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Electromotive Force Generation using the Dynamic Response ofNi_(50)Mn_(28.5)Ga_(21.5) Magnetic Shape Memory Alloy

机译:使用NNI_(50)MN_(28.5)GA_(21.5)磁形记忆合金的动态响应产生电动势

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Magnetic Shape Memory Alloys (MSMAs) are materials that respond to a change in either compressive stress or magnetic field, and can be used for applications such as actuation, sensing, and power harvesting. MSMA prismatic specimens are usually loaded magneto-mechanically by a compressive stress applied along the longest side of the specimen and by a magnetic field applied normal to the direction of the compressive stress. Karaman et al. proved the viability of using MSMAs, specifically NiMnGa single crystals, for energy harvesting applications using up to 5 Hz of cyclic stress. The group proposed a simple mathematical model to predict electrical voltage output generated by the material during the shape recovery process. The voltage output predicted by the model matched well with experimental results recorded at low frequencies'. The magnetization reversal responsible for the voltage output has been approximated by Karaman et al. does not use the constitutive relations for the magneto-mechanical behavior of the material, such as that proposed by Kiefer and Lagoudas2'3. This work presents simulated and experimental results describing the electromotive force (EMF) producing capabilities of a NiMnGa magnetic shape memory alloy (MSMA) at frequencies of up to 10 Hz. Unlike previous work, the current paper uses the constitutive model developed by Kiefer and Lagoudas~2-4 and the corresponding magnetization relations to theoretically predict the voltage output of the material. COMSOL Multiphysics 3.5a and Simulink were used to generate the simulated results for different constant bias magnetic fields and frequencies of excitation, partial reorientation strains and stress amplitudes. Simulated results are compared to experimental data and the reasons for data match/mismatch are discussed.
机译:磁性形状记忆合金(MSMAs)是材料在任一压缩应力或磁场的变化做出响应,并且可用于应用如致动,传感,和电力收获。 MSMA棱柱形样品通常装入磁 - 机械地沿试样的最长边和通过磁场施加的压缩应力施加垂直于压应力的方向。 Karaman等人。证明了使用MSMAM,特别是NIMNGA单晶的可生存能力,用于使用多达5 Hz的循环应力的能量收集应用。该组提出了一种简单的数学模型,以预测在形状恢复过程中由材料产生的电压输出。模型预测的电压输出匹配良好,在低频下记录的实验结果匹配。对电压输出负责的磁化反转已经近似于Karaman等人。不使用材料的磁力机械行为的组成关系,例如由Kiefer和Lagudas2'3提出的。该工作提出了模拟和实验结果,所述模拟和实验结果描述了在高达10Hz的频率下产生Nimnga磁性形状记忆合金(MSMA)的电动势(EMF)的能力。与以前的工作不同,目前的论文使用由Kiefer和Lagudas〜2-4开发的本构模型和相应的磁化关系理论上预测材料的电压输出。 COMSOL MultiphySics 3.5a和Simulink用于生成不同恒定偏置磁场的模拟结果和激发的频率,部分重新定向菌株和应力幅度。将模拟结果与实验数据进行比较,讨论了数据匹配/不匹配的原因。

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