Safety and Security Analysis for Movable Railroad Bridges

Yongxin Wang, Matthew Jablonski, Chaitanya Yavvari, Zezhou Wang, Xiang Liu, Keith Holt, D. Wijesekera
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引用次数: 2

Abstract

Movable railroad bridges, consisting of lift, bascule, or swing bridges have been used by American rail tracks that cross usable waterways for over a century. Although custom made, movable bridges share many common components and designs. Most of them use weight bearing towers for the movable span using electric or electro-hydraulic systems lift and/or rotate these movable spans. Automated locks hold the bridge in place as soon as the movement stops. The bridge operation, train and ship signaling systems work in synchrony for trains and waterway traffic to be granted safe passage with minimal delay. This synchrony is maintained by using custom-made control systems using Programmable Logic Controllers (PLCs) or Field Programmable Gate Arrays (FPGAs). Controllers located on the movable and the static parts of the bridge communicate using radio and/or wired underwater links sometimes involving marine cables. The primary objective of this paper is to develop a framework to analyze the safety and security of the bridge operating systems and their synchronous operations with railway and waterway systems. We do so by modeling the movable physical components and their control system with the interconnected network system and determine the faults and attacks that may affect their operations. Given the prevalence of attacks against PLCs, FPGAs and controllers, we show a generic way to determine the effect of what if scenarios that may arise due to attacks combined with failures using a case study of a swing bridge.
铁路可移动桥梁的安全与可靠性分析
可移动的铁路桥,由升降桥、吊桥或摆式桥组成,已经在美国的铁路上使用了一个多世纪。虽然是定制的,但活动桥有许多共同的组件和设计。它们大多使用承重塔作为活动跨度,利用电力或电液系统提升和/或旋转这些活动跨度。一旦移动停止,自动锁就会把桥固定住。桥梁操作、列车和船舶信号系统同步工作,使火车和水路交通以最小的延迟获得安全通行。这种同步是通过使用使用可编程逻辑控制器(plc)或现场可编程门阵列(fpga)的定制控制系统来维护的。位于桥的活动部分和静态部分的控制器使用无线电和/或有线水下链路(有时涉及海洋电缆)进行通信。本文的主要目的是建立一个框架来分析桥梁操作系统及其与铁路和水路系统同步操作的安全性和安全性。我们通过互联网络系统对可移动物理部件及其控制系统进行建模,并确定可能影响其运行的故障和攻击。鉴于针对plc, fpga和控制器的攻击的普遍性,我们展示了一种通用方法来确定由于攻击与使用摆动桥的案例研究失败而可能出现的场景的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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