Asadi, M., Mallick, R., & Nazarian, S. (2021). Numerical modeling of post-flood water flow in pavement structures. Transportation Geotechnics, 27(September 2020), 100468. https://doi.org/10.1016/j.trgeo.2020.100468
Barbi, P. S. R., Tavassoti, P., & Tighe, S. (2023). Enhanced Pavement Design and Analysis Framework to Improve the Resiliency of Flexible Airfield Pavements. Transportation Research Record, 2677(8), 118–136. https://doi.org/10.1177/03611981231155909
Chai, G., & Martin, T. (2014). A review of the structural performance of flooded pavements. 26th ARRB Conference – Research Driving Efficiecy, Sydney, NSW,BoM 2010, 1–11. http://hdl.handle.net/10072/67950https://www.arrb.com.au/
Chen, X., & Wang, H. (2024). Postflooding Asphalt Pavement Condition Assessment for Roadway Operation Strategy. Journal of Transportation Engineering, Part B: Pavements, 150(1). https://doi.org/10.1061/jpeodx.pveng-1353
Elshaer, M. (2017). Assessing the Mechanical Response of Pavements During and After Flooding.
Elshaer, M., & Daniel, J. S. (2018). Impact of pavement layer properties on the structural performance of inundated flexible pavements. Transportation Geotechnics, 16(March), 11–20. https://doi.org/10.1016/j.trgeo.2018.06.002
Elshaer, M., Ghayoomi, M., & Daniel, J. S. (2019). Impact of subsurface water on structural performance of inundated flexible pavements. International Journal of Pavement Engineering, 20(8), 947–957. https://doi.org/10.1080/10298436.2017.1366767
Federal Highway Administration. (2010). Regional Climate Change Effects: Useful Information for Transportation Agencies. http://www.fhwa.dot.gov/environment/climate_change/adaptation/publications_and_tools/climate_effects/index.cfm
Gaspard, K., Martinez, M., Zhang, Z., & Wu, Zhong. (2007). Impact of Hurricane Katrina on Roadways in the New Orleans Area. Louisiana Department of Transportation and Development, 07.
Ghayoomi, M., & Dave, E. (2021). Mechanistic Load Restriction Decision Platform for Pavement Systems Prone to Moisture Variations. https://www.mndot.gov/research/reports/2021/NRRA202110.pdf
Jim Mack, P. E. (2020). IMPROVING PAVEMENT RESILIENCY & DISASTER RECOVERY Flooding Impacts. February.
Khan, M. U., Mesbah, M., Ferreira, L., & Williams, D. J. (2014). Developing a new road deterioration model incorporating flooding. Proceedings of the Institution of Civil Engineers – Transport, 167(5), 322–333. https://doi.org/10.1680/tran.13.00095
Khan, M. U., Mesbah, M., Ferreira, L., & Williams, D. J. (2017a). Assessment of flood risk to performance of highway pavements. Proceedings of the Institution of Civil Engineers: Transport, 170(6), 363–372. https://doi.org/10.1680/jtran.15.00120
Khan, M. U., Mesbah, M., Ferreira, L., & Williams, D. J. (2017b). Development of a post-flood road maintenance strategy: case study Queensland, Australia. International Journal of Pavement Engineering, 18(8), 702–713. https://doi.org/10.1080/10298436.2015.1121781
Khan, M. U., Mesbah, M., Ferreira, L., & Williams, D. J. (2017c). Estimating Pavement’s Flood Resilience. Journal of Transportation Engineering, Part B: Pavements, 143(3), 1–8. https://doi.org/10.1061/jpeodx.0000007
Khan, M. U., Mesbah, M., Ferreira, L., & Williams, D. J. (2019). A case study on pavement performance due to extreme moisture intrusion at untreated layers. International Journal of Pavement Engineering, 20(11), 1309–1322. https://doi.org/10.1080/10298436.2017.1408272
Kim, Y., Eisenberg, D. A., Bondank, E. N., Chester, M. v., Mascaro, G., & Underwood, B. S. (2017). Fail-safe and safe-to-fail adaptation: decision-making for urban flooding under climate change. Climatic Change, 145(3–4), 397–412. https://doi.org/10.1007/s10584-017-2090-1
Lu, D. (2019). Pavement Flooding Risk Assessment and Management in the Changing Climate. http://hdl.handle.net/10012/15474
Lu, D., Tighe, S. L., & Xie, W. C. (2020). Impact of flood hazards on pavement performance. International Journal of Pavement Engineering, 21(6), 746–752. https://doi.org/10.1080/10298436.2018.1508844
Mallick, R. B., Tao, M., Daniel, J. S., Jacobs, J. M., & Veeraragavan, A. (2017a). Combined model framework for asphalt pavement condition determination after flooding. Transportation Research Record, 2639(2639), 64–72. https://doi.org/10.3141/2639-09
Mallick, R. B., Tao, M., Daniel, J. S., Jacobs, J., & Veeraragavan, A. (2017b). Development of a methodology and a tool for the assessment of vulnerability of roadways to flood-induced damage. Journal of Flood Risk Management, 10(3), 301–313. https://doi.org/10.1111/jfr3.12135
Mallick, Rajib B.; Zaumanis, Martins; Frank, R. (2015). Adaptation to flooding and mitigating impacts of road construction – A framework to identify practical steps to counter climate change. The Baltic Jounal of Road and Bridge Engineering, 10(4), 346–354.
Matini, N., Gulzar, S., Underwood, S., & Castorena, C. (2022). Evaluation of Structural Performance of Pavements under Extreme Events: Flooding and Heatwave Case Studies. Transportation Research Record, 2676(7), 233–248. https://doi.org/10.1177/03611981221077984
Matini, N., Qiao, Y., & Sias, J. E. (2022). Development of Time–Depth–Damage Functions for Flooded Flexible Pavements. Journal of Transportation Engineering, Part B: Pavements, 148(2), 1–12. https://doi.org/10.1061/jpeodx.0000352
Nasrazadani, Hossein; Adey, Bryan T; Moghtadernejad, Saviz; Alipour, A. (2022). A Simulation Approach for Evaluating Interventions to Improve the Resilience of Transport Networks Against Climate-Induced Hazards. ESReDA Seminar. https://doi.org/10.3929/ethz-b-000580321
Nasrazadani, Hossein; Bolli, Fabian; Adey, B. T. (2023). Stress testing the transportation system subject to climate-induced hazards: A simulation approach Conference Paper Stress testing the transportation system subject to climate-induced hazards: A simulation approach. 14th International Conference on Applications of Statistics and Probability in Civil Engineering, ICASP14. https://doi.org/10.3929/ethz-b-000642068
National Highways. (2023). Geotechnical Climate Change Adaptation Plan (Issue GDMS REPORT ID 33023).
Nivedya, M. K., Tao, M., Mallick, R. B., Daniel, J. S., & Jacobs, J. M. (2020). A framework for the assessment of contribution of base layer performance towards resilience of flexible pavement to flooding. International Journal of Pavement Engineering, 21(10), 1223–1234. https://doi.org/10.1080/10298436.2018.1533637
O’Neill, B. C., Tebaldi, C., van Vuuren, D. P., Eyring, V., Friedlingstein, P., Hurtt, G., Knutti, R., Kriegler, E., Lamarque, J. F., Lowe, J., Meehl, G. A., Moss, R., Riahi, K., & Sanderson, B. M. (2016). The Scenario Model Intercomparison Project (ScenarioMIP) for CMIP6. Geoscientific Model Development, 9(9), 3461–3482. https://doi.org/10.5194/gmd-9-3461-2016
Qiao, Y., Medina, R. A., McCarthy, L. M., Mallick, R. B., & Daniel, J. S. (2017). Decision tree for postflooding roadway operations. Transportation Research Record, 2604(1), 120–130. https://doi.org/10.3141/2604-15
Qiao, Y., Zhang, S., Wang, Y., Dawson, A., Wake, C., & Ma, T. (2023). Simulating floodwater movement in pavements for developing post-flooding time-depth-damage functions. Construction and Building Materials, 396(June), 132408. https://doi.org/10.1016/j.conbuildmat.2023.132408
Singh, P., Sinha, V. S. P., Vijhani, A., & Pahuja, N. (2018). Vulnerability assessment of urban road network from urban flood. International Journal of Disaster Risk Reduction, 28(March), 237–250. https://doi.org/10.1016/j.ijdrr.2018.03.017
Sultana, M., Chai, G., Chowdhury, S., & Martin, T. (2016a). Deterioration of flood affected Queensland roads – An investigative study. International Journal of Pavement Research and Technology, 9(6), 424–435. https://doi.org/10.1016/j.ijprt.2016.10.002
Sultana, M., Chai, G., Chowdhury, S., & Martin, T. (2016b). Deterioration of flood affected Queensland roads – An investigative study. International Journal of Pavement Research and Technology, 9(6), 424–435. https://doi.org/10.1016/j.ijprt.2016.10.002
Sultana, M., Chai, G., Chowdhury, S., Martin, T., Anissimov, Y., & Rahman, A. (2018). Rutting and Roughness of Flood-Affected Pavements: Literature Review and Deterioration Models. Journal of Infrastructure Systems, 24(2), 1–10. https://doi.org/10.1061/(asce)is.1943-555x.0000413
Sultana, M., Chai, G., Martin, T., & Chowdhury, S. (2015). A Study on the Flood Affected Flexible Pavements in Australia. https://doi.org/10.13140/RG.2.1.1602.4086
Sultana, M., Chowdhury, S., Chai, G., & Martin, T. (2016). Modelling rapid deterioration of flooded pavements. Road and Transport Research, 25(2), 3–14.
Tao, M., Mallick, R. B., Institute, W. P., Development, L. D. of T. and, & Administration, F. H. (2020). Best Practices for Assessing Roadway Damages Caused by Flooding. 70808(225), 76p. https://www.ltrc.lsu.edu/pdf/2020/FR_615.pdf%0Ahttps://rosap.ntl.bts.gov/view/dot/56249%0Ahttps://trid.trb.org/view/1861013
Voskaki, A., Budd, T., & Mason, K. (2023). The impact of climate hazards to airport systems: a synthesis of the implications and risk mitigation trends. Transport Reviews, 43(4), 652–675. https://doi.org/10.1080/01441647.2022.2163319
Wang, Y., Huang, Y., Rattanachot, W., Lau, K. K., & Suwansawas, S. (2015). Improvement of pavement design and management for more frequent flooding caused by climate change. Advances in Structural Engineering, 18(4), 487–496. https://doi.org/10.1260/1369-4332.18.4.487
Yu-Shan, A., & Shakiba, M. (2021). Flooded Pavement: Numerical Investigation of Saturation Effects on Asphalt Pavement Structures. Journal of Transportation Engineering, Part B: Pavements, 147(3), 1–12. https://doi.org/10.1061/jpeodx.0000276
