航空航天光纤和连接器的热应力模拟分析及在高速铁路领域的相关扩展

Feng Zhou , Siyuan Yu , Zeren Gao , Jie Kan , Hao Xu , Mengjie Liu
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摘要

航天光缆和光纤连接器具有众多优点(如损耗低、传输频带宽、容量大、重量轻、抗电磁干扰能力强等)。它们可以实现光通信互联,在空间的光终端和光电探测器之间实现高速双向数据传输,确保航天器在轨运行期间数据传输的稳定性和可靠性。它们已成为航天器高速联网和光互连通信的重要组件。热应力模拟分析对于评估航天光缆和连接器在极端温度和真空环境的共同作用下因温度波动、温度梯度和其他因素而产生的温度应力集中现象非常重要。有鉴于此,先进的光通信技术已被广泛应用于高速铁路通信网络中,以传输安全、稳定、可靠的信号,因为在寒冷、高温等极端气候的特殊地区进行高速铁路光通信,需要高可靠性的光缆和连接器。因此,基于有限元法,对航天光缆和 J599III 光纤连接器在不同条件下的热分布进行了综合比较,为评价航天光缆和连接器在空间环境下的性能提供了理论依据,同时也为高速铁路领域潜在的光通信应用奠定了技术基础。
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Thermal stress simulation analysis of aerospace optical fibers and connectors and related extensions to high-speed railway area

Aerospace optical cables and fiber-optic connectors have numerous advantages (e.g., low loss, wide transmission frequency band, large capacity, light weight, and excellent resistance to electromagnetic interference). They can achieve optical communication interconnections and high-speed bidirectional data transmission between optical terminals and photodetectors in space, ensuring the stability and reliability of data transmission during spacecraft operations in orbit. They have become essential components in high-speed networking and optically interconnected communications for spacecrafts. Thermal stress simulation analysis is important for evaluating the temperature stress concentration phenomenon resulting from temperature fluctuations, temperature gradients, and other factors in aerospace optical cables and connectors under the combined effects of extreme temperatures and vacuum environments. Considering this, advanced optical communication technology has been widely used in high-speed railway communication networks to transmit safe, stable and reliable signals, as high-speed railway optical communication in special areas with extreme climates, such as cold and high-temperature regions, requires high-reliability optical cables and connectors. Therefore, based on the finite element method, comprehensive comparisons were made between the thermal distributions of aerospace optical cables and J599III fiber optic connectors under different conditions, providing a theoretical basis for evaluating the performance of aerospace optical cables and connectors in space environments and meanwhile building a technical foundation for potential optical communication applications in the field of high-speed railways.

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