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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Influence of Co substitution for Fe on the magnetic properties of nanocrystalline (Nd,Pr)-Fe-B based alloys
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Influence of Co substitution for Fe on the magnetic properties of nanocrystalline (Nd,Pr)-Fe-B based alloys

机译:Co替代Fe对纳米晶(Nd,Pr)-Fe-B基合金磁性能的影响

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The effects of Co substitution for Fe on the spin reorientation temperature, magnetic properties over a wide temperature range, the thermal stability and on exchange enhancement in nanocrystalline (Nd/Pr)(z)(Fe1-xCox)(94-z)B-6 alloys have been comprehensively studied. Such Co substitution substantially increased the Curie temperature (T-C) of the 2/14/1 phase and slightly decreased the spin reorientation temperature (TSR) for these alloys. Despite the smaller anisotropy field for the Nd2Co14B phase, in comparison with Nd2Fe14B, a small Co substitution did not greatly decrease the room temperature (RT) coercivity H-j(C), regardless of the rare earth to transition metal ratio. The remanence J(r) at RT was generally slightly improved by Co substitutions up to similar to 20%, though less so for the 8 at% rare earth (RE) series having a high volume fraction of soft magnetic phase. Similarly, substitution of up to 20% Co slightly enhanced the maximum energy product (BH)(max) at RT, except for the 8 at% RE alloys which showed a marked decline beyond 10 at% Co due to the strongly diminished H-j(C). In the case of the sub-ambient magnetic properties, Co substitution markedly decreased J(r) and (BH)(max), though the effect on H-j(C) was much smaller. In contrast, Co additions, because of the enhancement of T-C, substantially improved the elevated temperature behaviour of all experimental alloys, by decreasing the values of the temperature coefficients for J(r) and H-i(C), alpha and beta, respectively, particularly for alpha. Moreover, the Co also reduced the irreversible losses in J(r) and H-j(C) measured on ribbon samples. Analysis of microstructural parameters governing the coercivity, using the modified Brown equation, suggested that Co substitution not only reduced the stray fields, by homogenizing the grain structure and smoothing the grain boundaries, but also improved the exchange coupling between grains.
机译:Co替代Fe对纳米晶体(Nd / Pr)(z)(Fe1-xCox)(94-z)B-的自旋取向温度,宽温度范围内的磁性,热稳定性和交换增强的影响已经对6种合金进行了综合研究。对于这些合金,这种Co置换实质上提高了2/14/1相的居里温度(T-C),并略微降低了自旋取向温度(TSR)。尽管Nd2Co14B相的各向异性场较小,但与Nd2Fe14B相比,小的Co取代并不会大大降低室温(RT)矫顽力H-j(C),无论稀土与过渡金属的比率如何。通常,通过Co置换可以使RT的剩磁J(r)略有提高,最高可达20%,尽管对于具有高体积分数的软磁相的8 at%稀土(RE)系列而言,剩磁J(r)则较小。同样,最多可替代20%的Co稍微提高了RT处的最大能量乘积(BH)(max),除了8at%的RE合金由于Hj(C)大大降低外,Co显着下降超过10at%的Co。 )。在亚环境磁性的情况下,Co取代显着降低了J(r)和(BH)(max),尽管对H-j(C)的影响要小得多。相反,Co的添加由于TC的增强,通过分别降低J(r)和Hi(C),α和β的温度系数值,大大改善了所有实验合金的高温行为。对于Alpha。此外,Co还减少了在色带样品上测得的J(r)和H-j(C)的不可逆损失。使用修正的Brown方程分析控制矫顽力的微结构参数,表明Co替代不仅通过均匀化晶粒结构和平滑晶界来减少杂散场,而且还改善了晶粒之间的交换耦合。

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