基于猪油、明胶和羰基铁微颗粒的磁流变悬浮液中的磁介电和流变效应

Materials Pub Date : 2024-08-08 DOI:10.3390/ma17163941
O. Bunoiu, I. Bica, E. Anitas, L. Chirigiu
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引用次数: 0

摘要

本研究旨在利用猪油、羰基铁(CI)微粒和不同数量的明胶颗粒(GP)制作三种磁流变悬浮液(MRS),从而开发出低成本、生态友好且符合循环经济要求的复合材料。这些磁流变悬浮液在用于制造电容器的圆柱形电池中用作介电材料。在中频电场(f = 1 kHz)上叠加不同磁通密度(B≤160 mT)并持续 120 秒的情况下,测量了这些电容器的等效电容(C)。结果表明,在 B 值较高时,与不含 GP 的 MRS 相比,GP 含量增加到 20 vol.% 会使电容 C 下降约一个数量级。从测量数据中可以得出电容 Cm 的平均值,从而计算出 MRS 的相对介电常数 (ϵr′) 和动态粘度 (η)。结果表明,ϵr′和η可以通过改变磁暴介质的组成进行调整,并通过磁通密度 B 进行微调。以偶极近似理论为基础的理论模型表明,ϵr′、η 和磁介电效应可通过 MRS 的组成进行粗调,并通过磁通密度 B 的值进行微调。对这些特性进行微调的能力凸显了这些材料的多功能性,使其适用于电子、汽车和航空航天等各行各业。
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Magnetodielectric and Rheological Effects in Magnetorheological Suspensions Based on Lard, Gelatin and Carbonyl Iron Microparticles
This study aims to develop low-cost, eco-friendly, and circular economy-compliant composite materials by creating three types of magnetorheological suspensions (MRSs) utilizing lard, carbonyl iron (CI) microparticles, and varying quantities of gelatin particles (GP). These MRSs serve as dielectric materials in cylindrical cells used to fabricate electric capacitors. The equivalent electrical capacitance (C) of these capacitors is measured under different magnetic flux densities (B≤160 mT) superimposed on a medium-frequency electric field (f = 1 kHz) over a period of 120 s. The results indicate that at high values of B, increasing the GP content to 20 vol.% decreases the capacitance C up to about one order of magnitude compared to MRS without GP. From the measured data, the average values of capacitance Cm are derived, enabling the calculation of relative dielectric permittivities (ϵr′) and the dynamic viscosities (η) of the MRSs. It is demonstrated that ϵr′ and η can be adjusted by modifying the MRS composition and fine-tuned through the magnetic flux density B. A theoretical model based on the theory of dipolar approximations is used to show that ϵr′, η, and the magnetodielectric effect can be coarsely adjusted through the composition of MRSs and finely adjusted through the values B of the magnetic flux density. The ability to fine-tune these properties highlights the versatility of these materials, making them suitable for applications in various industries, including electronics, automotive, and aerospace.
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