Optical Wireless Fronthaul-Enhanced High-Throughput FC-AE-1553 Space Networks
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Published:2023-11-30
Issue:12
Volume:10
Page:1331
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ISSN:2304-6732
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Container-title:Photonics
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language:en
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Short-container-title:Photonics
Author:
Chang Xiang12, Li Xuzhi12, He Jianhua2, Ma Yonghua2, Li Gen2, Lu Lu12ORCID
Affiliation:
1. University of Chinese Academy of Sciences, Beijing 100049, China 2. Key Laboratory of Space Utilization, Technology and Engineering Center for Space Utilization, Chinese Academy of Sciences, Beijing 100094, China
Abstract
Existing space application networks in space stations are mainly fiber-optic cable-based networks due to their low size, weight, and power (SWaP) values. While fiber networks in space stations offer data transmission at high speeds with minimal signal loss, their major disadvantage is the lack of flexibility and mobility when new and unplanned space scientific equipment is added to the network. To enhance the flexibility of space networks while increasing their throughput, this paper introduces the hybrid space network (HSN), a new space network architecture that incorporates an optical wireless link, to meet the ever-increasing demands for larger bandwidth and higher mobile access capabilities in space scientific experiments. To best utilize the HSN’s system performance, we propose a multi-priority-based network scheduling scheme, which can dynamically adapt to the requirements of mass tasks and select the best transmission procedure. Through simulations, we find that by adding optical wireless communication (OWC) links to the state-of-the-art deterministic FC-AE-1553 space network, the HSN’s bandwidth can be increased by 20 times with an average latency reduction of 87.3%. We believe that the proposed HSN’s architecture may ultimately shape the future of space stations’ wireless connectivity, and in the meantime, innovate many advanced space applications with larger data rates and mobility requirements.
Funder
Chinese Academy of Sciences
Subject
Radiology, Nuclear Medicine and imaging,Instrumentation,Atomic and Molecular Physics, and Optics
Reference60 articles.
1. Gao, M., Zhao, G., and Gu, Y. Space Science Activities in China: National Report 2016–2018, CAS. 2. A Formal Verification Method for the SOPC Software;Zhou;IEEE Trans. Reliab.,2022 3. Xu, Y., Zhang, X., and Xiong, H. (2006, January 19–21). Study on the application of fibre channel in future spacecraft avionics system. Proceedings of the 2006 1st International Symposium on Systems and Control in Aerospace and Astronautics, Harbin, China. 4. Study of topology performance of FC-AE-1553 network in space application;Li;Comput. Technol. Dev.,2013 5. Wei, Z., Yi, Y., Mengyu, L., Yuanjin, W., and Shenhang, W. (2020, January 18–21). Development of data bus technology in next generation spacecraft. Proceedings of the CSAA/IET International Conference on Aircraft Utility Systems (AUS 2020), Online.
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