evenly and symmetrically distributed on both sides of the docking strip 601. A limiting nail 604 is connected to the side surface of the limiting block 603. The splicing mechanism 7 includes a splicing block 701. Telescopic sleeves 702 are fixedly installed on both sides of the splicing block 701. The inner ends of the telescopic sleeves 702 are movably connected to telescopic rods 703. A positioning hole 704 is opened through one end of the telescopic rod 703. A guiding groove 705 is opened on one side of the telescopic sleeve 702. Sliding blocks 706 are symmetrically and movably connected inside the guiding groove 705. A handle 707 is fixedly installed on one side of the sliding block 706. A docking seat 708 is fixedly connected to the sliding block 706. A spring member 709 is connected between the two docking seats 708. A limiting hole is opened on the side surface of the limiting block 603, and the limiting nail 604 is connected inside the limiting hole.
[0026] In this embodiment, by arranging the docking mechanism 6 and the splicing mechanism 7 on both sides of the outer strengthening mechanism 5 respectively, the docking grooves 602 are opened on the side surface of the docking strip 601 and are connected to the splicing block 701, so as to form a rapid splicing effect. The rapid splicing is beneficial to improving the installation convenience. Moreover, the base aluminum plate 101 is designed as a narrow body structure, which is beneficial to reducing the weight, thereby effectively improving the use convenience. The spring member 709 inside the telescopic sleeve 702 uses elasticity to push the telescopic rod 703 to extend towards both ends, and then pushes the telescopic rod 703 to be inserted into the inside of the limiting block 603, which is beneficial to realizing the limiting function after splicing, and thus is beneficial to realizing the rapid limiting function. The positioning hole 704 and the limiting nail 604 can realize a further stable limiting function, which is beneficial to improving the use stability. The guiding groove 705 provides a precise sliding space for the sliding block 706, which is convenient to pull inward in cooperation with the handle 707 during disassembly, so that the telescopic rod 703 is withdrawn from the inside of the limiting nail 604, and thus is beneficial to realizing the rapid disassembly function, ensuring the convenience and improving the operation efficiency. The docking seat 708 is beneficial to providing a connection and limiting effect on the spring member 709, and further improves the stability during the movement process.
[0027] In the present invention, when the fireproof and corrosion-resistant aluminum single plate reinforcing structure is in use, first, an embedded vertical groove 102 and an embedded horizontal groove 103 are formed on the inner side of the base aluminum plate 101. The base aluminum plate 101 is a plate body made of high-quality aluminum alloy material, with a thickness of 1-3 mm. The aluminum alloy material contains appropriate amounts of alloy elements such as magnesium and manganese to improve the strength and hardness of the aluminum plate, facilitating the clamping connection between the reinforcing vertical bars 404 and the reinforcing horizontal bars 405 distributed on the inner reinforcing plate body 401, thereby enhancing the internal support stability. At the same time, the inner support square bars 402 and the vertical ribs 403 are vertically and horizontally interspersed on the inner side of the inner reinforcing plate body 401, which is conducive to providing the effect of cross internal support, enhancing the overall internal support stability, ensuring the stable use of the whole, and improving the overall strength. By arranging the fireproof layer 2 and the corrosion-resistant layer 3 on the outer side of the aluminum single plate body 1, it is conducive to providing fireproof and corrosion-resistant effects. The fireproof layer 2 is arranged on one side surface of the base aluminum plate 101 and is made of inorganic fireproof fiber material with a thickness of 0.5-2 mm. The inorganic fireproof fiber material has good heat insulation performance and incombustibility, can effectively prevent the transfer of heat, and improve the fireproof grade of the aluminum single plate. The fireproof and corrosion-resistant aluminum single plate reinforcing structure, by setting the fireproof layer 2 and using inorganic fireproof fiber material, effectively improves the fireproof performance of the aluminum single plate, can meet the requirements for the fireproof grade of high-rise buildings, etc., and the fireproof layer is not easy to fall off, and the fireproof performance is stable during long-term use. The corrosion-resistant layer 3 is arranged on the other side surface of the base aluminum plate 101. The corrosion-resistant layer 3 is a coating formed by the fluorocarbon coating process, with a thickness of 20-40 μm. The fluorocarbon coating has excellent chemical stability and weather resistance, can effectively resist the erosion of chemical substances such as acids, alkalis, and salts, and improve the corrosion-resistant performance of the aluminum single plate. The internal reinforcing mechanism 4 is arranged inside the base aluminum plate 101. The internal reinforcing mechanism 4 is composed of several high-strength fiber ribs. The high-strength fiber ribs are evenly distributed in the base aluminum plate 101. The diameter of the fiber ribs is 0.1-0.5 mm, and the distance between adjacent fiber ribs is 10-30 mm.The high-strength fiber bars are made of glass fiber or carbon fiber, which can significantly improve the strength and rigidity of the aluminum single panel without adding too much weight. The outer shell 501 is sleeved on the outermost side. The outer shell 501 can improve the external strength, thereby enhancing the overall strength, which is beneficial to further improving the durability. At the same time, a number of wear-resistant bumps 502 are evenly distributed on the outer wall of the outer shell 501, which is beneficial to increasing the wear-resistant performance, effectively improving the wear-resistant performance, and extending the service life of the aluminum single panel. By arranging the docking mechanism 6 and the splicing mechanism 7 on both sides of the outer strengthening mechanism 5 respectively, a docking groove 602 is opened on the side of the docking strip 601, which is connected to the splicing block 701, thus forming a quick splicing effect. The quick splicing is beneficial to improving the installation convenience. Moreover, the base aluminum plate 101 is designed as a narrow body structure, which is beneficial to reducing the weight, thereby effectively improving the use convenience. The spring member 709 inside the telescopic sleeve 702 uses elasticity to push the telescopic rod 703 to extend towards both ends, and then pushes the telescopic rod 703 to be inserted into the inside of the limiting block 603, which is beneficial to realizing the limiting function after splicing, thus being beneficial to realizing the quick limiting function. The positioning hole 704 and the limiting nail 604 can realize a further stable limiting function, which is beneficial to improving the use stability. The guiding groove 705 provides a precise sliding space for the sliding block 706, which is convenient to pull inward with the handle 707 during disassembly, so that the telescopic rod 703 is pulled out from the inside of the limiting nail 604, and then it is beneficial to realize the quick disassembly function, ensuring the convenience and improving the operation efficiency. The docking seat 708 is beneficial to providing a connection limit for the spring member 709, further improving the stability during the movement process.
[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A fireproof and corrosion-resistant aluminum veneer reinforced structure, comprising an aluminum veneer body (1), characterized in that: A fireproof layer (2) is provided on one side of the outer wall of the aluminum single plate body (1), a corrosion-resistant layer (3) is connected to the other side of the outer wall of the aluminum single plate body (1), an internal reinforcement mechanism (4) is provided on the inner side of the aluminum single plate body (1), the aluminum single plate body (1) comprises a base aluminum plate (101), the internal reinforcement mechanism (4) comprises an inner reinforcement plate body (401), a plurality of inner support square bars (402) are arranged vertically on the inner side of the inner reinforcement plate body (401), and the inner side of the inner reinforcement plate body (401) comprises a plurality of inner support square bars (402) arranged vertically on the inner side of the inner reinforcement plate body (401). A plurality of vertical ribs (403) are arranged and distributed in a transverse manner on the inner side of the inner reinforcement plate body (401), and the inner support square bars (402) and the vertical ribs (403) are cross-distributed. A plurality of reinforcing vertical bars (404) are arranged and distributed in a transverse manner on both sides of the outer wall of the inner reinforcement plate body (401). A plurality of reinforcing horizontal bars (405) are arranged and distributed in a vertical manner on both sides of the inner reinforcement plate body (401), and the reinforcing vertical bars (404) and the reinforcing horizontal bars (405) are cross-distributed.
2. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 1 is characterized in that: An external reinforcement mechanism (5) is arranged on the outside of the fireproof layer (2), the corrosion-resistant layer (3) is arranged on the other side of the inside of the external reinforcement mechanism (5), and the external reinforcement mechanism (5) comprises an outer shell (501), and a plurality of wear-resistant protrusions (502) are evenly distributed on both sides of the outer shell (501).
3. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 2 is characterized in that: A docking mechanism (6) is fixedly mounted on one end of the external reinforcement mechanism (5), and a plurality of splicing mechanisms (7) are evenly distributed on the other end of the external reinforcement mechanism (5), wherein the docking mechanism (6) and the splicing mechanism (7) are connected by snap-fitting.
4. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 3 is characterized in that: The docking mechanism (6) comprises a docking strip (601), and a plurality of docking grooves (602) are evenly arranged on one side of the docking strip (601).
5. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 4 is characterized in that: A plurality of limit blocks (603) are evenly and symmetrically distributed on both sides of the butt joint strip (601), and the side surfaces of the limit blocks (603) are connected with limit pins (604).
6. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 3 is characterized in that: The splicing mechanism (7) comprises a splicing block (701), telescopic sleeves (702) are fixedly mounted on both sides of the splicing block (701), telescopic rods (703) are movably connected to the inner ends of the telescopic sleeves (702), and a positioning hole (704) is formed through one end of the telescopic rod (703).
7. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 6 is characterized in that: A guide groove (705) is provided on one side of the telescopic sleeve (702), and a sliding block (706) is symmetrically and movably connected to the inner side of the guide groove (705).
8. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 7 is characterized in that: A handle (707) is fixedly mounted on one side of the sliding block (706), a docking seat (708) is fixedly connected to the sliding block (706), and a spring member (709) is connected between the two docking seats (708).
9. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 1 is characterized in that: The inner side of the base aluminum plate (101) is provided with a plurality of embedded vertical grooves (102) evenly distributed in the transverse direction, and the inner side of the base aluminum plate (101) is provided with a plurality of embedded transverse grooves (103) evenly distributed in the vertical direction, wherein the embedded vertical grooves (102) and the embedded transverse grooves (103) are cross-distributed.
10. The fireproof and corrosion-resistant aluminum single plate reinforced structure according to claim 5, characterized in that: A limiting hole is provided on the side of the limiting block (603), and the limiting pin (604) is connected to the inner side of the limiting hole.