物理学报
物理學報
물이학보
2013年
9期
232-241
,共10页
猫眼光学镜头%大气湍流%部分相干光%光强
貓眼光學鏡頭%大氣湍流%部分相榦光%光彊
묘안광학경두%대기단류%부분상간광%광강
cat-eye optical lens%atmospheric turbulence%partially coherent beam%intensity
本文研究了大气湍流和探测光空间相干性对倾斜离轴激光束通过猫眼光学镜头反射光光强特性的影响.研究表明:由于光阑效应以及光束倾斜或离轴,反射光光强出现振荡和非对称分布现象.大气湍流不会改变其非对称性,但湍流中其光强不再振荡.当猫眼光学镜头存在微弱正离焦δmax情况下,轴上光强可达到最大值.猫眼光学镜头焦距越大,所需δmax越大.但是,大气湍流和探测光相干性好坏都不会改变所需δmax值.在大气湍流中传输距离足够远时,反射光强会成为离轴类高斯分布.随着传输距离的增大,相干性越差的探测光的反射光束扩展可以更小,这与部分相干光自由空间传输规律完全不同.探测光相干性越好,其反射光强受湍流的影响越大,但差异不大.本文所得结果对激光主动探测的应用具有意义.
本文研究瞭大氣湍流和探測光空間相榦性對傾斜離軸激光束通過貓眼光學鏡頭反射光光彊特性的影響.研究錶明:由于光闌效應以及光束傾斜或離軸,反射光光彊齣現振盪和非對稱分佈現象.大氣湍流不會改變其非對稱性,但湍流中其光彊不再振盪.噹貓眼光學鏡頭存在微弱正離焦δmax情況下,軸上光彊可達到最大值.貓眼光學鏡頭焦距越大,所需δmax越大.但是,大氣湍流和探測光相榦性好壞都不會改變所需δmax值.在大氣湍流中傳輸距離足夠遠時,反射光彊會成為離軸類高斯分佈.隨著傳輸距離的增大,相榦性越差的探測光的反射光束擴展可以更小,這與部分相榦光自由空間傳輸規律完全不同.探測光相榦性越好,其反射光彊受湍流的影響越大,但差異不大.本文所得結果對激光主動探測的應用具有意義.
본문연구료대기단류화탐측광공간상간성대경사리축격광속통과묘안광학경두반사광광강특성적영향.연구표명:유우광란효응이급광속경사혹리축,반사광광강출현진탕화비대칭분포현상.대기단류불회개변기비대칭성,단단류중기광강불재진탕.당묘안광학경두존재미약정리초δmax정황하,축상광강가체도최대치.묘안광학경두초거월대,소수δmax월대.단시,대기단류화탐측광상간성호배도불회개변소수δmax치.재대기단류중전수거리족구원시,반사광강회성위리축류고사분포.수착전수거리적증대,상간성월차적탐측광적반사광속확전가이경소,저여부분상간광자유공간전수규률완전불동.탐측광상간성월호,기반사광강수단류적영향월대,단차이불대.본문소득결과대격광주동탐측적응용구유의의.
The influences of atmospheric turbulence and the beam coherence on the average intensity of tilted and off-axis laser beams propagating through a cat-eye optical lens in the turbulence are studied. It is shown that the oscillatory behavior and the skewness of average intensity may appear because there exist apertures and active detection laser beams are tilted or off-axis. The skewness is independent of turbulence, but the oscillatory behavior disappears due to turbulence. For a small positive defocus of a cat-eye optical lens, the on-axis average intensity reaches its maximum. The a positive defocus value becomes small as the focal length of the cat-eye optical lens decreases, but it is independent of atmospheric turbulence and the coherence of active detection laser beams. And the average intensity becomes an off-Gaussian-like profile when the propagation distance is large enough in turbulence. However, less beam spreading may occur with increasing propagation distance for active detection laser beams with less coherence, which is quite different from the behavior of laser beams propagating in free space. The better the coherence of active detection laser beams is, the more the average intensity is affected by the turbulence, but the difference is small. The results obtained in this paper are very useful for the applications is active laser detection.