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DESIGNING PERMANENT MAGNET MACHINES FOR FERROFLUID IMMERSION

机译:设计铁磁浸入式永磁电机

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In traditional Permanent Magnet Machines, such as electric motors and generators, power is transmitted by magnetic flux passing through an air gap, which has a very low magnetic permeability, limiting performance. However, reducing the air gap through traditional means carries risks in manufacturing, with tight tolerances and associated costs, and reliability, with thermal and dynamic effects requiring adequate clearance. Using a magnetically permeable, high thermal conductivity material has the potential to improve magnetic performance, while at the same time offering performance advantages in heat transfer. Ferrofluids can be used to improve permeability in the rotor / stator gap. However, there are several tradeoffs in this approach. Fluid immersion comes with an increase in fluid friction loss compared to the windage losses of a traditional system. Isolating the rotating components from the ferrofluid can offset this effect. Also, while the magnetic effect can be positive for gap permeability, leakage flux can increase, and saturation can limit gains. These effects must be taken into account for a system optimized for ferrofluid immersion.
机译:在传统的永磁电机,例如电动机和发电机中,功率是通过穿过气隙的磁通来传输的,该气隙的导磁率非常低,从而限制了性能。但是,通过传统方式减少气隙会带来制造风险,包括严格的公差和相关成本以及可靠性,以及热效应和动态效应,需要足够的间隙。使用导磁的,高导热率的材料具有改善磁性能的潜力,同时在传热方面具有性能优势。铁磁流体可用于提高转子/定子间隙中的磁导率。但是,此方法有一些折衷。与传统系统的风阻损耗相比,流体浸没伴随着流体摩擦损耗的增加。将旋转组件与铁磁流体隔离可以抵消这种影响。同样,尽管磁效应对间隙磁导率是正的,但漏磁通会增加,饱和会限制增益。对于为铁磁流体浸入优化的系统,必须考虑这些影响。

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