Guo Gepu, Li Xinjia, Wang Qingdong, Li Yuzhi, Chu Hongyan, Ma Qingyu, Tu Juan, Zhang Dong
IEEE Trans Ultrason Ferroelectr Freq Control. 2021 Apr;68(4):1399-1407. doi: 10.1109/TUFFC.2020.3034240. Epub 2021 Mar 26.
The orbital angular momentum (OAM)-based acoustic vortex (AV) communication has been proven to provide a topological spinning characteristics for data transmission with an improved channel capacity, exhibiting good application prospects in underwater acoustic communications. To improve the accuracy and efficiency of data communication, the spectrum decomposition of OAM modes for OAM-multiplexed AV beams is studied with a simplified structure of single-ring transceiver arrays. The principle of spectrum decomposition for the single-OAM or OAM-multiplexed AV beams is derived based on the phase-coded approach and the orthogonal property of AVs. With the single-ring arrays of 16 transducers and 16 receivers, numerical studies and experimental measurements of eight-OAM-multiplexed AV beams transmitting ASCII codes are conducted. The formation of OAM-multiplexed AV beams is demonstrated by the cross-sectional scanning measurements, and the OAM modes are decoded successfully with a 16-point circular sampling. Compared with the traditional orthogonality-based decoding algorithm, the spectrum decomposition can be realized using a rotational measurement without the multiple premeasurements of single-OAM AV beams. The favorable results demonstrate the feasibility of the spectrum decomposition-based OAM communication for AV beams using a simplified structure of single-ring transceiver arrays, which would facilitate the practical application in underwater communications.
基于轨道角动量(OAM)的声涡(AV)通信已被证明可为数据传输提供拓扑旋转特性,具有更高的信道容量,在水下声学通信中展现出良好的应用前景。为提高数据通信的准确性和效率,采用单环收发器阵列的简化结构研究了OAM复用AV波束的OAM模式频谱分解。基于相位编码方法和AV的正交特性,推导了单OAM或OAM复用AV波束的频谱分解原理。利用16个换能器和16个接收器的单环阵列,对传输ASCII码的八OAM复用AV波束进行了数值研究和实验测量。通过横截面扫描测量证明了OAM复用AV波束的形成,并通过16点圆形采样成功解码了OAM模式。与传统的基于正交性的解码算法相比,频谱分解可通过旋转测量实现,无需对单OAM AV波束进行多次预测量。这些良好的结果证明了使用单环收发器阵列的简化结构对基于频谱分解的AV波束OAM通信的可行性,这将有助于在水下通信中的实际应用。