EAGER: Fundamentals of Wireless Networks using Metamaterial-enhanced Magnetic Induction
EAGER: Fundamentals of Wireless Networks using Metamaterial-enhanced Magnetic Induction
批准号:
1547908
负责人:
Zhi Sun
金额:
$15.85万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-01 至 2018-02-28
中文摘要
现有的无线网络不能在许多恶劣和复杂的环境中工作,包括地下、水下、储油库、地下蓄水层、核电站、管道、隧道和混凝土建筑物。这种环境中的无线联网能力可以实现环境、工业、国土安全、执法和军事领域中的重要应用,例如使用无线传感器网络来监测和维护地下水和/或储油库,使用机器人群来评估和减轻核电站中的损坏,或者向未知隧道和掩体中的军事小组和从未知隧道和掩体中的军事小组实时投射信息,还有其他的然而,恶劣的无线信道阻止了直接使用的电磁(EM)波为基础的技术,由于高材料的吸收时,穿透有损介质。此外,由于实际环境可能是空气、水、土壤、混凝土和金属的复杂组合,因此仅适用于一种单一介质的解决方案,例如,基于声波的网络对于水下介质,不起作用。为此,本项目研究了基于新通信机制的无线网络,即,超材料增强磁感应(M2 I),可以在上述恶劣和复杂的环境中建立可靠的无线连接。该项目可以消除现有无线应用的环境障碍,并从根本上改变当前的通信和传感系统。该项目将通过数学建模、仿真和实验评估的闭环组合来探索基于M2 I的无线网络的基本原理。M2 I使用磁感应(MI)作为物理信号载体,以实现最佳穿透。与大多数MI技术中非常有限的范围不同,M2 I利用每个天线外部的超材料层来实现实际应用的合理通信范围(口袋大小的设备为数十米)。此外,无线网络中的所有节点以及环境中的导电物体都强耦合在一起(由于M2 I),形成元环境,这使得能够实现独特的联网功能,例如被动中继和环境感知定位。其核心贡献主要体现在四个方面:(i)M2 I天线建模与设计;(ii)新网络模式下的信道、干扰和容量分析;(iii)基于M2 I认知能力的环境感知定位算法;(iv)基于M2 I的移动通信系统的定位算法。㈣通过基于Comsol Multiphysics和NS-3的跨层模拟器进行性能评估和原型制作,以及一个基于软件无线电和实验室制造的超材料的测试平台。
英文摘要
Existing wireless networks do not perform in many hostile and complex environments, including the underground, underwater, oil reservoirs, groundwater aquifers, nuclear plants, pipelines, tunnels, and the concrete buildings. The wireless networking capability in such environments can enable important applications in the environmental, industrial, homeland security, law enforcement, and military fields, such as monitoring and maintenance of groundwater and/or oil reservoirs using wireless sensor networks, damage assessment and mitigation in nuclear plants using robot swarms, or real-time projection of information to and from military squads in unknown tunnels and bunkers, among others. However, the harsh wireless channels prevent the direct usage of the electromagnetic (EM) wave-based techniques due to the high material absorption when penetrating the lossy medium. Moreover, since practical environments can be complex combinations of air, water, soil, concrete, and metal, solutions only applicable for one single medium, e.g., acoustic wave based networking for underwater medium, do not work. To this end, this project investigates the wireless networks based on a new communication mechanism, i.e., metamaterial-enhanced magnetic induction (M2I), which can establish reliable wireless connections in the aforementioned hostile and complex environments. The project can eliminate the environmental barriers to existing wireless applications and radically change current communication and sensing systems.The project will explore the fundamentals of M2I-based wireless networks through a closed-loop combination of mathematical modeling, simulations, and experimental evaluation. M2I uses magnetic induction (MI) as the physical signal carrier for best penetration. Different from the very limited range in most MI techniques, M2I takes advantage of a metamaterial layer outside each antenna to achieve reasonable communication range for practical applications (tens of meters with pocket-sized devices). Moreover, all the nodes in the wireless network as well as the conductive objects in the environments are strongly coupled together (due to M2I), forming a Meta-environment, which enables unique networking functionalities, such as the passive relaying and environment-aware localization. The core contributions are in four main thrusts: (i) M2I antenna modeling and design; (ii) channel, interference, and capacity analysis under the new networking paradigm; (iii) environment-aware localization algorithms based on the M2I-enabled cognition capability; (iv) performance evaluation and prototyping through a cross layer simulator based on Comsol Multiphysics and NS-3, and a testbed based on software-defined radios and lab-fabricated metamaterials.
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CAREER: Towards Metamaterial-inspired Networking for Wireless Devices in Extreme Environments
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批准号:1652502
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项目类别:Continuing Grant
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资助金额:$50.0万
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财政年份:2017
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负责人:Zhi Sun
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依托单位:
CPS: Synergy: Collaborative Research: Towards Effective and Efficient Sensing-Motion Co-Design of Swarming Cyber-Physical Systems
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批准号:1446484
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项目类别:Standard Grant
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资助金额:$18.68万
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财政年份:2015
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负责人:Zhi Sun
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依托单位:
国内基金
海外基金
The Heterogenous Impact of Monetary Policy on Firms' Risk and Fundamentals
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项目类别:外国学者研究基金项目
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批准年份:2024
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负责人:潘军
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依托单位: