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Multichannel Ultrasonic Data Communications in Air Using Range-Dependent Modulation Schemes

机译:使用距离相关调制方案的空中多通道超声数据通信

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There are several well-developed technologies of wireless communication such as radio frequency (RF) and infrared (IR), but ultrasonic methods can be a good alternative in some situations. A multichannel airborne ultrasonic data communication system is described in this paper. keying (OOK and binary phase-shift keying (BPSK) modulation schemes were implemented successfully in the system by using a pair of commercially available capacitive ultrasonic transducers in a relatively low multipath indoor laboratory environment. Six channels were used from 50 to 110 kHz with a channel spacing of 12 kHz, allowing multiple 8-bit data packets to be transmitted simultaneously. The system data transfer rate achieved was up to 60 kb/s and ultrasonic wireless synchronization was implemented instead of using a hard-wired link. A model developed in the work could accurately predict ultrasonic signals through the air channels. Signal root mean square (rms) values and system bit error rates (BERs) were analyzed over different distances. Error-free decoding was achieved over ranges up to 5 m using a multichannel OOK modulation scheme. To obtain the highest data transfer rate and the longest error-free transmission distance, a range-dependent multichannel scheme with variable data rates, channel frequencies, and different modulation schemes, was also studied in the work. Within 2 m, error-free transmission was achieved using a five-channel OOK with a data rate of 63 kb/s. Between 2 and 5 m, six-channel OOK with 60 kb/s data transfer rate was error free. Beyond 5 m, the error-free transmission range could be extended up to 10 m using three-channel BPSK with a reduced data rate of 30 kb/s. The situation when two transducers were misaligned using three-channel OOK and BPSK schemes was also investigated in the work. It was concluded that error-free transmission could still be a- hieved with a lateral displacement of less than 7% and oblique angles of less than 7°, and three-channel BPSK proved to be more robust than three-channel OOK with transducer misalignment.
机译:无线通信有几种发达的技术,例如射频(RF)和红外(IR),但是在某些情况下,超声方法可能是不错的选择。本文介绍了一种多通道机载超声数据通信系统。通过在相对低的多径室内实验室环境中使用一对市售电容式超声换能器,成功地在系统中实现了键控(OOK和二进制相移键控(BPSK)调制方案。在50至110kHz范围内使用了六个通道信道间隔为12 kHz,允许同时传输多个8位数据包,实现的系统数据传输速率高达60 kb / s,实现了超声波无线同步,而不是使用硬连线链路。这项工作可以准确地预测通过空气通道的超声波信号。分析了在不同距离上的信号均方根(rms)值和系统误码率(BER)。使用多通道OOK在长达5 m的范围内实现了无错误解码为了获得最高的数据传输速率和最长的无误码传输距离,采用了一种取决于范围的可变da在工作中还研究了速率,信道频率和不同的调制方案。在2 m之内,使用5通道OOK以63kb / s的数据速率实现了无差错传输。在2至5 m之间,数据传输速率为60 kb / s的六通道OOK无错误。超过5 m时,使用三通道BPSK可以以30 kb / s的降低数据速率将无错误的传输范围扩展到10 m。在工作中还研究了使用三通道OOK和BPSK方案使两个换能器未对准的情况。结论是,仍可实现无错传输,且侧向位移小于7%,倾斜角小于7°,并且三通道BPSK的性能比三通道OOK的传感器失准性能更强。

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