iRFSim for BSNs -Imaging based subject-specific RF simulation environment for wearable and implantable wireless Body Sensor Networks (BSNs)
iRFSim for BSNs -Imaging based subject-specific RF simulation environment for wearable and implantable wireless Body Sensor Networks (BSNs)
批准号:
EP/E057624/1
负责人:
Y Hao
金额:
$38.9万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2007
资助国家:
英国
项目状态:
已结题
起止时间:
2007 至 --
中文摘要
随着可穿戴和植入式医疗设备的日益复杂,以及它们与无线传感器的集成,研究和商业机构正在追求不断扩大的治疗和诊断应用范围。这些新的微型无线设备包括,例如,环境感知植入的起搏器和心脏除颤器,患者按需操作的泌尿道无线控制阀,以恢复膀胱控制,以及集成的药物输送治疗系统,如用于糖尿病患者的速效胰岛素。对于这些设备来说,用于询问和与植入物通信的无线数据路径是整个系统设计中最重要的研究挑战之一,因为它的功耗很大,并且在人体内具有复杂的特性。虽然通过空气进行无线通信已经得到了广泛的研究,但从植入设备通过人体进行通信是一个新的研究领域。对于无线信号来说,人体是一个不受欢迎的、往往充满敌意的环境。植入式装置的典型几何形状,如植入式心脏除颤器和起搏器、植入式葡萄糖传感器、内窥镜和给药胶囊装置,从毫米到厘米不等。无线植入物仅限于紧凑的天线,需要充分表征并有效地与收发器耦合。还有一个问题是植入式设备需要低功耗,这两个因素是高度相关的。为了设计高效节能的体内通信方案,了解波在人体内传播和衰减的机制是很重要的,但迄今为止还没有系统的探索。感应电磁场及其在体内传播的精确建模是设计可穿戴和可植入无线传感器的先决条件。模拟人体电磁场和无线电传播的困难主要是由于器官的形态复杂性及其异质组织特性,再加上动态变形和主体间变化。关于无线电波如何在体内衰减以及体表周围的相关场行为,迄今为止所知有限。在这种情况下,体内多径反射的特征是不同的,体内无线电传播可能是个体特异性的,并受器官变形和身体运动的影响。为了开发具有优化无线数据路径、长电池寿命和有效控制场分布的植入式设备,深入了解这些问题对BSNs的未来发展至关重要。本提案的目标是为可穿戴和植入式无线身体传感器网络(BSNs)创建一个新的基于成像的受试者特定射频仿真环境。它汇集了来自伦敦帝国理工学院(ICL)和伦敦玛丽女王大学(QMUL)的多学科团队,他们在医学成像、BSN、电磁建模、天线和无线电传播方面具有专业知识。
英文摘要
With increasing sophistication of wearable and implantable medical devices and their integration with wireless sensors, ever-expanding ranges of therapeutic and diagnostic applications are being pursued by the research and commercial organisations. These new miniaturised wireless devices include, for example, context aware implanted pacemakers and cardiac defibrillators, wirelessly controlled valves in the urinary tract operating on-demand by the patients for restoring bladder control, and integrated drug-delivering therapeutic systems such as those used for fast-acting insulin in diabetics. For these devices, the wireless data-path used to interrogate and communicate with the implants represents one of the most significant research challenges in overall system design due to its significant power consumption and complex characteristics within the human body. While wireless communication through the air has been extensively studied, communication from implanted devices through the human body is a new area of study. The human body is an uninviting and often hostile environment for a wireless signal. Typical geometries of implantable devices, such as implantable cardiac defibrillators and pacemakers, implantable glucose sensors, endoscopic and drug-delivering capsule devices, vary from mm to cm ranges. Wireless implants are restricted to a compact antenna that needs to be fully characterised and effectively coupled to the transceiver. There is also an issue of low power consumption required by implantable devices and these two factors are highly related. In order to design power efficient in-body communication schemes, understanding the mechanism of wave propagation and attenuation inside human body is important, but so far has not been explored systematically. Accurate modelling of induced electromagnetic fields and propagation in the body is a prerequisite to the design of wearable and implantable wireless sensors. The difficulty of simulating electromagnetic field and radio propagation within the human body is mainly due to the morphological complexity of organs and their heterogeneous tissue characteristics, coupled with dynamic deformation and inter-subject variations. In terms of how radiowave attenuates inside the body and the associated field behaviour around the body surface, there is so far limited knowledge. In this case, the characteristics of in vivo multiple path reflection is different and in vivo radio propagation is expected to be subject-specific and influenced by organ deformation and body movements. For developing implantable devices with optimised wireless data-path, long battery life, and effective control of field distribution, a thorough understanding of these issues is critical to the future advancement of BSNs.The objective of this proposal is to create a new imaging based subject-specific RF simulation environment for wearable and implantable wireless Body Sensor Networks (BSNs). It brings together a multi-disciplinary team from Imperial College London (ICL) and Queen Mary, University of London (QMUL) with expertise in medical imaging, BSN, electromagnetic modelling, antennas and radio propagation.
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DOI:
10.1109/imws-bio.2014.7032381
发表时间:
2014-12
期刊:
2014 IEEE MTT-S International Microwave Workshop Series on RF and Wireless Technologies for Biomedical and Healthcare Applications (IMWS-Bio2014)
影响因子:
--
作者:
[K. Ali;A. Brizzi;A. Alomainy;Y. Hao]
通讯作者:
K. Ali;A. Brizzi;A. Alomainy;Y. Hao
Terahertz signal propagation analysis inside the human skin
太赫兹信号在人体皮肤内的传播分析
DOI:
10.1109/wimob.2015.7347935
发表时间:
2015
期刊:
影响因子:
--
作者:
[Abdelaziz A]
通讯作者:
Abdelaziz A
Multiband-OFDM based ultra wideband system modelling of on/off-body antenna diversity
基于多频带 OFDM 的体上/离体天线分集超宽带系统建模
DOI:
10.1109/aps.2015.7305570
发表时间:
2015
期刊:
影响因子:
--
作者:
[Abbasi Q]
通讯作者:
Abbasi Q
DOI:
10.1109/imws-bio.2014.7032382
发表时间:
2014
期刊:
影响因子:
--
作者:
[Brizzi A]
通讯作者:
Brizzi A
DOI:
10.1016/j.crhy.2015.10.005
发表时间:
2015-11-01
期刊:
COMPTES RENDUS PHYSIQUE
影响因子:
1.4
作者:
[Ali, Khaleda, Keshmiri, Farshad, Craeye, Christophe]
通讯作者:
Craeye, Christophe
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批准号:--
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