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System of the optic-electronic sensors for control position of the radio telescope elements

机译:用于控制射电望远镜元件位置的光电传感器系统

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A promising area of modern astronomy is the study of the field of millimeter waves. The use of this band is due to a large extent the spectrum characteristics of the propagation of waves in the atmosphere, short wavelength. Currently, Russia jointly with Uzbekistan is implementing a project to build a radio astronomy observatory on the Suffa plateau (Uzbekistan). The main instrument of the observatory is fully steerable radio telescope RT-70 type. Main mirror telescope is a fragment of an axisymmetric parabolic with a focal length of 21 m, consisting of 1200 reflecting panels; main mirror diameter - 70 m; diameter of counter reflector - 3 m. A feature of the radio telescope as a means of research in the millimeter wavelength range are high for the quality requirements parabolic surface of the primary mirror (standard deviation of points on the surface of the theoretical parabolic is not more than 0.05 mm), to the stability of the mutual arrangement of the primary mirror and the counter reflector (not more than 0, 07 mm) for precision guidance in the corners of the mirror system azimuth and elevation (margin of error 1.5-2"). Weight of structure, temperature changes and air shock result in significant deformation elements radio telescope construction (progressive linear displacements of points of the surface of the main mirror), reaching in the marginal zone of 30 mm; counter reflector shift of up to 60 mm; Unlike the angular position of the axis of the beam pattern of the radio telescope of the measured angle transducers can reach 10 ". Therefore, to ensure the required quality of the reflective elements RT-70 systems, as well as the implementation of precision-guided munitions needs complex measuring deformation elements telescope design. This article deals with the construction of opto-electronic system of remote optoelectronic displacement sensor control elements mirror telescope system.
机译:现代天文学的一个有希望的领域是毫米波领域的研究。该波段的使用在很大程度上是由于短波在大气中传播的光谱特性。目前,俄罗斯与乌兹别克斯坦正在实施一个在萨法高原(乌兹别克斯坦)建造射电天文观测站的项目。天文台的主要仪器是完全可操纵的射电望远镜RT-70型。主镜望远镜是轴对称抛物线的一部分,焦距为21 m,由1200个反射板组成;主镜直径-70 m;反向反射器的直径-3 m。对于质量要求高的主镜抛物面(理论抛物线表面上的点的标准偏差不超过0.05毫米),射电望远镜在毫米波长范围内作为研究手段的功能很高。主镜和反反射镜的相互布置(不超过0,07 mm)的稳定性,以便在镜系统的角和仰角拐角处精确引导(误差范围1.5-2“)。结构重量,温度变化和空气冲击导致明显变形的元素射电望远镜的结构(主镜表面点的渐进线性位移),到达边缘30 mm;反光镜偏移最大60 mm;与被测角度传感器的射电望远镜的光束方向图的轴可以达到10英寸。因此,要确保RT-70系统所需的反射元件质量以及精确制导弹药的实施,就需要复杂的测量变形元件望远镜设计。本文论述了远程光电位移传感器控制元件镜望远镜系统的光电系统的构建。

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