Author
Listed:
- Genhe Zhang
(Key Laboratory for Special Area Highway Engineering of Ministry of Education, Chang’an University, Xi’an 710064, China
China Communications Second Highway Engineering Bureau 7th Co., Ltd., Nanning 530220, China)
- Bo Ning
(China Communications Second Highway Engineering Bureau 7th Co., Ltd., Nanning 530220, China)
- Feng Cao
(China Communications Second Highway Engineering Bureau 7th Co., Ltd., Nanning 530220, China)
- Taotao Li
(China Communications Second Highway Engineering Bureau 7th Co., Ltd., Nanning 530220, China)
- Siyuan Guo
(Key Laboratory for Special Area Highway Engineering of Ministry of Education, Chang’an University, Xi’an 710064, China)
- Teng Gao
(Xi’an Highway Survey and Design Institute Co., Ltd., Xi’an 710100, China)
- Biao Ma
(Key Laboratory for Special Area Highway Engineering of Ministry of Education, Chang’an University, Xi’an 710064, China)
- Rui Wu
(Faculty of Civil Engineering and Geosciences, Delft University of Technology, 2628 CN Delft, The Netherlands)
Abstract
This study developed a design framework for porous mixtures using a 100% sustainable non-bituminous epoxy–polyurethane binder system. Conventional design protocols for porous asphalt mixtures exhibit limitations in accurately controlling void content and mixture composition. This study proposed a novel design framework for porous mixtures containing 100% sustainable binder based on statistical analysis and theoretical calculations. The relationships among target air voids, binder content, and aggregate gradation were systematically analyzed, and calculation formulas for coarse aggregate, fine aggregate, and mineral filler contents were derived. A mix design framework was further established by applying the void-filling theory, where the combined volume of binder, fine aggregate, and filler equals the void volume of the coarse aggregate skeleton, thereby ensuring precise control of the target void ratio. Additionally, mixing procedures were investigated with emphasis on feeding sequence, compaction method, and mixing temperature. Results indicated that the optimized feeding sequence significantly improved binder distribution; specimens compacted using the Marshall double-sided compaction method achieved a density of 89.60%. Rheological analysis revealed that at 30 °C, the viscosities of sustainable binder and polyurethane filler were 1280 mPa·s and 6825 mPa·s, respectively, suggesting optimal mixture uniformity. The proposed methodology and process parameters provide essential technical guidance for engineering applications of porous mixtures containing 100% sustainable binder.
Suggested Citation
Genhe Zhang & Bo Ning & Feng Cao & Taotao Li & Siyuan Guo & Teng Gao & Biao Ma & Rui Wu, 2026.
"Design Framework for Porous Mixture Containing 100% Sustainable Binder,"
Sustainability, MDPI, vol. 18(2), pages 1-29, January.
Handle:
RePEc:gam:jsusta:v:18:y:2026:i:2:p:1020-:d:1843948
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