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arXiv · 2608.09502

A Superposition-Based Framework for Rapid Estimation of Arbitrary Antenna-Array Patterns

Abstract

Antenna array theory is a well-established field. However, a systematic approach for fast pattern estimation in arrays with arbitrary antenna locations and orientations has not yet been developed. In this paper, based on simulated (or measured) radiation patterns of a single element, we present a Superposition-Based Framework (SBF) for numerically computing array radiation patterns in which the positions and orientations of the antenna elements can be readily modified. To validate the framework, a compact dual-layer circularly polarized patch antenna at 5.02 GHz (ESA's Celeste frequency) is designed and used as an array element in an 8-element ring antenna. Using the proposed framework and the single-element far-field pattern, the array radiation pattern is computed in 13s (excluding single-element simulation time), which is at least 50 times faster than the corresponding full-wave simulation while maintaining comparable accuracy. Comparisons with CST simulations show a peak E-field error of less than 0.5% for the intended polarization. Full-wave simulations are memory- and energy-intensive, and hence, impractical for larger arrays. The proposed SBF requires low computational power, making it energy-efficient and sustainable.

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Amir Dayan, Nabeel Ali Khan, Inchara Lakshminarayan, Wahyudin Syam, Noori BniLam, William Whittow, Aakash Bansal. 2026-08-10. A Superposition-Based Framework for Rapid Estimation of Arbitrary Antenna-Array Patterns. https://arxiv.org/abs/2608.09502

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