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FPGA-Based Implementation of Multiple Modes in Near Field Inductive Communication Using Frequency Splitting and MIMO Configuration

机译:基于FPGA的分频和MIMO配置在近场感应通信中实现多种模式

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Conventional near field inductive wireless power transfer theory shows that systems suffer from splitting frequency behaviors when strong coupling condition exists between the transmitter and the receiver. However, this characteristic has not been explored for communication. Our analysis demonstrates that the splitting behaviour of frequency creates multiple frequencies that support inductive communication in MIMO configuration. As a result, we implement a binary chirp modulation on an FPGA and validate two channel communication using splitting. This paper introduces the use of chirp signals to spread data and excite inductive MIMO systems. The simulation and experiment show that the splitting frequency depends on a quality factor and the flux coupling condition between the data source and receiver. In other words, the degree of mutual coupling defines the splitting mode. This paper proves that multi-channel communication using splitting can be used for data transmission. The results show that data rates of 50 Mbps or 69 Kbps can be achieved for each channel between the transmitters and receivers when the transmitter and receiver operate at the original resonant frequency of 13.56 MHz or 28 KHz, respectively and the distance between them varies from about 1 cm to 10 cm.
机译:传统的近场感应无线电力传输理论表明,当发射器和接收器之间存在强耦合条件时,系统会遭受频率分裂行为的困扰。但是,尚未探索此特征进行通信。我们的分析表明,频率的分裂行为会创建多个频率,这些频率支持MIMO配置中的感应通信。结果,我们在FPGA上实现了二进制线性调频调制,并使用拆分验证了两个通道的通信。本文介绍了线性调频信号的使用,以扩展数据并激发感应式MIMO系统。仿真和实验表明,分频频率取决于质量因子和数据源与接收器之间的磁通耦合条件。换句话说,相互耦合的程度定义了分离模式。本文证明了使用拆分的多通道通信可用于数据传输。结果表明,当发送器和接收器分别在原始谐振频率为13.56 MHz或28 KHz时,发送器和接收器之间的每个通道可以实现50 Mbps或69 Kbps的数据速率,并且它们之间的距离大约为1厘米至10厘米。

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