考虑异面孔缝电磁耦合的腔体屏蔽效能快速计算方法OA
A Fast Calculation Method for Cavity Shielding Effectiveness Considering Electromagnetic Coupling of Apertures on Different Surfaces
近年来,电力电子系统正朝着高频化与高能量密度的方向发展,开关器件产生的电磁干扰已成为影响系统可靠运行的重要因素.为有效评估屏蔽腔体的电磁防护性能,提出一种考虑异面孔缝电磁耦合的改进计算方法.针对传统的解析方法未能充分考虑孔缝间电磁耦合的影响,导致谐振点预测不全的情况,该文根据 Bethe 小孔耦合理论和并矢格林函数,将孔缝处的透射场分布用等效偶极子表示,其在腔内的传播电磁场由并矢格林函数推导出的解析式求出,则腔内观测点总场可由未考虑孔缝间耦合的腔内观测点独立叠加场和孔缝耦合场在腔内观测点激发的场矢量叠加得到.对比现有计算方法,该算法能在较宽频率范围内,对任意平面波辐照下的多面开孔腔体,在任意开孔位置和腔内观测点下的屏蔽效能和谐振点进行快速准确计算,并通过与全波仿真软件 CST 计算结果对比,验证了其可靠性与快速性,为多面开孔屏蔽腔体设计与优化提供了理论支持.
With the trend towards high frequency and high power density power electronics,electro-magnetic interference from switching devices has become a critical factor affecting system reliability.Metallic enclosures with apertures are widely used to mitigate this interference,so accurate evaluation of their shielding effectiveness and internal resonance is essential.For cavities with multiple apertures,however,existing analytical approaches usually treat the apertures on different faces independently.The internal field at an observation point is obtained by superposing fields transmitted through each aperture,while electromagnetic coupling among apertures and the propagation of these coupled fields inside the cavity are neglected.As a result,some resonance points and local field enhancements cannot be predicted,causing resonant points and local field enhancements cannot be predicted,leading to an incomplete assessment of shielding performance. This paper develops an improved analytical method by incorporating electromagnetic coupling at the apertures.The method expresses the total electric field at an internal observation point as the vector superposition of the field produced by the incident wave directly exciting each aperture and the additional field generated by electromagnetic coupling and its propagation inside the cavity.The simplicity of field superposition is retained while capturing the interaction between apertures on different surfaces.The derivation is based on Bethe's small-aperture coupling theory and dyadic Green's functions.Each aperture is represented by an equivalent electric dipole and magnetic dipole at its center coordinates.For a given incident plane wave,the equivalent dipole moments associated with the directly transmitted field are obtained,and analytical expressions from the dyadic Green's functions of the rectangular cavity are used to calculate the internal electric field at the observation point.When coupling is ignored,the internal field is given by the superposition of the fields arising from the plane-wave components incident on each surface.In the improved formulation,Bethe's theory and the mirror theory are applied to determine additional equivalent dipoles associated with the coupled fields.The fields radiated by these coupling dipoles are again evaluated using the dyadic Green's functions and then vectorially added to the independently superposed field,thereby accounting for the effect of aperture coupling on the internal field distribution and the positions of resonance points. The algorithm applies to cavities with multiple apertures under arbitrary plane-wave incidence,for arbitrary aperture locations and internal observation points over a wide frequency range,provided that the apertures satisfy the assumptions of the small-aperture model.The formulation yields the frequency-dependent shielding effectiveness and the associated resonance characteristics.Numerical results are compared with CST full-wave simulations for various cavity configurations,aperture arrangements,incidence conditions,and observation points.The results show that the method can accurately and efficiently evaluate shielding effectiveness and resonance points for cavities with multiple apertures.The approach can be used to assess the shielding performance of enclosures in high-frequency,high-power-density power electronic systems and to examine the influence of cavity geometry,aperture parameters,and observation locations on internal field distributions and resonance.
黄海宏;廖和其
合肥工业大学电气与自动化工程学院 合肥 230009合肥工业大学电气与自动化工程学院 合肥 230009
信息技术与安全科学
电磁耦合屏蔽效能小孔耦合并矢格林函数多面开孔腔体
Electromagnetic couplingshielding effectivenesssmall aperture couplingdyadic Green's functioncavity with apertures in multiple sides
《电工技术学报》 2026 (16)
5375-5387,13
国家自然科学基金区域创新发展联合基金资助项目(U22A20225).
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