Davis J, Tango W J, Thorvaldson E D
Appl Opt. 1998 Aug 1;37(22):5132-6. doi: 10.1364/ao.37.005132.
In long-baseline optical stellar interferometry, it is necessary to maintain optical path equality between the two arms of an interferometer in order to measure the fringe visibility. There will be errors in matching the optical paths because of a number of factors, and it is desirable to use an automatic system to monitor and correct such path errors. One type of system is a delay tracker, based on imaging of the channeled spectrum. The tracking algorithm is designed to maintain a fixed number of fringes, ideally linearly spaced, across the observed spectral band. This results in a constant optical path difference, which may be incompatible with the requirement of path equality for the measurement of fringe visibility. In a practical interferometer that uses an optical path-length compensator operating in air, there is a complication since air paths introduce differential dispersion. This dispersion can be compensated for by including dispersion correction. By modifying the operation of an appropriately designed dispersion corrector, we show that it is possible to make the optical path difference zero at the measurement wavelength and, at the same time, to produce linearly spaced channel fringes across the tracking band.
在长基线光学恒星干涉测量中,为了测量条纹可见度,有必要保持干涉仪两臂之间的光程相等。由于多种因素,在匹配光程时会出现误差,因此希望使用自动系统来监测和校正此类光程误差。一种系统是基于通道光谱成像的延迟跟踪器。跟踪算法旨在在观测光谱带内保持固定数量的条纹,理想情况下是线性间隔的。这会导致恒定的光程差,这可能与测量条纹可见度时光程相等的要求不兼容。在实际的干涉仪中,使用在空气中运行的光程长度补偿器时会出现一个复杂情况,因为空气路径会引入差分色散。这种色散可以通过包含色散校正来补偿。通过修改适当设计的色散校正器的操作,我们表明可以在测量波长处使光程差为零,同时在跟踪带内产生线性间隔的通道条纹。