Effects of non-magnetic carbon nanotubes on the performance and stability of magnetorheological fluids containing FeCo-deposited carbon nanotubes

IF 2.2 4区 工程技术 Q2 MECHANICS Korea-Australia Rheology Journal Pub Date : 2022-03-16 DOI:10.1007/s13367-022-00023-0
Sangwon Cho, Hoyeon Kim, Sehyun Kim, Yongsok Seo
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引用次数: 3

Abstract

Magnetorheological (MR) properties of the carbon nanotube (CNT)–FeCo nanocomposite particle suspension were investigated to find a high-performance MR fluid with great stability. The composites were fabricated by chemical deposition of FeCo on the surface of amine functionalized CNTs. The strong magnetic polarization of the FeCo moiety led to strong MR performance of the nanocomposite particle suspension. The MR fluid exhibits high yield stress value, 4 times greater than that of the suspension including Fe3O4-deposited CNT at a magnetic field strength of 86 kA/m. A three-dimensional network-like structure formed by the non-magnetic CNTs in the MR suspension does not contribute to the additional yield stress. The low density and the surface roughness of the CNTs resulted in far better long-term stability for the CNT–FeCo nanocomposite suspension than for the MR suspension of hierarchically structured Fe3O4 suspension with a similar density. The effect of the three-dimensional network-like structures by the CNTs on the MR performance depends upon the interaction strength between the magnetic moiety on the CNTs.

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非磁性碳纳米管对含feco沉积碳纳米管的磁流变液性能和稳定性的影响
研究了碳纳米管(CNT) -FeCo纳米复合颗粒悬浮液的磁流变(MR)特性,以寻找具有高稳定性的高性能磁流变流体。通过在胺功能化碳纳米管表面化学沉积FeCo制备复合材料。FeCo部分的强磁极化导致纳米复合颗粒悬浮液具有较强的磁流变性能。在磁场强度为86 kA/m时,磁流变液的屈服应力值是含fe3o4碳纳米管的悬浮液的4倍。由MR悬浮液中的非磁性碳纳米管形成的三维网状结构不会增加额外的屈服应力。碳纳米管的低密度和表面粗糙度使得碳纳米管- feco纳米复合悬浮液的长期稳定性远远优于具有相似密度的分层结构Fe3O4悬浮液的MR悬浮液。碳纳米管的三维网状结构对磁流变性能的影响取决于碳纳米管上磁性部分之间的相互作用强度。
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来源期刊
Korea-Australia Rheology Journal
Korea-Australia Rheology Journal 工程技术-高分子科学
CiteScore
2.80
自引率
0.00%
发文量
28
审稿时长
>12 weeks
期刊介绍: The Korea-Australia Rheology Journal is devoted to fundamental and applied research with immediate or potential value in rheology, covering the science of the deformation and flow of materials. Emphases are placed on experimental and numerical advances in the areas of complex fluids. The journal offers insight into characterization and understanding of technologically important materials with a wide range of practical applications.
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