Chapter
Mar 7, 2022

Challenges and Risks in Resilience Management of Water and Wastewater Infrastructure

Publication: Construction Research Congress 2022

ABSTRACT

The frequency and severity of natural disasters have increased significantly over the last two decades, and the length of time that the recovery requires is strongly dependent on the resiliency of critical infrastructure, particularly the drinking water and wastewater infrastructure. The goal of this research is to evaluate, analyze, and explore approaches to increase the resilience of water infrastructure. For this purpose, this study identified and investigated the challenges and risks imposed on the drinking and wastewater infrastructure by disasters, then proposed eight practical strategies for improving their resiliency. Eighty-seven articles from the existing literature were reviewed in detail, and 26 challenges and risks were identified and classified into four social, economic, environmental, and organizational categories. The results revealed that the speed and scale of the response needed in the affected communities are the two main organizational challenges, and salinity and vulnerability to flooding and heavy rains are the environmental challenges. Perception of communities and population growth are the social challenges, and low income and insufficient funding are the economic challenges. The results of this study revealed a need for policies that provide sufficient funding for the affected communities. The outcomes of this study will significantly help decision-makers to timely identify the challenges and adopt effective strategies to mitigate the impacts of natural disasters on the drinking water and wastewater infrastructure.

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REFERENCES

de Anda, J., and Shear, H. (2008). “Challenges Facing Municipal Wastewater Treatment in Mexico.” Public Works Management & Policy, 12(4), 590–598.
Balkema, A. J., Preisig, H. A., Otterpohl, R., and Lambert, F. J. D. (2002). “Indicators for the sustainability assessment of wastewater treatment systems.” Urban Water, 4(2), 153–161.
Butler, D., and Schütze, M. (2005). “Integrating simulation models with a view to optimal control of urban wastewater systems.” Environmental Modelling and Software, Elsevier BV, 20(4 SPEC. ISS.), 415–426.
Chisolm, E. I., and Matthews, J. C. (2012). “Impact of hurricanes and flooding on buried infrastructure.” Leadership and Management in Engineering, American Society of Civil Engineers, 12(3), 151–156.
Clark, R. M., Yang, Y. J., Impellitteri, C., Haught, R. C., Schupp, D., Panguluri, S., and Krishnan, E. R. (2009). “Controlling disinfection residual losses in drinking water distribution systems: Results from experimental studies.” Proceedings of the 10th Annual Water Distribution Systems Analysis Conference, WDSA 2008, 1026–1037.
Friedrich, E., and Kretzinger, D. (2012). “Vulnerability of wastewater infrastructure of coastal cities to sea level rise: A South African case study.” Water SA, 38(5), 755–764.
Hacker, M. E., Kaminsky, J., and Faust, K. M. (2019). “Legitimizing Involvement in Emergency Accommodations: Water and Wastewater Utility Perspectives.” Journal of Construction Engineering and Management, 145(4), 04019013.
Harun, M. A. Y. A., and Kabir, G. M. M. (2013). “Evaluating pond sand filter as sustainable drinking water supplier in the Southwest coastal region of Bangladesh.” Applied Water Science, Springer Nature, 3(1), 161–166.
Hoque, M. A., Scheelbeek, P. F. D., Vineis, P., Khan, A. E., Ahmed, K. M., and Butler, A. P. (2016). “Drinking water vulnerability to climate change and alternatives for adaptation in coastal South and South East Asia.” Climatic Change, Springer Netherlands, 136(2), 247–263.
Hoque, S. F., Hope, R., Arif, S. T., Akhter, T., Naz, M., and Salehin, M. (2019). “A social-ecological analysis of drinking water risks in coastal Bangladesh.” Science of the Total Environment, Elsevier B.V., 679, 23–34.
Karamouz, M., Rasoulnia, E., Olyaei, M. A., and Zahmatkesh, Z. (2018). “Prioritizing Investments in Improving Flood Resilience and Reliability of Wastewater Treatment Infrastructure.” Journal of Infrastructure Systems, American Society of Civil Engineers (ASCE), 24(4), 04018021.
Kayser, G. L., Amjad, U., Dalcanale, F., Bartram, J., and Bentley, M. E. (2015). “Drinking water quality governance: A comparative case study of Brazil, Ecuador, and Malawi.” Environmental Science and Policy, Elsevier Ltd, 48, 186–195.
Kermanshachi, S. (2016). Decision making and uncertainty analysis in success of construction projects (Doctoral dissertation).
Kermanshachi, S., Thakur, R., and Govan, P. (2018). “Discovering the impact of late change orders and rework on labor productivity: a water treatment case study analysis using system dynamics modeling.” In Proceedings of the Construction Research Congress, New Orleans, LA, USA (pp. 2–4).
Kermanshachi, S., Bergstrand, K., and Rouhanizadeh, B. (2019). “Identifying, weighting and causality modeling of social and economic barriers to rapid infrastructure recovery from natural disasters: A study of hurricanes Harvey, Irma and Maria”.
Kermanshachi, S., Safapour, E., Anderson, S. D., Goodrum, P., and Taylor, T. R. (2020). “Establishment of effective project scoping process for highway and bridge construction projects.” Practice Periodical on Structural Design and Construction, 25(2), p.06020001.
Kloosterman, R. A., Veeneman, W., and van der Hoek, J. P. (2020). “Sustainable Societal Infrastructures: A Resilient Approach to Prevent Conflicting Claims of Drinking Water and Other Infrastructures.” Sustainability, MDPI AG, 12(3), 785.
Kleiner, Y., Rajani, B., and Sadiq, R. (2009). “Drinking Water Infrastructure Assessment: The National Research Council of Canada Perspective.” World Environmental and Water Resources Congress 2009, American Society of Civil Engineers, Reston, VA, 1–13.
Koehler, J., Rayner, S., Katuva, J., Thomson, P., and Hope, R. (2018). “A cultural theory of drinking water risks, values and institutional change.” Global Environmental Change, Elsevier Ltd, 50, 268–277.
Matthews, J. C. (2016). “Disaster Resilience of Critical Water Infrastructure Systems.” Journal of Structural Engineering, American Society of Civil Engineers (ASCE), 142(8).
Pagano, A., Giordano, R., Portoghese, I., Fratino, U., and Vurro, M. (2014). “A Bayesian vulnerability assessment tool for drinking water mains under extreme events.” Natural Hazards, Kluwer Academic Publishers, 74(3), 2193–2227.
Pamidimukkala, A., Kermanshachi, S., and Jahan Nipa, T. (2021). “Impacts of COVID-19 on Health and Safety of Workforce in Construction Industry.” In International Conference on Transportation and Development 2021 (pp. 418–430).
Pamidimukkala, A., and Kermanshachi, S. (2021). “Impact of Covid-19 on field and office workforce in construction industry.” Project Leadership and Society, p.100018.
Pamidimukkala, A., Kermanshachi, S., and Safapour, E. (2020). “Challenges in Post-Disaster Housing Reconstruction: Analysis of Urban vs. Rural Communities.” In Creative Construction e-Conference 2020 (pp. 103–110). Budapest University of Technology and Economics.
Patel, R. K., Kermanshachi, S., and Namian, M. (2020). “A Socioeconomic-Based Analysis of Disaster Preparedness, Awareness and Education.” In Creative Construction e-Conference 2020 (pp. 76–84). Budapest University of Technology and Economics.
Pullan, R. L., Freeman, M. C., Gething, P. W., and Brooker, S. J. (2014). “Geographical Inequalities in Use of Improved Drinking Water Supply and Sanitation across Sub-Saharan Africa: Mapping and Spatial Analysis of Cross-sectional Survey Data.” PLoS Medicine, Public Library of Science, 11(4).
Rouhanizadeh, B., Kermanshachi, S., and Dhamangaonkar, V. S. (2020). “Reconstruction of Critical and Interdependent Infrastructure Due to Catastrophic Natural Disasters: Lessons Learned.” In Construction Research Congress 2020: Infrastructure Systems and Sustainability (pp. 895–904). Reston, VA: American Society of Civil Engineers.
Rouhanizadeh, B., Kermanshachi, S., and Dhamangaonkar, V. S. (2019). “Identification and categorization of policy and legal barriers to long-term timely postdisaster reconstruction.” Journal of Legal Affairs and Dispute Resolution in Engineering and Construction, 11(3), p.04519014.
Rouhanizadeh, B., and Kermanshachi, S. (2020). “Post-disaster reconstruction of transportation infrastructures: Lessons learned.” Sustainable Cities and Society, 63, p.102505.
Rouhanizadeh, B., and Kermanshachi, S. (2019). “A Systematic Approach to Analysis and Prioritization of the Socioeconomic Policies and Legal barriers to Rapid Post Disaster Reconstruction.” In 7th CSCE International Construction Specialty Conference (ICSC) (pp. 12–15).
Safapour, E., Kermanshachi, S., and Kamalirad, S. (2020). “Analysis of effective project-based communication components within primary stakeholders in construction industry.” Built Environment Project and Asset Management.
Safapour, E., Kermanshachi, S., and Pamidimukkala, A. (2021). “Post-disaster recovery in urban and rural communities: Challenges and strategies.” International Journal of Disaster Risk Reduction, p.102535.
Shanaghan, P. E. (2012). “Assessing Drinking Water Infrastructure Need.” Journal - American Water Works Association, John Wiley & Sons, Ltd, 104(8), 14–15.
Spiller, M., Vreeburg, J. H. G., Leusbrock, I., and Zeeman, G. (2015). “Flexible design in water and wastewater engineering - Definitions, literature and decision guide.” Journal of Environmental Management, Academic Press.
Taebi, A., and Droste, R. L. (2004). “Pollution loads in urban runoff and sanitary wastewater.” Science of the Total Environment, 327(1–3), 175–184.
Thompson, S. L., Casman, E., Fischbeck, P., Small, M. J., and VanBriesen, J. M. (2007). “Vulnerability Assessment of a Drinking Water Distribution System: Implications for Public Water Utilities.” World Environmental and Water Resources Congress 2007, American Society of Civil Engineers, Reston, VA, 1–12.
Wang, J., Shen, J., Ye, D., Yan, X., Zhang, Y., Yang, W., Li, X., Wang, J., Zhang, L., and Pan, L. (2020). “Disinfection technology of hospital wastes and wastewater: Suggestions for disinfection strategy during coronavirus Disease 2019 (COVID-19) pandemic in China.” Environmental Pollution, Elsevier Ltd.

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Construction Research Congress 2022
Pages: 637 - 647

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Published online: Mar 7, 2022

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Nikhitha Adepu [email protected]
1Ph.D. Student, Dept. of Civil Engineering, Univ. of Texas at Arlington, Arlington, TX. Email: [email protected]
Sharareh Kermanshachi, Ph.D., M.ASCE [email protected]
P.E.
2Associate Professor, Dept. of Civil Engineering, Univ. of Texas at Arlington, Arlington, TX. Email: [email protected]
Elnaz Safapour, Ph.D. [email protected]
3Postdoctoral Research Associate, Dept. of Civil Engineering, Univ. of Texas at Arlington, Arlington, TX. Email: [email protected]
Apurva Pamidimukkala, S.M.ASCE [email protected]
4Ph.D. Student, Dept. of Civil Engineering, Univ. of Texas at Arlington, Arlington, TX. Email: [email protected]

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