Toward accurate modeling and assessment of cement-based electromagnetic wave absorbers: Enabling absorption-dominant shielding via multilayered carbon fiber architectures

Publikation: Beitrag in FachzeitschriftForschungsartikelBeigetragenBegutachtung

Beitragende

  • Bin Zhang - , Wuhan University of Technology, National University of Singapore (Erstautor:in)
  • Junliang Guo - , Wuhan University of Technology (Autor:in)
  • Zhengyao Qu - , Wuhan University of Technology (Autor:in)
  • Marco Liebscher - , Professur für Baustoffe (Autor:in)
  • Viktor Mechtcherine - , Professur für Baustoffe (Autor:in)
  • Ya Kong - , China Academy of Aerospace Aerodynamics (Autor:in)
  • Guoqing Geng - , National University of Singapore (Autor:in)
  • Fazhou Wang - , Wuhan University of Technology (Autor:in)

Abstract

Cementitious material offers proven durability and scalability but lacks dielectric and magnetic loss capabilities, limiting its ability to absorb or shield electromagnetic (EM) waves. Traditional EM absorption systems employ a metal backplane based on transmission line theory, which conflicts with architectural applications. To address this, a multilayer carbon fiber (CF) cement system optimized for absorption-dominated electromagnetic interference (EMI) shielding without secondary reflection was proposed. Chopped CF of three lengths was incorporated into cement matrices with varying loadings to build an EM parameter database. EM parameters and layer thicknesses were optimized using genetic algorithms, achieving a three-layer composite with over 90 % absorptivity across the entire X-band. Increasing fiber length and content enhanced complex permittivity and conductivity via percolated conductive networks. Single-layer samples exhibited high reflectivity over 50 %, confirming reflection-dominant behavior. In contrast, the optimized multilayer structure achieved average reflectivity below 0.1 and EMI shielding effectiveness (SE) from 37.8 to 62.3 dB in simulation, with experimental reflectivity of 0.25 and SE between 28.3 and 62.2 dB. Impedance analysis revealed a descending gradient across layers, enabling progressive EM wave penetration and internal dissipation. Microwave attenuation constants confirmed EM energy loss within each layer, contributing synergistically to overall performance. This absorption-dominant design eliminates the need for metallic reflectors and overcomes the functional and architectural limitations of conventional EMI shielding, demonstrating that engineered CF cement composites offer an effective, scalable, and construction-compatible solution for EM protection.

Details

OriginalspracheEnglisch
Aufsatznummer144880
Seitenumfang12
FachzeitschriftConstruction and Building Materials
Jahrgang506
Frühes Online-Datum16 Dez. 2025
PublikationsstatusVeröffentlicht - 13 Jan. 2026
Peer-Review-StatusJa

Externe IDs

Scopus 105024861525

Schlagworte

Forschungsprofillinien der TU Dresden

Fächergruppen, Lehr- und Forschungsbereiche, Fachgebiete nach Destatis

Ziele für nachhaltige Entwicklung

ASJC Scopus Sachgebiete

Schlagwörter

  • Absorption-dominant shielding, Gradient impedance, Multilayer cement structure, Carbon fiber