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多频带 MIMO 天线设计与 4G 和 5G 移动终端的用户影响研究。

Multi-Band MIMO Antenna Design with User-Impact Investigation for 4G and 5G Mobile Terminals.

机构信息

Faculty of Engineering and Informatics, School of Electrical Engineering and Computer Science, University of Bradford, Bradford BD7 1DP, UK.

Microwave Technology Company, Ardabil 56158-46984, Iran.

出版信息

Sensors (Basel). 2019 Jan 23;19(3):456. doi: 10.3390/s19030456.

Abstract

In this study, we propose a design of a multi-band slot antenna array applicable for fourth-generation (4G) and fifth-generation (5G) smartphones. The design is composed of double-element square-ring slot radiators fed by microstrip-line structures for easy integration with radio frequency (RF)/microwave circuitry. The slot radiators are located on the corners of the smartphone printed circuit board (PCB) with an overall dimension of 75 × 150 mm². The proposed multiple-input multiple-output (MIMO) antenna is designed to meet the requirements of 4G and 5G mobile terminals with essential bandwidth for higher data rate applications. For -10 dB impedance bandwidth, each single-element of the proposed MIMO design can cover the frequency ranges of 2.5⁻2.7 GHz (long-term evolution (LTE) 2600), 3.45⁻3.8 GHz (LTE bands 42/43), and 5.00⁻5.45 GHz (LTE band 46). However, for -6 dB impedance bandwidth, the radiation elements cover the frequency ranges of 2.45⁻2.82 GHz, 3.35⁻4.00 GHz, and 4.93⁻5.73 GHz. By employing the microstrip feed lines at the four different sides of smartphone PCB, the isolation of the radiators has been enhanced and shows better than 17 dB isolation levels over all operational bands. The MIMO antenna is implemented on an FR-4 dielectric and provides good properties including S-parameters, efficiency, and radiation pattern coverage. The performance of the antenna is validated by measurements of the prototype. The simulation results for user-hand/user-head impacts and specific absorption rate (SAR) levels of the antenna are discussed, and good results are achieved. In addition, the antenna elements have the potential to be used as 8-element/dual-polarized resonators.

摘要

在这项研究中,我们提出了一种适用于第四代(4G)和第五代(5G)智能手机的多频缝隙天线阵列设计。该设计由双元方环缝隙辐射器组成,通过微带线结构馈电,便于与射频(RF)/微波电路集成。缝隙辐射器位于智能手机印刷电路板(PCB)的角落,总尺寸为 75×150mm²。所提出的多输入多输出(MIMO)天线旨在满足 4G 和 5G 移动终端的要求,具有更高数据速率应用所需的基本带宽。对于-10dB 阻抗带宽,所提出的 MIMO 设计的每个单元素可以覆盖 2.5-2.7GHz(长期演进(LTE)2600)、3.45-3.8GHz(LTE 频段 42/43)和 5.00-5.45GHz(LTE 频段 46)的频率范围。然而,对于-6dB 阻抗带宽,辐射元件覆盖 2.45-2.82GHz、3.35-4.00GHz 和 4.93-5.73GHz 的频率范围。通过在智能手机 PCB 的四个不同侧面使用微带馈电线,辐射器的隔离得到了增强,在所有工作频段的隔离度都优于 17dB。MIMO 天线在 FR-4 介电体上实现,并提供良好的性能,包括 S 参数、效率和辐射方向图覆盖。通过对原型的测量验证了天线的性能。讨论了用户手持/头戴对天线的影响和特定吸收率(SAR)水平的模拟结果,并取得了良好的结果。此外,天线元件具有用作 8 元件/双极化谐振器的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d86/6386935/9d497d3d7e5a/sensors-19-00456-g001.jpg

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