金属圆形散热孔阵5G电磁屏蔽效能仿真分析
Simulation Analysis of 5G Electromagnetic Shielding Effectiveness of Metal Circular Vent Hole Array
DOI: 10.12677/MOS.2020.93029, PDF,   
作者: 亢子豪:郑州大学国际学院,河南 郑州
关键词: 电磁屏蔽散热孔阵5G通信电磁屏蔽散热孔阵5G通信
摘要: 良好的电磁屏蔽和散热性能是保障电子设备稳定工作的重要因素,5G通信则对电子设备金属屏蔽散热孔阵的设计提出了更高要求。本文通过有限元法数值研究了在1 GHz~40 GHz频段正六边形周期排布金属圆形散热孔阵随散热孔径、金属厚度、入射角度和极化方式改变的屏蔽效能调控规律。结果表明,在保持散热效率不变的前提下,通过减小散热孔径或增大金属厚度可以有效提高其屏蔽效能,并且该性能对入射角度与极化方式均能保持较好的稳定性。该结论对5G通信频段电磁屏蔽设计具有一定的参考意义。
Abstract: Good electromagnetic shielding efficiency and heat dissipation performance are important factors to ensure the stable operation of electronic equipment. 5G communication puts forward higher requirements for the design of metal shielding vent hole arrays for electronic equipment. In this paper, the finite element method is used to study the regulation of electromagnetic shielding ef-fectiveness of the hexagonal periodic arrangement of metal circular vent holes in the frequency range of 1 GHz to 40 GHz. The electromagnetic shielding effectiveness is adjusted with the change of diameters of vent hole, metal thickness, incident angle and polarization mode of electromagnetic wave. The results show that under the certain heat dissipation efficiency, reducing the diameter of vent hole or increasing the metal thickness can effectively improve its shielding effectiveness, and its performance can maintain good stability to the incident angle and polarization mode. The above results have certain reference significance for the electromagnetic shielding design of 5G communication.
文章引用:亢子豪. 金属圆形散热孔阵5G电磁屏蔽效能仿真分析[J]. 建模与仿真, 2020, 9(3): 285-292. https://doi.org/10.12677/MOS.2020.93029

参考文献

[1] 孔静, 高鸿, 李岩, 等. 电磁屏蔽机理及轻质宽频吸波材料的研究进展[J]. 材料导报, 2020, 34(9): 9055-9063.
[2] 李玉凌, 何连杰, 郭安琪, 等. 多层金属板低频磁屏蔽效能的理论模型与特性分析[J]. 科学技术与工程, 2020, 20(16): 6490-6496.
[3] 柒培华, 郝建红, 范杰清. 基于高频微波效应的箱体散热孔阵的屏蔽效能[J]. 河北师范大学学报(自然科学版), 2013, 37(6): 568-573.
[4] 石高峰, 田梦倩, 钱海龙. 机箱通风孔屏蔽效能仿真及优化[J]. 安全与电磁兼容, 2013(6): 74-77.
[5] 何新文, 解国领, 吴迪. 孔洞对于机箱屏蔽效能的影响[J]. 无线电工程, 2016, 46(5): 99-102.
[6] 许留留, 闫丽萍, 赵翔. 适用于5G电磁屏蔽的介质开孔型频率选择表面设计[J]. 太赫兹科学与电子信息学报, 2019, 17(4): 616-620.
[7] 白婉欣, 李天乐, 郭安琪, 等. 平面波照射下无限大导体板上周期孔阵屏蔽效能的解析研究[J]. 物理学报, 2019, 68(10): 89-97.
[8] Kuo, C. and Kuo, C. (2016) Fi-nite-Difference Time-Domain Analysis of the Shielding Effectiveness of Metallic Enclosures with Apertures Using a Novel Subgridding Algorithm. IEEE Transactions on Electromagnetic Compatibility, 58, 1595-1601. [Google Scholar] [CrossRef
[9] 王海峰, 庄光磊. 应用于GSM1800屏蔽的小型化频率选择表面设计[J]. 遥测遥控, 2015, 36(2): 61-64.
[10] 周泽伦. 带孔缝箱体电磁屏蔽效能的研究[J]. 西安科技大学学报, 2016, 36(1): 122-126.
[11] Ali, S., Weile, D. and Clupper, T. (2005) Effect of Near Field Radiators on the Radiation Leakage through Perforated Shields. IEEE Transactions on Electromagnetic Compatibility, 47, 367-373. [Google Scholar] [CrossRef