首页> 美国卫生研究院文献>Materials >The Effects of Multi-Walled Carbon Nanotubes and Steel Fibers on the AC Impedance and Electromagnetic Shielding Effectiveness of High-Performance Fiber-Reinforced Cementitious Composites
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The Effects of Multi-Walled Carbon Nanotubes and Steel Fibers on the AC Impedance and Electromagnetic Shielding Effectiveness of High-Performance Fiber-Reinforced Cementitious Composites

机译:多壁碳纳米管和钢纤维对高性能纤维增强水泥基复合材料交流阻抗和电磁屏蔽效能的影响

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摘要

This study aimed to investigate the effect of multi-walled carbon nanotubes (MWCNTs) and steel fibers on the AC impedance and electromagnetic shielding effectiveness (SE) of a high-performance, fiber-reinforced cementitious composite (HPFRCC). The electrical conductivity of the 100 MPa HPFRCC with 0.30% MWCNT was 0.093 S/cm and that of the 180 MPa HPFRCC with 0.4% MWCNT and 2.0% steel fiber was 0.10 S/cm. At 2.0% steel fiber and 0.3% MWCNT contents, the electromagnetic SE values of the HPFRCC were 45.8 dB (horizontal) and 42.1 dB (vertical), which are slightly higher than that (37.9 dB (horizontal)) of 2.0% steel fiber content and that (39.2 dB (horizontal)) of 0.3% MWCNT content. The incorporation of steel fibers did not result in any electrical percolation path in the HPFRCC at the micro level; therefore, a high electrical conductivity could not be achieved. At the macro level, the proper dispersion of the steel fibers into the HPFRCC helped reflect and absorb the electromagnetic waves, increasing the electromagnetic SE. The incorporation of steel fibers helped improve the electromagnetic SE regardless of the formation of percolation paths, whereas the incorporation of MWCNTs helped improve the electromagnetic SE only when percolation paths were formed in the cement matrix.
机译:这项研究旨在研究多壁碳纳米管(MWCNT)和钢纤维对高性能纤维增强水泥基复合材料(HPFRCC)的交流阻抗和电磁屏蔽效率(SE)的影响。具有0.30%MWCNT的100 MPa HPFRCC的电导率为0.093 S / cm,具有0.4%MWCNT和2.0%钢纤维的180 MPa HPFRCC的电导率为0.10 S / cm。在钢纤维含量为2.0%和MWCNT含量为0.3%的情况下,HPFRCC的电磁SE值分别为45.8 dB(水平)和42.1 dB(垂直),略高于2.0%钢纤维含量(37.9 dB(水平))。以及(39.2 dB(水平))的0.3%MWCNT含量。钢纤维的掺入不会在HPFRCC的微观水平上产生任何电渗流路径。因此,无法获得高导电率。从宏观上看,钢纤维在HPFRCC中的适当分散有助于反射和吸收电磁波,从而增加了电磁SE。不管渗流路径的形成如何,钢纤维的掺入均有助于改善电磁SE,而只有在水泥基质中形成渗流路径时,MWCNT的掺入才有助于改善电磁SE。

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