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Anisotropic perpendicular axis magnetostriction in twinned TbxDy1−xFe1.95

机译:孪生TbxDy1−xFe1.95中的各向异性垂直轴磁致伸缩

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The longitudinal magnetostriction (Dgr;l/l) for twinned TbxDy1−xFe1.95material, prepared by the free‐standing float‐zone method, has been previously measured and found to be very large (2000×10−6) at room temperature. The magnetostrictions for the 111 and 11¯0 crystallographic axes perpendicular to the applied stress and magnetic‐field 112¯ direction are presented as functions of temperature, applied stress, and applied magnetic field. The temperature range is ±60 °C centered about the anisotropy compensation temperature of Terfenol‐D (+10 °C). The stress ranges from 2 to 32 MPa and the magnetic field to ±2000 Oe. The temperature dependence of the perpendicular axes magnetostriction is similar to that of the conventional magnetostriction measured parallel to the 112¯ growth axis. Relative values for the saturation magnetostriction exhibit a large anisotropy in the perpendicular direction, ranging from −117 for the 111 to +19 for the 11¯0 direction. This ratio stays constant as a function of temperature above the compensation temperature for a given prestress above 8 MPa. The largest absolute value of magnetostriction (2260×10−6) occurs in the 111 direction at 10 °C at a prestress pressure of 12 MPa. Above this temperature the magnetostriction falls at a rate of −8.5×10−6/°C. The volume magnetostriction is shown to be small and highly sample dependent. All data is consistent with the parent‐twin magnetization model and also the magnetostriction values along nonprincipal axes.
机译:先前已测量并发现孪晶TbxDy1−xFe1.95材料的纵向磁致伸缩(&Dgr;l/l)在室温下非常大(2000×10−6)。垂直于外加应力和磁场 [112 ̄] 方向的 [111] 和 [111&�0] 晶体轴的磁致伸缩表示为温度、外加应力和外加磁场的函数。温度范围为 ±60 °C,以 Terfenol‐D 的各向异性补偿温度 (+10 °C) 为中心。应力范围为 2 至 32 MPa,磁场范围为 ±2000 Oe。垂直轴磁致伸缩的温度依赖性与平行于[112 ̄]生长轴测量的常规磁致伸缩相似。饱和磁致伸缩的相对值在垂直方向上表现出较大的各向异性,范围从 [111] 的 −117% 到 [11 ̄0] 方向的 +19%。对于高于 8 MPa 的给定预应力,该比率作为高于补偿温度的温度的函数保持恒定。在10 °C下,在12 MPa的预应力压力下,磁致伸缩的最大绝对值(2260×10−6)出现在[111]方向上。高于此温度时,磁致伸缩以−8.5×10−6/°C的速率下降。体积磁致伸缩被证明是小的,并且高度依赖于样品。所有数据均与父&连字符;孪生磁化模型以及沿非主轴的磁致伸缩值一致。

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