Dynamic modeling and analysis of viscoelastic hard-magnetic soft actuators with thermal effects

IF 2.8 3区 工程技术 Q2 MECHANICS
Divyansh Sharma, Atul Kumar Sharma
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引用次数: 0

Abstract

Hard-magnetic soft materials (HMSMs) are a class of magnetoactive smart polymers capable of sustaining a high residual magnetic flux density and can undergo large actuation strains under an external magnetic excitation. Due to these exceptional characteristics, soft actuators based on HMSMs hold enormous potential for remote-controlled applications. The temperature and viscoelasticity considerably influence the performance of these materials during the operation. This work aims to develop an analytical framework for modeling the dynamic behavior of a planar hard-magnetic soft actuators (HMSA) considering temperature and viscoelastic effects. The constitutive behavior of the viscoelastic HMSA is described by employing an incompressible neo-Hookean model in conjunction with a Zener rheological model and the Rayleigh dissipation function. The dynamic governing differential equations of motion are derived by utilizing the non-conservative form of the Euler–Lagrange equation. This study delves into the collective influence of temperature and viscoelastic properties on the stability, periodicity, and resonance characteristics of nonlinear vibrations exhibited by HMSM-based planar actuator subjected to dynamic magnetic loading, presenting the findings through time-history responses, Poincaré maps, and phase-plane plots. The presented results can help in the efficient and robust design of HMSM-based actuators and can also serve as an initial step toward the development of advanced actuators exposed to dynamic loading under variable temperatures for diverse applications in the fields of engineering and medicine.

具有热效应的粘弹性硬磁软致动器的动态建模与分析
硬磁软材料(HMSMs)是一类磁活性智能聚合物,能够维持较高的残余磁通密度,并能在外部磁激励下承受较大的致动应变。由于这些优异特性,基于 HMSMs 的软致动器在遥控应用方面具有巨大潜力。温度和粘弹性在很大程度上影响着这些材料在运行过程中的性能。本研究旨在开发一种分析框架,用于模拟考虑了温度和粘弹性效应的平面硬磁软致动器(HMSA)的动态行为。粘弹性 HMSA 的构成行为是通过采用不可压缩的新胡肯模型、齐纳流变模型和瑞利耗散函数来描述的。利用欧拉-拉格朗日方程的非守恒形式,推导出了动态控制运动微分方程。本研究深入探讨了温度和粘弹性特性对基于 HMSM 的平面致动器在动态磁载荷作用下非线性振动的稳定性、周期性和共振特性的共同影响,并通过时间历史响应、Poincaré 地图和相平面图展示了研究结果。这些结果有助于高效、稳健地设计基于 HMSM 的致动器,也可作为开发在可变温度下承受动态载荷的先进致动器的第一步,用于工程和医学领域的各种应用。
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来源期刊
CiteScore
5.50
自引率
9.40%
发文量
192
审稿时长
67 days
期刊介绍: The International Journal of Non-Linear Mechanics provides a specific medium for dissemination of high-quality research results in the various areas of theoretical, applied, and experimental mechanics of solids, fluids, structures, and systems where the phenomena are inherently non-linear. The journal brings together original results in non-linear problems in elasticity, plasticity, dynamics, vibrations, wave-propagation, rheology, fluid-structure interaction systems, stability, biomechanics, micro- and nano-structures, materials, metamaterials, and in other diverse areas. Papers may be analytical, computational or experimental in nature. Treatments of non-linear differential equations wherein solutions and properties of solutions are emphasized but physical aspects are not adequately relevant, will not be considered for possible publication. Both deterministic and stochastic approaches are fostered. Contributions pertaining to both established and emerging fields are encouraged.
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