Reconfigurable electromagnetic structures (REMSs), such as reconfigurable reflectarrays (RRAs) or reconfigurable intelligent surfaces (RISs), hold significant potential to improve the spectral efficiency of wireless communication systems and the accuracy of wireless sensing systems. Even though several REMS modeling approaches have been proposed in recent years, the literature lacks models that are both computationally efficient and physically consistent. As a result, algorithms that control the reconfigurable elements of REMSs (e.g., the phase shifts of a RIS) are often built on simplistic and thus inaccurate models. To enable physically accurate REMS-parameter tuning, we present a new framework for efficient and physically consistent modeling of general REMSs. Our modeling method combines a circuit-theoretic approach with a new formalism that describes a REMS's interaction with the electromagnetic (EM) waves in its far-field region. Our modeling method enables efficient computation of the entire far-field radiation pattern for arbitrary configurations of the REMS reconfigurable elements once a single full-wave EM simulation of the non-reconfigurable parts of the REMS has been performed. The predictions made by our framework align with the physical laws of classical electrodynamics and model effects caused by inter-antenna coupling, non-reciprocal materials, polarization, ohmic losses, matching losses, influence of metallic housings, noise from low-noise amplifiers, and noise arising in or received by antennas. In order to validate the efficiency and accuracy of our modeling approach, we (i) compare our modeling method to EM simulations and (ii) conduct a case study involving an RRA that enables simultaneous multiuser beam- and null-forming using a new, computationally efficient, and physically accurate parameter tuning algorithm.
翻译:可重构电磁结构(REMS),例如可重构反射阵列(RRA)或可重构智能表面(RIS),在提升无线通信系统的频谱效率和无线传感系统的精度方面具有显著潜力。尽管近年来已提出多种REMS建模方法,但现有文献仍缺乏兼具计算效率与物理一致性的模型。因此,控制REMS可重构单元(如RIS的相移)的算法往往基于过于简化且不准确的模型。为实现物理精确的REMS参数调控,我们提出了一种适用于通用REMS的高效且物理一致的建模新框架。该建模方法结合了电路理论方法与一种新形式体系,用于描述REMS与其远场区域电磁波的相互作用。在完成一次针对REMS非可重构部件的全波电磁仿真后,我们的建模方法能够高效计算任意REMS可重构单元配置下的完整远场辐射方向图。该框架的预测结果符合经典电动力学的物理定律,并能够建模由天线间耦合、非互易材料、极化、欧姆损耗、匹配损耗、金属外壳影响、低噪声放大器噪声以及天线产生或接收的噪声所引起的效应。为验证建模方法的效率与准确性,我们(i)将本建模方法与电磁仿真结果进行对比,并(ii)通过一项案例研究,展示采用新型计算高效且物理精确的参数调控算法的RRA如何实现多用户同时波束成形与零陷成形。