Climate Change and Transport Infrastructures: State of the Art
Abstract
:1. Introduction
2. Research Methodology
- Planning: Identification of the need which justifies the Systematic Literature Review. Particularly, the research questions are:
- ○
- What are the physical conditions induced by the climate change which interfere with transport infrastructures?
- ○
- Which are the methods and the technological solutions investigated at international level?
- ○
- What are pros and cons of the best practices adopted by road agency bodies?
- Conduction: Implementation of the search strategy which is compliant with the protocol defined in the previous phase;
- Reporting results: Description of the results, answers to the goal of the study, and discussion of the results [14].
3. Temperature
4. Floodings
5. Sea Level Rise
6. Discussion
- White or clear surface pavement materials, and permeable pavements can effectively undermine the urban heat island phenomenon; moreover, urban green infrastructures (UGI) can provide important benefits and mitigate consequences of urbanization. At this purpose, the Italian Decree about “Miminum Environmental Criteria” for urban environment [109] requires “cool” pavements (e.g., white stones, permeable concrete blocks, paving grids for grass parking lots, green walls) to prevent UHI. In very hot climates, passive countermeasure versus UHI should be adopted to improve the lives of citizens: e.g., air-conditioned bus stops, fresh air chambers, spraying cool water, wading pools. The technical performances of permeable pavement in terms of durability, and the economic, social and environmental consequences of passive countermeasures need further research;
- The most efficient and technically feasible storm water management strategies are: Permeable paving in areas with low traffic volumes and/or not heavy traffic loads; modular interlocking block pavements that contribute to reducing runoff; in severe conditions, water squares, underground water chambers, floodable parking are floodable multifunctional spaces useful to manage urban hydrological findings. The mechanical performances of permeable pavements, and their decay of effectiveness during the service life are the most critical issues to be investigated; moreover, environmental, social, and operational costs of floodable areas should be analyzed;
- Onerous armoring structures (e.g., dikes and sea walls) are the only defenses to SLR: Otherwise, citizens should leave coastal cities and retreat inland. Environment-friendly materials, construction and maintenance procedures have to be investigated.
7. Conclusions
Funding
Acknowledgments
Conflicts of Interest
References and Note
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Moretti, L.; Loprencipe, G. Climate Change and Transport Infrastructures: State of the Art. Sustainability 2018, 10, 4098. https://doi.org/10.3390/su10114098
Moretti L, Loprencipe G. Climate Change and Transport Infrastructures: State of the Art. Sustainability. 2018; 10(11):4098. https://doi.org/10.3390/su10114098
Chicago/Turabian StyleMoretti, Laura, and Giuseppe Loprencipe. 2018. "Climate Change and Transport Infrastructures: State of the Art" Sustainability 10, no. 11: 4098. https://doi.org/10.3390/su10114098
APA StyleMoretti, L., & Loprencipe, G. (2018). Climate Change and Transport Infrastructures: State of the Art. Sustainability, 10(11), 4098. https://doi.org/10.3390/su10114098