Thermal design and analysis of high power star sensors
The requirement for the temperature stability is very high in the star sensors as the high precision needs for the altitude information. Thermal design and analysis thus is important for the high power star sensors and their supporters. CCD, normally with Peltier thermoelectric cooler (PTC), is the...
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2015-09-01
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doaj-9607d9c398c5440c97e2a6669c16cdca2020-11-24T21:29:09ZengElsevierCase Studies in Thermal Engineering2214-157X2015-09-016C526010.1016/j.csite.2015.06.003Thermal design and analysis of high power star sensorsFan Jiang0Qingwen Wu1Zhongsu Wang2Jinguo Liu3Huaxia Deng4Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, PR ChinaChangchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, PR ChinaChangchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, PR ChinaChangchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, PR ChinaHefei University of Technology, Hefei 230009, PR ChinaThe requirement for the temperature stability is very high in the star sensors as the high precision needs for the altitude information. Thermal design and analysis thus is important for the high power star sensors and their supporters. CCD, normally with Peltier thermoelectric cooler (PTC), is the most important sensor component in the star sensors, which is also the main heat source in the star sensors suite. The major objective for the thermal design in this paper is to design a radiator to optimize the heat diffusion for CCD and PTC. The structural configuration of star sensors, the heat sources and orbit parameters were firstly introduced in this paper. The influences of the geometrical parameters and coating material characteristics of radiators on the heat diffusion were investigated by heat flux analysis. Carbon–carbon composites were then chosen to improve the thermal conductivity for the sensor supporters by studying the heat transfer path. The design is validated by simulation analysis and experiments on orbit. The satellite data show that the temperatures of three star sensors are from 17.8 °C to 19.6 °C, while the simulation results are from 18.1 °C to 20.1 °C. The temperatures of radiator are from 16.1 °C to 16.8 °C and the corresponding simulation results are from 16.0 °C to 16.5 °C. The temperature variety of each star sensor is less than 2 °C, which satisfies the design objectives.http://www.sciencedirect.com/science/article/pii/S2214157X15000210Star sensorHeat radiatingThermal designThermal analysis |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Fan Jiang Qingwen Wu Zhongsu Wang Jinguo Liu Huaxia Deng |
spellingShingle |
Fan Jiang Qingwen Wu Zhongsu Wang Jinguo Liu Huaxia Deng Thermal design and analysis of high power star sensors Case Studies in Thermal Engineering Star sensor Heat radiating Thermal design Thermal analysis |
author_facet |
Fan Jiang Qingwen Wu Zhongsu Wang Jinguo Liu Huaxia Deng |
author_sort |
Fan Jiang |
title |
Thermal design and analysis of high power star sensors |
title_short |
Thermal design and analysis of high power star sensors |
title_full |
Thermal design and analysis of high power star sensors |
title_fullStr |
Thermal design and analysis of high power star sensors |
title_full_unstemmed |
Thermal design and analysis of high power star sensors |
title_sort |
thermal design and analysis of high power star sensors |
publisher |
Elsevier |
series |
Case Studies in Thermal Engineering |
issn |
2214-157X |
publishDate |
2015-09-01 |
description |
The requirement for the temperature stability is very high in the star sensors as the high precision needs for the altitude information. Thermal design and analysis thus is important for the high power star sensors and their supporters. CCD, normally with Peltier thermoelectric cooler (PTC), is the most important sensor component in the star sensors, which is also the main heat source in the star sensors suite. The major objective for the thermal design in this paper is to design a radiator to optimize the heat diffusion for CCD and PTC. The structural configuration of star sensors, the heat sources and orbit parameters were firstly introduced in this paper. The influences of the geometrical parameters and coating material characteristics of radiators on the heat diffusion were investigated by heat flux analysis. Carbon–carbon composites were then chosen to improve the thermal conductivity for the sensor supporters by studying the heat transfer path. The design is validated by simulation analysis and experiments on orbit. The satellite data show that the temperatures of three star sensors are from 17.8 °C to 19.6 °C, while the simulation results are from 18.1 °C to 20.1 °C. The temperatures of radiator are from 16.1 °C to 16.8 °C and the corresponding simulation results are from 16.0 °C to 16.5 °C. The temperature variety of each star sensor is less than 2 °C, which satisfies the design objectives. |
topic |
Star sensor Heat radiating Thermal design Thermal analysis |
url |
http://www.sciencedirect.com/science/article/pii/S2214157X15000210 |
work_keys_str_mv |
AT fanjiang thermaldesignandanalysisofhighpowerstarsensors AT qingwenwu thermaldesignandanalysisofhighpowerstarsensors AT zhongsuwang thermaldesignandanalysisofhighpowerstarsensors AT jinguoliu thermaldesignandanalysisofhighpowerstarsensors AT huaxiadeng thermaldesignandanalysisofhighpowerstarsensors |
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1725967099259518976 |