Trust region framework-based design of sub-6 GHz m-MIMO antenna and evaluation of SAR

COMPEL Pub Date : 2024-05-13 DOI:10.1108/compel-11-2023-0596
Ahmet Turgut, Begum Korunur Engiz
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Abstract

Purpose

Currently, massive multiple-input multiple-output (m-MIMO) antennas are typically designed using complex trial-and-error methods. The purpose of this study is to determine an effective optimization method to achieve more efficient antenna design processes.

Design/methodology/approach

This paper presents the design stages of a m-MIMO antenna array compatible with 5G smartphones operating in long term evolution (LTE) bands 42, 43 and 46, based on a specific algorithm. Each antenna element in the designed 10-port m-MIMO antenna array is intended to perfectly cover the three specified LTE bands. The optimization methods used for this purpose include the Nelder–Mead simplex algorithm, covariance matrix adaptation evolution strategy, particle swarm optimization and trust region framework (TRF).

Findings

Among the primary optimization algorithms, the TRF algorithm met the defined objectives most effectively. The achieved antenna efficiency values exceeded 60.81% in the low band and 68.39% in the high band, along with perfect coverage of the desired bands, demonstrating the success of the design with the TRF algorithm. In addition, the potential electromagnetic field exposure caused by the designed m-MIMO antenna array is elaborated upon in detail using computational human models through specific absorption rate analysis.

Originality/value

The comparison of four different algorithms (two local and two global) for use in the design of a 10-element m-MIMO antenna array with a complex structural configuration and the success of the design implemented with the selected algorithm distinguish this study from others.

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基于信任区域框架的 6 GHz 以下 m-MIMO 天线设计和 SAR 评估
目的目前,大规模多输入多输出(m-MIMO)天线的设计通常采用复杂的试错方法。本文介绍了基于特定算法的 m-MIMO 天线阵列的设计阶段,该天线阵列与在长期演进(LTE)频段 42、43 和 46 上运行的 5G 智能手机兼容。所设计的 10 端口 m-MIMO 天线阵列中的每个天线元件都旨在完美覆盖三个指定的 LTE 频段。为此采用的优化方法包括 Nelder-Mead 单纯形算法、协方差矩阵适应演化策略、粒子群优化和信任区域框架(TRF)。所实现的天线效率值在低频段超过了 60.81%,在高频段超过了 68.39%,并且完美覆盖了所需频段,这表明 TRF 算法的设计是成功的。原创性/价值比较了四种不同算法(两种局部算法和两种全局算法)在设计具有复杂结构配置的 10 元 m-MIMO 天线阵列中的使用情况,以及使用所选算法实施设计的成功,使本研究与其他研究不同。
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