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The electromagnetic wave absorption potential of SiC-based ceramic woven fabrics was determined in the 17¨C40 GHz frequency range using the free-space method. The electrical conductivities of the fabrics were modified by heat treatment in air. In addition to heat treatment, the effect of different sequences of layers in combination on the electromagnetic wave absorption potential of the ceramic woven fabrics with different chemical compositions and weave types was discussed. As a result, the following conclusions have been drawn:
1.Heat treatment of SiC-based woven fabrics causes a reduction in their electrical conductivity due to an oxidation of fibers. The heat-resistant ZE8 fabric was
influenced least by surface modifications, whereas the carbon-coated PN-type was most affected due to the loss of its carbon-rich layer after heat treatment.
2.As-received and heat-treated single-layer ceramic woven fabrics did not reveal a sufficient absorption potential (<40%) for typical applications. Various double-layer combinations of fabrics showed better electromagnetic wave absorption potentials than those of single layers.
3.The sequences of layers in combinations affected the absorption potential of combinations, where low ¡ú -high electrical conductivity layer combinations led to better absorption results than other double-layer combinations.
4.Combinations of heat-treated woven fabrics did not necessarily result in an improvement in absorption potential. Rather than a direct increase in absorption,the function of heat treatment was
5.Double-layer combinations of the satin woven fabrics (S8 and ZE8) showed promising absorption characteristics compared to other combinations. S8 and ZE8 combinations in as-received and heat-treated states showed absorption potentials of higher than 90% over a wide frequency range. The high absorption potential of multi-layer SiC-based ceramic woven fabrics in the GHz range renders them as strong candidate materials for electromagnetic wave-absorbing applications.to change the electrical conductivities of the woven fabrics to achieve low¡úhigh electrical conductivity layer
combinations.

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