Technical Papers
Jul 24, 2013

Sustainability of Natural Hazard Risk Mitigation: Life Cycle Analysis of Environmental Indicators for Bridge Infrastructure

Publication: Journal of Infrastructure Systems
Volume 19, Issue 4

Abstract

The performance of structures and infrastructure under natural hazards can have a significant impact on the sustainability of the system, often characterized in terms of environmental, economic, or social indicators of performance. This paper commences with a brief review of the relation of natural hazard performance to sustainability and an assessment of bridge infrastructure sustainability with an emphasis on environmental indicators. A framework for life cycle sustainability analysis (LCS-A) is then posed that elucidates the role of natural hazard risks when evaluating sustainable bridge performance using risk-based indicators of environmental sustainability, including embodied energy and carbon dioxide (CO2) emissions. Its application provides insight on the sustainability of mitigating damage from natural hazards through retrofitting deficient structures, considering uncertainty in the hazard occurrence, structural performance, and repair or reconstruction actions that affect energy expenditure and emissions. A case study is presented to evaluate indicators of environmental sustainability for individual bridges and for a regional portfolio of bridges susceptible to aging and seismic hazards. The results show the significant impact that retrofit can have on reducing the expected value of emissions and embodied energy from lifetime hazard exposure.

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Acknowledgments

The authors would like to gratefully acknowledge the support of this research by the National Science Foundation (NSF) under Grant No. CMMI-1055301. In addition, the contributions of the second author were supported in part by an NSF Graduate Research Fellowship through Grant No. 0940902. Any opinions, findings, and conclusions or recommendations expressed in this material are those of the authors and do not necessarily reflect the views of the National Science Foundation.

References

Alcorn, A. (2001). Embodied energy and CO2 coefficients for NZ building materials, Centre for Building Performance Research, Victoria Univ. of Wellington, Wellington.
Alcorn, A. (2003). Embodied energy and CO2 coefficients for New Zealand building materials, Centre for Building Performance Research, Victoria Univ. of Wellington, Wellington.
Amekudzi, A. (2011). “Transportation planning for sustainability guidebook.”, U.S. Department of Transportation, Washington, DC.
Argonne Transportation Technology Research, and Development (TTRDC), and USDOE. (2009). “GREET model: The greenhouse gases, regulated emissions, and energy use in transportation model.” Washington, DC.
ASCE. (2008). Principles for infrastructure stimulus investment, Washington, DC.
Baddoo, N. R., and Kosmac, A. (2010). “Sustainable duplex stainless steel bridges.” 8th Duplex Stainless Steels Conf., The Steel Construction Institute, Ascot, UK.
Baker, J. W., and Lepech, M. D. (2009). “Treatment of uncertainties in life cycle assessment.” Proc., 10th Int. Conf. on Structural Safety and Reliability, CRC Press, Boca Raton.
Bastidas-Arteaga, E. (2010). “Contribution for sustainable management of reinforced concrete structures subjected to chloride penetration.” Universite De Nantes UFR Sciences Et Techniques, Nantes, France.
Beck, T., and Fischer, M. (2011). “Development of a sustainability assessment system for steel and composite bridges.” Life Cycle Managment Conf., Springer, Dordrecht, Netherlands.
Ciroth, A., Fleische, G., and Steinbach, J. (2004). “Uncertainty calculation in life cycle assessments.” Int. J. Life Cycle Assess., 9(4), 216–226.
Collings, D. (2006). “An environmental comparison of bridge forms.” Proc. Inst. Civ. Eng. Bridge Eng., 159(4), 163–168.
Cornell, C. A. (1968). “Engineering seismic risk analysis.” Bull. Seismol. Soc. Am., 58(5), 1583–1606.
Dennemann, K. L. (2009). “Life-cycle cost-benefit (LCC-B) analysis for bridge seismic retrofits.” M.Sc. thesis, Rice Univ., Houston.
Dorf, R. C. (2001). Technology, humans, and society: Toward a sustainable world, Academic Press, San Diego, CA.
El-Masri, S., and Tipple, G. (2002). “Natural disaster, mitigation and sustainability: The case of developing countries.” Int. Plann. Stud., 7(2), 157–175.
EPA. (2006). Life cycle assessment: Principles and practice, Washington, DC.
Federal Highway Administration (FHWA). (1995). “Recording and coding guide for the structure inventory and appraisal of the nation’s bridges.”, USDOT, Washington, DC.
Federal Highway Administration (FHWA). (2010). National bridge inventory data, Washington, DC.
Federal Highway Administration (FHWA). (2011). “Hazard mitigation R&D series: Article 5- Securing the nation’s bridges.” S. R. Duwadi and E. Munley, eds., USDOT, Washington, DC.
FEMA. (1997). “FEMA 294: Report on costs and benefits of natural hazard mitigation.” Washington, DC.
FEMA. (2000a). “FEMA 364: Planning for a sustainable future: The link between hazard mitigation and livability, Federal Emergency Management Agency.” Washington, DC.
FEMA. (2000b). “FEMA 365: Rebuilding for a more sustainable future-An operational framework.” Washington, DC.
FEMA. (2005). HAZUS-MH (hazard US multi-hazard) software, Washington, DC.
FEMA. (2010). “Natural hazards and sustainability for residential buildings.” Washington, DC.
Finnveden, G., et al. (2009). “Recent developments in life cycle assessment.” J. Environ. Manag., 91(1), 1–21.
Fischer, J. M., and Amekudzi, A. (2011). “Quality of life, sustainable civil infrastructures and sustainable development.” J. Urban Plann. Dev., 137(1), 39–48.
Frangopol, D. M. (1999). Life-cycle cost analysis for bridges, ASCE, Reston, VA.
Furuta, H., Frangopol, D. M., and Nakatsu, K. (2011). “Life-cycle cost of civil infrastructure with emphasis on balancing structural performance and seismic risk of road network.” Struct. Infrastruct. Eng., 7(1–2), 65–74.
Furuta, H., Katayama, H., Dogaki, M., and Frangopol, D. M. (2005). “Effects of seismic risk on life-cycle cost analysis for bridge maintenance.” 4th Int. Conf. in Current and Future Trends in Bridge Design, Construction, and Maintenance, Thomas Telford, Heron Quay, London, 22–33.
Geis, D. E. (2000). “By design: The disaster resistant and quality-of-life community.” Nat. Hazards Rev., 1(3), 151–160.
Georgoulias, A., Allen, J., Farley, L., Kao, J. K., and Mladenova, I. (2010). “Towards the development of a rating system for sustainable infrastructure: A checklist or a decision-making tool?” Proc., of the Water Environment Federation, Water Environment Federation, Alexandria, VA.
Gervasio, H., and Silva, L. S. D. (2008). “Comparative life-cycle analysis of steel-concrete composite bridges.” Struct. Infrastruct. Eng., 4(4), 251–269.
Ghosh, J., and Padgett, J. E. (2010). “Aging considerations in the development of time-dependent seismic fragility curves.” J. Struct. Eng., 136(12), 1497–1511.
Ghosh, J., and Padgett, J. E. (2011). “Probabilistic seismic loss assessment of aging bridges using component-level cost estimation approach.” Earthquake Eng. Struct. Dyn., 40(15), 1743–1761.
Grant, M., et al. (2012). “The role of transportation systems management & operations in supporting livability and sustainability A primer.”, FHWA, Washington, DC.
Guikema, S. D. (2009). “Infrastructure design issues in disaster-prone regions.” Science, 323(5919), 1302–1303.
Harding, R. (1998). Environmental decision-making: The roles of scientists, engineers, and the public, Federation Press, Sydney.
Horsley, J. (2009). “Sustainable bridges and the value of innovation.” ASPIRE—The concrete bridge magazine, Precast/Prestressed Concrete Institute (PCI), Chicago, IL, 14–16.
Horvath, A., and Hendrickson, C. (1998). “Steel versus steel-reinforced concrete bridges: Environmental assessment.” J. Infrastruct. Syst., 4(3), 111–117.
Huijbregts, M. A., Giljamse, W., Ragas, A. M., and Reijnders, L. (2003). “Evaluating uncertainty in environmental life-cycle assessment. A case study comparing two insulation options for a Dutch one-family dwelling.” Environ. Sci. Technol., 37(11), 2600–2608.
Hunkeler, D. J., Lichtenvort, K., Rebitzer, G., Ciroth, A., and Europe, S. (2008). Environmental life cycle costing, Society of Environmental Toxicology and Chemistry (SETAC), Pensacola, FL.
Hunt, L. R. (2005). “Development of a rating system for sustainable bridges.” Massachusetts Institute of Technology, Cambridge, MA.
Hwang, S. B. (2010). “Fuel supply system for use in heavy construction or forest equipment and secondary fuel tanks thereof.” Volvo Construction Equipment Holding, Sweden, AB.
Institute for Sustainable Infrastructure (ISI), and ASCE. (2011). Envision sustainability rating system, Washington, DC.
Institution of Structural Engineers. (1999). Building for a sustainable future: Construction without depletion, Structural Engineers Trading Organization (SETO), London.
Institution of Structural Engineers. (2011a). “Sustainability for bridge engineers- Part 1.” Struct. Eng., 89(5), 12–13.
Institution of Structural Engineers. (2011b). “Sustainability for bridge engineers- Part 2.” Struct. Eng., 89(5), 14–15.
International Organization for Standardization (ISO). (2006). “Environmental management-life cycle assessment- Principles and framework.” Geneva.
Itoh, Y., and Kitagawa, T. (2003). “Using CO2 emission quantities in bridge lifecycle analysis.” Eng. Struct., 25(5), 565–577.
Itoh, Y., Tsubouchi, S., Kim, I.-T., and Liu, C. (2006). “Lifecycle cost and CO2 emission comparison of conventional and rationalized bridges.” J. Global Environ. Eng., 11, 45–58.
Itoh, Y., Wada, M., and Liu, C. (2005). “Lifecycle environmental impact and cost analyses of steel bridge piers with seismic risk.” 9th Int. Conf. on Structural Safety and Reliability, Millpress, Rome, 1581–1588.
Jennings, R., Doyle, S., Gourlay, M., Shi, A., Mohanty, L., and Wasilowski, H. (2010). Zofnass program for infrastructure sustainability: Summary and analysis of exisiting sustainability rating systems, Harvard’s Graduate School of Design, Cambridge, MA.
Joint Research Center (JRC), European Commission. (2009). “The Eurocodes and the construction industry.”, National Standards Body.
Katz, R. W. (2002). “Stochastic modeling of hurricane damage.” J. Appl. Meteorol., 41(7), 754–762.
Keoleian, G. A., et al. (2005). “Life cycle modeling of concrete bridge design: Comparison of engineered cementitious composite link slabs and conventional steel expansion joints.” J. Infrastruct. Syst., 11(1), 51–60.
Kestner, D. M., Goupil, J., and Lorenz, E. (2010). Sustainability guidelines for the structural engineer, ASCE, Reston, VA.
Kim, Y.-S., Spencer, B. F., Jr., and Elnashai, A. S. (2008). Seismic loss assessment and mitigation for critical urban infrastructure systems, Newmark Structural Engineering Laboratory at Univ. of Illinois at Urbana-Champaign, Urbana, IL.
Kirby, W. (1969). “On the random occurrence of major floods.” Water Resour. Res., 5(4), 778–784.
Kneer, E., and Maclise, L. (2008). “Considering of building performance in sustainable design: A structural engineer’s role.” Structural Engineers Association of California (SEAOC) Convention Proc., Sacramento, CA.
Lepech, M. D., and Grace, N. (2009). US-Japan workshop on life cycle assessment of sustainable infrastructure materials, Sapporo, Japan.
Li, Y., and Ellingwood, B. (2009). “Risk-based decision-making for multi-hazard mitigation for wood-frame residential construction.” Aust. J. Struct. Eng., 9(1), 17–26.
Lomnitz, C. (1966). “Statistical prediction of earthquakes.” Rev. Geophys., 4(3), 337–393.
Long, A. E. (2007). “Sustainable bridges through innovative advances.” Joint Institution of Civil Engineers (ICE) and Transport Research Foundation (TRF) fellows lecture, IHS, Berkshire, UK.
Long, A. E., Basheer, P. A. M., Taylor, S. E., Rankin, B. G. I., and Kirkpatrick, J. (2008). “Sustainable bridge construction through innovative advances.” Proc. Inst. Civ. Eng. Bridge Eng., 161(4), 183–188.
Martin, L. G. S. (2011). “Life cycle assessment of railway bridges: Developing a LCA tool for evaluating railway bridges.” M.Sc. thesis, Royal Institute of Technology (KTH), Stockholm, Sweden.
Mita, A., and Harris, R. (2005). “Sustainable structural systems.” The 2005 World Sustainable Building Conf. in Tokyo, International Council for Research and Innovation in Building and Construction (CIB), Rotterdam, Netherlands.
Nachtnebel, H. P., and Konecny, F. (1987). “Risk analysis and time-dependent flood models.” J. Hydrol., 91(3–4), 295–318.
National Association of Development Organizations (NADO). (2011). “Resilient regions: Integrating econimic development strategies, sustainability principles and hazard mitigaton planning.” Washington, DC.
National Research Council. (2000). Biobased industrial products: Research and commercialization priorities, The National Academies, Washington, DC.
Neilson, B. (2005). “Analytical fragility curves for highway bridges in moderate seismic zones.” Georgia Institute of Technology, Atlanta.
Padgett, J. E. (2007). “Seismic vulnerability assessment of retrofitted bridges using probabilistic methods.” Ph.D. thesis, Georgia Institute of Technology, Atlanta.
Padgett, J. E., Dennemann, K., and Ghosh, J. (2010). “Risk-based seismic life-cycle (LCC-B) analysis for bridge retrofit assessment.” Struct. Saf., 32(3), 165–173.
Padgett, J. E., Ghosh, J., and Dennemann, K. (2009). “Sustainable infrastructure systems subjected to multiple threats.” Technical Council on Lifeline Earthquake Engineering (TCLEE) Conf., ASCE, Reston, VA.
Pearce, A. R. (2004). “Rehabilitation as a strategy to increase the sustainability of the built environment.” Georgia Institute of Technology, Atlanta.
Rajagopalan, N. (2007). “Environmental life-cycle assessment of highway construction projects.” M.Sc. thesis, Texas A&M University, College Station, TX.
Rokneddin, K., Ghosh, J., Dueñas-Osorio, L., and Padgett, J. E. (2011). “Bridge retrofit prioritization for aging transportation networks subject to seismic hazards.” Struct. Infrastruct. Eng., 9(10), 1050–1066.
Rosenblueth, E. (1966). “On seismicity.” Seminar in the application of statistics to structural mechanics, Dept. of Civil Engineering, Univ. of Pennsylvania, Philadelphia.
RSMeans. (2008). Building construction cost data, RSMeans, Kingston, MA.
RSMeans. (2010). Heavy construction cost data, RSMeans, Kingston, MA.
Schwab, A. K., and Brower, D. J. (1999). Sustainable development and natural hazards mitigation, North Carolina Department of Crime Control and Public Safety, Raleigh, NC.
Steele, K., Cole, G., Parke, G., Clarke, B., and Harding, J. (2003). “Highway bridges and environment—Sustainable perspectives.” Proc. Inst. Civ. Eng. Civ. Eng., 156(4), 176–182.
Tapia, C., Ghosh, J., and Padgett, J. E. (2011). “Life cycle performance metrics for aging and seismically vulnerable bridges.” Proc., 2011 Structures Congress, A. Dana, L. D. Theodore, and H. Marc, eds., ASCE, Las Vegas.
Thoft-Christensen, P. (2009). “Life-cycle cost-benefit (LCCB) analysis of bridges from a user and social point of view.” Struct. Infrastruct. Eng., 5(1), 49–57.
Toman, M. A. (1998). Sustainable decisionmaking: The state of the art from an economics perspective, Resources for the Future, Washington, DC.
Transportation Research Board (TRB). (2008). “Potential impacts of climate change on U.S. transportation infrastructure.” Washington, DC.
Ugwu, O. O., Kumaraswamy, M. M., Kung, F., and Ng, S. T. (2005). “Object-oriented framework for durability assessment and life cycle costing of highway bridges.” Autom. Constr., 14(5), 611–632.
United Nations Centre for Regional Development (UNCRD), and UN-DDSMS. (1995). The effects of disasters on modern societies: World conference on natural disaster reduction, technical committee, session C, Diane.
U.S. DOT. (2008). “Impacts of climate change and variability on transportation systems and infrastructure: Gulf Coast study- Phase I.” Washington, DC.
U.S. Energy Information Administration (USEIA). (2010). “U.S. energy information administration: Energy calculators.” Washington, DC.
USEPA. (2008). “NONROAD model (nonroad engines, equipment, and vehicles).” Washington, DC.
USGS. (2002). “U.S. Geological Survey.” Reston, VA.
Venkatarama Reddy, B. V. (2004). “Sustainable building technologies.” Curr. Sci., 87(7), 899–907.
Wen, Y., and Kang, Y. (2001a). “Minimum building life-cycle cost design criteria. I: Methodology.” J. Struct. Eng., 127(3), 330–337.
Wen, Y., and Kang, Y. (2001b). “Minimum building life-cycle cost design criteria. II: Applications.” J. Struct. Eng., 127(3), 338–346.
Werner, S. (2009). Earthquake engineering to extreme events, Risks due to Earthquake Damage to Roadway Systems (REDARS), Research Foundation of the State of New York, Buffalo, NY.
Werner, S., Taylor, C. E., Moore, J. E., Walton, J. S., and Cho, S. (2000). “A risk-based methodology for assessing seismic performance of highway systems.”, Seismic Systems and Engineering Consultants, Oakland, CA.
Whittemore, D. (2010). “Sustainable structures for the bridge engineer.” Structure, 17(10), 23–25.
Whittemore, D. (2011). “Sustainable bridges for every bridge engineer.” New building materials & construction world (NBM & CW), NBM Media, New Delhi, India.
Yarnal, B. (2007). “Vulnerability and all that jazz: Addressing vulnerability in New Orleans after Hurricane Katrina.” Technol. Soc., 29(2), 249–255.
Zhang, Y., Novick, D. A., Hadavi, A., and Krizek, R. J. (2005). “Life cycle cost analysis of bridges and tunnels.” Proc., ASCE Construction Research Congress, ASCE, Reston, VA, 131–135.
Zhang, Y., Novick, D. A., Hadavi, A., and Krizek, R. J. (2008). “Whole life cycle cost for Chicago type bascule bridges.” Cost Eng., 50(4), 28–32.
Zhou, Y., Banerjee, S., and Shinozuka, M. (2010). “Socio-economic effect of seismic retrofit of bridges for highway transportation networks: A pilot study.” Struct. Infrastruct. Eng., 6(1–2), 145–157.

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Go to Journal of Infrastructure Systems
Journal of Infrastructure Systems
Volume 19Issue 4December 2013
Pages: 395 - 408

History

Received: Jun 9, 2012
Accepted: Nov 28, 2012
Published online: Jul 24, 2013
Published in print: Dec 1, 2013
Discussion open until: Dec 24, 2013

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Jamie E. Padgett [email protected]
A.M.ASCE
Assistant Professor, Dept. of Civil and Environmental Engineering, Rice Univ., 6100 Main St., MS-318, Houston, TX 77005 (corresponding author). E-mail: [email protected]
Citlali Tapia
S.M.ASCE
Graduate Research Assistant, Dept. of Civil and Environmental Engineering, Rice Univ., 6100 Main St., MS-318, Houston, TX 77005.

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