Robust component: a robustness measure that incorporates access to critical facilities under disruptions

Author:

Dong Shangjia1ORCID,Wang Haizhong1ORCID,Mostafavi Ali2,Gao Jianxi3ORCID

Affiliation:

1. School of Civil and Construction Engineering, Oregon State University, Corvallis, OR 97331, USA

2. Zachry Department of Civil Engineering, Texas A&M University, College Station, TX 77840, USA

3. Department of Computer Science, Rensselaer Polytechnic Institute, Lally Hall 207, Troy, NY 12180, USA

Abstract

The objective of this paper is to integrate the post-disaster network access to critical facilities into the network robustness assessment, considering the geographical exposure of infrastructure to natural hazards. Conventional percolation modelling that uses generating function to measure network robustness fails to characterize spatial networks due to the degree correlation. In addition, the giant component alone is not sufficient to represent the performance of transportation networks in the post-disaster setting, especially in terms of the access to critical facilities (i.e. emergency services). Furthermore, the failure probability of various links in the face of different hazards needs to be encapsulated in simulation. To bridge this gap, this paper proposed the metric robust component and a probabilistic link-removal strategy to assess network robustness through a percolation-based simulation framework. A case study has been conducted on the Portland Metro road network during an M9.0 earthquake scenario. The results revealed how the number of critical facilities severely impacts network robustness. Besides, earthquake-induced failures led to a two-phase percolation transition in robustness performance. The proposed robust component metric and simulation scheme can be generalized into a wide range of scenarios, thus enabling engineers to pinpoint the impact of disastrous disruption on network robustness. This research can also be generalized to identify critical facilities and sites for future development.

Funder

Division of Civil, Mechanical and Manufacturing Innovation

National Science Foundation

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

Reference86 articles.

1. ASCE. 2007 The New Orleans hurricane protection system: what went wrong and why. A report by ASCE Hurricane Katrina External Review Panel. Reston VA: ASCE (American Society of Civil Engineers). See https://sites.law.lsu.edu/coast/2011/04/asce-the-new-orleans-hurricane-protection-system-what-went-wrong-and-why/.

2. Transportation network vulnerability analysis for the case of a catastrophic earthquake

3. Agent-based tsunami evacuation modeling of unplanned network disruptions for evidence-driven resource allocation and retrofitting strategies

4. Infrastructure failure interdependencies in extreme events: power outage consequences in the 1998 Ice Storm

5. Impacts of the 2001 World Trade Center Attack on New York City Critical Infrastructures

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