红外超宽带收发器,用于探测被埋在废墟中的幸存者

Mohammed Saifuddin Munna, Sabrina Tarannum, B. Barua, K. M. Rahman
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引用次数: 1

摘要

遥感人体心跳检测在救援行动和一些监测系统中对被困受害者的早期发现非常有用。因此,满足低功耗、低复杂度和精确的频谱调谐是红外-超宽带系统面临的主要挑战,使其适合于有效、准确、可靠地连续遥感生命信号。因此,本文的主要目标是改进一种新的方法,以满足上述挑战,在红外-超宽带系统中探测被埋在废墟中的幸存者。因此,这项工作设计了一个具有挑战性但简单,低功耗,非接触式IR-UWB收发器系统,能够同时检测地震或其他灾难或事故后被埋在废墟中的多名幸存者,与现有的单个人类检测系统相比,这是相当有希望的。这里使用的工作原理是检测脉冲波多普勒从人体心脏反射时的相位变化。为了满足FCC的要求,本文采用高斯五阶导数脉冲形状。在发射段之后,采用加性高斯白噪声信道模型进行环境仿真。在这项工作中,计算了基带输出的信噪比(SNR)来测量系统的最大可通过噪声功率。在先进设计系统(ADS) 2009中设计和测试了完整的系统操作和性能。为了实现系统性能,模拟的高斯脉冲宽度为0.48 ns,幅值为0.58 volt,所需的最大功率和能耗分别为8.013X10-20w和3.686X10-11焦耳。本系统的整个要求是提供一个安全、方便的人体通道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IR-UWB transceiver for the detection of survivors buried in debris
Remote sensing for heart beat detection of human body is very useful concern for an early detection of trapped victims in rescue operations and some surveillance systems. For these, meeting low power, low complexity and exact spectrum tuning are the main challenges in IR-UWB system which makes it suitable for effectively, accurately, and reliably remote sensing of vital signals continuously. Therefore refinement of a new approach to fulfilling above challenges in IR-UWB system for detection of survivors buried in debris is the main goal of this paper. And so, this work designs a challenging but simple, low-power, non-contact IR-UWB Transceiver system which is capable to detect multiple survivors at the same time whose are buried in debris after an earthquake or other disasters or an accident, which is quite promising as compared to existing single human detection systems. The operation principle utilized here is the detection of phase change of the pulsed wave Doppler when it is reflected from the human heart. To meet the FCC requirement, Gaussian fifth derivative pulse shape is adopted here. After transmitter section, Additive White Gaussian Noise (AWGN) channel model is used for environment simulation. In this work the signal-to-noise ratio (SNR) in the baseband output has been calculated to measure the maximum passable noise power in the system. The complete system operation and performance are designed and tested in Advanced Design System (ADS) 2009. To achieve system performance, the simulated Gaussian pulse width is .48ns, amplitude of .58volt and the required maximum power and energy consumption is 8.013X10-20w and 3.686X10-11 joule. This entire requirement of this presented system provides a safe and easy access in human body.
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