Large - Scale LEO Satellite Constellation to Ground QKD links: Feasibility Analysis

A. Ntanos, N. Lyras, Saif Anwar, O. Alia, D. Zavitsanos, G. Giannoulis, A. Panagopoulos, G. Kanellos, H. Avramopoulos
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引用次数: 1

Abstract

As Quantum Key Distribution (QKD) seems to turn towards satellite communication infrastructure to interconnect distant nodes aiming to a global quantum secured network, the number of assisting satellites is expected to increase. In this work, a feasibility analysis of a large-scale Low Earth Orbit (LEO) satellite constellation supporting LEO to ground QKD links is presented. A software tool to simulate the physical properties of a large-scale satellite constellation and a link budget calculator tailored for LEO satellite to ground QKD links have been developed. A large-scale LEO satellite constellation with 100 satellites orbiting at 550km altitude with 53deg inclination angle in ten different orbital planes (10 satellites per orbital plane) has been simulated and subsatellite points for 1 year have been obtained. Assuming, an optical ground station network consisting of nine different optical ground stations located in observatories across Europe, the performance of this large-scale constellation is evaluated in terms of availability and Secure Key Rate (SKR) employing the prepare and measure Decoy-State BB84 QKD protocol, during nighttime, under different atmospheric conditions including cloud coverage and turbulence effects among others, while two different wavelengths (i.e., 800nm and 1550nm) are examined. For each Optical Ground Station (OGS) location, Gbits of distilled keys per year per ground station and key rates up to Kbps are reported.
大规模LEO卫星星座与地面QKD链路:可行性分析
随着量子密钥分配(QKD)似乎转向卫星通信基础设施,以连接远距离节点,以建立全球量子安全网络,预计辅助卫星的数量将增加。在这项工作中,提出了支持低地球轨道到地面QKD链路的大型低地球轨道(LEO)卫星星座的可行性分析。开发了一个模拟大型卫星星座物理特性的软件工具和一个为LEO卫星与地面QKD链路量身定制的链路预算计算器。模拟了100颗卫星在550km高度、53°倾角、10个不同轨道平面(每个轨道平面10颗卫星)运行的大型LEO卫星星座,获得了1年的星下点。假设一个光学地面站网络由分布在欧洲各地天文台的9个不同的光学地面站组成,采用准备和测量Decoy-State BB84 QKD协议,在夜间,在不同的大气条件下,包括云覆盖和湍流效应等,同时两种不同的波长(即,800nm和1550nm)。对于每个光学地面站(OGS)位置,每个地面站每年蒸馏密钥的千兆比特数和密钥速率高达Kbps。
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