Fireproof aging-resistant high-reflection aluminum-plastic composite film, preparation method thereof and application of fireproof aging-resistant high-reflection aluminum-plastic composite film in improvement of photovoltaic back power generation efficiency
By using fire-resistant and aging-resistant high-reflective aluminum-plastic composite film on the back of the photovoltaic module, the problem of low power generation efficiency on the back is solved, and the effect of improving power generation efficiency and enhancing the performance of the film material is achieved.
Patent Information
- Application Number
- CN202510677354.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-26
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2045-05-26
AI Technical Summary
The backside power generation efficiency of existing double-sided double-glass photovoltaic modules is low because of the lack of the utilization of reflected light.
A fire-resistant and aging-resistant high-reflective aluminum-plastic composite film is adopted. The film consists of a transparent protective layer, a vacuum aluminum-plated polypropylene film and a polyvinyl substrate. The vacuum aluminum-plated layer is combined with the transparent protective layer to improve the power generation efficiency on the back.
It improves the photovoltaic backside power generation efficiency, enhances the adhesion of the aluminum layer and the weather resistance, self-cleaning performance and transparency of the coating, and has good adhesion, heat resistance and high reflectivity.
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Figure CN120191098A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a fireproof and aging-resistant highly reflective aluminum-plastic composite film, a preparation method thereof, and an application in improving the power generation efficiency of the back side of a photovoltaic cell, belonging to the technical field of photovoltaic materials. Background Art
[0002] Solar power generation is mainly divided into two categories: photovoltaic power generation and solar thermal power generation. Photovoltaic power generation utilizes the photovoltaic effect of semiconductor materials to directly convert sunlight into electrical energy. Photovoltaic power generation technology is applicable to distributed power generation, such as household rooftop photovoltaic systems, and also to large-scale centralized power generation, such as large-scale ground photovoltaic power stations. A photovoltaic power station is a photovoltaic power generation system connected to the power grid and transmitting power to the power grid. Photovoltaic power stations can be divided into grid-connected power generation systems with and without batteries. Solar power generation is divided into solar thermal power generation and photovoltaic power generation. Generally, solar power generation refers to solar photovoltaic power generation. The most basic component of solar photovoltaic power generation is a solar cell (chip), including monocrystalline silicon, polycrystalline silicon, amorphous silicon, and thin-film batteries, etc.
[0003] Currently, most photovoltaic power stations adopt double-sided double-glass photovoltaic modules, but they can only generate electricity on the sunny side. The power generation efficiency on the back side is the same as that on the front side, and since there is no reflected light, the power generation efficiency on the back side approaches 0. Therefore, in order to improve the power generation efficiency of the back side of double-sided double-glass photovoltaic modules, there is an urgent need to provide a highly reflective aluminum-plastic composite film suitable for power generation on the back side of a photovoltaic cell. Summary of the Invention
[0004] The purpose of the present invention is to provide a fireproof and aging-resistant highly reflective aluminum-plastic composite film, a preparation method thereof, and an application in improving the power generation efficiency of the back side of a photovoltaic cell, so as to solve the problem of low power generation efficiency on the back side of current double-sided double-glass photovoltaic modules.
[0005] The technical solution of the fireproof and aging-resistant highly reflective aluminum-plastic composite film of the present invention is as follows: A fireproof and aging-resistant high-reflection aluminum-plastic composite film, comprising a transparent protective layer, a vacuum aluminized polypropylene film, and a polyethylene substrate that are sequentially laminated. The vacuum aluminized polypropylene film is laminated with the transparent protective layer through a vacuum aluminized layer; the transparent protective layer is formed by curing an aqueous polyurethane coating; the aqueous polyurethane coating is composed of an aqueous acrylate emulsion and an aqueous isocyanate curing agent. The preparation method of the aqueous acrylate emulsion is as follows: A functional polyol, water, and a first monomer mixture are mixed and reacted, and then mixed and reacted with a second monomer mixture to obtain an aqueous acrylate emulsion; the first monomer mixture is composed of a first mixed monomer and an initiator, and the first mixed monomer is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, and hydroxypropyl acrylate with a mass ratio of 25-30:8-10:5-7:4-6:5-8; the second monomer mixture is composed of a second mixed monomer and an initiator, and the second mixed monomer is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, and hydroxyethyl acrylate with a mass ratio of 23-25:5-7:8-10:4-8:5-7; the mass ratio of the functional polyol, the first monomer mixture, and the second monomer mixture is 8:10-12:75-85; the structure of the functional polyol is as follows: 。
[0006] Preferably, the thickness of the polyethylene substrate is 0.3-0.4 mm, the thickness of the vacuum aluminized polypropylene film is 0.03-0.05 mm, and the thickness of the transparent protective layer is 20-35 μm.
[0007] Preferably, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate, and potassium persulfate with a mass ratio of 25-30:8-10:5-7:4-6:5-8:0.1-0.15.
[0008] Preferably, the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate, and potassium persulfate with a mass ratio of 23-25:5-7:8-10:4-8:5-7:0.1-0.15.
[0009] Preferably, the preparation method of the functional polyol is as follows: (1) 1,4-Cyclohexanediamine and 1,1,1-trifluoro-2,3-epoxypropane are mixed and reacted at a temperature of 40-50 °C for 18-24 h to obtain a fluorinated diol; the molar ratio of 1,4-cyclohexanediamine to 1,1,1-trifluoro-2,3-epoxypropane is 1:2; (2) Mix the fluorinated diol and 4-bromo-1,2-epoxybutane at a temperature of 45-50 °C and react for 24-30 h to obtain brominated fluorinated polyol; the molar ratio of the fluorinated diol to 4-bromo-1,2-epoxybutane is 1:2; (3) Mix the brominated fluorinated polyol and 2,6-dimethylpiperidine at a temperature of 60-65 °C and react for 24-30 h to obtain piperidine-modified fluorinated polyol; the molar ratio of the brominated fluorinated polyol to 2,6-dimethylpiperidine is 1:2; (4) Mix the piperidine-modified fluorinated polyol and (3-bromopropyl)phosphonic acid at a temperature of 75-80 °C and react for 24-30 h to obtain functional polyol; the molar ratio of the piperidine-modified fluorinated polyol to (3-bromopropyl)phosphonic acid is 1:4.5-5.
[0010] Preferably, the temperature for the mixing reaction of the functional polyol, water and the first monomer mixture is 65-75 °C, and the time is 30-50 min.
[0011] Preferably, the time for the mixing reaction with the second monomer mixture is 5-6 h.
[0012] The technical solution of the preparation method of the fireproof and aging-resistant highly reflective aluminum-plastic composite film of the present invention is as follows: A preparation method of a fireproof and aging-resistant highly reflective aluminum-plastic composite film as described above, comprising the following steps: compound a vacuum aluminized polypropylene film and a polyethylene film to obtain a composite layer; then coat a waterborne polyurethane coating on the aluminized layer surface of the composite layer, and obtain the fireproof and aging-resistant highly reflective aluminum-plastic composite film after curing.
[0013] Preferably, the temperature for curing is 60-70 °C, and the time is 24-48 h.
[0014] The technical solution of the application of the fireproof and aging-resistant highly reflective aluminum-plastic composite film of the present invention in improving the backside power generation efficiency of a photovoltaic is as follows: An application of a fireproof and aging-resistant highly reflective aluminum-plastic composite film as described above in improving the backside power generation efficiency of a photovoltaic.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: By synthesizing a polyol with hydrophobic fluorine atoms, bulky piperidine groups, phosphate branches, hydrophilic quaternary ammonium salts, and polyhydroxy structures, and using the synthesized polyol to prepare an aqueous acrylate emulsion, not only can the surfactant function be exerted, but also the various functional structural groups in the polyol cooperate with each other and jointly play a role, effectively improving the adhesion to the aluminum layer, as well as the weather resistance, self-cleaning performance, and transparency of the coating. Among them, the hydrophobic fluorine atoms can improve the wetting performance of the aqueous acrylate emulsion on the substrate and the water-repellent and oil-loving properties of the coating. The bulky piperidine groups have anti-radiation and ultraviolet light resistance properties. The acidic phosphate branches can slightly corrode metallic aluminum and improve the adhesion bonding strength. The hydrophilic quaternary ammonium salts and polyhydroxy structures can improve the affinity and compatibility of the polyol with the aqueous acrylate emulsion, and can also improve the wetting and dispersibility of the polyurethane coating, thereby improving the adhesion strength to the substrate.
[0016] The high-reflection aluminum-plastic composite film of the present invention simultaneously has good adhesion performance, heat and weather resistance, self-cleaning performance, and a relatively high reflectivity, and has the functions of preventing weeds, dust, and erosion. It can be applied not only to photovoltaic power stations but also to engineering fields that require reflecting sunlight and heat radiation, such as landfills, reservoir liners, roof insulation, etc. All materials in the high-reflection aluminum-plastic composite film of the present invention can be recycled, and the production process is environmentally friendly, which can effectively reduce the emission of waste materials and harmful substances. Brief Description of the Drawings
[0017] Figure 1 It is the nuclear magnetic hydrogen spectrum of the functional polyol prepared in Example 1 of the present invention. Detailed Embodiments
[0018] The following examples are intended to further illustrate the content of the present invention rather than limit the protection scope of the present invention.
[0019] Specific examples of the fireproof and aging-resistant high-reflection aluminum-plastic composite film of the present invention and its preparation method are as follows:
[0020] Example 1. The fireproof and aging-resistant high-reflection aluminum-plastic composite film in this example comprises a transparent protective layer, a vacuum aluminized polypropylene film (the vacuum aluminized polypropylene film includes a vacuum aluminized layer and a polypropylene substrate), and a polyethylene substrate, which are laminated in sequence from top to bottom; the thickness of the polyethylene substrate is 0.3 mm, and the polyethylene substrate is high-density polyethylene (HDPE), which has good mechanical properties, chemical corrosion resistance, and durability; the thickness of the vacuum aluminized polypropylene film is 0.03 mm, and the aluminum layer in the vacuum aluminized polypropylene film has a high reflectivity, which can effectively reflect sunlight and heat radiation; the thickness of the transparent protective layer is 20 μm, and the transparent protective layer is a polyurethane coating, which is formed by curing an aqueous polyurethane coating, and can better protect the aluminum layer and improve the durability and anti-pollution ability of the aluminum reflective layer. The vacuum aluminized polypropylene film is laminated with the transparent protective layer through the vacuum aluminized layer.
[0021] Among them, the preparation method of the aqueous polyurethane coating is as follows: (1) Add 1,4-cyclohexanediamine, 1,1,1-trifluoro-2,3-epoxypropane, and acetone into a reaction kettle, stir evenly, heat to 40 °C, stir and react for 18 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a fluorinated diol; among them, the molar ratio of 1,4-cyclohexanediamine to 1,1,1-trifluoro-2,3-epoxypropane is 1:2, the mass ratio of 1,1,1-trifluoro-2,3-epoxypropane to acetone is 1:1.2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and dichloromethane with a volume ratio of 15:1:1. The structure of the fluorinated diol is as follows: .
[0022] (2) Add the fluorinated diol, 4-bromo-1,2-epoxybutane, and acetone into a reaction kettle, stir evenly, heat to 45 °C, stir and reflux for 24 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a brominated fluorinated polyol; among them, the molar ratio of the fluorinated diol to 4-bromo-1,2-epoxybutane is 1:2, the mass ratio of 4-bromo-1,2-epoxybutane to acetone is 1:1, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and methanol with a volume ratio of 15:1:1. The structure of the brominated fluorinated polyol is as follows: .
[0023] (3) Add brominated fluorinated polyol, 2,6-dimethylpiperidine and acetone into a reaction kettle. After stirring evenly, heat to 60 °C and stir and reflux for 24 h. Distill off the solvent under reduced pressure to obtain a concentrate. Purify the concentrate by column chromatography to obtain piperidine-modified fluorinated polyol. Among them, the molar ratio of brominated fluorinated polyol to 2,6-dimethylpiperidine is 1:2, the mass ratio of 2,6-dimethylpiperidine to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1. The structure of piperidine-modified fluorinated polyol is as follows: 。
[0024] (4) Add piperidine-modified fluorinated polyol, (3-bromopropyl)phosphoric acid and acetone into a reaction kettle. After stirring evenly, heat to 75 °C and stir and reflux for 24 h. Distill off the solvent under reduced pressure to obtain a concentrate. Purify the concentrate by column chromatography to obtain functional polyol. Among them, the molar ratio of piperidine-modified fluorinated polyol to (3-bromopropyl)phosphoric acid is 1:4.5, the mass ratio of (3-bromopropyl)phosphoric acid to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1.5. The 1H NMR spectrum of the functional polyol is as Figure 1 shown, and the chemical structure is as follows: 。
[0025] (5) Add functional polyol and water with a mass ratio of 1:8 into a reaction kettle, stir evenly to obtain a mixture. Then control the temperature of the materials in the reaction kettle at 65 °C, and dropwise add the first monomer mixture into the reaction kettle under stirring. After the dropping is completed, continue to stir and react for 30 min, then dropwise add the second monomer mixture into the reaction kettle, and continue to stir and react for 5 h. Cool down to 35 °C, add ammonia water into the reaction kettle, and adjust the pH of the materials in the reaction kettle to 7 to obtain an aqueous acrylate emulsion. Among them, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate and potassium persulfate with a mass ratio of 25:8:5:4:5:0.1; the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate and potassium persulfate with a mass ratio of 23:5:8:4:5:0.1; the mass ratio of functional polyol, the first monomer mixture and the second monomer mixture is 8:10:75.
[0026] (6) Stir the aqueous acrylate emulsion and the aqueous isocyanate curing agent (Covestro Bayhydur XP2487) evenly to obtain an aqueous polyurethane coating; the molar ratio of isocyanate groups in the aqueous isocyanate curing agent to hydroxyl groups in the aqueous acrylate emulsion is 1.1:1.
[0027] The preparation method of the fireproof and aging-resistant high-reflection aluminum-plastic composite film in this embodiment is as follows: Glue is coated between a vacuum aluminized polypropylene film and a polyethylene film, and then they are compounded using a dry laminator to obtain a composite layer; then, a waterborne polyurethane coating is spin-coated on the aluminized layer surface of the composite layer and cured at 60 °C for 48 h to form a transparent protective layer, thus obtaining the fireproof and aging-resistant high-reflection aluminum-plastic composite film.
[0028] Example 2, the fireproof and aging-resistant high-reflection aluminum-plastic composite film in this embodiment includes a transparent protective layer, a vacuum aluminized polypropylene film (the vacuum aluminized polypropylene film includes a vacuum aluminized layer and a polypropylene substrate), and a polyethylene substrate that are sequentially compounded from top to bottom. The thickness of the polyethylene substrate is 0.3 mm, the thickness of the vacuum aluminized polypropylene film is 0.04 mm, and the thickness of the transparent protective layer is 30 μm; the transparent protective layer is a polyurethane coating formed by curing a waterborne polyurethane coating. The vacuum aluminized polypropylene film is compounded with the transparent protective layer through the vacuum aluminized layer.
[0029] Among them, the preparation method of the waterborne polyurethane coating is as follows: (1) Add 1,4-cyclohexanediamine, 1,1,1-trifluoro-2,3-epoxypropane, and acetone into a reaction kettle, stir evenly, heat to 45 °C, stir and react for 20 h, perform vacuum distillation to remove the solvent to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a fluorinated diol; among them, the molar ratio of 1,4-cyclohexanediamine to 1,1,1-trifluoro-2,3-epoxypropane is 1:2, the mass ratio of 1,1,1-trifluoro-2,3-epoxypropane to acetone is 1:1.3, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and dichloromethane with a volume ratio of 15:1:1. The structure of the fluorinated diol is as follows: .
[0030] (2) Add the fluorinated diol, 4-bromo-1,2-epoxybutane, and acetone into a reaction kettle, stir evenly, heat to 48 °C, stir and reflux for 26 h, perform vacuum distillation to remove the solvent to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a brominated fluorinated polyol; among them, the molar ratio of the fluorinated diol to 4-bromo-1,2-epoxybutane is 1:2, the mass ratio of 4-bromo-1,2-epoxybutane to acetone is 1:1.2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and methanol with a volume ratio of 15:1:1. The structure of the brominated fluorinated polyol is as follows: .
[0031] (3) Add brominated fluorinated polyol, 2,6-dimethylpiperidine and acetone into a reaction kettle. After stirring evenly, heat to 63 °C, stir and reflux for 27 h, remove the solvent by vacuum distillation to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain piperidine-modified fluorinated polyol; wherein, the molar ratio of brominated fluorinated polyol to 2,6-dimethylpiperidine is 1:2, the mass ratio of 2,6-dimethylpiperidine to acetone is 1:1.8, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1. The structure of the piperidine-modified fluorinated polyol is as follows: .
[0032] (4) Add piperidine-modified fluorinated polyol, (3-bromopropyl)phosphoric acid and acetone into a reaction kettle. After stirring evenly, heat to 78 °C, stir and reflux for 27 h, remove the solvent by vacuum distillation to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain functional polyol; wherein, the molar ratio of piperidine-modified fluorinated polyol to (3-bromopropyl)phosphoric acid is 1:4.7, the mass ratio of (3-bromopropyl)phosphoric acid to acetone is 1:1.8, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1.5. The structure of the functional polyol is as follows: .
[0033] (5) Add functional polyol and water with a mass ratio of 1:9 into a reaction kettle, stir evenly to obtain a mixed solution, then control the temperature of the materials in the reaction kettle at 70 °C, and dropwise add the first monomer mixture into the reaction kettle under stirring conditions. After the dropping is completed, continue to stir and react for 40 min, then dropwise add the second monomer mixture into the reaction kettle, continue to stir and react for 6 h, cool down to 37 °C, add ammonia water into the reaction kettle, and adjust the pH of the materials in the reaction kettle to 7 to obtain an aqueous acrylate emulsion; wherein, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate and potassium persulfate with a mass ratio of 27:9:6:5:7:0.12; the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate and potassium persulfate with a mass ratio of 24:6:9:6:6:0.13; the mass ratio of functional polyol, the first monomer mixture and the second monomer mixture is 8:10:80.
[0034] (6) Stir the aqueous acrylate emulsion and the aqueous isocyanate curing agent (Covestro Bayhydur XP2487) evenly to obtain an aqueous polyurethane coating; the molar ratio of the isocyanate group in the aqueous isocyanate curing agent to the hydroxyl group in the aqueous acrylate emulsion is 1.2:1.
[0035] The preparation method of the fireproof and aging-resistant high-reflection aluminum-plastic composite film in this embodiment is as follows: Glue is coated between a vacuum aluminized polypropylene film and a polyethylene film, and then they are compounded using a dry laminator to obtain a composite layer; then, a waterborne polyurethane coating is spin-coated on the aluminized layer surface of the composite layer, and after curing at 65 °C for 48 h, a transparent protective layer is formed to obtain the fireproof and aging-resistant high-reflection aluminum-plastic composite film.
[0036] Example 3. The fireproof and aging-resistant high-reflection aluminum-plastic composite film in this embodiment includes a transparent protective layer, a vacuum aluminized polypropylene film (the vacuum aluminized polypropylene film includes a vacuum aluminized layer and a polypropylene substrate), and a polyethylene substrate that are sequentially compounded from top to bottom. The thickness of the polyethylene substrate is 0.4 mm, the thickness of the vacuum aluminized polypropylene film is 0.05 mm, and the thickness of the transparent protective layer is 35 μm; the transparent protective layer is a polyurethane coating formed by curing a waterborne polyurethane coating. The vacuum aluminized polypropylene film is compounded with the transparent protective layer through the vacuum aluminized layer.
[0037] Among them, the preparation method of the waterborne polyurethane coating is as follows: (1) Add 1,4-cyclohexanediamine, 1,1,1-trifluoro-2,3-epoxypropane, and acetone to a reaction kettle, stir evenly, heat to 50 °C, stir and react for 24 h, perform vacuum distillation to remove the solvent to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a fluorinated diol; among them, the molar ratio of 1,4-cyclohexanediamine to 1,1,1-trifluoro-2,3-epoxypropane is 1:2, the mass ratio of 1,1,1-trifluoro-2,3-epoxypropane to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and dichloromethane with a volume ratio of 15:1:1. The structure of the fluorinated diol is as follows: .
[0038] (2) Add the fluorinated diol, 4-bromo-1,2-epoxybutane, and acetone to a reaction kettle, stir evenly, heat to 50 °C, stir and reflux for 30 h, perform vacuum distillation to remove the solvent to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a brominated fluorinated polyol; among them, the molar ratio of the fluorinated diol to 4-bromo-1,2-epoxybutane is 1:2, the mass ratio of 4-bromo-1,2-epoxybutane to acetone is 1:1.3, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and methanol with a volume ratio of 15:1:1. The structure of the brominated fluorinated polyol is as follows: .
[0039] (3) Add brominated fluorinated polyol, 2,6-dimethylpiperidine, and acetone into a reaction kettle. After stirring evenly, heat to 65 °C, stir and reflux for 30 h, distill off the solvent under reduced pressure to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain piperidine-modified fluorinated polyol; wherein, the molar ratio of brominated fluorinated polyol to 2,6-dimethylpiperidine is 1:2, the mass ratio of 2,6-dimethylpiperidine to acetone is 1:2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and methanol with a volume ratio of 15:1:1. The structure of piperidine-modified fluorinated polyol is as follows: 。
[0040] (4) Add piperidine-modified fluorinated polyol, (3-bromopropyl)phosphoric acid, and acetone into a reaction kettle. After stirring evenly, heat to 80 °C, stir and reflux for 30 h, distill off the solvent under reduced pressure to obtain a concentrate, and subject the concentrate to column chromatography purification to obtain functional polyol; wherein, the molar ratio of piperidine-modified fluorinated polyol to (3-bromopropyl)phosphoric acid is 1:5, the mass ratio of (3-bromopropyl)phosphoric acid to acetone is 1:2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and methanol with a volume ratio of 15:1:1.5. The structure of functional polyol is as follows: 。
[0041] (5) Add functional polyol and water with a mass ratio of 1:10 into a reaction kettle, stir evenly to obtain a mixture, then control the temperature of the materials in the reaction kettle at 75 °C, and dropwise add the first monomer mixture into the reaction kettle under stirring conditions. After the dropping is completed, continue stirring and reacting for 50 min, then dropwise add the second monomer mixture into the reaction kettle, continue stirring and reacting for 6 h, cool down to 40 °C, add ammonia water into the reaction kettle, and adjust the pH of the materials in the reaction kettle to 7.5 to obtain an aqueous acrylate emulsion; wherein, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate, and potassium persulfate with a mass ratio of 30:10:7:6:8:0.15; the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate, and potassium persulfate with a mass ratio of 25:7:10:8:7:0.15; the mass ratio of functional polyol, the first monomer mixture, and the second monomer mixture is 8:10:85.
[0042] (6) Stir the aqueous acrylate emulsion and the aqueous isocyanate curing agent (Covestro Bayhydur XP2487) evenly to obtain an aqueous polyurethane coating; the molar ratio of the isocyanate group in the aqueous isocyanate curing agent to the hydroxyl group in the aqueous acrylate emulsion is 1.3:1.
[0043] The preparation method of the fireproof and aging-resistant high-reflection aluminum-plastic composite film in this embodiment is as follows: Coat glue between the vacuum aluminized polypropylene film and the polyethylene film, and then use a dry laminator for lamination to obtain a composite layer; then spin-coat a waterborne polyurethane coating on the aluminized layer surface of the composite layer, and cure it at 70 °C for 48 h to form a transparent protective layer, thus obtaining the fireproof and aging-resistant high-reflection aluminum-plastic composite film.
[0044] Comparative Example 1 The difference between the fireproof and aging-resistant high-reflection aluminum-plastic composite film in this comparative example and the fireproof and aging-resistant high-reflection aluminum-plastic composite film in Example 1 is only that the preparation method of the waterborne polyurethane coating used to prepare the transparent protective layer in the fireproof and aging-resistant high-reflection aluminum-plastic composite film in this comparative example is as follows: (1) Add 1,4-cyclohexanediamine, 1,1,1-trifluoro-2,3-epoxypropane and acetone into a reaction kettle, stir evenly and then heat to 40 °C, stir and react for 18 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and carry out column chromatography purification on the concentrate to obtain fluorinated diol; wherein, the molar ratio of 1,4-cyclohexanediamine to 1,1,1-trifluoro-2,3-epoxypropane is 1:2, the mass ratio of 1,1,1-trifluoro-2,3-epoxypropane to acetone is 1:1.2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and dichloromethane with a volume ratio of 15:1:1. The structure of the fluorinated diol is as follows: 。
[0045] (2) Add the fluorinated diol, 4-bromo-1,2-epoxybutane and acetone into a reaction kettle, stir evenly and then heat to 45 °C, stir and reflux for 24 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and carry out column chromatography purification on the concentrate to obtain brominated fluorinated polyol; wherein, the molar ratio of the fluorinated diol to 4-bromo-1,2-epoxybutane is 1:2, the mass ratio of 4-bromo-1,2-epoxybutane to acetone is 1:1, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1. The structure of the brominated fluorinated polyol is as follows: 。
[0046] (3) Add the brominated fluorinated polyol, 2,6-dimethylpiperidine and acetone into a reaction kettle, stir evenly and then heat to 60 °C, stir and reflux for 24 h, remove the solvent by vacuum distillation, obtain a concentrate, and carry out column chromatography purification on the concentrate to obtain piperidine-modified fluorinated polyol; wherein, the molar ratio of the brominated fluorinated polyol to 2,6-dimethylpiperidine is 1:2, the mass ratio of 2,6-dimethylpiperidine to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1. The structure of the piperidine-modified fluorinated polyol is as follows: .
[0047] (4) Add piperidine-modified fluorinated polyol and water with a mass ratio of 1:8 into a reaction kettle, stir evenly to obtain a mixed solution, then control the temperature of the materials in the reaction kettle at 65 °C, and dropwise add the first monomer mixture into the reaction kettle under stirring conditions. After the dropping is completed, continue stirring and reacting for 30 min, then dropwise add the second monomer mixture into the reaction kettle, continue stirring and reacting for 5 h, cool down to 35 °C, add ammonia water into the reaction kettle, and adjust the pH of the materials in the reaction kettle to 7 to obtain an aqueous acrylate emulsion; wherein, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate and potassium persulfate with a mass ratio of 25:8:5:4:5:0.1; the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate and potassium persulfate with a mass ratio of 23:5:8:4:5:0.1; the mass ratio of piperidine-modified fluorinated polyol, the first monomer mixture and the second monomer mixture is 8:10:75.
[0048] (5) Stir the aqueous acrylate emulsion and the aqueous isocyanate curing agent (Covestro Bayhydur XP2487) evenly to obtain an aqueous polyurethane coating; the molar ratio of isocyanate groups in the aqueous isocyanate curing agent to hydroxyl groups in the aqueous acrylate emulsion is 1.1:1.
[0049] Comparative Example 2 The difference between the fireproof and aging-resistant highly reflective aluminum-plastic composite film of this comparative example and the fireproof and aging-resistant highly reflective aluminum-plastic composite film of Example 1 is only that the preparation method of the aqueous polyurethane coating used to prepare the transparent protective layer in the fireproof and aging-resistant highly reflective aluminum-plastic composite film of this comparative example is as follows: (1) Add 1,4-cyclohexanediamine, 1,1,1-trifluoro-2,3-epoxypropane and acetone into a reaction kettle, stir evenly and then heat to 40 °C, stir and react for 18 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and carry out column chromatography purification on the concentrate to obtain a fluorinated diol; wherein, the molar ratio of 1,4-cyclohexanediamine to 1,1,1-trifluoro-2,3-epoxypropane is 1:2, the mass ratio of 1,1,1-trifluoro-2,3-epoxypropane to acetone is 1:1.2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and dichloromethane with a volume ratio of 15:1:1. The structure of the fluorinated diol is as follows: .
[0050] (2) Add fluorinated diol, 4-bromo-1,2-epoxybutane and acetone into a reaction kettle. After stirring evenly, heat to 45 °C, stir and reflux for 24 h, then distill under reduced pressure to remove the solvent to obtain a concentrate. Subject the concentrate to column chromatography purification to obtain brominated fluorinated polyol. Among them, the molar ratio of fluorinated diol to 4-bromo-1,2-epoxybutane is 1:2, the mass ratio of 4-bromo-1,2-epoxybutane to acetone is 1:1, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1. The structure of the brominated fluorinated polyol is as follows: .
[0051] (3) Add brominated fluorinated polyol, 2,6-dimethylpiperidine and acetone into a reaction kettle. After stirring evenly, heat to 60 °C, stir and reflux for 24 h, then distill under reduced pressure to remove the solvent to obtain a concentrate. Subject the concentrate to column chromatography purification to obtain piperidine-modified fluorinated polyol. Among them, the molar ratio of brominated fluorinated polyol to 2,6-dimethylpiperidine is 1:2, the mass ratio of 2,6-dimethylpiperidine to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1. The structure of the piperidine-modified fluorinated polyol is as follows: .
[0052] (4) Add piperidine-modified fluorinated polyol, water and hydroxyethylidene diphosphonic acid with a mass ratio of 1:8 into a reaction kettle, stir evenly to obtain a mixture. Then control the temperature of the materials in the reaction kettle at 65 °C, and drop the first monomer mixture into the reaction kettle under stirring conditions. After the dropping is completed, continue to stir and react for 30 min, then drop the second monomer mixture into the reaction kettle and continue to stir and react for 5 h. Cool down to 35 °C, add ammonia water into the reaction kettle, and adjust the pH of the materials in the reaction kettle to 7 to obtain an aqueous acrylate emulsion. Among them, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate and potassium persulfate with a mass ratio of 25:8:5:4:5:0.1; the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate and potassium persulfate with a mass ratio of 23:5:8:4:5:0.1; the mass ratio of piperidine-modified fluorinated polyol, the first monomer mixture and the second monomer mixture is 8:10:75, and the molar ratio of hydroxyethylidene diphosphonic acid to piperidine-modified fluorinated polyol is 2:1.
[0053] (5) Stir the aqueous acrylate emulsion and the aqueous isocyanate curing agent (Covestro Bayhydur XP2487) evenly to obtain an aqueous polyurethane coating; the molar ratio of the isocyanate group in the aqueous isocyanate curing agent to the hydroxyl group in the aqueous acrylate emulsion is 1.1:1.
[0054] Comparative Example 3 The difference between the fireproof and aging-resistant highly reflective aluminum-plastic composite film of this comparative example and that of Example 1 lies only in that in step (1) of the preparation method of the aqueous polyurethane coating used to prepare the transparent protective layer in the fireproof and aging-resistant highly reflective aluminum-plastic composite film of this comparative example, 1,1,1-trifluoro-2,3-epoxypropane is replaced by 3-(perfluorobutane)-1,2-epoxypropane.
[0055] Comparative Example 4 The difference between the fireproof and aging-resistant highly reflective aluminum-plastic composite film of this comparative example and that of Example 1 lies only in that the preparation method of the aqueous polyurethane coating used to prepare the transparent protective layer in the fireproof and aging-resistant highly reflective aluminum-plastic composite film of this comparative example is as follows: (1) Add 1,4-cyclohexanediamine, epoxypropane and acetone to a reaction kettle, stir evenly, heat to 40 °C, stir and react for 18 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a diol; wherein, the molar ratio of 1,4-cyclohexanediamine to epoxypropane is 1:2, the mass ratio of epoxypropane to acetone is 1:1.2, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and dichloromethane with a volume ratio of 15:1:1.
[0056] (2) Add the diol, 4-bromo-1,2-epoxybutane and acetone to a reaction kettle, stir evenly, heat to 45 °C, stir and reflux for 24 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a brominated polyol; wherein, the molar ratio of the diol to 4-bromo-1,2-epoxybutane is 1:2, the mass ratio of 4-bromo-1,2-epoxybutane to acetone is 1:1, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1.
[0057] (3) Add the brominated polyol, 2,6-dimethylpiperidine and acetone to a reaction kettle, stir evenly, heat to 60 °C, stir and reflux for 24 h, carry out vacuum distillation to remove the solvent, obtain a concentrate, and subject the concentrate to column chromatography purification to obtain a piperidine-modified polyol; wherein, the molar ratio of the brominated polyol to 2,6-dimethylpiperidine is 1:2, the mass ratio of 2,6-dimethylpiperidine to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate and methanol with a volume ratio of 15:1:1.
[0058] (4) Add piperidine-modified polyol, (3-bromopropyl) phosphoric acid, and acetone into a reaction kettle. After stirring evenly, heat to 75 °C, stir and reflux for 24 h, remove the solvent by vacuum distillation to obtain a concentrate, and purify the concentrate by column chromatography to obtain a functional polyol. Among them, the molar ratio of piperidine-modified polyol to (3-bromopropyl) phosphoric acid is 1:4.5, the mass ratio of (3-bromopropyl) phosphoric acid to acetone is 1:1.5, and the eluent used for column chromatography purification is composed of petroleum ether, ethyl acetate, and methanol with a volume ratio of 15:1:1.5. The structure of the functional polyol is as follows: 。
[0059] (5) Add the functional polyol and water with a mass ratio of 1:8 into a reaction kettle, stir evenly to obtain a mixed solution, then control the temperature of the materials in the reaction kettle at 65 °C, and dropwise add the first monomer mixture into the reaction kettle under stirring conditions. After the dropping is completed, continue stirring and reacting for 30 min, then dropwise add the second monomer mixture into the reaction kettle, continue stirring and reacting for 5 h, cool down to 35 °C, add ammonia water into the reaction kettle, and adjust the pH of the materials in the reaction kettle to 7 to obtain an aqueous acrylate emulsion. Among them, the first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate, and potassium persulfate with a mass ratio of 25:8:5:4:5:0.1; the second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate, and potassium persulfate with a mass ratio of 23:5:8:4:5:0.1; the mass ratio of the functional polyol, the first monomer mixture, and the second monomer mixture is 8:10:75.
[0060] (6) Stir the aqueous acrylate emulsion and the aqueous isocyanate curing agent (Covestro Bayhydur XP2487) evenly to obtain an aqueous polyurethane coating; the molar ratio of the isocyanate group in the aqueous isocyanate curing agent to the hydroxyl group in the aqueous acrylate emulsion is 1.1:1.
[0061] Experimental Examples In order to investigate the basic properties of the highly reflective aluminum-plastic composite films of each example and comparative example, the peel strength between the transparent protective layer and the vacuum aluminized polypropylene film, the self-cleaning performance, weather resistance, fire and heat resistance of the transparent protective layer, and the reflectivity of the aluminum-plastic composite film in each example and comparative example were respectively tested.
[0062] Among them, the test method for weather resistance is as follows: Place the highly reflective aluminum-plastic composite film with the transparent protective layer facing up in an artificial aging test chamber for weather resistance testing, calculate the absolute value of the color difference between before aging and when the aging time is 6000 h of the protective layer, and use the absolute value of the color difference as a quantitative evaluation index for weather resistance.
[0063] The test method for self-cleaning performance is as follows: Place the transparent protective layer of the highly reflective aluminum-plastic composite film facing upwards. Divide the transparent protective layer into two parts with the same area, namely part A and part B. Cover a layer of chalk dust with a density of 0.1 g / cm 2 on the surface of part A. Then tilt the glass plate at an angle of 10 degrees, and spray vertically downwards at a distance of 20 cm from the top. Spray both part A and part B of the protective layer in the same way to simulate the rain erosion in nature. Then place the glass plate horizontally in an oven for drying. After drying, measure the reflectivity coefficients of part A and part B of the protective layer, which are Fa and Fb respectively. Calculate the change rate of the reflectivity coefficient, and the calculation formula is (Fb - Fa) / Fb. Use the change rate of the reflectivity coefficient to evaluate the self-cleaning performance of the protective layer.
[0064] The test method for fire and heat resistance performance is as follows: Spin-coat the waterborne polyurethane coatings used in each example and comparative example on the aluminum foil, cure at 70 °C for 48 h, and then place it in an oven at 350 °C. Observe the blistering, wrinkling, peeling, and cracking conditions of the coating, and record the time when blistering, peeling, wrinkling, or cracking first appears on the coating.
[0065] The test method for reflectivity is as follows: Place the transparent protective layer of the highly reflective aluminum-plastic composite film facing upwards, and use a reflectivity measuring instrument to measure the reflectivity of ultraviolet-visible spectroscopy in the wavelength range of 200 - 1400 nm according to the method specified in ASTM-17 "Test Method for Solar Transmission and Reflection of Sheet Materials".
[0066] The test results of the peel strength between the transparent protective layer and the vacuum aluminized polypropylene film in the highly reflective aluminum-plastic composite films of each example and comparative example, the weather resistance and self-cleaning performance of the transparent protective layer, and the reflectivity of the aluminum-plastic composite film are shown in Table 1.
[0067] Table 1 Peel strength between the transparent protective layer and the vacuum aluminized polypropylene film in the highly reflective aluminum-plastic composite film Weather resistance and self-cleaning performance of the transparent protective layer, reflectivity of the aluminum-plastic composite film Aluminum-plastic composite film Peeling strength (N / 15mm) Self-cleaning performance - Rate of change of reflectivity (%) Weather resistance - Absolute value of color difference Fire and heat resistance Reflectivity (%) Example 1 6.1 1.5 2.1 15d 93.4 Example 2 6.5 1.2 1.8 17d 93.6 Example 3 6.2 1.4 1.9 14d 92.5 Comparative example 1 0.8 9.2 9.1 3d 57.1 Comparative example 2 1.3 10.4 9.7 1d 62.7 Comparative example 3 0.7 8.9 7.8 3d 42.3 Comparative example 4 1.7 7.1 8.6 2d 53.8 As can be seen from Table 1, the high-reflection aluminum-plastic composite film of the present invention simultaneously has good adhesion performance, heat and weather resistance, self-cleaning performance, and a relatively high reflectivity. By synthesizing a polyol having hydrophobic fluorine atoms, large steric hindrance piperidine groups, phosphoric acid branches, hydrophilic quaternary ammonium salts, and a polyhydroxy structure, and using the synthesized polyol to prepare an aqueous acrylate emulsion, not only can the role of a surfactant be exerted, but also the various functional structural groups in the polyol cooperate with each other to jointly play a role, effectively improving the adhesion to the aluminum layer, as well as the weather resistance, self-cleaning performance, and transparency of the coating. Among them, the hydrophobic fluorine atoms can improve the wetting performance of the aqueous acrylate emulsion on the substrate and the waterproof and oleophilic properties of the coating. The large steric hindrance piperidine group has anti-radiation and ultraviolet light resistance properties. The acidic phosphoric acid branch can slightly corrode metallic aluminum to improve the adhesion bonding strength. The hydrophilic quaternary ammonium salt and polyhydroxy structure can improve the affinity and compatibility of the polyol with the aqueous acrylate emulsion, and can improve the wetting and dispersibility of the polyurethane coating, thereby improving the adhesion strength to the substrate.
[0068] As can be seen from Example 1 and Comparative Example 1, when using piperidine-modified fluorinated polyol, due to the lack of branched phosphoric acid groups, the bonding strength and heat and weather resistance of the polyurethane coating both show an obvious downward trend. As can be seen from Example 1 and Comparative Example 2, when using a mixture of piperidine-modified fluorinated polyol and hydroxyethyl phosphoric acid, although the emulsion contains both piperidine-modified fluorinated polyol and phosphoric acid structure, since the piperidine-modified fluorinated polyol and the phosphoric acid structure are not in a chemical bonding relationship, their cooperation relationship is poor, and they are arranged in a disordered structure in the emulsion, which is not conducive to improving the comprehensive performance of the protective layer.
[0069] As can be seen from Example 1 and Comparative Examples 3-4, when 1,1,1-trifluoro-2,3-epoxypropane is replaced by 3-(perfluorobutane)-1,2-epoxypropane or epoxypropane, due to too much or too little fluorine atom content in the system, the hydrophilic-lipophilic balance of the emulsion is disrupted, resulting in uneven distribution of the active groups in the latex particles and segregation, which not only affects the adhesion of the coating, but also affects the heat resistance, weather resistance, and light reflectivity of the coating.
[0070] Application Example From the test results of the above experimental examples, the high-reflection aluminum-plastic composite film of the present invention simultaneously has good adhesion performance, heat and weather resistance, self-cleaning performance, and a relatively high reflectivity, and can be applied to the field of double-sided double-glass photovoltaic modules. Laying the high-reflection aluminum-plastic composite films of Examples 1-3 on the ground of a photovoltaic power plant, and using the gaps between the modules to reflect the sunlight irradiated on the ground to the back of the modules, enabling the sunny side and the back of the modules to generate electricity simultaneously. The experimental results show that after laying the high-reflection aluminum-plastic composite film of the present invention, the power generation efficiency of the double-sided double-glass photovoltaic modules can be increased by 20% - 30%. In addition, after laying the high-reflection aluminum-plastic composite film of the present invention, the weeds on the ground of the power plant are reduced, and the problems of sand and soil erosion are alleviated.
[0071] In summary, the high-reflection aluminum-plastic composite film of the present invention simultaneously has good adhesion performance, heat and weather resistance, self-cleaning performance, and a relatively high reflectivity, and has the functions of preventing weeds, dust, and erosion. It can not only be applied to photovoltaic power stations, but also be used in engineering fields that require reflection of sunlight and heat radiation, such as landfills, reservoir liners, roof insulation, etc. Each material in the high-reflection aluminum-plastic composite film of the present invention can be recycled, and the production process is environmentally friendly, which can effectively reduce the emission of waste materials and harmful substances.
Claims
1. A highly reflective aluminum-plastic composite film with fire resistance and aging resistance, characterized in that, It includes a transparent protective layer, a vacuum aluminized polypropylene film, and a polyethylene substrate that are compounded in sequence. The vacuum aluminized polypropylene film is compounded with the transparent protective layer through a vacuum aluminized layer; the transparent protective layer is formed by curing a waterborne polyurethane coating; the waterborne polyurethane coating is composed of a waterborne acrylate emulsion and a waterborne isocyanate curing agent. The preparation method of the waterborne acrylate emulsion is as follows: A functional polyol, water, and a first monomer mixture are mixed and reacted, and then mixed and reacted with a second monomer mixture to obtain a waterborne acrylate emulsion; the first monomer mixture is composed of a first mixed monomer and an initiator, and the first mixed monomer is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, and hydroxypropyl acrylate in a mass ratio of 25 - 30:8 - 10:5 - 7:4 - 6:5 - 8; the second monomer mixture is composed of a second mixed monomer and an initiator, and the second mixed monomer is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, and hydroxyethyl acrylate in a mass ratio of 23 - 25:5 - 7:8 - 10:4 - 8:5 - 7; the mass ratio of the functional polyol, the first monomer mixture, and the second monomer mixture is 8:10 - 12:75 - 85; the structure of the functional polyol is as follows: 。 2. The fireproof and aging-resistant highly reflective aluminum-plastic composite film according to claim 1, characterized in that, The thickness of the polyethylene substrate is 0.3 - 0.4 mm, the thickness of the vacuum aluminized polypropylene film is 0.03 - 0.05 mm, and the thickness of the transparent protective layer is 20 - 35 μm.
3. The fireproof and aging-resistant highly reflective aluminum-plastic composite film according to claim 1, wherein The first monomer mixture is composed of methyl methacrylate, butyl acrylate, isooctyl acrylate, acrylic acid, hydroxypropyl acrylate, and potassium persulfate in a mass ratio of 25 - 30:8 - 10:5 - 7:4 - 6:5 - 8:0.1 - 0.
15.
4. The fireproof and aging-resistant highly reflective aluminum-plastic composite film according to claim 1, characterized in that, The second monomer mixture is composed of methyl acrylate, butyl acrylate, hexyl acrylate, acrylic acid, hydroxyethyl acrylate, and potassium persulfate in a mass ratio of 23 - 25:5 - 7:8 - 10:4 - 8:5 - 7:0.1 - 0.
15.
5. The fireproof and aging-resistant highly reflective aluminum-plastic composite film according to any one of claims 1-4, characterized in that The preparation method of the functional polyol is as follows: (1) 1,4 - cyclohexanediamine and 1,1,1 - trifluoro - 2,3 - epoxypropane are mixed and reacted at a temperature of 40 - 50 °C for 18 - 24 h to obtain a fluorinated diol; the molar ratio of 1,4 - cyclohexanediamine to 1,1,1 - trifluoro - 2,3 - epoxypropane is 1:2; (2) The fluorinated diol and 4 - bromo - 1,2 - epoxybutane are mixed and reacted at a temperature of 45 - 50 °C for 24 - 30 h to obtain a brominated fluorinated polyol; the molar ratio of the fluorinated diol to 4 - bromo - 1,2 - epoxybutane is 1:2; (3) The brominated fluorinated polyol and 2,6 - dimethylpiperidine are mixed and reacted at a temperature of 60 - 65 °C for 24 - 30 h to obtain a piperidine - modified fluorinated polyol; the molar ratio of the brominated fluorinated polyol to 2,6 - dimethylpiperidine is 1:2; (4) The piperidine - modified fluorinated polyol and (3 - bromopropyl) phosphoric acid are mixed and reacted at a temperature of 75 - 80 °C for 24 - 30 h to obtain a functional polyol; the molar ratio of the piperidine - modified fluorinated polyol to (3 - bromopropyl) phosphoric acid is 1:4.5 - 5.
6. The fireproof and aging-resistant highly reflective aluminum-plastic composite film according to any one of claims 1-4, characterized in that, The temperature for the mixing reaction of the functional polyol, water and the first monomer mixture is 65-75 °C, and the time is 30-50 min.
7. The fireproof and aging-resistant highly reflective aluminum-plastic composite film according to any one of claims 1 to 4, characterized in that, The time for the mixing reaction with the second monomer mixture is 5-6 h.
8. A method for preparing a fireproof and aging-resistant high-reflection aluminum-plastic composite film as described in any one of claims 1-7, characterized in that, It includes the following steps: laminating a vacuum aluminized polypropylene film and a polyethylene film to obtain a composite layer; then coating an aqueous polyurethane coating on the aluminized layer surface of the composite layer, and curing to obtain a fireproof and aging-resistant highly reflective aluminum-plastic composite film.
9. The preparation method of the fireproof and aging-resistant highly reflective aluminum-plastic composite film according to claim 8, characterized in that, The temperature for the curing is 60-70 °C, and the time is 24-48 h.
10. Application of a fireproof and aging-resistant highly reflective aluminum-plastic composite film according to any one of claims 1-7 in improving the power generation efficiency of the back side of a photovoltaic cell.
Citation Information
Patent Citations
Anti-aging acrylate oligomer as well as preparation method and application method thereof
CN115073704A
High-reflective sunshading energy-saving window curtain
CN203756001U
Membrane for photovoltaic back sheet with high reflectivity
CN206742254U
Improvements in or relating to the production of cellular polyurethane plastics
GB950876A
Composition of fluoro urethane film for back sheet of solar cell device and method for preparing the same
KR1020100109067A
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