强激光与粒子束
彊激光與粒子束
강격광여입자속
HIGH POWER LASER AND PARTICLEBEAMS
2012年
8期
1811-1815
,共5页
徐建程%王飞舟%邓燕%柴立群
徐建程%王飛舟%鄧燕%柴立群
서건정%왕비주%산연%시립군
干涉测量%相位成像%系统传递函数%波像差%正弦相位光栅%相位台阶
榦涉測量%相位成像%繫統傳遞函數%波像差%正絃相位光柵%相位檯階
간섭측량%상위성상%계통전체함수%파상차%정현상위광책%상위태계
interferometry%phase imaging%system transfer function%wavefront aberration%sinusoidal phase grating%phase step
干涉仪系统传递函数能有效地表征系统相位成像的性能.通过假设干涉成像系统是复振幅的线性平移不变系统,模拟计算正弦相位光栅和相位台阶这两类标准相位物体的成像,确定干涉仪系统传递函数.数值分析结果表明:系统传递函数随着波像差的增加而减小;干涉成像系统对小幅度相位(远小于1 rad)成像是近似线性的,而对大幅度相位(大于0.5 rad)成像则是明显非线性的.当正弦相位的幅度为1时,系统传递函数在1/2和1/3截止频率处出现明显的急剧下降.高度为π/2的相位台阶成像时,系统传递函数随着空间频率的增加而缓慢地降低.
榦涉儀繫統傳遞函數能有效地錶徵繫統相位成像的性能.通過假設榦涉成像繫統是複振幅的線性平移不變繫統,模擬計算正絃相位光柵和相位檯階這兩類標準相位物體的成像,確定榦涉儀繫統傳遞函數.數值分析結果錶明:繫統傳遞函數隨著波像差的增加而減小;榦涉成像繫統對小幅度相位(遠小于1 rad)成像是近似線性的,而對大幅度相位(大于0.5 rad)成像則是明顯非線性的.噹正絃相位的幅度為1時,繫統傳遞函數在1/2和1/3截止頻率處齣現明顯的急劇下降.高度為π/2的相位檯階成像時,繫統傳遞函數隨著空間頻率的增加而緩慢地降低.
간섭의계통전체함수능유효지표정계통상위성상적성능.통과가설간섭성상계통시복진폭적선성평이불변계통,모의계산정현상위광책화상위태계저량류표준상위물체적성상,학정간섭의계통전체함수.수치분석결과표명:계통전체함수수착파상차적증가이감소;간섭성상계통대소폭도상위(원소우1 rad)성상시근사선성적,이대대폭도상위(대우0.5 rad)성상칙시명현비선성적.당정현상위적폭도위1시,계통전체함수재1/2화1/3절지빈솔처출현명현적급극하강.고도위π/2적상위태계성상시,계통전체함수수착공간빈솔적증가이완만지강저.
The performance of phase imaging in interferometric imaging system is well characterized by the system transfer function (STF),The STF of the interferometrie imaging system is analyzed numerically by assuming that the system is linear and shift-invariant for the complex field.Two standard phase objects,sinusoidal phase grating and phase step,are employed and simulated to determine the STF.Numerical simulation results show that the STF decreases as the wavefront aberration of interferometric imaging system increases.It also shows that the interferometric imaging system is approximately linear for small phase (far less than 1 rad) but explicitly nonlinear for large phase (larger than 0.5 rad).The STF has a visible drop at one half or one third of the cut-off frequency of the imaging system when the amplitude of sinusoidal phase is 1 rad.For a phase step with a height of π/2 rad,the STF has no visible drop but decreases slowly with the increasing of spatial frequency.The results provide a useful guidance to the design of interferometer and the measurement of STF and power spectrum density in experiment.