NONDIFFRACTING X-WAVES - EXACT-SOLUTIONS TO FREE-SPACE SCALAR WAVE-EQUATION AND THEIR FINITE APERTURE REALIZATIONS

被引:422
作者
LU, JY
GREENLEAF, JF
机构
[1] MAYO CLIN & MAYO GRAD SCH MED,ROCHESTER,MN 55901
[2] MAYO CLIN & MAYO FDN,DEPT PHYSIOL,ROCHESTER,MN 55905
[3] MAYO CLIN & MAYO FDN,DEPT BIOPHYS,ROCHESTER,MN 55905
[4] MAYO CLIN & MAYO FDN,DEPT CARDIOVASC DIS,ROCHESTER,MN 55905
[5] MAYO CLIN & MAYO FDN,DEPT MED,ROCHESTER,MN 55905
基金
美国国家卫生研究院;
关键词
D O I
10.1109/58.166806
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Novel families of generalized nondiffracting waves have been discovered. They are exact nondiffracting solutions of the isotropic/homogenous scalar wave equation and are a generalization of some of the previously known nondiffracting waves such as the plane wave, Durnin's beams, and the nondiffracting portion of the Axicon beam equation in addition to an infinity of new beams. One subset of the new nondiffracting waves have X-like shapes that are termed "X waves." These nondiffracting X waves can be almost exactly realized over a finite depth of field with finite apertures and by either broad band or band-limited radiators. With a 25 mm diameter planar radiator, a zeroth-order broadband X wave will have about 2.5 mm lateral and 0.17 mm axial -6-dB beam widths with a -6-dB depth of field of about 171 mm. The phase of the X waves changes smoothly with time across the aperture of the radiator, therefore, X waves can be realized with physical devices. A zeroth-order band-limited X wave was produced and measured in water by our 10 element, 50 mm diameter, 2.5 MHz PZT ceramic/polymer composite J0 Bessel nondiffracting annular array transducer with -6-dB lateral and axial beam widths of about 4.7 mm and 0.65 mm, respectively, over a -6-dB depth of field of about 358 mm. Possible applications of X waves in acoustic imaging and electromagnetic energy transmission are discussed.
引用
收藏
页码:19 / 31
页数:13
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