Assessing Resilience of Urban Critical Infrastructure Networks: A Case Study of Ahvaz, Iran
Abstract
:1. Introduction
2. Literature Review
3. Case Study Introduction and Methods
3.1. Case Study Area
3.2. Materials and Methods
4. Finding and Discussion
4.1. Measurement Criteria
4.2. Spatial Analysis of Critical Infrastructure Resilience
4.2.1. Water
4.2.2. Electricity
4.2.3. Gas
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Water Infrastructure | |||
---|---|---|---|
References | Resilience Definition | Related Stage(s) | Related Characteristic(s) |
[57] | The “ability of a system to reduce the chances of shock, to absorb such a shock if it occurs, and to recovery quickly after a shock”. | Planning, absorption, recovery | Preparedness, robustness, rapidity |
[58] | The ability of a system “to maintain and adapt its operational performance in the face of failures and other adverse conditions”. | Absorption, adaptation | Robustness, rapidity |
[59] | The ability in “the four infrastructural qualities: robustness, redundancy, resourcefulness and rapidity”. | NA | Robustness, redundancy, resourcefulness, and rapidity |
[60] | The ability “to demonstrate three characteristics: reduced failure probabilities, reduced failures consequences, and reduced time to recovery”. | Absorption, recovery | Robustness, reliability, rapidity |
[61] | “The residual functionality of the system in the aftermath of a disaster (i.e. robustness) and the system’s swiftness in bouncing back to a normal level of functionality (i.e. recovery rapidity)”. | Absorption, recovery | Robustness, reliability, rapidity |
Gas infrastructure | |||
References | Resilience definition | Related stages and characteristics | |
[62] | “Resilience is the ability to prepare for and adapt to changing conditions and withstand and recover rapidly from disruptions”. | Planning, absorption, recovery, adaptation | Preparedness, robustness, rapidity |
[48] | “Resilience is defined as the capacity of to sustain, withstand, and recover from hazards”. | Absorption, recovery | Reliability, rapidity |
[63] | “Ability to resist, re-stabilize, rebuild, and reconfigure”. | Absorption, recovery | Robustness, flexibility |
[64] | “Ability to resist, re stabilize, rebuild, and reconfigure”. | Absorption, recovery | Robustness, flexibility |
[65] | Ability to have robust and reliable structures. | Absorption | Robustness, reliability |
Electricity infrastructure | |||
References | Resilience definition | Related stages and characteristics | |
[48,66] | The “capacity of system includes absorptive capacity, adaptive capacity and restorative capacity”. | Absorption, recovery, adaptation | Robustness, rapidity, adaptability |
[67] | The “capacity for a system to withstand, absorb, and recover from a disruption”. | Planning, absorption, recovery | Preparedness, robustness, reliability, rapidity |
[68] | “Ability to resist (prevent and withstand) multiple possible hazards, absorb the initial damage, and recover to normal operation”. | Planning, absorption, recovery | Preparedness, robustness, reliability, rapidity |
[69] | “The ability of a system to anticipate and withstand external shocks, bounce back to its pre-shock state as quickly as possible and adapt to be better prepared to future catastrophic events”. | Planning, absorption, recovery, adaptation | Preparedness, robustness, reliability, rapidity |
[70] | The ability to withstand shocks and rapidly bounce back | Absorption, recovery | Robustness, reliability, rapidity |
Region | Area (ha) | Approximate Population |
---|---|---|
No.1 | 1103 | 141,000 |
No.2 | 2913 | 108,000 |
No.3 | 3181 | 178,000 |
No.4 | 3816 | 155,000 |
No.5 | 1349 | 107,000 |
No.6 | 2976 | 185,000 |
No.7 | 1718 | 148,000 |
No.8 | 3098 | 194,000 |
Total | 20,154 | 1,216,000 |
Characteristic | N | Percentage | |
---|---|---|---|
Job classification | Khuzestan Grid Management Company | 12 | 24% |
Ahwaz Urban Water and Wastewater Organization | 9 | 18% | |
Ahvaz Municipality | 7 | 14% | |
Khuzestan Province Gas Company | 7 | 14% | |
University professors | 15 | 30% | |
Education | Bachelor’s degree | - | - |
Master’s degree | 19 | 38% | |
PhD | 31 | 62% | |
Gender | Male | 16 | 32% |
Female | 34 | 68% | |
Work experience | Less than 5 years | 3 | 06% |
5 to 7 years | 11 | 22% | |
7 to 9 years | 19 | 38% | |
More than 9 years | 17 | 34% | |
Age | 30–35 | 6 | 12% |
36–40 | 11 | 22% | |
41–45 | 13 | 26% | |
46–50 | 11 | 22% | |
More than 50 | 9 | 18% |
Indicators | Measurement Criteria | Resilience Value | KWC in First Round | KWC in Final Round |
---|---|---|---|---|
Network physical texture type | Very new (up to 5 years) | 5 | 91% | 100% |
New (5 to 10 years) | 4 | 89% | 96% | |
Semi-old (10 to 20 years) | 3 | 86% | 93% | |
Old (20 to 30 years) | 2 | 91% | 100% | |
Very old (over 30 years) | 1 | 94% | 100% | |
Network Design Pattern | Dispersed design with high connectivity (Figure 7a) | 5 | 79% | 97% |
Gridded design (Figure 7b) | 4 | 81% | 98% | |
Semi-gridded design (Figure 7c) | 3 | 75% | 91% | |
Radial design (Figure 7d) | 2 | 79% | 94% | |
Organic and irregular design (Figure 7e) | 1 | 87% | 96% | |
Scale of service provision (population) | Up to 10,000 | 5 | 88% | 97% |
10,001–25,000 | 4 | 83% | 97% | |
25,001–50,000 | 3 | 91% | 100% | |
50,001–75,000 | 2 | 91% | 100% | |
More than 75,001 | 1 | 89% | 98% |
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Alizadeh, H.; Sharifi, A. Assessing Resilience of Urban Critical Infrastructure Networks: A Case Study of Ahvaz, Iran. Sustainability 2020, 12, 3691. https://doi.org/10.3390/su12093691
Alizadeh H, Sharifi A. Assessing Resilience of Urban Critical Infrastructure Networks: A Case Study of Ahvaz, Iran. Sustainability. 2020; 12(9):3691. https://doi.org/10.3390/su12093691
Chicago/Turabian StyleAlizadeh, Hadi, and Ayyoob Sharifi. 2020. "Assessing Resilience of Urban Critical Infrastructure Networks: A Case Study of Ahvaz, Iran" Sustainability 12, no. 9: 3691. https://doi.org/10.3390/su12093691