[1] Ren Haisheng, Qian Zhendong, Chen Tuanjie, et al. Fracture resistance of asphalt mixtures used for bridge deck pavement in high-altitude and cold regions[J]. Construction and Building Materials, 2024, 443: 137833.
[2] Chen Siyu, Liu Xiyin, Tang Junyao, et al. Study on the influence of design parameters of porous asphalt pavement on drainage performance[J]. Journal of Hydrology, 2024, 638: 131514.
[3] 陈俊, 孙振浩, 李嘉浩, 等. 基于声传播模拟的多孔沥青混合料吸声性能与孔结构关系[J]. 重庆交通大学学报(自然科学版), 2023, 42(8): 38-44.
Chen Jun, Sun Zhenhao, Li Jiahao, et al. Relationship between sound absorption performance and pore structure of porous asphalt mixture based on sound transmission simulation[J]. Journal of Chongqing Jiaotong University (Natural Science), 2023, 42(8): 38-44.
[4] 李金凤, 何兆益, 孔林. 多孔沥青混合料的声学性能评价[J]. 西南交通大学学报, 2022, 57(1): 207-214.
Li Jinfeng, He Zhaoyi, Kong Lin. Evaluation of acoustic performance of porous asphalt concrete[J]. Journal of Southwest Jiaotong University, 2022, 57(1): 207-214.
[5] 蔡正森, 伍宇, 许新权, 等. 多孔沥青路面路用性能跟踪检测[J]. 吉林大学学报(工学版), 2024, 54(10): 2941-2951.
Cai Zhengsen, Wu Yu, Xu Xinquan, et al. Pavement performance tracking and testing of porous asphalt pavement[J]. Journal of Jilin University (Engineering and Technology Edition), 2024, 54(10): 2941-2951.
[6] Meng Yejing, Pei Jianzhong, Chen Zixuan, et al. Study on sound absorption characteristic of porous asphalt mixture based on macroscale and mesoscale analysis[J]. Construction and Building Materials, 2023, 408: 133776.
[7] 徐俊鹏, 郑传峰, 包崇昊, 等. 寒区大空隙沥青混合料性能衍化效应研究[J]. 重庆交通大学学报(自然科学版), 2024, 43(4): 20-29.
Xu Junpeng, Zheng Chuanfeng, Bao Chonghao, et al. Performance evolution effect of large-void asphalt mixture in cold regions[J]. Journal of Chongqing Jiaotong University (Natural Science), 2024, 43(4): 20-29.
[8] 李金凤, 何兆益, 官志桃. 多孔沥青混合料矿料间隙率物理模型的构建[J]. 哈尔滨工业大学学报, 2022, 54(3): 139-147.
Li Jinfeng, He Zhaoyi, Guan Zhitao. Physical model for void ratio in mineral aggregates of porous asphalt concrete[J]. Journal of Harbin Institute of Technology, 2022, 54(3): 139-147.
[9] 马峰, 祝崇鑫, 傅珍, 等. 高黏复配改性沥青低温性能试验评价[J]. 广西大学学报(自然科学版), 2023, 48(1): 30-39.
Ma Feng, Zhu Chongxin, Fu Zhen, et al. Experimental evaluation of low temperature performance of high viscosity composite modified asphalt[J]. Journal of Guangxi University (Natural Science Edition), 2023, 48(1): 30-39.
[10] 蔡军, 胡雨婷, 邹鹏辉, 等. 基于等渗流速率的双层多孔沥青混合料性能优化设计[J]. 中国公路学报, 2024, 37(10): 14-25.
Cai Jun, Hu Yuting, Zou Penghui, et al. Optimal design for double-layered porous asphalt mixture based on an equivalent layer hydraulic velocity approach[J]. China Journal of Highway and Transport, 2024, 37(10): 14-25.
[11] 何亮, 周子栋, Van Den Bergh Wim, 等. 多孔沥青混合料堵塞规律离散元仿真[J]. 交通运输工程学报, 2023, 23(2): 78-91.
He Liang, Zhou Zidong, Van Den Bergh Wim, et al. Discrete element simulation of porous asphalt mixture clogging law[J]. Journal of Traffic and Transportation Engineering, 2023, 23(2): 78-91.
[12] Zhang Fei, Li Xin, Wang Lan, et al. Effects of freeze-thaw cycles on fatigue performance of asphalt mixture and a fatigue-freeze-thaw damage evolution model[J]. Construction and Building Materials, 2024, 449: 138427.
[13] Cheng Yongchun, Wang Haitao, Zhang Yuwei, et al. Effect of asphalt-aggregate adhesion on mechanical performance of stone matrix asphalt under freeze-thaw cycles[J]. Journal of Materials in Civil Engineering, 2023, 35(6): 04023126.
[14] Cheng Yongchun, Wang Haitao, Wang Wensheng, et al. Rheological evolution mechanisms of asphalt binder and mastic under freeze-thaw cycles[J]. Construction and Building Materials, 2023, 372: 130780.
[15] 谭忆秋, 徐慧宁, 赵春丽, 等. 冻融循环下沥青混合料损伤特性研究[J]. 沈阳建筑大学学报(自然科学版), 2024, 40(5): 778-788.
Tan Yiqiu, Xu Huining, Zhao Chunli, et al. Research on asphalt damage characteristics under freeze-thaw cycling[J]. Journal of Shenyang Jianzhu University (Natural Science), 2024, 40(5): 778-788.
[16] 肖鑫, 王嘉宇, 李进, 等. 冻融循环作用下高黏高弹沥青混凝土动力学特征及损伤演化行为[J]. 中国公路学报, 2023, 36(12): 64-76.
Xiao Xin, Wang Jiayu, Li Jin, et al. Dynamic performance and damage evolution behavior of high-viscosity high-elasticity asphalt concrete under repeated freeze-thaw effect[J]. China Journal of Highway and Transport, 2023, 36(12): 64-76.
[17] 司伟, 张博文, 杨若聪, 等. 青藏高寒区基于真实环境冻融作用的沥青混合料冻融疲劳破坏表征[J]. 长安大学学报(自然科学版), 2023, 43(3): 11-21.
Si Wei, Zhang Bowen, Yang Ruocong, et al. Characterization analysis of freezing-thawing fatigue failure of asphalt mixture under freeze-thaw action in real environment in Qinghai-Tibet Plateau cold regions[J]. Journal of Chang’an University (Natural Science Edition), 2023, 43(3): 11-21.
[18] 司伟, 罗翔宇, 庞光伟, 等. 冻融作用下多孔沥青混凝土性能演变规律及级配推荐[J]. 长安大学学报(自然科学版), 2025, 45(3): 39-51.
Si Wei, Luo Xiangyu, Pang Guangwei, et al. Performance evolution law and gradation recommendation of porous asphalt concrete under freeze-thaw action[J]. Journal of Chang’an University (Natural Science Edition), 2025, 45(3): 39-51.
[19] 陈自福, 褚跃, 顾兴宇, 等. 多孔沥青混合料级配与骨架强度关系[J]. 公路, 2023 68(9): 17-26.
Chen Zifu, Chu Yue, Gu Xingyu, et al. Relationship between gradation and skeleton strength of porous asphalt concrete[J]. Highway, 2023 68(9): 17-26.
[20] JTG/T 3350-03—2020排水沥青路面设计与施工技术规范[S]
JTG/T 3350-03—2020 Technical Specifications for Design and Construction of Porous Asphalt Pavement[S].
[21] 杨宇峰. 高黏温拌沥青及其多孔沥青混合料性能研究[D]. 西安: 长安大学, 2023.
Yang Yufeng. Study on the performance of high viscosity warm mix asphalt and its porous asphalt mixture[D]. Xi’an: Changan University, 2023.
[22] Ma Feng, Wang Yuxing, Shi Ke, et al. Stiffness, fatigue and cracking performance of porous asphalt concrete under varying freeze-thaw cycles[J]. Construction and Building Materials, 2025, 483: 141709.
[23] JTG 3410—2025 公路工程沥青及沥青混合料试验规程[S].
JTG 3410—2025 Standard Test methods of Asphalt and Asphalt Mixture for Highway Engineering[S].
[24] 马峰, 马行远, 李川, 等. 温拌高黏沥青胶浆流变性能研究[J]. 功能材料, 2025, 56(8): 8199-8204.
Ma Feng, Ma Xingyuan, Li Chuan, et al. Rheological properties of warm mix high viscosity asphalt mastic[J]. Journal of Functional Materials, 2025, 56(8): 8199-8204. |