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基于磁压等效双二维模型的绕组损耗仿真
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作者 徐祥旺 陈为 《电气开关》 2017年第6期34-38,共5页
绕组损耗的研究手段主要有理论分析、仿真分析和实测,其中最适合于应用在产品设计和优化阶段的是仿真分析。当下有限元仿真的现状是三维仿真内存要求过高,耗时过长,而作为替代的单二维模型仿真精度不够,所以本文提出双二维模型以规避它... 绕组损耗的研究手段主要有理论分析、仿真分析和实测,其中最适合于应用在产品设计和优化阶段的是仿真分析。当下有限元仿真的现状是三维仿真内存要求过高,耗时过长,而作为替代的单二维模型仿真精度不够,所以本文提出双二维模型以规避它们的缺陷。而双二维模型能被正确创建的先决条件是其气隙磁压要与实际磁件的气隙磁压相等,也就是需要磁压等效。本文采用气隙处添加补偿电流或直接用该补偿电流安匝磁动势代替气隙磁压的方式进行磁压等效。最后通过对各模型的绕组损耗仿真证明了磁压等效双二维模型的准确性。 展开更多
关键词 绕组损耗 有限元仿真 双二维模型 磁压等效
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Enhanced magnetocaloric performances and tunable martensitic transformation in Ni_(35)Co_(15)Mn_(35-x)Fe_(x)Ti_(15) all-d-metal Heusler alloys by chemical and physical pressures 被引量:1
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作者 Yong Li Liang Qin +1 位作者 Siyuan Huang Lingwei Li 《Science China Materials》 SCIE EI CAS CSCD 2022年第2期486-493,共8页
The solid-state magnetic cooling(MC)method based on the magnetocaloric effect(MCE)is recognized as an environmentally friendly and high-energy-efficiency technology.The search or design of suitable magnetic materials ... The solid-state magnetic cooling(MC)method based on the magnetocaloric effect(MCE)is recognized as an environmentally friendly and high-energy-efficiency technology.The search or design of suitable magnetic materials with large MCEs is one of the main targets at present.In this work,we apply the chemical and hydrostatic pressures in the Ni_(35)Co_(15)Mn_(35-x)Fe_(x)Ti_(15) all-d-metal Heusler alloys and systematically investigate their crystal structures,phases,and magnetocaloric performances experimentally and theoretically.All the alloys are found to crystallize in an ordered B2-type structure at room temperature and the atoms of Fe are confirmed to all occupy at sites Mn(B).The total magnetic moments decrease gradually with increasing Fe content and decreasing of volume as well.The martensitic transformation temperature decreases with the increase of Fe content,whereas increases with increasing hydrostatic pressure.Moreover,obviously enhanced magnetocaloric performances can also be obtained by applied pressures.The maximum values of magnetic entropy change and refrigeration capacity are as high as 15.61(24.20)J(kg K)^(−1) and 109.91(347.26)J kg^(−1) withΔH=20(50)kOe,respectively.These magnetocaloric performances are superior to most of the recently reported famous materials,indicating the potential application for active MC. 展开更多
关键词 magnetocaloric performances magnetic properties pressure effects magnetocaloric effect all-d-metal Heusler alloys
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