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Broadband acoustic focusing by symmetric Airy beams with phased arrays comprised of different numbers of cavity structures 被引量:1
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作者 钱姣 刘博阳 +2 位作者 孙宏祥 袁寿其 俞笑竹 《Chinese Physics B》 SCIE EI CAS CSCD 2017年第11期287-294,共8页
We realize broadband acoustic focusing effect by employing two symmetric Airy beams generated from phased arrays,in which the units of the phased arrays consist of different numbers of cavity structures, each of which... We realize broadband acoustic focusing effect by employing two symmetric Airy beams generated from phased arrays,in which the units of the phased arrays consist of different numbers of cavity structures, each of which is composed of a square cavity and two inclined channels in air. The exotic phenomenon arises from the energy overlapping of the two symmetric Airy beams. Besides, we demonstrate the focusing performance with high self-healing property, and discuss the effects of structure parameters on focusing performance, and present the characteristics of the cavity structure with straight channels. Compared with other acoustic lenses, the proposed acoustic lens has advantages of broad bandwidth(about 1.4 kHz), high self-healing property of focusing performance, and free adjustment of focal length. Our finding should have great potential applications in ultrasound imaging and medical diagnosis. 展开更多
关键词 acoustic focusing Airy beam phase manipulation cavity structure
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Multiple off-axis acoustic vortices generated by dual coaxial vortex beams 被引量:2
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作者 李雯 戴思捷 +2 位作者 马青玉 郭各朴 丁鹤平 《Chinese Physics B》 SCIE EI CAS CSCD 2018年第2期393-400,共8页
As a kind of special acoustic field, the helical wavefront of an acoustic vortex(AV) beam is demonstrated to have a pressure zero with phase singularity at the center in the transverse plane. The orbital angular mom... As a kind of special acoustic field, the helical wavefront of an acoustic vortex(AV) beam is demonstrated to have a pressure zero with phase singularity at the center in the transverse plane. The orbital angular momentum of AVs can be applied to the field of particle manipulation, which attracts more and more attention in acoustic researches. In this paper,by using the simplified circular array of point sources, dual coaxial AV beams are excited by the even-and odd-numbered sources with the topological charges of l_E and l_O based on the phase-coded approach, and the composite acoustic field with an on-axis center-AV and multiple off-axis sub-AVs can be generated by the superimposition of the AV beams for|l_E| ≠ |l_O|. The generation of edge phase dislocation is theoretically derived and numerically analyzed for l_E=-l_O. The numbers and the topological charges as well as the locations of the center-AV and sub-AVs are demonstrated, which are proved to be determined by the topological charges of the coaxial AV beams. The proposed approach breaks through the limit of only one on-axis AV with a single topological charge along the beam axis, and also provides the feasibility of off-axis particle trapping with multiple AVs in object manipulation. 展开更多
关键词 dual coaxial acoustic vortex(AV) beams multiple off-axis AVs on-axis center-AV topological charge phase-coded approach
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Self-focusing of acoustical beam in solid by time-reversal processing 被引量:3
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作者 WEI Wei LIU Chen +1 位作者 WANG Chenghao (Institute of Acoustics, Chinese Academy of Sciences Beijing 100080) 《Chinese Journal of Acoustics》 2000年第1期89-95,共7页
A study on the self-adaptive focusing of acoustical beam in the solid by Time Reversal (TR) method is presented. The theoretical analyses and experiments show that TR can compensate the path difference of sound pulse ... A study on the self-adaptive focusing of acoustical beam in the solid by Time Reversal (TR) method is presented. The theoretical analyses and experiments show that TR can compensate the path difference of sound pulse in solid, and generate the self-focusing of longitudinal and shear waves at the same time. The experimental values of the focusing processing gain agree with the theoretical values. 展开更多
关键词 TIME Self-focusing of acoustical beam in solid by time-reversal processing
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