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Article

Grading Design and Performance Evaluation of Porous Asphalt Mixture: A Synergistic Optimization of Pavement Performance and Sound Absorption

1
Key Laboratory of Special Area Highway Engineering, Ministry of Education, Chang’an University, Xi’an 710064, China
2
Shandong Expressway Infrastructure Construction Co., Ltd., Jinan 250000, China
3
Shandong High-Speed Group Dongraocheng Xugang Expressway Co., Ltd., Jinan 250000, China
*
Author to whom correspondence should be addressed.
Infrastructures 2026, 11(3), 108; https://doi.org/10.3390/infrastructures11030108
Submission received: 7 February 2026 / Revised: 14 March 2026 / Accepted: 19 March 2026 / Published: 21 March 2026

Abstract

To address the current absence of targeted gradation design for porous asphalt pavements both domestically and internationally, this study employs the Coarse Aggregate Void Filling (CAVF) method to design the gradation of porous asphalt mixtures. Marshall stability tests, rutting tests, and scattering tests were conducted to investigate the relationship between coarse aggregate proportions and the structural stability of the mixture skeleton. An orthogonal experimental design was further utilized to examine the influence of three levels of fine aggregate gradation on the acoustic absorption characteristics of the mixture, and to analyze the effects of aggregate gradation on the primary pore diameter, connected pore diameter, and connected pore length. The results indicate that the coarse aggregate gradation predominantly governs the skeleton strength and overall pavement performance of the mixture, whereas the fine aggregate gradation exhibits significant effects on the interconnected void ratio, pore structure, and sound absorption performance. The optimal roughness range of coarse aggregates in porous asphalt mixtures is determined to be 0.46–0.52. The proportion of 0.6–1.18 mm aggregates has a pronounced influence on the primary pore diameter, connected pore diameter, and connected pore length. By integrating the design considerations for both coarse and fine aggregate gradations, a recommended gradation range for porous asphalt mixtures is proposed that achieves a balance between pavement performance and sound absorption/noise-reduction effectiveness.
Keywords: porous asphalt mixture; gradation design; sound absorption coefficient; pavement performance; dominant pore diameter; connected pore diameter; connected pore length porous asphalt mixture; gradation design; sound absorption coefficient; pavement performance; dominant pore diameter; connected pore diameter; connected pore length

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MDPI and ACS Style

Xie, S.; Lu, P.; Yan, W.; Wang, S.; Lu, Y.; Zhu, J.; Zheng, M. Grading Design and Performance Evaluation of Porous Asphalt Mixture: A Synergistic Optimization of Pavement Performance and Sound Absorption. Infrastructures 2026, 11, 108. https://doi.org/10.3390/infrastructures11030108

AMA Style

Xie S, Lu P, Yan W, Wang S, Lu Y, Zhu J, Zheng M. Grading Design and Performance Evaluation of Porous Asphalt Mixture: A Synergistic Optimization of Pavement Performance and Sound Absorption. Infrastructures. 2026; 11(3):108. https://doi.org/10.3390/infrastructures11030108

Chicago/Turabian Style

Xie, Shiqi, Peng Lu, Wenke Yan, Shengxu Wang, Yi Lu, Jinpeng Zhu, and Mulian Zheng. 2026. "Grading Design and Performance Evaluation of Porous Asphalt Mixture: A Synergistic Optimization of Pavement Performance and Sound Absorption" Infrastructures 11, no. 3: 108. https://doi.org/10.3390/infrastructures11030108

APA Style

Xie, S., Lu, P., Yan, W., Wang, S., Lu, Y., Zhu, J., & Zheng, M. (2026). Grading Design and Performance Evaluation of Porous Asphalt Mixture: A Synergistic Optimization of Pavement Performance and Sound Absorption. Infrastructures, 11(3), 108. https://doi.org/10.3390/infrastructures11030108

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