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磁性材料

与 磁性材料 相关的网络例句 [注:此内容来源于网络,仅供参考]

It is well known that hexagonal boron nitride is a kind of non-magnetic material with high heat conductivity and is an ideal matrix material of nanocomposites.

六方氮化硼是一种非磁性绝缘材料,具有高的热导率,是一种理想的复合材料的基体材料。

It was important that the thixotropic agent,surface active agent and solid lubricating agent are added,the surface of magnetizable particles were suitable treated,at the same time,the stability and lubricating property of MRF were analyzed and discussed.

通过触变剂与表面活性剂复合使用,同时对磁性悬浮相表面进行适当的处理,并加入适当的固体润滑剂合成了一种稳定性和润滑性能良好的磁流变体材料,该磁流变体材料性能为:0η≤1000mPa.s,τ0.5T≥60kPa,半个月内无明显沉降,无板结,"四球机法"测量其润滑性能为磨斑直径。75mm,该类型磁流变液用于磁流变阻尼器200万次振动试验取得了理想的试验效果。

The material has the advantages of great specific surface area, fluorescence property and paramagnetic property.

该材料具有比表面积大的优点,而且不影响材料的荧光和顺磁性。

Especially, spinel half-metal materials have high Curie temperature, stable physical properties, and large room-temperature spin-polarization so that they have huge potential application in many areas including read-write magnetic head of computers, magnetic static-state random memorizer, magnetic sensors and spin transistors.

尤其是尖晶石结构半金属材料因居里温度高、性能稳定、室温自旋极化率大等优点而被认为是最具应用潜力的自旋电子材料之一,它在计算机读写磁头、磁静态随机存储器、磁性传感器、自旋晶体管等自旋电子器件中极具应用潜力。

The interaction and interfacial polarization,as well as the present of polyaniline,were seen as contributing factors to the increase in the complex relative permittivity.

现代微波吸收材料正朝着介电和磁性复合材料方向发展,因为复合可以保持两组分的优点,可裁剪材料的电磁参数,拓宽微波

The temperature dependence of the magnetization of the two - sublattice system is calculated by computer simulation. It is found that the two - sublattice materials with ferromagnetic interactions and competing anisotropies may show the ferrimagnetic - like temperature dependence of the magnetization.

用计算机模拟的方法模拟双亚点阵材料磁化强度温度曲线,发现具有铁磁性交换作用和竞争的亚点阵各向异性的双亚点阵材料可显示亚铁磁状磁化强度温度曲线的新现象。

This effect occurs because the magnetism in the material is generated by innumerable magnetic atoms, like a host of tiny bar magnets, all roughly aligned but randomly fluctuating like compass needles being jiggled about.

这是因为材料的磁性是由无数个磁性原子所产生的,就像一群微小的块状磁铁,它们虽大致排齐但仍不规则,就像罗盘的指针一样不停晃动。

Some possible related phenomena and theory of high-T〓,heavy fermion superconductor as well as ternary magnetic superconductor aredescribed.

文中回顾了主要的实验现象,简单介绍了可能与该类材料相关的高温超导材料、重费米子超导体、三元磁性超导体。

The magnetic intensity of the applied magnetic force on a ferromagnetic material denoted by the term H measured in oersteds; b. The magnetic inducition or flux density as the flux per unit area normal to the direction of the flux ,denoted by B and measured in gauss; c. The magnetic permeability establishes the relation between magnetic induction and magnetizing force expressed as B/H =u; d.Residual magnetism or remanent magnetism which remains in the casting after the magnetizing force has been removed .

磁场强度的应用磁力就一铁磁材料标注由任期h来衡量, oersteds ;乙磁inducition或磁通密度为通量每单位面积正常的方向通量,标注由B和衡量在高斯;长该磁导建立的关系磁感应强度和磁化力表示的B /为H = u ; d.residual磁性或剩余磁性,这仍然是在铸造后,磁化部队已被删除。

Secondly, the experimental research advances of cyclopeptide nanotubes using as the templets to produce biologic sensors by synthesis with functional nanomaterials such as electronic, optical and magnetic ones.

进而介绍了环肽纳米管用作生物传感器模板,与功能性纳米材料合成制备生物传感器的实验研究进展,接着介绍了环肽纳米管作为药物或药物载体潜在的应用前景,特别是在某些抗菌和抗感染药物开发设计中的应用以及环肽在不同极性的环境中自组装过程微观机制的MD模拟研究进展,最后介绍了环肽纳米管作为模板,制备磁性、电性纳米材料方面的实验和理论研究进展。

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