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Thermal Design of the Sentinel 5 precursor TROPOMI Instrument

机译:Sentinel 5前体Tropomi仪器的热设计

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The Tropospheric Monitoring Instrument (TROPOMI) is being developed for launch in Q1 2015 on ESAs Sentinel 5 Precursor spacecraft. The mission of this instrument is to perform observations on air quality and on sources and sinks of air quality and climate related gases and aerosols. TROPOMI is a passive Solar backscatter imaging spectrometer sensitive in several spectral bands from ultraviolet (UV) to Short Wave Infrared (SWIR), allowing deep penetration into the atmosphere, observing scattered radiation close to the Earth's surface. The instrument's spatial resolution of 7 x 7 km2 results in a high fraction of cloud-free observations. The wide swath range allows daily Earth coverage. TROPOMI contains two dispersive modules: the UVN spectrometer covering UV, Visible and Near Infrared spectral bands and the SWIR spectrometer. The instrument builds on heritage gained with the OMI instrument (Ozone Monitoring Instrument) on NASAs AURA satellite and the SCIAMACHY instrument on ESAs ENVISAT. The push broom observation geometry is a heritage from OMI; the observations in the SWIR spectral range and the use of a sophisticated passive cooler are a derivative from SCIAMACHY. The instrument's performance requirements lead to several derived thermal requirements. The four 2D detectors in the instrument (SWIR, NIR, U-VIS, UV) are cooled down to temperature levels varying from 140 K to 220 K to reduce the dark current output. Also the detectors are temperature stabilized to guarantee spectral and radiometric accuracy. The UVN optical bench is operated at 293 K, while the SWIR optical bench is cooled down to a 200 K temperature level to reduce thermal background signal on the SWIR detector. Spatial and temporal gradients in the optical benches and instrument support structure are minimized to meet the wavelength stability and co-registration requirements. Cooling of the instrument is performed by a passive radiant cooler based on the SCIAMACHY design concept, which includes several radiator patches, a reflector to optimise the cold stage performance and an Earth shield to suppress Earth fluxes. A thermal bus unit consisting of constant conducting heat pipes and flexible thermal links brings the heat from the instrument towards the radiant cooler. The TROPOMI project has entered the C/D phase of the design. This paper gives an overview of the current status of thermal design of both the instrument and radiant cooler.
机译:对流层监测仪器(Tropomi)正在开发2015年第1季度在ESAS Sentinel 5前体航天器的推出。该仪器的使命是对空气质量和气体质量和气候相关气体和气溶胶汇进行的观察。 Tropomi是一种被动太阳能反向散射成像谱仪,其在来自紫外线(UV)到短波红外(SWIR)的多个光谱带中,允许深入渗透到大气中,观察靠近地球表面的散射辐射。仪器的空间分辨率为7 x 7平方公里,导致云观测的高分。宽的条子距离允许每日地球覆盖范围。 Tropomi包含两个分散模块:UVN光谱仪覆盖UV,可见和近红外光谱带和SWIR光谱仪。该仪器在Nasas Aura卫星上用OMI仪器(臭氧监测仪)和ESAS Envisat上的款式仪器上获得的遗产。推扫帚观察几何是从omi的遗产; SWIR光谱范围的观察和复杂无源冷却器的使用是来自Sciamachy的衍生物。仪器的性能要求导致几种衍生的热要求。仪器(SWIR,NIR,U-VI,UV)中的四个2D检测器被冷却至改变的温度水平,从140 k到220k变化,以减少暗电流输出。探测器也是稳定的温度,以保证光谱和辐射精度。 UVN光学台阶以293k操作,而SWIR光学台面被冷却至200k温度水平以减少SWIR检测器上的热背景信号。光学长凳和仪器支撑结构中的空间和时间梯度最小化以满足波长稳定性和共同登记要求。仪器的冷却由基于Sciamachy设计概念的无源辐射冷却器进行,该概念包括多个散热器贴片,反射器,用于优化冷级性能和地球屏蔽以抑制地球通量。由恒定导电热管和柔性热链组成的热总线单元将来自仪器的热量带向辐射冷却器。 Tropomi项目已进入设计的C / D阶段。本文概述了仪器和辐射冷却器的热设计的当前状态。

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