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An Ultrasonic Through-Wall Communication (UTWC) System Model

机译:超声波穿墙通信(UTWC)系统模型

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摘要

Ultrasonic waves at 1 MHz are used to send information across solid walls without the needs for through wall penetrations. A communication channel is established by attaching a set of three ultrasonic transducers to the wall. The first transducer transmits a continuous ultrasonic wave into the wall. The second transducer is mounted on the opposite side of the wall (inside) and operates as a receiver and signal modulator. The third transducer, the outside receiving transducer, is installed on the same side as the first transducer where it is exposed to the signal reflected from the blended interface of the inside wall and inside transducer. Inside sensor data is digitized and the bit state is used to vary in time the electrical load connected to the inside transducer, changing its acoustic impedance in accordance with each data bit. These impedance changes modulate the amplitude of the reflected ultrasonic signal. The modulated signal is detected at the outside receiving transducer, where it is then demodulated to recover the data. Additionally, some of the ultrasonic power received at the inside transducer is harvested to provide energy for the communication and sensor system on the inside. The entire system (ultrasonic, solid wall, and electronic) is modeled in the electrical domain by means of electro-mechanical analogies. This approach enables the concurrent simulation of the ultrasonic and electronic components. A model of the communication system is implemented in an electronic circuit simulation package, which assisted in the analysis and optimization of the communication channel. Good agreement was found between the modeled and experimental results.%011004.1-011004.12
机译:1 MHz的超声波用于跨实壁发送信息,而无需穿透墙。通过将一组三个超声换能器连接到墙上来建立通信通道。第一换能器将连续的超声波发送到壁中。第二换能器安装在墙壁的另一侧(内侧),并用作接收器和信号调制器。第三换能器,即外部接收换能器,与第一换能器安装在同一侧,在该侧面上,其暴露于从内壁和内换能器的混合界面反射的信号。内部传感器数据被数字化,并且位状态用于及时改变连接到内部传感器的电负载,并根据每个数据位改变其声阻抗。这些阻抗变化会调制反射的超声波信号的幅度。在外部接收换能器处检测到已调制信号,然后在此解调该信号以恢复数据。另外,内部换能器接收的一些超声功率被收集起来,以为内部的通信和传感器系统提供能量。整个系统(超声波,实心墙和电子系统)通过机电类比在电领域建模。这种方法可以同时模拟超声和电子组件。在电子电路仿真程序包中实现了通信系统的模型,该程序包有助于分析和优化通信通道。在建模结果和实验结果之间找到了很好的一致性。%011004.1-011004.12

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  • 来源
    《Journal of Vibration and Acoustics》 |2013年第1期|011004.1-011004.12|共12页
  • 作者单位

    Department of Mechatronics Engineering,Universidad Autonoma de Bucaramanga,Avenida42 No. 48-11,Bucaramanga, Santander, Colombia;

    Department of Mechanical,Aerospace & Nuclear Engineering,Rensselaer Polytechnic Institute,Troy, NY 12180;

    Department of Electrical,Computer & Systems Engineering,Rensselaer Polytechnic Institute Troy,NY 12180;

    Electrical and Computer Engineering,University of California,La Jolla, CA 92093-0407;

    Bechtel Marine Propulsion Corporation,Schenectady, NY 12309;

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