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风电变流技术
★ 4.0
使用增材制造换热器对电机绕组进行冷却以实现极高的电流密度
Cooling of Motor Windings Using Additively Manufactured Heat Exchangers for Extremely High Current Density
| 作者 | Ahmed Hembel · Bulent Sarlioglu |
| 期刊 | IEEE Transactions on Industry Applications |
| 出版日期 | 2025年6月 |
| 技术分类 | 风电变流技术 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | 电机热管理 槽内冷却设计 3D打印热交换器 绕组 电流密度 |
语言:
中文摘要
有效的热管理对于电机至关重要,其中绕组是主要的热源。目前采用的冷却方法,如定子外壳冷却和喷油冷却,需要热量穿过定子磁轭或绕组的轴向长度,导致效率低下。本研究提出了一种新颖的槽内冷却设计,该设计将3D打印的热交换器直接与绕组集成在一起,解决了高功率密度电机高效散热的难题。该设计的特点是扁平铜线绕组与采用增材制造工艺生产的导热、电绝缘聚合物热交换器相粘结。通过使冷却液更接近绕组,所提出的设计提高了载流能力并降低了工作温度。与传统液冷电机相比,这种结构在减小定子槽尺寸的同时,使绕组和槽内的电流密度分别显著提高了2倍和3倍。结果表明,这些集成热交换器不仅提高了电流密度,还减小了电机槽尺寸,推动了适用于各种工业应用的高性能电机的设计发展。
English Abstract
Effective thermal management is crucial for electric machines, where windings are the primary heat source. Currently employed cooling methods, like stator jacket and oil spray cooling, require heat to travel through the stator yoke or the axial length of the windings, leading to inefficiencies. This study introduces a novel in-slot cooling design that directly integrates a 3D-printed heat exchanger with the winding, addressing the challenge of efficient heat dissipation in high-power density machines. The design features flat copper wire windings bonded to a thermally conductive, electrically insulating polymer heat exchanger, produced using additive manufacturing. By moving the coolant closer to the windings, the proposed design enhances the current-carrying capacity and lowers operating temperatures. This configuration reduces the stator slot size while significantly increasing current density in the windings and slots by factors of 2x and 3x, respectively, compared to conventional liquid-cooled machines. The results demonstrate that these integrated heat exchangers not only improve current density but also reduce machine slot size, advancing the design of high-performance electric machines suitable for diverse industrial applications.
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SunView 深度解读
该增材制造换热器技术对阳光电源的电力电子产品散热优化具有重要启发。主要可应用于:1)大功率储能变流器ST系列的IGBT/SiC模块散热系统优化,提升功率密度;2)新能源汽车OBC及电机驱动系统的集成散热方案设计,实现小型化;3)户外型光伏逆变器SG系列的内部功率器件冷却优化。通过在关键热点区域植入定制化微通道换热结构,可显著提升散热效率,突破现有自然/强制风冷的局限性。这为阳光电源开发更高功率密度、更可靠的新一代电力变换设备提供了创新思路。