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Corrosion of metal and metal alloy containers in contact with phase change materials (PCM) for potential heating and cooling applications

Author

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  • Moreno, Pere
  • Miró, Laia
  • Solé, Aran
  • Barreneche, Camila
  • Solé, Cristian
  • Martorell, Ingrid
  • Cabeza, Luisa F.

Abstract

Thermal energy storage (TES) using phase change materials (PCM) can be used for load shaving or peak load shifting when coupled to a heating, ventilation, and air-conditioning (HVAC) system such as heat pump. In these systems the PCM is embedded in packages or used in bulk, so the compatibility of the encapsulation materials and the PCM is a key factor to ensure long operational life of the system. Although corrosion caused by salts is known from the chemical industry, when these salts are used as PCM no corrosion data is available, since the salts are used without being in water solution. Producing new corrosion data is essential for PCM utilisation in new applications. In this study the corrosion rate of two metals and two metal alloys when they are in contact with different salt hydrate PCM is evaluated; in total eleven PCM, being four of them commercial PCM, are tested. Since they are PCM to be used for heating and cooling applications they are classified in two different groups to present the corrosion study. Results present the recommendation of using each PCM with the different metals and metal alloys according to the obtained corrosion rate and visual observation of the samples.

Suggested Citation

  • Moreno, Pere & Miró, Laia & Solé, Aran & Barreneche, Camila & Solé, Cristian & Martorell, Ingrid & Cabeza, Luisa F., 2014. "Corrosion of metal and metal alloy containers in contact with phase change materials (PCM) for potential heating and cooling applications," Applied Energy, Elsevier, vol. 125(C), pages 238-245.
  • Handle: RePEc:eee:appene:v:125:y:2014:i:c:p:238-245
    DOI: 10.1016/j.apenergy.2014.03.022
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    References listed on IDEAS

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    1. Tay, N.H.S. & Belusko, M. & Bruno, F., 2012. "Experimental investigation of tubes in a phase change thermal energy storage system," Applied Energy, Elsevier, vol. 90(1), pages 288-297.
    2. Cabeza, L.F. & Castell, A. & Barreneche, C. & de Gracia, A. & Fernández, A.I., 2011. "Materials used as PCM in thermal energy storage in buildings: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(3), pages 1675-1695, April.
    3. Oró, Eduard & Miró, Laia & Barreneche, Camila & Martorell, Ingrid & Farid, Mohammed M. & Cabeza, Luisa F., 2013. "Corrosion of metal and polymer containers for use in PCM cold storage," Applied Energy, Elsevier, vol. 109(C), pages 449-453.
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    11. Englmair, Gerald & Moser, Christoph & Furbo, Simon & Dannemand, Mark & Fan, Jianhua, 2018. "Design and functionality of a segmented heat-storage prototype utilizing stable supercooling of sodium acetate trihydrate in a solar heating system," Applied Energy, Elsevier, vol. 221(C), pages 522-534.
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