A corrosion-resistant and aging-resistant epoxy resin composite material for desktop
A technology of epoxy resin and composite materials, which is applied in the field of material synthesis, can solve the problems that the countertop cannot be completely cleaned, cannot meet the requirements of the desktop, and can only withstand high temperature, etc., and achieves good antibacterial ability, reduced antibacterial performance, and improved compactness.
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[0026] 2. The preparation method of the composite material is:
[0027] Add bisphenol A epoxy resin, tetrachlorobisphenol A epoxy resin, bisphenol A gel coat resin, nano-mixed material, DMP-30 into the mixer, stir and shake at 130°C for 1 hour, and then Add quartz powder and maleic anhydride, mix thoroughly in a mixer, then place it on a flat mold, turn on the high-speed microwave vibration table, and perform microwave vibration for 10-20 minutes, stop it for 8 hours, and send the material into the high-temperature room to gradually Heating to 180-200°C, maintaining the temperature for curing for 12-16 hours, taking it out from the high-temperature room and curing at room temperature for 5-7 days to obtain an epoxy resin composite board, and then polishing and cutting according to actual needs.
Embodiment 1
[0029] Embodiment 1: Nano-hybrid material parameter optimization
[0030] 1. Prepare 7 groups of equivalent composite materials according to the above formula and method. Among them, the formula is: 17.5% bisphenol A epoxy resin (E-51), 11% tetrachlorobisphenol A epoxy resin, 15% bisphenol A gel coat resin (D-33), 3% nano hybrid material , 5% maleic anhydride, 1% DMP-30, 47.5% quartz powder. The nano-composite material is composed of nano-titanium trifluoride, nano-ZnO, and nano-CuO. The specific composition (mole ratio) of each nano-material is shown in Table 1.
[0031] Table 1 Nanomaterial components of each group
[0032] group Nano titanium trifluoride Nano ZnO Nano CuO group 1 1 1 1 group 2 2 1 1 group 3 1 2 1 group 4 1 1 2 Group 5 / 1 1 Group 6 1 / 1 Group 7 1 1 /
[0033] In addition, using the same preparation method and formula, no nano-mixed material was added, and 50.5% of quartz powder w...
Embodiment 2
[0041] Embodiment 2: Composite material parameter optimization
[0042] 1. Prepare 15 groups of equivalent composite materials according to the above formula and method. Wherein, by weight ratio, the specific parameters of each component in each group are shown in Table 3. In addition, according to the formula of the control group in Table 3, the composite material of the control group was prepared.
[0043] Table 3 Formula components of each group
[0044]
[0045]
[0046] 2. Add bisphenol A epoxy resin, tetrachlorobisphenol A epoxy resin, bisphenol A gel coat resin, nano-mixed material, and DMP-30 in the above 16 groups of materials into the mixer, and stir at 130°C Shake well for 1 hour, then add quartz powder and maleic anhydride after cooling, mix thoroughly in a mixer, then place it on a flat mold, turn on the high-speed microwave vibration table, perform microwave vibration for 15 minutes, stop for 8 hours, put The material was sent into a high-temperature roo...
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