具有挑战性的地下环境中的宽带磁感应无线通信:电流驱动方案

IF 8.9 1区 计算机科学 Q1 COMPUTER SCIENCE, INFORMATION SYSTEMS
Kye-Seok Yoon;Jung Hoon Oh;Hyun Joon Lee;Jang-Yeol Kim;In-Kui Cho
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引用次数: 0

摘要

本文介绍了用于地下到地面数据传输的宽带磁感应无线通信。在MI无线通信中,降低载波频率可以减轻涡流损耗,提高磁场穿透能力,更有效地穿过导电材料,最终扩大通信范围。然而,在传统的电压驱动方案中,这种频率的降低通常会导致带宽的减少,从而限制了可实现的数据传输速率。为了克服这一限制,我们提出了一种电流驱动方案,该方案在宽频率范围内保持恒定的发射器线圈电流,从而获得更高的数据速率。此外,由于无功功率在谐振槽内循环,因此可以以低功耗产生高电压和高电流水平,从而实现长距离数据传输。我们的主要重点是从系统级的角度增加带宽和通信距离。现场实验采用具有实际信号传输和处理能力的全功能无线通信系统,采用0.9 m × 0.9 m的小型发射机环形天线,从地下100 m向地面传输信号。采用正交移相键控调制,在15khz的低载波频率下以2kb /s的速率收发数据。这相当于数据率与载波频率比为13.33%,证明了使用所提出的方案进行宽带无线通信的可行性。测量到的每比特噪声能量功率谱密度比为23.98 dB,误差矢量幅值为14.74%,表明该系统具有足够的可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wideband Magnetic Induction Wireless Communications in Challenging Underground Environments: A Current-Driven Scheme
This article presents wideband magnetic induction (MI) wireless communications for data transmission from underground to ground level. In MI wireless communication, lowering the carrier frequency mitigates eddy current losses, improving magnetic field penetration and facilitating more effective traversal through conductive materials, ultimately extending the communication range. However, in conventional voltage-driven schemes, this decrease in frequency typically results in reduced bandwidth, limiting the achievable data transmission rate. To overcome this limitation, we propose a current-driven scheme that maintains a constant transmitter coil current across a wide frequency range, resulting in a higher data rate. In addition, since reactive power circulates within the resonant tank, it can generate high voltage and current levels with low power consumption, allowing data transmission over long distances. Our main focus is to increase bandwidth and communication distance from system-level perspective. Field experiments were conducted using a fully operational wireless communication system with practical signal transmission and processing capabilities, using small transmitter loop antenna of 0.9-m by 0.9-meters to transmit signals from 100 m underground to the ground level. Quadrature phase-shift keying modulation was used to transmit and receive data at a rate of 2 Kb/s with a low carrier frequency of 15 kHz. This corresponds to a data rate-to-carrier frequency ratio of 13.33%, demonstrating the feasibility of wideband wireless communication using the proposed scheme. An energy per bit-to-noise power spectral density ratio of 23.98 dB and an error vector magnitude of 14.74% were measured, indicating that the proposed system was sufficiently reliable.
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来源期刊
IEEE Internet of Things Journal
IEEE Internet of Things Journal Computer Science-Information Systems
CiteScore
17.60
自引率
13.20%
发文量
1982
期刊介绍: The EEE Internet of Things (IoT) Journal publishes articles and review articles covering various aspects of IoT, including IoT system architecture, IoT enabling technologies, IoT communication and networking protocols such as network coding, and IoT services and applications. Topics encompass IoT's impacts on sensor technologies, big data management, and future internet design for applications like smart cities and smart homes. Fields of interest include IoT architecture such as things-centric, data-centric, service-oriented IoT architecture; IoT enabling technologies and systematic integration such as sensor technologies, big sensor data management, and future Internet design for IoT; IoT services, applications, and test-beds such as IoT service middleware, IoT application programming interface (API), IoT application design, and IoT trials/experiments; IoT standardization activities and technology development in different standard development organizations (SDO) such as IEEE, IETF, ITU, 3GPP, ETSI, etc.
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