High temperature-resistant electromagnetic wave-absorbing coating and use thereof
A wave-absorbing coating, high-temperature resistant technology, applied in coatings, radiation-absorbing coatings, fire-retardant coatings, etc., can solve the problems of maintaining wave-absorbing performance, but cannot completely solve the problem of anti-oxidation and large specific surface area of wave-absorbing coatings , to achieve the effect of ensuring temperature stability
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Embodiment 1
[0020] Example 1: Preparation of high temperature resistant wave-absorbing coating
[0021] Using ammonia water and tetraethyl orthosilicate as raw materials, the surface-coated SiO 2 Membrane of carbonyl iron powder absorbent.
[0022] Silicone modified epoxy resin was prepared according to the method described in patent CN201010233875.8.
[0023] In terms of mass, according to the surface coated SiO 2 Film carbonyl iron powder absorbent 10-60 parts; pigments and fillers 2-40 parts; silicone modified epoxy resin 15-45 parts; high temperature resistant phenolic resin curing agent 1-10 parts; coupling agent (KH560) 0.5- 5 parts; the proportion range of 10-50 parts of the mixed solvent, weighing each raw material, fully mixing the above raw materials, and ball milling in a ball mill for 4 hours to obtain a wave-absorbing coating.
[0024] In terms of mass, 6-60 parts of pigments and fillers; 15-45 parts of silicone modified epoxy resin; 1-10 parts of high temperature resistan...
Embodiment 2
[0029] Example 2: Test of reflectivity curve of high temperature resistant wave-absorbing coating
[0030] Taking coated plates 1, 2, 3, and 4 as objects, the reflectivity curve of the coating at 8-18 GHz was tested. attached figure 2 is the real-time reflectance of coating plate 1 tested at 350°C high temperature, attached image 3 is the real-time reflectance of coating plate 2 tested at 300°C high temperature, attached Figure 4 is the real-time reflectance of coating plate 3 tested at 300°C high temperature, attached Figure 5 is the real-time test reflectance of the coated plate 4 at room temperature and 350°C high temperature respectively. The test method adopts the bow frame method described in GJB 5022-2011; the high temperature real-time test adopts the flat furnace heating, and reaches the bow frame method test.
Embodiment 3
[0031] Example 3: Reflectivity test of high temperature resistant wave-absorbing coating
[0032] Taking coated panels 1, 2, 3, and 4 as objects, test the adhesion, flexibility, and impact strength of the coating. See Table 2 for the test content, achieved indicators and reference test methods.
[0033] Table 2 Conventional performance tests of high temperature resistant wave-absorbing coatings
[0034]
[0035] Note: High temperature (300°C) adhesion is the coating adhesion measured after the coated plate is kept in a muffle furnace at 300°C for 2 hours and cooled to room temperature.
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