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Demagnetizing field in single crystal ferromagnetic shape memory alloys

机译:单晶铁磁形状记忆合金中的去磁场

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Ferromagnetic materials, including ferromagnetic shape memory alloys (FSMAs or MSMAs), are subject to demagnetization. Because of this demagnetization, the MSMA literature is inconsistent with regards to where the applied magnetic field should be measured experimentally. In addition, many researchers assume a constant demagnetization factor when modeling MSMAs, but there has been little analysis to determine the accuracy of that assumption. In this work, we use finite element (FE) simulations to determine (1) where the applied magnetic field should be measured experimentally and (2) how accurately the assumption of a constant demagnetization factor captures the magnetic field experienced by MSMAs. To determine the correct location for measuring the applied magnetic field experimentally, FE simulations and a constant demagnetization factor were used to calculate an average applied magnetic field with ellipsoidal specimens. This value was then compared to the magnetic field measured in the FE simulations at various locations. Simulations showed that the average magnetic field in the air volume where the MSMA would be placed, but without the MSMA present, was the correct method for measuring the applied magnetic field. Measuring the applied field at the center point of where the MSMA would be placed, but without the MSMA present, provides an easier to measure location, which is nearly as accurate. Additional FE simulations were conducted to test the validity of using a volume average demagnetization factor in calculating an MSMA's internal magnetic field for prismatic specimens. Comparing the internal magnetic field determined using FE analysis to calculated values of the internal magnetic field using a constant demagnetization factor showed that these two values were similar when the FE calculated internal field was spatially averaged, however, significant variation of the internal magnetic field was present within the volume of prismatic specimens.
机译:铁磁材料,包括铁磁性形状记忆合金(FSMAS或MSMAS),受到退磁。由于这种退磁,MSMA文献对于实验测量所施加的磁场的位置不一致。此外,许多研究人员在建模MSMAS时假设恒定的退磁因子,但是几乎没有分析来确定该假设的准确性。在这项工作中,我们使用有限元(Fe)模拟来确定(1)所在的施加磁场应该通过实验测量和(2)如何准确地捕获恒定的退磁因子的假设捕获MSMAM所经历的磁场。为了确定实验测量所施加的磁场的正确位置,使用Fe模拟和恒定的去磁因子来计算具有椭圆样本的平均施加的磁场。然后将该值与各个位置处的FE模拟中测量的磁场进行比较。仿真表明,在存在MSMA的空气量中的平均磁场,但是没有MSMA存在,是用于测量所施加的磁场的正确方法。测量在将MSMA放置的中心点处的所施加的字段,但没有MSMA存在,提供更容易测量位置的位置,几乎可以准确。进行额外的Fe模拟以测试使用体积平均去磁因子的有效性计算MSMA的棱镜标本的MSMA内磁场。比较使用Fe分析确定的内部磁场以使用恒定的退磁因子计算内部磁场的值,表明,当Fe计算的内部场平均时,这两个值类似,然而,存在内部磁场的显着变化在棱柱标本的体积内。

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