跨洋电缆保护系统的设计

I. Geisler, D. Underwood, Kumar Karra, Felipe Cardenas
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引用次数: 1

摘要

横跨全球海洋的海底光缆系统承载着99%的国际通信数据。数十亿美元投入到这个网络中,在过去的7年里,每年增长36%。每年发生150多起电缆损坏事件,造成可用电缆带宽的严重损失。60%的断层是由人类活动造成的,比如捕鱼和抛锚。20%的故障是由随机自然事件和部件故障引起的,而其余20%的故障原因是未知的。此外,修复一个故障平均需要13天,花费600万美元,由于无法向客户提供带宽而产生的成本更高。本文介绍了通过部署跨洋电缆保护系统(TCPS)来保护这些电缆的设计和操作。该系统由任务控制中心组成,完成三个功能:(1)威胁识别,(2)损害预防,(3)电缆修复协调。开发了概率蒙特卡罗模拟,以确定tcp对电缆停机时间、威胁检测、平均故障间隔时间和每次故障成本的影响。该模型基于威胁生成、威胁间隔到达时间、威胁识别、损害预防和修复时间的输入分布来评估TCPS的性能。考虑到预防、识别、电缆停机时间、寿命和环境影响的效用与成本分析表明,无源水听器阵列是威胁识别功能最有效的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of a Transoceanic Cable Protection System
A system of underwater fiber optic cables spanning the world's oceans carries 99% of international communication data. Billions of dollars are invested into this network, resulting in 36% annual growth over the last 7 years. Over 150 cable damage incidents occur per year, causing significant losses to available cable bandwidth. Sixty percent of the faults are caused by human action, such as fishing and anchoring. Twenty percent are caused by random natural events and component failures, while the remaining 20% of fault causes are unknown. In addition, repairing a fault takes on average 13 days and costs $6 million, with more incurred costs due to the inability to provide bandwidth to its customers. This paper describes a design and operation to protect these cables by deployment of Transoceanic Cable Protection System (TCPS). The system consists of a Mission Control Center to accomplish three functions: (1) Threat Identification, (2) Damage Prevention, and (3) Coordination of Cable Repair. A probabilistic Monte Carlo simulation was developed to determine the effects of the TCPS on cable downtime, threat detection, mean time between failure, and cost per fault. The model evaluates the performance of TCPS based on the input distributions for threat generation, threat inter-arrival time, identification of threats, damage prevention, and repair time. A utility vs. cost analysis factoring in prevention, identification, cable downtime, lifespan, and environmental impact indicates that a passive hydrophone array is the most effective design for the Threat Identification function.
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