综合智慧能源 ›› 2026, Vol. 48 ›› Issue (5): 31-43.doi: 10.3969/j.issn.2097-0706.2026.05.004
田进择1a(
), 孟克其劳1a,1b,*(
), 贾大江2(
), 张占强1a(
), 周冉1a(
), 菅春1a(
)
收稿日期:2025-09-22
修回日期:2025-10-24
出版日期:2026-01-07
通讯作者:
*孟克其劳(1969),男,教授,硕士,从事储能科学与工程、风能太阳能利用等方面的研究,2755879151@qq.com。作者简介:田进择(1998),男,硕士,从事永磁同步电机的设计及基础等方面的研究,1246823599@qq.com;基金资助:
TIAN Jinze1a(
), MENG Keqilao1a,1b,*(
), JIA Dajiang2(
), ZHANG Zhanqiang1a(
), ZHOU Ran1a(
), JIAN Chun1a(
)
Received:2025-09-22
Revised:2025-10-24
Published:2026-01-07
Supported by:摘要:
永磁同步电机作为压缩空气储能系统核心部件,长期工作在密闭环境、宽转速且高频次启停的运行工况下,导致电机温升较高、噪音较大。过大的电机转矩波动也造成其模式切换过程不稳定,整体性能下降。针对上述问题,提出一种融合非支配排序遗传算法Ⅱ(NSGA-Ⅱ)与响应面法的协同优化策略,将永磁电机的齿槽转矩、损耗和转矩波动作为优化目标进行多目标优化设计。基于电磁仿真平台,构建高精度电机二维瞬态电磁场模型,引入磁热耦合计算方法对电机进行温度场仿真分析,将有限元方法计算出的电机电磁损耗作为热源,研究不同工况下的温升情况,校核电机温升特性,然后面对各参数变量互相影响的问题,利用NSGA-Ⅱ算法寻求帕累托前沿解以解决多目标优化中的矛盾,采取寻求最优组合而不是最佳值的寻优方式进行优化算法设计。结果显示,优化后的电机齿槽转矩、转矩波动及损耗都得到了显著降低,同时电机各主要结构的温升也有所下降。
中图分类号:
田进择, 孟克其劳, 贾大江, 张占强, 周冉, 菅春. 压缩空气储能用永磁同步电机分析与优化设计[J]. 综合智慧能源, 2026, 48(5): 31-43.
TIAN Jinze, MENG Keqilao, JIA Dajiang, ZHANG Zhanqiang, ZHOU Ran, JIAN Chun. Analysis and optimal design of permanent magnet synchronous motors for compressed air energy storage[J]. Integrated Intelligent Energy, 2026, 48(5): 31-43.
表4
优化过程中参数的变化
| 迭代次数 | hPM | b1 | b0 | 极弧长度 | |
|---|---|---|---|---|---|
| 1 | 17.29 | 13.73 | 2.90 | 4.76 | 144.76 |
| 2 | 18.21 | 11.86 | 3.77 | 5.22 | 121.68 |
| 3 | 21.73 | 12.12 | 3.41 | 5.03 | 120.82 |
| 4 | 17.75 | 10.38 | 2.42 | 4.97 | 125.81 |
| 5 | 20.33 | 13.86 | 2.19 | 4.19 | 146.95 |
| 6 | 18.55 | 12.53 | 3.16 | 5.62 | 141.96 |
| 7 | 19.75 | 10.61 | 3.93 | 5.97 | 119.57 |
| … | … | … | … | … | … |
| 299 | 19.17 | 10.42 | 2.13 | 5.25 | 145.56 |
| 300 | 22.52 | 13.45 | 2.65 | 5.39 | 137.77 |
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