Integrating Bio-Based Materials and Alternative Fuels in Flexible Pavement Life Cycle Assessment

The transportation sector’s relatively large greenhouse gas (GHG) footprint highlights the need for low-carbon strategies at every stage of the flexible pavement life cycle. This study performed a comparative life cycle assessment evaluating alternative options in the materials, construction, use, and maintenance and rehabilitation (M&R) stages. Conventional asphalt binder was replaced with bio-binder derived from wastewater-grown algae. In the construction and use stages, diesel used in construction equipment was substituted with 100% renewable diesel (RD100), biodiesel, hydrogen, electricity, and compressed natural gas. The use stage emissions were quantified across a spectrum of alternative fuel uptake scenarios. The analysis compared three M&R treatments: mill-and-overlay, full-depth reclamation (FDR), and cold in-place recycling (CIR). A sensitivity analysis examined trade-offs between increasing bio-binder substitution and the accompanying reductions in pavement service life. The results showed that replacing conventional binder with bio-binder lowered material-stage emissions from 116 to 47 tnCO 2 eq at 50% dosage and turned net-negative beyond ∼85% substitution. Switching equipment fuel from diesel to RD100 cut GHG emissions by 80%. Hydrogen and electricity achieved 91.1% and 44.5% savings, respectively. The benefits of using electric powertrains in equipment highly depended on the source of electricity. In the use stage, high electric vehicle adoption on a renewable-heavy grid lowered total emissions by 53%, but the same scenario on a coal-based grid increased them by 25%. Among M&R options, CIR had the lowest GHG burden and FDR the highest. The study demonstrated that every pavement life cycle stage offers clear potential to lower overall GHG emissions when low-carbon alternatives are used.

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Publication Details

Journal
Transportation Research Record Journal of the Transportation Research Board
Published
2026-08-26
DOI
https://doi.org/10.1177/03611981261476043
Primary Topic
Asphalt Pavement Performance Evaluation
Type
article
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article

Integrating Bio-Based Materials and Alternative Fuels in Flexible Pavement Life Cycle Assessment

Imad L. Al‐Qadi, Murryam Hafeez, Adalat Khan, Lara Diab et al.
Transportation Research Record Journal of the Transportation Research Board
Asphalt Pavement Performance Evaluation
article

Integrating Bio-Based Materials and Alternative Fuels in Flexible Pavement Life Cycle Assessment

Imad L. Al‐Qadi, Murryam Hafeez, Adalat Khan, Lara Diab, Ivan Akonya
article en

Abstract

The transportation sector’s relatively large greenhouse gas (GHG) footprint highlights the need for low-carbon strategies at every stage of the flexible pavement life cycle. This study performed a comparative life cycle assessment evaluating alternative options in the materials, construction, use, and maintenance and rehabilitation (M&R) stages. Conventional asphalt binder was replaced with bio-binder derived from wastewater-grown algae. In the construction and use stages, diesel used in construction equipment was substituted with 100% renewable diesel (RD100), biodiesel, hydrogen, electricity, and compressed natural gas. The use stage emissions were quantified across a spectrum of alternative fuel uptake scenarios. The analysis compared three M&R treatments: mill-and-overlay, full-depth reclamation (FDR), and cold in-place recycling (CIR). A sensitivity analysis examined trade-offs between increasing bio-binder substitution and the accompanying reductions in pavement service life. The results showed that replacing conventional binder with bio-binder lowered material-stage emissions from 116 to 47 tnCO 2 eq at 50% dosage and turned net-negative beyond ∼85% substitution. Switching equipment fuel from diesel to RD100 cut GHG emissions by 80%. Hydrogen and electricity achieved 91.1% and 44.5% savings, respectively. The benefits of using electric powertrains in equipment highly depended on the source of electricity. In the use stage, high electric vehicle adoption on a renewable-heavy grid lowered total emissions by 53%, but the same scenario on a coal-based grid increased them by 25%. Among M&R options, CIR had the lowest GHG burden and FDR the highest. The study demonstrated that every pavement life cycle stage offers clear potential to lower overall GHG emissions when low-carbon alternatives are used.

Transportation Research Record Journal of the Transportation Research Board
University of Illinois Urbana-Champaign (US)
Responsible consumption and production
Openalex Percentile: Top 16%
Asphalt Pavement Performance Evaluation
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