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Multi-arm spectrometer for parallel frequency analysis of radio-wave signals oriented to astronomical observations

机译:用于平行频率分析的多臂光谱仪,以天文观测为导向的无线电波信号

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We describe a potential prototype of modern spectrometer based on acousto-optical technique with three parallel optical arms for analysis of radio-wave signals specific to astronomical observations. Each optical arm exhibits original performances to provide parallel multi-band observations with different scales simultaneously. Similar multi-band instrument is able to realize measurements within various scenarios from planetary atmospheres to attractive objects in the distant Universe. The arrangement under development has two novelties. First, each optical arm represents an individual spectrum analyzer with its individual performances. Such an approach is conditioned by exploiting various materials for acousto-optical cells operating within various regimes, frequency ranges, and light wavelengths from independent light sources. Individually produced beam shapers give both the needed incident light polarization and the required apodization for light beam to increase the dynamic range of the system as a whole. After parallel acousto-optical processing, a few data flows from these optical arms are united by the joint CCD matrix on the stage of the combined extremely high-bit rate electronic data processing that provides the system performances as well. The other novelty consists in the usage of various materials for designing wide-aperture acousto-optical cells exhibiting the best performances within each of optical arms. Here, one can mention specifically selected cuts of tellurium dioxide, bastron, and lithium niobate, which overlap selected areas withm the frequency range from 40 MHz to 2.0 GHz. Thus one yields the united versatile instrument for comprehensive studies of astronomical objects simultaneously with precise synchronization in various frequency ranges.
机译:我们基于具有三个平行光学臂的声光学技术来描述现代光谱仪的潜在原型,用于分析特定于天文观测的无线电波信号。每个光学臂表现出原始性能,以同时提供具有不同尺度的平行多带观察。类似的多频带仪器能够在行星大气中的各种场景中实现测量到远处宇宙中的有吸引力的物体。开发区的安排有两个新奇。首先,每个光学臂代表具有其个体性能的单独谱分析仪。这种方法是通过利用各种制度,频率范围和来自独立光源的光波长操作的各种材料来调节。单独产生的光束成形器给出所需的入射光极化和光束所需的停留,以增加整个系统的动态范围。在并行声学 - 光学处理之后,来自这些光学臂的几个数据流通过关节CCD矩阵在组合的极高比特率电子数据处理的阶段,该数据处理也提供了系统性能。另一种新奇是在使用各种材料的使用,用于设计宽孔径声光单元,其光学臂内的每个材料。这里,人们可以特别提及碲化碲,巴萝仑和铌酸锂的切割,其与40MHz至2.0GHz的频率范围重叠的选择区域。因此,一个人可以在各种频率范围内同时对天文对象进行综合研究。

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