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首页> 外文期刊>Archive of Applied Mechanics >Mesoscopic characterization of magnetoelastic hybrid materials: magnetic gels and elastomers, their particle-scale description, and scale-bridging links
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Mesoscopic characterization of magnetoelastic hybrid materials: magnetic gels and elastomers, their particle-scale description, and scale-bridging links

机译:磁弹性杂化材料的介观表征:磁性凝胶和弹性体,它们的颗粒尺寸描述和尺寸桥接链接

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Magnetic hybrid materials in the form of magnetic gels and elastomers, that is, magnetic or magnetizable colloidal particles embedded in an elastic polymer matrix, are fascinating substances. By addressing and adjusting the magnetic interactions between the particles through external magnetic fields, their overall material properties can be tuned reversibly while in operation. A central goal is to understand how these features can be optimized and which structural properties of the materials determine their overall behavior and its tunability. Mesoscopic theories and modeling are necessary for these purposes, resolving the arrangement of the embedded particles and linking it to the macroscopic scale of the overall material behavior. Here, we overview such recent developments of mesoscopic approaches. Particularly, we address coarse-grained but efficient dipole-spring models, explicit analytical calculations using linear elasticity theory, numerical approaches that allow to characterize nonlinear effects, or density functional theory. In this way, various properties and types of behavior of these materials are revealed, for instance, their reversible tunability of static and dynamic mechanical moduli by magnetic fields, elastic interactions between the embedded particles mediated through the polymeric matrix, or a pronounced and reversibly tunable nonlinear stress-strain behavior. Links from the mesoscopic to the micro- and macroscopic level are outlined. We mention combined efforts of theoretical descriptions, modeling, numerical simulations, and experimental investigations. It becomes evident from our treatment that an integrated approach of theory, simulations, and experiments will significantly increase our further understanding of these materials in the future and will draw possible applications into sight.
机译:磁性凝胶和弹性体形式的磁性杂化材料,即嵌入弹性聚合物基质中的磁性或可磁化胶体颗粒,是令人着迷的物质。通过解决和通过外部磁场调整粒子之间的磁性相互作用,可以在运行时可逆地调整其整体材料性能。中心目标是了解如何优化这些功能,以及材料的哪些结构特性决定其整体性能及其可调谐性。介观理论和建模对于这些目的是必要的,它可以解决嵌入粒子的排列并将其与整体材料行为的宏观尺度联系起来。在这里,我们概述了介观方法的最新发展。特别是,我们讨论了粗粒度但有效的偶极子弹簧模型,使用线性弹性理论的显式分析计算,允许表征非线性效应的数值方法或密度泛函理论。以这种方式,揭示了这些材料的各种特性和行为类型,例如,它们通过磁场可逆地调节静态和动态机械模量,通过聚合物基体介导的嵌入颗粒之间的弹性相互作用,或明显且可逆地调节非线性应力应变行为。概述了从介观层面到微观层面和宏观层面的链接。我们提到了理论描述,建模,数值模拟和实验研究的共同努力。从我们的治疗中可以明显看出,理论,模拟和实验的集成方法将在未来极大地增进我们对这些材料的进一步理解,并将吸引潜在的应用。

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