陆基低频导航授时系统电波传播误差修正研究进展

Research progress on correction of radio wave propagation errors in land-based low-frequency navigation and timing systems

  • 摘要: 增强型罗兰(Enhanced Long-Range Navigation, eLoran)系统在GNSS受干扰、欺骗或拒止条件下具有重要的补充与备份价值,但由于其信号传播过程受空间物理环境影响,会产生与理想路径下的传播时延偏差,进而导致接收系统解算误差,严重制约了系统精度提升. 文章首先系统阐述了低频导航授时系统中电波传播误差修正的相关定义、电波传播基础理论、模型方法及研究进展,在此基础上,围绕电波传播误差修正中的电磁场数值计算、低电离层建模、区域修正及差分增强、智能化预测以及附加二次因子(additional secondary factor, ASF)试验测量五个方面的研究现状进行了总结. 总体来看,电波传播误差修正已由单路径、静态补偿,逐步发展为面向复杂环境和区域服务需求的动态智能修正体系. 最后,就天、地波联合应用明晰了当前挑战与未来发展方向.

     

    Abstract: Enhanced Long-Range Navigation (eLoran) has significant supplementary and backup value in global navigation satellite systems under conditions of interference, spoofing, or denial, but due to its signal propagation process being affected by spatial physical environmental factors, it produces deviations in propagation delay from ideal paths, which in turn leads to calculation errors in receiving systems, severely limiting the improvement of system accuracy. The article first systematically elaborates on the relevant definitions, fundamental theories, model methods, and research progress of electromagnetic wave propagation error correction in low-frequency navigation and timing systems. On this basis, it summarizes the current research status in five aspects of electromagnetic field numerical calculation, low-ionosphere modeling, regional correction and differential enhancement, intelligent prediction, and additional secondary factor (ASF) experimental measurements in electromagnetic wave propagation error correction. Overall, electromagnetic wave propagation error correction has gradually evolved from single-path, static compensation to a dynamic and intelligent correction system oriented towards complex environments and regional service needs. Finally, it clarifies the current challenges and future development directions regarding the joint application of sky waves and ground waves.

     

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