系统工程与电子技术 ›› 2020, Vol. 42 ›› Issue (10): 2356-2365.doi: 10.3969/j.issn.1001-506X.2020.10.26
方志耕1(), 邵瑞瑞1,*(), 王召1(), 刘思峰1(), 游伟青2(), 高素3()
收稿日期:
2020-03-13
出版日期:
2020-10-01
发布日期:
2020-09-19
通讯作者:
邵瑞瑞
E-mail:zhigengfang@163.com;1439421039@qq.com;wongshao@126.com;sfliu@nuaa.edu.cn;894572560@qq.com;su_gao06@163.com
作者简介:
方志耕(1962-),男,教授,博士研究生导师,博士,主要研究方向为可靠性工程、复杂装备研制管理。E-mail:基金资助:
Zhigeng FANG1(), Ruirui SHAO1,*(), Zhao WANG1(), Sifeng LIU1(), Weiqing YOU2(), Su GAO3()
Received:
2020-03-13
Online:
2020-10-01
Published:
2020-09-19
Contact:
Ruirui SHAO
E-mail:zhigengfang@163.com;1439421039@qq.com;wongshao@126.com;sfliu@nuaa.edu.cn;894572560@qq.com;su_gao06@163.com
摘要:
卫星通信星座的效能评估不仅可以表征星座的通信能力,还可为优化星座结构提供依据。在深入分析星座结构关系的基础上,剖析基于通信链路的高轨(geostationary earth orbit, GEO)卫星通信网络和联系统(plus system, PS),借助图示评审技术(graphical evaluation and review technique, GERT)提出基于特征函数与传递概率的等价传递函数算法。首先,在分析通信链路重要度内涵的基础上,得出通信链路效能及其重要度的算法公式,构建GEO卫星星座PS-GERT效能评估模型。然后,利用傅里叶逆变换推导星座效能的概率密度函数。最后,以某GEO卫星通信星座为例进行分析,验证了所构建模型的优越性,不仅能够全面客观地评估星座效能,同时也为星座结构的优化奠定了理论基础。
中图分类号:
方志耕, 邵瑞瑞, 王召, 刘思峰, 游伟青, 高素. 高轨卫星通信星座PS-GERT效能评估模型[J]. 系统工程与电子技术, 2020, 42(10): 2356-2365.
Zhigeng FANG, Ruirui SHAO, Zhao WANG, Sifeng LIU, Weiqing YOU, Su GAO. PS-GERT effectiveness evaluation model of GEO satellite communication constellation[J]. Systems Engineering and Electronics, 2020, 42(10): 2356-2365.
表1
某GEO卫星通信星座PS-GERT网络参数"
通信活动(j,k) | 活动概率Pjk | 执行通信实体j | 实体j通信活动效能分布 | 特征函数Ejk | 传递函数Wjk |
(US, GEO1) | 0.3 | US | N(0.88, 0.05) | exp(0.88it-0.025t2) | 0.3exp(0.88it-0.025t2) |
(US, GEO2) | 0.4 | US | N(0.83, 0.06) | exp(0.83it-0.03t2) | 0.4exp(0.83it-0.03t2) |
(US, GEO3) | 0.3 | US | N(0.79, 0.01) | exp(0.79it-0.005t2) | 0.3exp(0.79it-0.005t2) |
(GEO1, GEO2) | 0.2 | GEO1 | N(0.63, 0.07) | exp(0.63it-0.035t2) | 0.2exp(0.63it-0.035t2) |
(GEO2, GEO1) | 0.3 | GEO2 | N(0.78, 0.04) | exp(0.78it-0.02t2) | 0.3exp(0.78it-0.02t2) |
(GEO2, GEO3) | 0.4 | GEO2 | N(0.79, 0.08) | exp(0.79it-0.04t2) | 0.4exp(0.79it-0.04t2) |
(GEO3, GEO2) | 0.2 | GEO3 | N(0.82, 0.02) | exp(0.82it-0.01t2) | 0.2exp(0.82it-0.01t2) |
(GEO1, GEO3) | 0.3 | GEO1 | N(0.8, 0.04) | exp(0.8it-0.02t2) | 0.3exp(0.8it-0.02t2) |
(GEO3, GEO1) | 0.4 | GEO3 | N(0.76, 0.05) | exp(0.76it-0.025t2) | 0.4exp(0.76it-0.025t2) |
(GEO1, UR) | 0.5 | GEO1 | N(0.59, 0.03) | exp(0.59it-0.015t2) | 0.5exp(0.59it-0.015t2) |
(GEO2, UR) | 0.3 | GEO2 | N(0.75, 0.07) | exp(0.75it-0.035t2) | 0.3exp(0.75it-0.035t2) |
(GEO3, UR) | 0.4 | GEO3 | N(0.7, 0.02) | exp(0.7it-0.01t2) | 0.4exp(0.7it-0.01t2) |
表2
某GEO卫星通信链路及其等价传递函数"
编号 | 通信链路 | 等价传递函数Wl |
1 | US-GEO1-UR | 0.15exp(1.47it-0.04t2) |
2 | US-GEO2-UR | 0.12exp(1.58it-0.065t2) |
3 | US-GEO3-UR | 0.12exp(1.49it-0.015t2) |
4 | US-GEO1-GEO2-UR | 0.018exp(2.26it-0.095t2) |
5 | US-GEO2-GEO1-UR | 0.06exp(2.2it-0.065t2) |
6 | US-GEO1-GEO3-UR | 0.036exp(2.38it-0.055t2) |
7 | US-GEO3-GEO1-UR | 0.06exp(2.14it-0.045t2) |
8 | US-GEO2-GEO3-UR | 0.064exp(2.32it-0.08t2) |
9 | US-GEO3-GEO2-UR | 0.018exp(2.36it-0.05t2) |
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