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A 3-D Hybrid Jiles-Atherton/Stoner-Wohlfarth Magnetic Hysteresis Model for Inductive Sensors and Actuators

机译:用于感应传感器和执行器的3-D混合Jiles-Atherton / Stoner-Wohlfarth磁滞模型

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The Jiles-Atherton (JA) theory of hysteresis is currently used in the majority of commercial CAD tools, mainly due to its implementation simplicity in fast and stable algorithms. The JA model provides precise results in the case of isotropic, polycrystalline, multidomain magnetic devices, where flux-reversal is governed by pinning mechanisms. Dynamic response of such devices, including Eddy-current loss and magnetic resonance, can also be accurately modeled. However, JA theory is not applied for three-dimensional (3-D) magnetization simulations and does not account for anisotropy that affects severely hysteresis curves of single-domain, thin-film devices, which are usually incorporated in miniature inductive sensors and actuators. In that case, the Stoner-Wohlfarth (SW) theory can be applied, which, however, does not account for dynamic response and incremental energy loss. In this work, we employ a virtual 3-D anisotropy-field vector calculated with SW theory that introduces magnetic feedback to the classical equation of Paramagnetism, in order to derive a proper 3-D "input" for the JA algorithm. This way, a hybrid 3-D JA/SW model is developed, which incorporates both models into one single formulation, capable of modeling simultaneously: 1) temperature effects, 2) pinning and Eddy-current loss, 3) magnetic resonance, and 4) uniaxial anisotropy, the orientation of which can be simulated to vary with time. The model that owns a solid physical basis has been implemented in a computation-efficient, stable algorithm capable of functioning with arbitrary excitation-field input. The algorithm has been successfully applied to model the behavior of a series of miniature Fluxgate magnetometers based on the Matteucci effect of thin glass-covered magnetic wires.
机译:迟滞的吉尔斯-阿瑟顿(JA)迟滞理论目前已在大多数商用CAD工具中使用,这主要是由于其在快速和稳定算法中的实现简单性。在各向同性,多晶,多畴磁性器件的情况下,JA模型可提供精确的结果,在这种器件中,磁通量的反转受钉扎机制控制。此类设备的动态响应,包括涡流损耗和磁共振,也可以精确建模。但是,JA理论并未应用于三维(3-D)磁化模拟,也没有考虑各向异性,该各向异性会严重影响单域薄膜设备的严重磁滞曲线,通常将其纳入微型电感传感器和执行器中。在那种情况下,可以应用Stoner-Wohlfarth(SW)理论,但是该理论不能解决动态响应和增量能量损失的问题。在这项工作中,我们采用由SW理论计算的虚拟3-D各向异性场矢量,该矢量将磁反馈引入顺磁性的经典方程式中,以便为JA算法得出适当的3-D“输入”。这样,开发出了一种混合型3-D JA / SW模型,该模型将两个模型合并为一个单一的公式,能够同时建模:1)温度效应,2)钉扎和涡流损耗,3)磁共振和4 )单轴各向异性,其方向可以模拟为随时间变化。具有坚实物理基础的模型已通过能够在任意激励场输入下运行的高效计算,稳定算法实现。该算法已成功应用于基于细玻璃覆盖的电磁线的Matteucci效应对一系列微型Fluxgate磁力计的行为进行建模。

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