Optical design of the 1.85-m mm-submm telescope in 210–375 GHz band

Y. Yamasaki, S. Masui, Masanari Okawa, Koki Yokoyama, Taisei Minami, Shota Ueda, Yutaka Hasegawa, A. Nishimura, T. Onishi, H. Ogawa, N. Okada, K. Kimura, Álvaro González, T. Kojima, K. Kaneko, R. Sakai
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引用次数: 2

Abstract

Currently, we are performing a large-scale survey of molecular clouds toward the Galactic Plane in 12CO, 13CO, and C18O(J = 2–1) with the 1.85-m mm-submm telescope from Nobeyama Radio Observatory. In addition, we are proceeding with the preparation of a new project to observe several additional molecular lines including higher transitions of CO isotopes, such as 12CO, 13CO, and C18O(J = 2–1, 3–2) simultaneously with a wideband receiver (210–375 GHz). The optics has a Cassegrain reflector antenna with Nasmyth beam-waveguide feed and is composed of Main-reflector, Sub-reflector, ellipsoidal mirrors, and plane mirrors. New wideband optics will be required to achieve this goal. In order to accomplish the optics, we have designed a corrugated horn with a fractional bandwidth of ∼56 %, and frequency independent optics to couple the beam from the telescope onto the horn. The corrugated horn has a conical profile and the variable corrugation depth. It has been optimized by using CHAMP, our targeting return loss of better than −20 dB, cross-polarization loss of better than −25 dB, and far-field good radiation pattern. The simulation of the corrugated horn results in low return loss, low crosspolarization, and symmetric beam pattern in that frequency band. The simulated aperture efficiency of the designed receiver optics on the 1.85-m telescope is above 0.76 at all frequencies by using GRASP. Recently, we have succeeded in simultaneous observation of 12CO, 13CO, and C18O(J = 2–1 and 3–2) toward Orion KL with the optics for the first time.
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210-375 GHz波段1.85 m mm-submm望远镜光学设计
目前,我们正在Nobeyama射电天文台的1.85 m mm-submm望远镜对12CO, 13CO和C18O(J = 2-1)的银道面分子云进行大规模调查。此外,我们正在准备一个新的项目,同时用宽带接收器(210-375 GHz)观察几个额外的分子线,包括高跃迁的CO同位素,如12CO, 13CO和C18O(J = 2-1, 3-2)。光学系统采用卡塞格伦反射面天线和内神话波束波导馈源,由主反射面、副反射面、椭球镜和面镜组成。实现这一目标需要新的宽带光学系统。为了实现光学,我们设计了一个分数带宽为56%的波纹角,以及频率无关的光学元件,将来自望远镜的光束耦合到角上。波纹角具有锥形轮廓和可变波纹深度。利用CHAMP对其进行了优化,目标回波损耗优于- 20 dB,交叉极化损耗优于- 25 dB,远场辐射方向图良好。仿真结果表明,波形喇叭在该频段回波损耗低、交叉极化小、波束方向对称。在1.85 m望远镜上设计的接收机光学系统在所有频率下的模拟孔径效率均在0.76以上。最近,我们首次成功地用光学仪器同时观测到了猎户座KL方向的12CO、13CO和C18O(J = 2-1和3-2)。
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