Eyyuboğlu Halil T, Voelz David, Xiao Xifeng
Appl Opt. 2013 Nov 20;52(33):8032-9. doi: 10.1364/AO.52.008032.
Scintillation aspects of truncated Bessel beams propagated through atmospheric turbulence are investigated using a numerical wave optics random phase screen simulation method. On-axis, aperture averaged scintillation and scintillation relative to a classical Gaussian beam of equal source power and scintillation per unit received power are evaluated. It is found that in almost all circumstances studied, the zeroth-order Bessel beam will deliver the lowest scintillation. Low aperture averaged scintillation levels are also observed for the fourth-order Bessel beam truncated by a narrower source window. When assessed relative to the scintillation of a Gaussian beam of equal source power, Bessel beams generally have less scintillation, particularly at small receiver aperture sizes and small beam orders. Upon including in this relative performance measure the criteria of per unit received power, this advantageous position of Bessel beams mostly disappears, but zeroth- and first-order Bessel beams continue to offer some advantage for relatively smaller aperture sizes, larger source powers, larger source plane dimensions, and intermediate propagation lengths.
利用数值波动光学随机相位屏模拟方法,研究了截断贝塞尔光束在大气湍流中传播时的闪烁特性。在轴上,评估了孔径平均闪烁以及相对于具有相等源功率的经典高斯光束的闪烁和每单位接收功率的闪烁。结果发现,在几乎所有研究的情况下,零阶贝塞尔光束的闪烁最低。对于由较窄源窗口截断的四阶贝塞尔光束,也观察到了低孔径平均闪烁水平。当相对于具有相等源功率的高斯光束的闪烁进行评估时,贝塞尔光束通常具有较小的闪烁,特别是在小接收孔径尺寸和小光束阶数时。在这个相对性能测量中纳入每单位接收功率的标准后,贝塞尔光束的这种优势地位大多消失了,但零阶和一阶贝塞尔光束在相对较小的孔径尺寸、较大的源功率、较大的源平面尺寸和中等传播长度时仍继续提供一些优势。