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First published online January 1, 2017

Life-Cycle Benefits of Recycled Material in Highway Construction

Abstract

The use of recycled materials in highway construction can achieve significant benefits affecting the triple bottom line (environment, prosperity, and society). Although state departments of transportation have been at the forefront of introducing recycled materials, they have been unable to clearly convey the benefits in a quantitative and transparent manner using easily understood metrics. Information on sustainability assessment characteristics—that is, energy and water consumption—is lacking. To determine the benefits of using recycled materials for six member state departments of transportation in a pooled fund, the Recycled Materials Resource Center at the University of Wisconsin–Madison was tasked with a project that would quantify the environmental and economic life-cycle benefits associated with the incorporation of recycled materials and industrial by-products in highway construction. An analysis of the environmental benefits (i.e., carbon dioxide emissions, energy consumption, and water consumption) associated with the substitution of recycled materials for conventional virgin materials in highway construction was conducted using the pavement life-cycle assessment tool for environmental and economic effects, a tool developed with the sponsorship of the Recycled Materials Resource Center. An economic impact analysis was conducted by comparing the unit prices of virgin and recycled materials. The analysis showed significant environmental and economic savings in all member states. Total environmental savings from use of recycled materials were approximately equal to the energy consumption of 110,000 U.S. households per year, 9,300 bathtubs of water, and the carbon dioxide emissions produced by 58,000 cars per year. Total systemwide economic savings from use of recycled materials was estimated to be $62.5 million.

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References

1. Primer on Transportation and Climate Change. Publication PCRT-1. AASHTO, Washington, D.C., 2008.
2. Gambatese J., and Rajendran S. Sustainable Roadway Construction: Energy Consumption and Material Waste Generation of Roadways. Presented at the Construction Research Congress, San Diego, Calif., 2005. 10.1061/40754(183)21.
3. Bloom E., Del Ponte K., Madras Natarajan B., Pakes Ahlman A., Edil T., and Whited G. State DOT Life Cycle Benefits of Recycled Material in Road Construction. In Geo-Chicago 2016: Sustainability and Resiliency in Geotechnical Engineering (Zekkos D., Farid A., De A., Reddy K. R., and Yesiller N., eds.), ASCE, 2016, pp. 693–703. 10.1061/9780784480120.070.
4. Historical Cost Indices from 1978–2012. In Engineering News-Record. New York, McGraw-Hill, 1917, p. 140.
5. Environmental Management–Life Cycle Assessment–Principles and Framework. Publication 14040:2006. International Organization for Standardization, Geneva, 2006.
6. Santero N., Loijos A., Akbarian M., and Ochsendorf J. Methods, Impacts, and Opportunities in the Concrete Pavement Life Cycle. Massachusetts Institute of Technology, Cambridge, 2011. http://www.greenconcrete.info/downloads/MITPavementLCAreport.pdf.
7. Pakes Ahlman A., Edil T., and Del Ponte K. Life Cycle Benefits of Recycled Material in State DOT Road Construction. Final Report, 2016 (forthcoming).
8. Horvath A. PaLATE: Pavement Life-Cycle Assessment Tool for Environmental and Economic Effects. Consortium of Green Design and Manufacturing, University of California. Berkeley, 2004. http://www.ce.berkeley.edu/~horvath/palate.html.
9. U.S. Energy Information Administration. Frequently Asked Questions: How Much Electricity Does an American Home Use? U.S. Department of Energy, Oct. 21, 2015. https://www.eia.gov/tools/faqs/faq.cfm?id=97&t=3.
10. Portland Water Bureau. Shower and Bath Fact Sheet. Portland, Ore., 2016. http://www.portlandoregon.gov/water/article/305153.
11. U.S. Environmental Protection Agency. Average Annual Emission and Fuel Consumption for Gasoline-Fueled Passenger Cars and Light Trucks. Publication EPA420-F-08-024. 2008. https://www3.epa.gov/otaq/consumer/420f08024.pdf.

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Article first published online: January 1, 2017
Issue published: January 2017

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© 2017 National Academy of Sciences.
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Authors

Affiliations

Kelly Del Ponte
Geological Engineering Program, 2243 Engineering Hall, Geological Engineering Program and Recycled Materials Resource Center, University of Wisconsin–Madison, 1415 Engineering Drive, Madison, WI 53706
Bharat Madras Natarajan
Geological Engineering Program, 2243 Engineering Hall, Geological Engineering Program and Recycled Materials Resource Center, University of Wisconsin–Madison, 1415 Engineering Drive, Madison, WI 53706
Angela Pakes Ahlman
2204 Engineering Hall, Geological Engineering Program and Recycled Materials Resource Center, University of Wisconsin–Madison, 1415 Engineering Drive, Madison, WI 53706
Andrew Baker
Civil and Environmental Engineering, 2243 Engineering Hall, Geological Engineering Program and Recycled Materials Resource Center, University of Wisconsin–Madison, 1415 Engineering Drive, Madison, WI 53706
Erik Elliott
Civil and Environmental Engineering, 2243 Engineering Hall, Geological Engineering Program and Recycled Materials Resource Center, University of Wisconsin–Madison, 1415 Engineering Drive, Madison, WI 53706
Tuncer B. Edil
2258 Engineering Hall, Geological Engineering Program and Recycled Materials Resource Center, University of Wisconsin–Madison, 1415 Engineering Drive, Madison, WI 53706

Notes

A. Pakes Ahlman, [email protected].

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