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Fizeau interferometric imaging of Io volcanism with LBTI/LMIRcam

机译:用LBTI / LMIRcam对Io火山进行Fizeau干涉成像

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The Large Binocular Telescope (LBT) houses two 8.4-meter mirrors separated by 14.4 meters on a common mount. Coherent combination of these two AO-corrected apertures via the LBT Interferometer (LBTI) produces Fizeau interferometric images with a spatial resolution equivalent to that of a 22.8-meter telescope and the light-gathering power of single 11.8-meter mirror. Capitalizing on these unique capabilities, we used LBTI/LMIRcam to image thermal radiation from volcanic activity on the surface of Io at M-Band (4.8 μm) over a range of parallactic angles. At the distance of Io, the M-Band resolution of the interferometric baseline corresponds to a physical distance of ~135 km, enabling high-resolution monitoring of Io volcanism such as flares and outbursts inaccessible from other ground-based telescopes operating in this wavelength regime. Two deconvolution routines are used to recover the full spatial resolution of the combined images, resolving at least sixteen known volcanic hot spots. Coupling these observations with advanced image reconstruction algorithms demonstrates the versatility of Fizeau interferometry and realizes the LBT as the first in a series of extremely large telescopes.
机译:大型双筒望远镜(LBT)在公共安装座上装有两个8.4米的镜子,相距14.4米。这两个经过AO校正的孔径通过LBT干涉仪(LBTI)的相干组合可产生Fizeau干涉图像,其空间分辨率相当于22.8米望远镜的分辨率,并且具有11.8米单镜的聚光能力。利用这些独特的功能,我们使用LBTI / LMIRcam在一定范围的视角范围内对M波段(4.8μm)的Io表面火山活动产生的热辐射成像。在Io距离处,干涉基线的M波段分辨率对应于约135 km的物理距离,从而可以高分辨率监视Io火山活动,例如在该波长范围内操作的其他地面望远镜无法接近的耀斑和爆发。使用两个解卷积例程来恢复组合图像的全部空间分辨率,从而解决至少十六个已知的火山热点。将这些观测值与先进的图像重建算法相结合,可以证明Fizeau干涉仪的多功能性,并实现了LBT作为一系列超大型望远镜中的第一个。

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