Mass variation observing system by high low inter-satellite links (MOBILE) – a new concept for sustained observation of mass transport from space

IF 0.9 Q4 REMOTE SENSING
R. Pail, J. Bamber, R. Biancale, R. Bingham, C. Braitenberg, A. Eicker, F. Flechtner, T. Gruber, A. Güntner, G. Heinzel, M. Horwath, L. Longuevergne, J. Müller, I. Panet, H. Savenije, S. Seneviratne, N. Sneeuw, T. V. van Dam, B. Wouters
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引用次数: 9

Abstract

Abstract As changes in gravity are directly related to mass variability, satellite missions observing the Earth’s time varying gravity field are a unique tool for observing mass transport processes in the Earth system, such as the water cycle, rapid changes in the cryosphere, oceans, and solid Earth processes, on a global scale. The observation of Earth’s gravity field was successfully performed by the GRACE and GOCE satellite missions, and will be continued by the GRACE Follow-On mission. A comprehensive team of European scientists proposed the next-generation gravity field mission MOBILE in response to the European Space Agency (ESA) call for a Core Mission in the frame of Earth Explorer 10 (EE10). MOBILE is based on the innovative observational concept of a high-low tracking formation with micrometer ranging accuracy, complemented by new instrument concepts. Since a high-low tracking mission primarily observes the radial component of gravity-induced orbit perturbations, the error structure is close to isotropic. This geometry significantly reduces artefacts of previous along-track ranging low-low formations (GRACE, GRACE-Follow-On) such as the typical striping patterns. The minimum configuration consists of at least two medium-Earth orbiters (MEOs) at 10000 km altitude or higher, and one low-Earth orbiter (LEO) at 350-400 km. The main instrument is a laser-based distance or distance change measurement system, which is placed at the LEO. The MEOs are equipped either with passive reflectors or transponders. In a numerical closed-loop simulation, it was demonstrated that this minimum configuration is in agreement with the threshold science requirements of 5 mm equivalent water height (EWH) accuracy at 400 km wavelength, and 10 cm EWH at 200 km. MOBILE provides promising potential future perspectives by linking the concept to existing space infrastructure such as Galileo next-generation, as future element of the Copernicus/Sentinel programme, and holds the potential of miniaturization even up to swarm configurations. As such MOBILE can be considered as a precursor and role model for a sustained mass transport observing system from space.
高低星间链路质量变化观测系统——从空间持续观测质量传输的新概念
由于重力变化与质量变率直接相关,观测地球时变重力场的卫星任务是观测地球系统中水循环、冰冻圈快速变化、海洋和固体地球过程等质量输运过程在全球范围内的独特工具。GRACE卫星和GOCE卫星成功完成了对地球重力场的观测,GRACE后续任务将继续对地球重力场进行观测。一个由欧洲科学家组成的综合团队提出了下一代重力场任务MOBILE,以响应欧洲航天局(ESA)在地球探索者10号(EE10)框架内的核心任务。MOBILE基于具有微米测距精度的高-低跟踪编队的创新观测概念,并辅以新的仪器概念。由于高低跟踪任务主要观测重力轨道扰动的径向分量,误差结构接近各向同性。这种几何形状大大减少了以前沿轨迹范围低-低地层(GRACE, GRACE- follow - on)的人工制品,例如典型的条纹图案。最小配置包括至少两个10000公里或更高高度的中地球轨道(meo)和一个350-400公里高度的低地球轨道(LEO)。主要仪器是一个基于激光的距离或距离变化测量系统,它被放置在低轨道上。meo配备被动反射器或应答器。在数值闭环模拟中,该最小配置符合400 km波长5 mm等效水高(EWH)精度和200 km波长10 cm等效水高(EWH)精度的阈值科学要求。MOBILE通过将概念与现有的空间基础设施(如伽利略下一代)联系起来,作为哥白尼/哨兵计划的未来元素,提供了有希望的潜在未来前景,并具有小型化甚至集群配置的潜力。因此,MOBILE可被视为从空间建立持续质量输运观测系统的先驱和榜样。
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来源期刊
Journal of Geodetic Science
Journal of Geodetic Science REMOTE SENSING-
CiteScore
1.90
自引率
7.70%
发文量
3
审稿时长
14 weeks
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