超材料启发的电磁带隙过器用于超宽止带选设备的电磁干扰的电磁干扰
Muath Al-Hasan1, Mohammad Alibakhshikenari2, Bal S Virdee3
1Department of Network and Communications Engineering, Al Ain University, 64141, Al Ain, United Arab Emirates. muath.alhasan@aau.ac.ae.
Scientific reports
|August 16, 2023
概括
这项研究引入了一种具有超宽电磁带间隙 (EBG) 的新型反应性负载微条带传输线. 创新的超材料结构提供了急剧的滚动率和高止带排斥,提高了无线系统容量.
科学领域:
- 电磁学 电磁学 电磁学 电磁学
- 超材料是指一种超材料.
- 微波工程 微波工程
背景情况:
- 微带传输线是微波电路中的基本组件.
- 电磁带隙 (EBG) 结构对于过和信号隔离至关重要.
- 现有的EBG结构往往在带隙宽和拒绝水平方面存在局限性.
研究的目的:
- 开发一个反应性负载的微带传输线路,呈现超宽电磁带间隙 (EBG).
- 设计一种新型的元材料单元细胞,以增强EBG特性.
- 研究EBG结构在先进无线应用中的潜力.
主要方法:
- 在微条带线上定期分布的反应负荷的理论建模.
- 用同心裂纹环嵌入圆形补丁的元材料单元单元的设计.
- 电磁 (EM) 模拟使用全波3D电磁溶解器进行电路验证.
- 对EBG结构的性能进行实验测量.
主要成果:
- 拟议的结构呈现出尖的3dB和超宽的带隙,超过之前报告的EBG.
- 单个单元单元的带隙排斥率要好于-30dB,而五元结构的带隙排斥率要好于-90dB.
- 裂纹环的尺寸和间隙有效地控制了反应负荷和带隙大小.
结论:
- 与现有技术相比,开发的EBG结构提供了优越的带隙性能.
- 这项创新适用于要求急剧滚动率和高止带排斥的应用,例如生物医学系统.
- 这项技术可以通过减少防护带和增加无线通道容量来优化电磁频谱的使用.
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