基于扩展与合并的星载光电混合交换设计方法

邓献策, 刘沛龙, 刘凯, 晏坚, 匡麟玲

清华大学学报(自然科学版) ›› 2026, Vol. 66 ›› Issue (2) : 379-387.

PDF(5538 KB)
PDF(5538 KB)
清华大学学报(自然科学版) ›› 2026, Vol. 66 ›› Issue (2) : 379-387. DOI: 10.16511/j.cnki.qhdxxb.2025.21.024
电子工程

基于扩展与合并的星载光电混合交换设计方法

作者信息 +

Design method of onboard hybrid optical and electrical switching based on expansion and merging

Author information +
文章历史 +

摘要

随着宽带通信卫星波束数量和带宽的快速增长,光电混合交换有望成为大规模低复杂度星载交换的有效途径。然而,在采用Clos网络扩展光交换规模的设计中,基于解耦的星载光电混合交换设计方法忽略了各部分交换之间的配合作用,增加了光交换映射次数,转发器资源开销大。该文提出了一种基于扩展与合并的联合优化设计方法。首先,扩展光交换规模以满足整体的光交换功能需求,通过将下、上变频部分的光交换合并至下变频部分执行,降低了光交换映射的次数;然后,通过重复使用电交换等效合并部分光交换,进一步降低了光交换映射的次数。通过分析表明,在不提高交换调度复杂度水平的条件下,可将光交换单元的数量降低9.5%~50%。

Abstract

Objective: The explosive growth in the number of beams and overall bandwidth requirements in broadband communication satellites has made onboard hybrid optical and electrical switching a critical technology for supporting large-scale and low-complexity switching systems. However, the design of scaling optical switching using Clos networks, onboard hybrid optical and electrical switching, which is based on the decoupled design method, currently disregards the coordination among various switching parts. This decoupled method results in redundant switching paths, inefficient mapping, and substantial increases in the number of optical switching units and interconnecting optical fibers. These inefficiencies cause inconvenience in the limited onboard transponder resources and hinder the scalability of future satellite systems. Methods: To address this issue, this study proposes a joint design method that combines expansion and merging. Firstly, the optical switching scale is expanded to meet the overall functional requirements, and the optical switching functions of down- and up-conversion parts are merged and executed in the down-conversion part, thereby reducing the number of optical switching mappings. This expansion results in the formation of a unified switching domain that increases flexibility in resource allocation and lays the foundation for merging. Secondly, the Clos network topology is used as a basis to achieve a part of the optical switching functionality through the reuse of electrical switching capabilities. This functional reuse enables the effective merging of optical switching modules, which reduces redundancy and minimizes intermodule communication overhead. Results: The analysis indicates that the number of optical switching units is reduced by 9.5% to 50% without increasing the scheduling complexity. The number of corresponding interconnecting optical fibers is reduced by between 1/8 and 3/8. Furthermore, the channel scale varies in response to demand changes, with a typical scenario involving the selection of half of the total broadband channels for fine-grained electrical switching. The effectiveness of the proposed methods is demonstrated in various cases under the corresponding scenarios. When the total number of channels is 84, the optical switching modules attain a reduction ratio of 50%, whereas that of interconnection fibers is 1/4. Moreover, the proportion of fine-grained switching in the total switching scale consistently varies based on the changes in demand. For specific cases, at a fine-grained switching ratio below 0.6, a considerable reduction in optical switching modules occurs, which highlights the effectiveness of the proposed method. Finally, the scheduling complexity introduced by the joint design is analyzed. Although the design introduces additional swap operations at the input and output channel levels during electrical switching, such operations cause no increase in the time complexity of the optical switching scheduling algorithm. Thus, the joint design maintains computational efficiency similar to that of traditional methods while achieving substantial improvements in physical resource savings. Conclusions: The proposed joint optimization method based on expansion and merging offers an effective and scalable solution for hybrid optical and electrical switching in broadband satellite communication systems. Through enhanced coordination across various switching parts and optimization of the utilization of optical and electrical resources, this method effectively addresses the challenges encountered in scaling Clos networks in onboard environments. Thus, it holds crucial promise in enabling future satellite networks that require high capacity, low complexity, and great flexibility in switching architecture design.

关键词

星载光电混合交换 / 扩展与合并 / 联合优化 / Clos网络

Key words

onboard hybrid optical and electrical switching / expansion and merging / joint design / Clos networks

引用本文

导出引用
邓献策, 刘沛龙, 刘凯, . 基于扩展与合并的星载光电混合交换设计方法[J]. 清华大学学报(自然科学版). 2026, 66(2): 379-387 https://doi.org/10.16511/j.cnki.qhdxxb.2025.21.024
Xiance DENG, Peilong LIU, Kai LIU, et al. Design method of onboard hybrid optical and electrical switching based on expansion and merging[J]. Journal of Tsinghua University(Science and Technology). 2026, 66(2): 379-387 https://doi.org/10.16511/j.cnki.qhdxxb.2025.21.024
中图分类号: TN927   

参考文献

1
HE Y Z , TAN Q G , WEN A J , et al. Satellite communication payload based on microwave photonics: Benefits, architecture, and technologies[J]. IEEE Wireless Communications, 2024, 31 (1): 164- 171.
2
KODHELI O , LAGUNAS E , MATURO N , et al. Satellite communications in the new space era: A survey and future challenges[J]. IEEE Communications Surveys & Tutorials, 2021, 23 (1): 70- 109.
3
SOTOM M, BENAZET B, LE KERNEC A, et al. Microwave photonic technologies for flexible satellite telecom payloads [C]//2009 35th European Conference on Optical Communication. Vienna, Austria: IEEE, 2009: 1-4.
4
VONO S, DI PAOLO G, PICCINNI M, et al. Towards telecommunication payloads with photonic technologies [C]//Proceedings Volume 10563, International Conference on Space Optics-ICSO 2014. Tenerife, Canary Islands, Spain: SPIE, 2017: 1054-1062.
5
ANZALCHI J, INIGO P, ROY B. Application of photonics in next generation telecommunication satellites payloads [C]//Proceedings Volume 10563, International Conference on Space Optics-ICSO 2014. Tenerife, Canary Islands, Spain: SPIE, 2017: 1063-1071.
6
PIQUERAS M A, MARTÍ J, DELGADO S, et al. A flight demonstration photonic payload for up to Q/V-band implemented in a satellite Ka-band hosted payload aimed at broadband high throughput satellites [C]//Proceedings Volume 11180, International Conference on Space Optics-ICSO 2018. Chania, Greece: SPIE, 2019: 1796-1804.
7
TANG Z Z , LI Y F , YAO J P , et al. Photonics-based microwave frequency mixing: Methodology and applications[J]. Laser & Photonics Reviews, 2020, 14 (1): 1800350.
8
YAO J P . Microwave photonic systems[J]. Journal of Lightwave Technology, 2022, 40 (20): 6595- 6607.
9
SHI F J , FAN Y Y , MA B Y , et al. A microwave photonic channelized receiver with self-interference cancellation[J]. Journal of Lightwave Technology, 2023, 41 (2): 627- 636.
10
LIANG D , MOHAMMAD A W , ROELO-FFZEN C , et al. Chip-based microwave photonic payload repeater for high throughput satellites[J]. Laser & Photonics Reviews, 2024, 18 (2): 2200952.
11
CHEN X J , LIN J , WANG K . A review of silicon-based integrated optical switches[J]. Laser & Photonics Reviews, 2023, 17 (4): 2200571.
12
KAWAMOTO Y , KAMEI T , TAKAHASHI M , et al. Flexible resource allocation with inter-beam interference in satellite communication systems with a digital channelizer[J]. IEEE Transactions on Wireless Communications, 2020, 19 (5): 2934- 2945.
13
GAO Z , XIAO J J , LIU Q , et al. A methodology for the design of fault tolerant parallel digital channelizers on SRAM-FPGAs[J]. IEEE Transactions on Circuits and Systems Ⅰ: Regular Papers, 2023, 70 (5): 2003- 2015.
14
LV Q, ZHANG A X, HUANG N B, et al. Study on photonic and digital hybrid flexible satellite payload [C]//2017 International Topical Meeting on Microwave Photonics. Beijing, China: IEEE, 2017: 1-4.
15
李立, 谭庆贵. 微波光子在高通量通信卫星中的探索及初步应用(特邀)[J]. 红外与激光工程, 2021, 50 (7): 20211050.
LI L , TAN Q G . Exploration and preliminary application of high throughput satellite with microwave photonics (Invited)[J]. Infrared and Laser Engineering, 2021, 50 (7): 20211050.
16
吴宾. 卫星激光微波混合网络中继交换关键技术研究[D]. 大连: 大连理工大学, 2019.
WU B. Research on key technologies of relay and switching for hybrid satellite network of laser and microwave [D]. Dalian: Dalian University of Technology, 2019. (in Chinese)
17
上海清申科技发展有限公司. 智慧天网一号01星成功发射[Z/OL]. (2024-05-09) [2024-11-19]. https://mp.weixin.qq.com/s/k5X4Rw2EhmAZSXLN7-SN8g.
Shanghai Qing Shen Technology Development Co., Ltd. . The TSN No. 01 satellite was lauched successfully [Z/OL]. (2024-05-09) [2024-11-19]. https://mp.weixin.qq.com/s/k5X4Rw2EhmAZSXLN7-SN8g. (in Chinese)
18
HWANG F K . The mathematical theory of nonblocking switching networks[M]. Singapore: World Scientific, 2004.
19
COLE R , HOPCROFT J . On edge coloring bipartite graphs[J]. SIAM Journal on Computing, 1982, 11 (3): 540- 546.

基金

上海市市级科技重大专项(2018SHZDZX04)

版权

版权所有,未经授权,不得转载。
PDF(5538 KB)

Accesses

Citation

Detail

段落导航
相关文章

/