System Design for the Event Horizon Imaging Experiment Using the PECMEO Concept
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  • 英文篇名:System Design for the Event Horizon Imaging Experiment Using the PECMEO Concept
  • 作者:KUDRIASHOV ; Volodymyr ; MARTIN-NEIRA ; Manuel ; BARAT ; Itziar ; MARTIN ; IGLESIAS ; Pertonilo ; DAGANZO-EUSEBIO ; Elena ; ALAGHA ; Nader ; VALENTA ; Vaclav
  • 英文作者:KUDRIASHOV Volodymyr;MARTIN-NEIRA Manuel;BARAT Itziar;MARTIN IGLESIAS Pertonilo;DAGANZO-EUSEBIO Elena;ALAGHA Nader;VALENTA Vaclav;European Space Research and Technology Centre,the European Space Agency;
  • 英文关键词:Instrumentation;;Telescope;;High angular resolution;;Interferometer;;Space VLBI
  • 中文刊名:KJKB
  • 英文刊名:Chinese Journal of Space Science
  • 机构:European Space Research and Technology Centre,the European Space Agency;
  • 出版日期:2019-03-15
  • 出版单位:空间科学学报
  • 年:2019
  • 期:v.39
  • 语种:英文;
  • 页:KJKB201902015
  • 页数:17
  • CN:02
  • ISSN:11-1783/V
  • 分类号:110-126
摘要
The concept for space interferometry from Polar or Equatorial Circular Medium Earth Orbits(the PECMEO concept) is a promising way to acquire the image of the"shadow"of the event horizon of Sagittarius A*with an angular resolution of circa 5 microarcseconds. The concept is intended to decrease the size of the main reflector of the instrument to about 3 m using a precise orbit reconstruction based on Global Navigation Satellite System (GNSS) navigation, inter-satellite range and range-rate measurements, and data from the Attitude and Orbit Determination System (AODS). The paper provides the current progress on the definition of the subsystems required for the concept on the basis of simulations, radio regulations, and available technology. The paper proposes the requirement for the localization of the phase centre of the main reflector. The paper provides information about the visibility of GNSS satellites and the needed accuracies of the AODS. The paper proposes the frequency plan for the instrument and its Inter-Satellite Links (ISLs).The concepts for measurement of range and range-rate using ISLs (as well as for the data exchange at these ISLs) are presented. The block diagram of the interferometer is described and its sensitivity is estimated. The link budget for both ISLs is given as well as their critical components. The calculated measurement quality factors are given. The paper shows the expected performance of the sub-systems of the interferometer. The requirements for the localization of the main reflectors and the information about the availability of the GNSS satellites are based on the simulations results. The frequency plan is obtained according to the PECMEO concept and taking into account the radio regulations. The existing technology defines the accuracies of the AODS, both the link budgets and the fundamental measurement accuracies for ISLs, and the sensitivity of the instrument. The paper provides input information for the development of the orbit reconstruction filter and the whole PECMEO system.
        The concept for space interferometry from Polar or Equatorial Circular Medium Earth Orbits(the PECMEO concept) is a promising way to acquire the image of the "shadow" of the event horizon of Sagittarius A* with an angular resolution of circa 5 microarcseconds. The concept is intended to decrease the size of the main reflector of the instrument to about 3 m using a precise orbit reconstruction based on Global Navigation Satellite System(GNSS) navigation, inter-satellite range and range-rate measurements, and data from the Attitude and Orbit Determination System(AODS). The paper provides the current progress on the definition of the subsystems required for the concept on the basis of simulations, radio regulations, and available technology. The paper proposes the requirement for the localization of the phase centre of the main reflector. The paper provides information about the visibility of GNSS satellites and the needed accuracies of the AODS. The paper proposes the frequency plan for the instrument and its Inter-Satellite Links(ISLs).The concepts for measurement of range and range-rate using ISLs(as well as for the data exchange at these ISLs) are presented. The block diagram of the interferometer is described and its sensitivity is estimated. The link budget for both ISLs is given as well as their critical components. The calculated measurement quality factors are given. The paper shows the expected performance of the sub-systems of the interferometer. The requirements for the localization of the main reflectors and the information about the availability of the GNSS satellites are based on the simulations results. The frequency plan is obtained according to the PECMEO concept and taking into account the radio regulations. The existing technology defines the accuracies of the AODS, both the link budgets and the fundamental measurement accuracies for ISLs, and the sensitivity of the instrument. The paper provides input information for the development of the orbit reconstruction filter and the whole PECMEO system.
引文
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