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Creating a multifunctional composite stator slot material system to enable high power density electric machines for electrified aircraft applications

机译:创建多功能复合定子槽材料系统,为电气化的飞机应用启用高功率密度电机

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Increasing the power density and efficiency of electric machines (motors and generators) is integral to bringing Electrifíed Aircraft (EA) to commercial realization. However, power density and efficiency are not qualities that can be developed independently. At the heart of any electric machine are the conductors (usually copper) that carry current and generate magnetic fields. Increased power density means increased current density and increased joule heating in a smaller volume. To increase efficiency at the wire level means minimizing electrical resistance and hence power lost to joule heating. There are fundamental challenges with concomitantly increasing both power density and efficiency since the copper resistivity is very temperature sensitive at common electric machine operating conditions. Simple calculations of the linear increase in resistivity of copper as a function of temperature, reveals that a one degree Celsius increase in temperature results in a 0.39% decrease in efficiency. Conversely, a 20 degree Celsius decrease in copper temperature produces a 7.8% increase in efficiency. Therefore, improved thermal management concepts for electric machine building blocks such as stator winding are a priority for improving efficiency and power density. This paper proposing changing the view of component materials in the stator slots from individual components with singular functionality to a composite system where the components take on a multifunctional roles. In the composite framework, achievable material development goals are defined that together have maximum system impact on the thermal environment inside of high power density electric machines for aerospace applications.
机译:增加电机(电机和发电机)的功率密度和效率是将电气飞机(EA)带到商业实现的一体化。然而,功率密度和效率不是可以独立开发的品质。在任何电机的心脏,都是携带电流和产生磁场的导体(通常是铜)。增加的功率密度意味着增加电流密度并增加焦耳加热以较小的体积。为了提高线材水平的效率意味着最小化电阻,因此损失到焦耳加热的功率。由于铜电阻率在普通电机运行条件下对铜电阻率非常敏感,因此伴随着功率密度和效率的根本挑战。简单计算铜电阻率作为温度的函数的线性增加,揭示了一种温度的摄氏度的增加导致效率降低0.39%。相反,铜温度的20摄氏度降低产生7.8%的效率。因此,改进的电机构建块如定子绕组的热管理概念是提高效率和功率密度的优先级。本文提出从具有奇异功能的各个组件在定子槽中改变组件材料的视图,以将组件采用多功能角色的复合系统。在综合框架中,可实现的材料开发目标定义在一起对航空航天应用的高功率密度电机内部的热环境中具有最大系统影响。

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