首页> 外文期刊>The Astrophysical Journal. Letters >STRONG EVIDENCE FOR THE DENSITY-WAVE THEORY OF SPIRAL STRUCTURE IN DISK GALAXIES
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STRONG EVIDENCE FOR THE DENSITY-WAVE THEORY OF SPIRAL STRUCTURE IN DISK GALAXIES

机译:磁盘星系中螺旋结构密度波理论的强证据

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The density-wave theory of galactic spiral-arm structure makes a striking prediction that the pitch angle of spiral arms should vary with the wavelength of the galaxy's image. The reason is that stars are born in the density wave but move out of it as they age. They move ahead of the density wave inside the co-rotation radius, and fall behind outside of it, resulting in a tighter pitch angle at wavelengths that image stars (optical and near-infrared) than those that are associated with star formation (far-infrared and ultraviolet). In this study we combined large sample size with wide range of wavelengths, from the ultraviolet to the infrared to investigate this issue. For each galaxy we used an optical wavelength image (B-band: 445 nm) and images from the Spitzer Space Telescope at two infrared wavelengths (infrared: 3.6 and 8.0 mu m) and we measured the pitch angle with the 2DFFT and Spirality codes. We find that the B-band and 3.6 mu m images have smaller pitch angles than the infrared 8.0 mu m image in all cases, in agreement with the prediction of density-wave theory. We also used images in the ultraviolet from Galaxy Evolution Explorer, whose pitch angles agreed with the measurements made at 8 mu m.
机译:银河系螺旋臂结构的密度波理论做出了惊人的预测,即螺旋臂的俯仰角应随银河系图像的波长而变化。原因是恒星诞生于密度波中,但随着年龄的增长而从中移出。它们在同向旋转半径内的密度波之前移动,而在同向旋转半径的后方向外移动,从而导致在成像恒星(光学和近红外)的波长处的螺距角比与恒星形成相关的波长(远距)更紧密。红外线和紫外线)。在这项研究中,我们结合了大样本量和从紫外线到红外线的各种波长,以研究此问题。对于每个星系,我们使用光波长图像(B波段:445 nm)和来自Spitzer空间望远镜的两个红外波长(红外:3.6和8.0μm)的图像,并使用2DFFT和螺旋度代码测量俯仰角。我们发现,在所有情况下,B波段和3.6μm图像的俯仰角均小于红外8.0μm图像,这与密度波理论的预测相符。我们还使用了来自Galaxy Evolution Explorer的紫外线图像,其俯仰角与8微米处的测量值一致。

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