姓名:张灏鹏
国籍:中国
联系电话:18170096212
性别:男
毕业院校:西南交通大学
学位:博士
电子邮件:zhanghaopeng@ncu.edu.cn
所在单位:工程建设学院
职工类别:教学科研型
职称:副研究员
学科:其他
办公地址:建工楼515
姓名拼音:Zhang Haopeng
张灏鹏,男,1997年8月生,工学博士/博士后,南昌大学特聘研究员,江西省省级高层次D类人才。同济大学博士后,西南交通大学博士(交通运输工程学科,A+),比利时安特卫普大学(University of Antwerp)海外联合培养博士(道路工程方向),华东交通大学道路与铁道工程专业(詹天佑班)本科。现于南昌大学工程建设学院从事道路与铁道工程领域的教学科研工作,主要从事交通基础设施道路材料延寿增韧、AI驱动的道路智慧运维与功能型低碳养护新材料、面向道路全寿命周期的智能养护决策等方面的研究。
近五年,主持国家自然科学基金青年项目、国家资助博士后研究人员计划、南昌大学高层次人才启动计划等科研项目。共发表 SCI/EI/论文40篇,Google scholar H指数13,以唯一第一/通讯作者身份发表SCI/EI论文30篇(JCR Q1论文17篇),包括ACS Sustainable & Chemistry Engineering、Fuel、Measurement、Colloid and Surface A、Materials and Structures、International Journal of Pavement Engineering、Road Materials and Pavement Design以及材料导报等十余本路面材料领域主流期刊,受理/授权发明专利20余项。相关研究成果支撑江苏泰州G345国道修复、河南沪陕高速公路叶信段提升改造和河北承秦高速公路承德段面层养护等路面养护工程建设。
荣获2024年度国际材料与结构研究实验联合会(RILEM)杰出论文奖(排1,一年评选10篇,道路材料领域唯一入选;RILEM Website 报道:https://www.rilem.net/news/materials-and-structures-2024-outstanding-papers-686;RILEM 年报纪录: https://www.rilem.net/news/explore-rilem-s-2024-annual-report-691),西南交通大学优秀博士学位论文(全校28篇,土木学院5篇(排1))和第二届国际交通基础设施智能仿真大赛二等奖等学术奖励。担任《长沙理工大学学报(自然科学版)》(公路运输领域T2)、《Resources, Environment and Sustainability》(中科院一区TOP,IF=9.2)、《建筑科学与工程学报》、《Journal of Measurement Science and Instrumentation》、《AI & Materials》和《绿色建筑》等期刊青年编委,华东交通大学校友会交通运输工程学院分会第一届理事会理事。积极参加道路与机场工程研究青年论坛、全国路面材料力学与数值仿真研讨会与交通基础设施和材料国际会议(TIM)等行业主流学术会议并作口头报告。
[1] - 2023.05-2024.04 安特卫普大学(比利时)工程学院 道路工程 CSC海外联合培养博士
[2] - 2019.09-2024.09 西南交通大学土木工程学院 道路与铁道工程 工学博士
[3] - 2015.09-2019.06 华东交通大学土木建筑学院 道路与铁道工程(詹天佑班) 工学学士
[1] - 2026.07-至今 南昌大学工程建设学院 特聘研究员
[2] - 2024.08-2026.07 同济大学交通学院 博士后/助理研究员
国家自然科学基金青年项目,温拌-胶粉复合改性沥青非线性流变行为及性能靶向调控机制研究, 2027.01-2029.12,主持,在研
南昌大学高层次人才引进启动经费,2026.7-2032.6,主持,在研
国家资助博士后研究人员计划,胶粉-温拌复合改性沥青性能-环境平衡机制,2024.08-2026.08,主持,结题
(1)唯一一作/通讯发表论文
[1] Zhang, H., Khan, S., Khair, A., Guo, Y., Pan, J. & Ncube, M. H. (2026). Interaction behaviours between recycled rubber and warm mix asphalt: insight from experiment and molecular dynamics simulation. International Journal of Pavement Engineering, 27, 1-13 (IF=3.3, 中科院三区, JCR Q1, 道路领域TOP,唯一第一作者).
[2] Zhang, H., Li, H., Pan, J., Liu, M., & Ncube, M. H. (2025). Molecular dynamics insight into thermodynamic behaviors of waxes in aged bitumen at low temperatures. Construction and Building Materials, 481, 141645 (IF= 8.0, 中科院一区TOP, JCR Q1,唯一第一作者).
[3] Zhang, H., Khan, S., Zhang, L., Li, H., Khair, A., Wang, H.(英国利物浦大学教授), Du, Q. & Ncube, M. H. (2025). The effect of wax structures and chemical activated scrap rubber on performance of warm rubberized bitumen: insights from model wax compounds. Fuel, 402, 136034 (国际合作, IF= 7.5, 中科院二区TOP, JCR Q1 TOP,化学、交通学科交叉,唯一第一作者).
[4] Zhang, H., Li, H.*, Khan, S., Khair, A., Liu, M., Pan, J., Wang, L. & Zhang, H. (2025). Enhanced understanding of fatigue resistance in wax-crumb rubber composite modified bituminous binders through microstructural and thermo-rheological characterization. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 139073 (IF=5.4, 中科院二区TOP, JCR Q2,化学、交通学科交叉,唯一第一作者).
[5] Zhang, H., Li, H., Liu, M., Pan J., & Saad, K. Do Non-linear Rheological Mechanical Behaviors and Chemical Microscopic Characteristics Follow Potential Relationships in Warm Rubberized Bitumen? Transportation Research Board meeting (2026) (交通领域顶级会议,唯一第一作者).
[6] Zhang, H., Li, H., Cheng, S., Khan, S., Khair, A., Pan, J., Chen, J. & Gu, J. (2025). Unraveling the relationship between non-linear rheological behaviors and chemo-microscopic characteristics of warm rubberized bitumen. Materials and Structures, 58(10), 352 (IF= 3.9, 中科院三区, JCR Q1, RILEM旗舰刊物,唯一第一作者).
[7] 兰斌芳,张灏鹏*(通讯作者),王力扬,潘杰,成晟,杜晓伟,李辉. 热氧老化作用下含蜡沥青宽温域内流变行为研究. 材料导报(2025),https://link.cnki.net/urlid/50.1078.tb.20251223.1636.003(EI,知网网络首发,唯一 通讯作者).
[8] Zhang, H., Zhang, H., Ding, H., & Dai, J. (2021). Determining the sustainable component of wax-based warm mix additives for improving the cracking resistance of asphalt binders. ACS Sustainable Chemistry & Engineering, 9(44), 15016-15026 (IF=7.3, 中科院一区TOP, JCR Q1 TOP,化学、交通学科交叉,唯一第一作者).
[9] Zhang, H., Zhang, H., Ding, H., Rahman, A., & Qiu, Y. (2022). Chemical modification of waxes to improve the compatibility with asphalt binders. ACS Sustainable Chemistry & Engineering, 10(33), 10908-10921 (IF=7.3, 中科院一区TOP, JCR Q1 TOP,化学、交通学科交叉,唯一第一作者).
[10] Zhang, H., Soenen, H. (瑞典石油公司NYNAS研究员), Pipintakos, G. (比利时安特卫普大学博士后), Omranian, S. R., Blom, J. (比利时安特卫普大学教授), Abadeen, A. Z. U., Qiu, Y., & Van den Bergh, W. (比利时安特卫普大学教授) (2024). The influence of oxidative aging and wax structure on bitumen physical hardening: Insights from model wax compounds. Construction and Building Materials, 446, 137949 (国际合作, SCI, 中科院一区TOP, JCR Q1 TOP, IF=8.0,唯一第一作者).
[11] Ding, H., Zhang, H.*, Zhang, H., Liu, D., Qiu, Y., & Hussain, A. (2022). Separation of wax fraction in asphalt binder by an improved method and determination of its molecular structure. Fuel, 322, 124081 (IF=7.5, 中科院二区TOP, JCR Q1 TOP,化学、交通学科交叉,唯一通讯作者).
[12] Yu, D., Yang, E., Zhang, M., Zhang, H.*, Chen, G., Di, H., Huang, B. & Qiu, Y. (2023). Chemical modification of sustainable bagasse fiber and its absorption mechanism on SBS-modified emulsified bitumen. Construction and Building Materials, 409, 133983 (IF= 8.0, 中科院一区TOP, JCR Q1,唯一通讯作者).
[13] Huang, B., Di, H., Yang, E., Chen, Q., Zhang, H.*, & Qiu, Y. (2026). Mechanistic insight into the skid resistance of icy pavements via experimental investigation and finite element analysis. Measurement, 269, 120843. (IF=5.6, 中科院二区TOP, JCR Q1,唯一通讯作者).
[14] Zhang, H.*, & Qiu, Y. (2023). Chemical inhibition of wax precipitation to improve cracking resistance of warm mix asphalts. Construction and Building Materials, 389, 131734 (IF= 8.0, 中科院一区TOP, JCR Q1,唯一 第一/通讯作者).
[15] Zhang, H.*, & Qiu, Y. (2023). Investigation of wax inhibition efficiency based on alkane structures in model asphalt for sustainable utilization of wax inhibitors. Journal of Molecular Liquids, 375, 121353 (IF= 5.2, 中科院二区, JCR Q1, 化学、交通学科交叉,唯一 第一/通讯作者).
[16] Zhang, H., Xie, Q., Ding, H., & Qiu, Y.(2023). Inhibiting wax precipitation in asphalt binder from perspective of dispersing asphaltenes. Construction and Building Materials,370, 130662(IF= 8.0, 中科院一区TOP, JCR Q1,唯一第一作者).
[17] Ding, H., Zhang, H.*, Xie, Q., Rahman, A., & Qiu, Y. (2022). Synthesis and characterization of nano-SiO2 hybrid poly (methyl methacrylate) nanocomposites as novel wax inhibitor of asphalt binder. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 653, 130023(IF=5.4, 中科院二区TOP, JCR Q2,化学、交通学科交叉,唯一通讯作者).
[18] Zhang, H., Zhang, H., Ding, H., Yang, E., & Qiu, Y. (2023). Thermal stress calculation of wax-based warm mix asphalt considering thermorheologically complex behavior. Construction and Building Materials, 368, 130488 (IF= 8.0, 中科院一区TOP, JCR Q1, 土木工程TOP,唯一第一作者).
[19] Zhang, H., Ren, S.(荷兰代尔夫特理工大学博士、比利时安特卫普大学博士后), & Qiu, Y. (2023). Balancing the sustainable component of ethylene-vinyl acetate for achieved better compatibility improvement of wax-based warm mix additives in bitumen. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 675, 132054 (国际合作, IF=5.4, 中科院二区TOP, JCR Q2,化学、交通学科交叉,唯一第一作者).
[20] Yang, E., Yang, Q., Li, J., Zhang, H.*, Di, H., & Qiu, Y. (2022). Establishment of icing prediction model of asphalt pavement based on support vector regression algorithm and Bayesian optimization. Construction and Building Materials, 351, 128955 (IF= 8.0, 中科院一区TOP, JCR Q1, 土木工程TOP,唯一通讯作者).
[21] Zhang, H., Soenen, H. (瑞典石油公司NYNAS研究员), Pipintakos, G. (比利时安特卫普大学博士后), Blom, J. (比利时安特卫普大学教授), Abadeen, A. Z. U., Qiu, Y., & Van den Bergh, W. (比利时安特卫普大学教授) (2024). Exploring physical hardening in bitumen based on 4 mm DSR measurements. Materials and Structures, 57(7), 149 (国际合作, SCI, 中科院三区, JCR Q1, IF=3.9, RILEM旗舰刊物,唯一第一作者).
[22] Zhang, H., Xie, Q., Ding, H., & Rahman, A. (2023). Spectroscopic ellipsometry studies on optical constants of crystalline wax-doped asphalt binders. International Journal of Pavement Engineering, 24(2), 2042286 (IF=3.3, 中科院三区, JCR Q1, 道路领域TOP,唯一第一作者).
[23] Ding, H., Zhang, H.*, Zhang, H., & Qiu, Y. (2022). Direct observation of crystalline wax in asphalt binders by variable-temperature polarizing microscope. Journal of Materials in Civil Engineering, 34(10), 04022244 (IF=3.0, 中科院三区, JCR Q2, 美国土木工程学会ASCE,唯一通讯作者).
[24] Yang, E., Fu, J., Yang, C., Di, H., Ma, B., Zhang, H.*, Wang, F. & Qiu, Y. (2025). Case Study on Damage of Cement Concrete Bridge Deck Pavement: Insight into Efflorescence. International Journal of Pavement Research and Technology, 1-10 (IF=2.5, 中科院三区, JCR Q2, 路面领域主流期刊,唯一通讯作者).
[25] Yang, E., Li, J., Liu, H., Zhang, H.*, Di, H., Yuan, F., & Qiu, Y. (2024). Introduction of new salt storage fiber to achieve sustainable deicing in asphalt pavements. Journal of Materials in Civil Engineering, 36(5), 04024074 (IF=3.0, 中科院三区, JCR Q2, 美国土木工程学会ASCE,唯一通讯作者).
[26] Zhang, H.*, & Qiu, Y. (2024). Model for calculation of thermal stresses in concrete pavement slabs with refined non-linear deformation constraints. Road Materials and Pavement Design, 25(4), 820-837 (IF=3.0, 中科院三区, JCR Q2, 道路领域TOP,唯一 第一/通讯作者).
[27] Zhang, H., Ding, H., & Rahman, A. (2022). Effect of asphalt mortar viscoelasticity on microstructural fracture behavior of asphalt mixture based on cohesive zone model. Journal of Materials in Civil Engineering, 34(7), 04022122 (IF=3.0, 中科院三区, JCR Q2, 美国土木工程学会ASCE,唯一第一作者).
[28] Yang, E., Peng, J., Luo, L., Zhang, H.*, Di, H., Yuan, F., & Qiu, Y. (2023). Analysis on influencing factors of asphalt pavement icing and establishment of icing prediction model. Road Materials and Pavement Design, 24(12), 2959-2975 (IF=3.0, 中科院三区, JCR Q2, 道路领域TOP,唯一通讯作者).
[29] Yang, E., Pang, C., Luo, L., Zhang, H.*, Di, H., Yuan, F., & Qiu, Y. (2023). Analysis of Hydrothermal Coupling Effect of Asphalt Pavement between Tunnels in Seasonally Frozen Area. Journal of Testing and Evaluation, 51(6), 3682-3699 (IF=0.8, 中科院四区, JCR Q4, 美国材料与测试学会-ASTM,唯一通讯作者).
[30] Zhang, H., Xie, Q., Ding, H., Rahman, A., & Qiu, Y. (2023). Effects of physical hardening on low-temperature properties of asphalt binders containing reclaimed asphalt pavement. Journal of Testing and Evaluation, 51(2), 655-672(IF=0.8, 中科院四区, JCR Q4, 美国材料与测试学会-ASTM,唯一第一作者).
(2)合作发表论文
[1] Ncube, M. H., Li, H., Khan, S., Zhang, H., Zhao, X., Nedi, T., & Huang, X. (2026). Upcycled diatomite and red mud as bitumen modifiers and multi-functional fillers for durable, eco-efficient asphalt pavements: A critical review. Journal of Cleaner Production, 540, 147426 (IF=10.0, JCR Q1 TOP).
[2] Abadeen, A. Z. U., Omranian, S. R., Blom, J., Van Den Bergh, S., Zhang, H., Verbruggen, S. W., & Vuye, C. (2025). Influence of inlet concentration, UV intensity, and relative humidity on NOx degradation in photocatalytic asphalt pavement. Road Materials and Pavement Design, 1-20 (IF=3.0, JCR Q2, 道路领域TOP).
[3] Yang, E., Wang, K., He, J., Liu, K., Wang, J., Zhang, H., & Qiu, Y. (2025). Settlement prediction of a high embankment based on non-linear regression and neural network algorithm. Transportation Geotechnics, 50,101443 (IF=5.5, JCR Q1).
[4] Khair, A., Wang, L., Li, H., Han, Y., Lin, Z., Sun, Y., & Zhang, H. (2026). Comparative performance evaluation of asphalt binder modified with high-content pretreated crumb rubber and various additives. Journal of Road Engineering, 6(1), 108-121 (IF=8.6, JCR Q1).
[5] Zhao, T., Peng, J., Zhang, Y., Song, Y., Zhang, H., Yang, E., ... & Ma, B. (2025). Improvement in Anti-Icing Performance of Electromagnetic Induction Heating through Optimization of Energy Transfer in Asphalt Pavement. Journal of Materials in Civil Engineering, 37(6), 04025147 (IF=3.0, JCR Q2, 美国土木工程学会).
[6] Khan, S., Li, H., Zhang, H., Ncube, M. H., Khair, A.., Shah, I., Rehman, F., Han, Y., & Zhao, X. (2026). Compatibility and low-temperature performance evaluation of asphalt modified with untreated and KH-151-treated crumb rubber. International Journal of Transportation Science and Technology, https://doi.org/10.1016/j.ijtst.2025.09.006 (IF=4.8, JCR Q1).
[7] Khair, A., Jing, G., Li, H., Zhang, H., Khan, S., Zhao, X., Ncube, M. H. & Sheng, C. (2026). Evaluation of pretreatment effects on high-content crumb rubber asphalt binder modified with recycled low-density polyethylene (LDPE). International Journal of Transportation Science and Technology, https://doi.org/10.1016/j.ijtst.2025.08.007 (IF=4.8, JCR Q1).
[8] Liao, M., Wang, K., Zhou, X., Tian, L., Wang, J., Zhang, H., ... & Yang, E. (2025). Development of an Intelligent Monitoring System for Settlement Prediction of High-Fill Subgrade. Infrastructures, 10(8), 220 (IF=2.9, JCR Q2).
[9] Li, H., Wang, L., Han, Y., Zhang, X., Zhang, H., & Chen, L. (2025). Acoustic properties and durability of porous low-noise pavement solutions to improve acoustic environment: A critical literature review. International Journal of Transportation Science and Technology, https://doi.org/10.1016/j.ijtst.2025.06.011 (IF=4.8, JCR Q1).
[10] Xie, T., Yang, E., Chen, Q., Rao, J., Zhang, H., & Qiu, Y. (2024). Separation of macro-and micro-texture to characterize skid resistance of asphalt pavement. Materials, 17(20), 4961 (IF=3.2, JCR Q2).
[11] Li, H., Wang, S., Pan, J., Shan, F., Jiang, Y., Zhang, H., ... & Shi, Q. (2024). Research on pavement maintenance planning using reinforcement learning. Intelligent Transportation Infrastructure, 3, liaf001 (IF=2.4).
(3)发明专利
[1] 含蜡沥青中蜡晶低温热动力学行为的分子模拟方法及介质:CN202411838692.7.2025-10-24.
[2] 考虑物理硬化的沥青低温抗裂性能评价方法和电子设备: CN202511265392.9.2025-11-18.
[3] 一种道路用温拌橡胶粉复合改性沥青及其制备方法: CN202610247581.1. 2026-03-02.
[4]一种基于可再生复合活化剂的再生胶粉改性沥青及其制备方法与应用:202610549929.2. 2026-05-26.
[5] 一种基于剪切解硫-表面氧化的极性增强型再生橡塑沥青改性剂及其制备方法与应用: CN202511553418.X.2025-11-28.
[6] 基于公交-地铁双层交通网络的洪涝灾害传播模拟方法: CN202510196016.2.2025-06-20.
[7] 一种基于机器学习的路面性能预测与养护决策优化方法: CN202510488020.6.2025-08-01.
[8] 一种岩沥青-界面活化橡胶粉复合改性沥青材料及其制备方法: CN202511815509.6.2026-01-20.
[9] 一种溶剂型冷拌沥青及其制备方法: CN202512049674.1. 2026-02-24.
[10] 一种橡胶-硅藻土-硅烷杂化改性剂及其制备方法和应用:CN202610029699.7.2026-03-13.
[11] 一种用于快速修复路面的胶粉改性沥青组合物及其制备和应用方法: CN202512050403.8. 2025-12-31.
[12] 一种多孔沥青路面面层的路面-路侧协同净化方法: CN202512050069.6. 2025-12-31.
[13] 一种公路基础设施网络灾后应急抢修智能决策方法及系统: CN202510337539.4. 2025-07-18.
[14] 一种提升蜡质沥青低温性能的分散剂及其沥青和制备方法: CN202211188442.4.2023-04-07.
[15] 一种抗热可逆老化沥青蜡抑制剂和沥青及其制备方法: CN202210410460.6.2022-08-16.
[16] 一种基于光学特性的手持式沥青蜡含量快速定量仪: CN202210571643.6.2022-08-30.
[17]一种植物蜡化学改性新型沥青温拌剂及其制备方法: CN202210436068.9.2022-07-15.