663
Views
6
CrossRef citations to date
0
Altmetric
Research Article

Incorporating phase change materials in asphalt pavements to melt snow and ice

ORCID Icon, ORCID Icon & ORCID Icon
Article: 2041195 | Received 10 Jun 2021, Accepted 07 Feb 2022, Published online: 28 Feb 2022

References

  • Anupam, B.R., Sahoo, U.C., and Rath, P, 2020. Phase change materials for pavement applications: A review. Construction and Building Materials, 247, 118553.
  • Beckett, G., MacKenzie, J.A., and Robertson, M.L, 2001. A moving mesh finite element method for the solution of two-dimensional Stefan problems. Journal of Computational Physics, 168 (2), 500–518.
  • Cao, P, et al., 2010. Effects of contaminants on skid resistance of asphalt pavements. In: Traffic and Transportation studies 2010, 1341–1351. Reston, VA: American Society of Civil Engineers.
  • Chen, M., et al., 2011. Study of ice and snow melting process on conductive asphalt solar collector. Solar Energy Materials and Solar Cells, 95 (12), 3241–3250.
  • Chen, Y., et al., 2020. Application of phase change material in asphalt mixture – A review. Construction and Building Materials, 263, 120219.
  • Esmaeeli, H.S., et al., 2018. Numerical analysis of the freeze-thaw performance of cementitious composites that contain phase change material (PCM). Materials & Design, 145, 74–87.
  • Fan, J., et al., 2021. Liquid thermal conductivity of three biodiesel compounds: methyl myristate, methyl laurate and methyl caprate. The Journal of Chemical Thermodynamics, 155, 106374.
  • Fares, H., et al., 2012. Modelling the performance of pavement marking in cold weather conditions. Structure and Infrastructure Engineering, 8 (11), 1067–1079.
  • Farnam, Y., et al., 2017. Incorporating phase change materials in concrete pavement to melt snow and ice. Cement and Concrete Composites, 84, 134–145.
  • Giuliani, F., et al., 2012. Effectiveness of sodium chloride-based anti-icing filler in asphalt mixtures. Construction and Building Materials, 30, 174–179.
  • Guo, M., et al., 2020. A review of phase change materials in asphalt binder and asphalt mixture. Construction and Building Materials, 258, 119565.
  • Hassn, A., et al., 2016. Effect of air voids content on thermal properties of asphalt mixtures. Construction and Building Materials, 115, 327–335.
  • Hekmatfar, A., et al., 2015. Modifying laboratory mixture design to improve field compaction. Road Materials and Pavement Design, 16 (sup2), 149–167.
  • Incropera, F.P, 2007. Fundamentals of heat and mass transfer (6th ed). Hoboken, NJ: John Wiley.
  • Jin, J., et al., 2017. Preparation and thermal properties of mineral-supported polyethylene glycol as form-stable composite phase change materials (CPCMs) used in asphalt pavements. Scientific Reports, 7 (1), 1–10.
  • Juli-Gándara, L., et al., 2020. Effect of sodium chloride on the modulus and fatigue life of bituminous mixtures. Materials, 13, 2126.
  • Kakar, M.R., et al., 2019a. Investigating bitumen's direct interaction with Tetradecane as potential phase change material for low temperature applications. Road Materials and Pavement Design, 21 (8), 2356–2363.
  • Kakar, M.R., et al., 2019b. Thermal and rheological characterization of bitumen modified with microencapsulated phase change materials. Construction and Building Materials, 215, 171–179.
  • Kakar, M.R., et al., 2019c. Effects of aging on asphalt binders modified with microencapsulated phase change material. Composites Part B: Engineering, 173 (June), 107007.
  • Kodippily, S., et al., 2018. Effects of extreme climatic conditions on pavement response. Road Materials and Pavement Design, 21 (5), 1413–1425.
  • Lazaridis, A, 1970. A numerical solution of the multidimensional solidification (or melting) problem. International Journal of Heat and Mass Transfer, 13 (9), 1459–1477.
  • Liston, L.C., et al., 2016. Binary mixtures of fatty acid methyl esters as phase change materials for low temperature applications. Applied Thermal Engineering, 96, 501–507.
  • Liu, P, et al., 2018. Simulation of asphalt mixtures made by different compaction methods. In: Advances in Materials and Pavement Performance Prediction - Proceedings of the International AM3P Conference, 2018, 162, 145–148.
  • Mallick, R.B., et al., 2014. Use of system dynamics to understand long-term impact of climate change on pavement performance and maintenance cost. Transportation Research Record: Journal of the Transportation Research Board, 2455, 1–9.
  • Montoya, M.A., and Haddock, J.E, 2019. Estimating asphalt mixture volumetric properties using seemingly unrelated regression equations approaches. Construction and Building Materials, 225, 829–837.
  • Mull, D.M., and Sitzabee, W.E, 2012. Paint pavement marking performance prediction model. Journal of Transportation Engineering, 138 (5), 618–624.
  • Papagiannakis, A.T., and Masad, E., 2008. Pavement design and materials. Hoboken, N.J.: John Wiley.
  • Pauly, J., et al., 2014. Heat capacity measurements of pure fatty acid methyl esters and biodiesels from 250 to 390 K. Fuel, 137, 21–27.
  • Pratas, M.J., et al., 2011. Densities and viscosities of minority fatty acid methyl and ethyl esters present in biodiesel. Journal of Chemical & Engineering Data, 56 (5), 2175–2180.
  • Refaa, Z., et al., 2018. Numerical study on the effect of phase change materials on heat transfer in asphalt concrete. International Journal of Thermal Sciences, 133 (March), 140–150.
  • Riehm, M., et al., 2012. Ice formation detection on road surfaces using infrared thermometry. Cold Regions Science and Technology, 83–84, 71–76.
  • Sakulich, A.R., and Bentz, D.P, 2012. Incorporation of phase change materials in cementitious systems via fine lightweight aggregate. Construction and Building Materials, 35, 483–490.
  • Sangiorgi, C., et al., 2018. Thermal analysis of asphalt concrete pavements heated with amorphous metal technology. Advances in Materials Science and Engineering, 2018.
  • Sassani, A., et al., 2018. Development of carbon fiber-modified electrically conductive concrete for implementation in Des Moines International Airport. Case Studies in Construction Materials, 8 (October 2017), 277–291.
  • Shariful Islam, M., 2019. Effect of sodium chloride on properties of bitumen. Journal of Traffic and Transportation Engineering, 7 (2), 85–95.
  • Sharma, A., et al., 2009. Review on thermal energy storage with phase change materials and applications. Renewable and Sustainable Energy Reviews, 13 (2), 318–345.
  • Si, W., et al., 2020. Temperature responses of asphalt pavement structure constructed with phase change material by applying finite element method. Construction and Building Materials, 244, 118088.
  • Smith, M, 2009. Abaqus/Standard user's manual, version 6.9. Providence, RI: Dassault Systèmes Simulia Corp.
  • Wang, Z., et al., 2021. Three-dimensional characterization of air voids in porous asphalt concrete. Construction and Building Materials, 272, 121633.
  • Wei, K., Wang, Y., and Ma, B, 2019. Effects of microencapsulated phase change materials on the performance of asphalt binders. Renewable Energy, 132, 931–940.
  • Yavuzturk, C., Ksaibati, K., and Chiasson, A.D, 2005. Assessment of temperature fluctuations in asphalt pavements due to thermal environmental conditions using a two-dimensional, transient finite-difference approach. Journal of Materials in Civil Engineering, 17 (4), 465–475.
  • Yi, X., et al., 2014. State of the art and practice of pavement anti-icing and de-icing techniques sciences in cold and arid regions state of the art and practice of pavement anti-icing and de-icing techniques. Sciences in Cold and Arid Regions, 6 (1), 14–21.
  • Yu, X., et al., 2013. The effects of salt on rheological properties of asphalt after long-term aging. The Scientific World Journal, 2013.
  • Zhou, X., et al., 2018. Mechanical and thermal performance of macro-encapsulated phase change materials for pavement application. Materials, 11 (8), 1–18.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.