We report the realization of broadband reflected acoustic focusing lenses based on thermoacoustic phased arrays of Bessel-like beams, in which the units of phase manipulation are composed of three rigid insulated boun...We report the realization of broadband reflected acoustic focusing lenses based on thermoacoustic phased arrays of Bessel-like beams, in which the units of phase manipulation are composed of three rigid insulated boundaries and a thermal insulation film in air with different temperatures. Based on these units, we realize a reflected focusing lens which can focus reflected acoustic energy on a line, and its fractional bandwidth can reach about 0.29. In addition, we discuss the influences of the base angle of Bessel-like beam, the number of basic unit, and the variation of unit temperature on focusing performances in details. Furthermore, the reflected focusing lens for the cylindrical acoustic wave based on the Bessel-like beam is also demonstrated. The proposed focusing lens has the advantages of a broad working bandwidth, large focus size,and high robustness, which may provide possibilities for the design and application of acoustic lenses.展开更多
Underwater optical wireless communication,which is useful for oceanography,environmental monitoring,and underwater surveillance,suffers the limit of the absorption attenuation and Mie–Rayleigh scattering of the light...Underwater optical wireless communication,which is useful for oceanography,environmental monitoring,and underwater surveillance,suffers the limit of the absorption attenuation and Mie–Rayleigh scattering of the lights.Here,Bessel-like beams generated by a fiber microaxicon is utilized for underwater wireless propagation.Underwater,the cone angle for generating Bessel-like beams starts from 46°,which is smaller than that in air for Bessel-like beams.When the cone angle of the fiber microaxicons is about 140°,the depth of focus underwater,which is four times as long as the depth of focus in air,has enlarged about 28μm,36.12μm,and 50.7μm for 470 nm,520 nm,and 632 nm visible lights.The transmission distance of the Bessel beams for visible lights has been simulated by using Henyey–Greenstein–Rayleigh phase function methods and spectral absorption by bio-optical model due to Monte Carlo methods.The results show that the propagation distance could reach 4000 m,which overcome the limit of the Mie–Rayleigh scattering and absorption attenuation underwater.展开更多
基金Project supported by the National Natural Science Foundation of China(Grant Nos.11774137 and 51779107)the Six-Talent Peaks Project in Jiangsu Province,China(Grant No.GDZB-019)+2 种基金the China Postdoctoral Science Foundation(Grant No.2017M621643)the Natural Science Foundation of Jiangsu Higher Educational Institutions of China(Grant No.18KJB140003)the Practice Innovation Training Program Projects for Jiangsu University(Grant No.201710299023Z)and for the Industrial Center of Jiangsu University
文摘We report the realization of broadband reflected acoustic focusing lenses based on thermoacoustic phased arrays of Bessel-like beams, in which the units of phase manipulation are composed of three rigid insulated boundaries and a thermal insulation film in air with different temperatures. Based on these units, we realize a reflected focusing lens which can focus reflected acoustic energy on a line, and its fractional bandwidth can reach about 0.29. In addition, we discuss the influences of the base angle of Bessel-like beam, the number of basic unit, and the variation of unit temperature on focusing performances in details. Furthermore, the reflected focusing lens for the cylindrical acoustic wave based on the Bessel-like beam is also demonstrated. The proposed focusing lens has the advantages of a broad working bandwidth, large focus size,and high robustness, which may provide possibilities for the design and application of acoustic lenses.
基金supported by the National Natural Science Foundation of China(Nos.61675046 and 61604015)the Fundamental Research Funds for the Central Universities(No.2021RC05)。
文摘Underwater optical wireless communication,which is useful for oceanography,environmental monitoring,and underwater surveillance,suffers the limit of the absorption attenuation and Mie–Rayleigh scattering of the lights.Here,Bessel-like beams generated by a fiber microaxicon is utilized for underwater wireless propagation.Underwater,the cone angle for generating Bessel-like beams starts from 46°,which is smaller than that in air for Bessel-like beams.When the cone angle of the fiber microaxicons is about 140°,the depth of focus underwater,which is four times as long as the depth of focus in air,has enlarged about 28μm,36.12μm,and 50.7μm for 470 nm,520 nm,and 632 nm visible lights.The transmission distance of the Bessel beams for visible lights has been simulated by using Henyey–Greenstein–Rayleigh phase function methods and spectral absorption by bio-optical model due to Monte Carlo methods.The results show that the propagation distance could reach 4000 m,which overcome the limit of the Mie–Rayleigh scattering and absorption attenuation underwater.