跳到主要导航 跳到搜索 跳到主要内容

Loss mechanisms in low-fiber H-shaped absorbers and multi-angle microwave absorption control via array density

  • Guosong Zhu
  • , Xiaoyuan Li
  • , Yue Hu
  • , Wei Zhou
  • , Heng Luo
  • , Xiaomeng Fan
  • , Zhuan Li
  • , Peng Xiao
  • , Feixiang Wu
  • , Yang Li
  • Central South University
  • Beijing Institute of Aeronautical Materials
  • Changsha University

科研成果: 期刊稿件文章同行评审

4 引用 (Scopus)

摘要

To overcome the bottlenecks in achieving broadband absorption and thin-profile design for high-temperature absorber-load-bearing integrated fiber composites, this paper presents an in-depth study on H-shaped fiber array structures composed of carbon fibers and silicon carbide fibers. By integrating the minimal aperture method with equivalent medium theory, an accurate extraction model for the equivalent electromagnetic parameters of non-uniform structures was established, resolving the challenge of electromagnetic parameter inversion for traditional all-metal backplane structures. Using nonlinear fitting methods, the contributions of conduction loss and relaxation polarization loss to dielectric loss were quantitatively analyzed. Results indicate that in the X and Ku bands, relaxation polarization loss is dominant, accounting for 63.73% of the total loss. The carbon fiber skeleton primarily dissipates energy through eddy current effects and ohmic losses induced by high conductivity, while silicon carbide fibers contribute to relaxation polarization loss via interfacial dipole reorientation polarization. Furthermore, constructing a 2.5 mm uniform-thickness multilayer gradient stack structure effectively mitigates impedance mismatch and significantly broadens the absorption bandwidth. Notably, under 20° oblique incidence, absorption performance improved by 1.8 times, reaching −32.5 dB from −17.8 dB. The effective absorption bandwidth increased by 1.7 times, broadening from 4.66 to 7.83 GHz. With a fiber content of only 4.536%, this structure achieves high-efficiency broadband absorption within a 2.5 mm thickness.

源语言英语
文章编号144901
期刊Journal of Applied Physics
139
14
DOI
出版状态已出版 - 14 4月 2026

指纹

探究 'Loss mechanisms in low-fiber H-shaped absorbers and multi-angle microwave absorption control via array density' 的科研主题。它们共同构成独一无二的指纹。

引用此