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Investigation of pinacone hexahydrate as phase change material for thermal energy storage around 45°C

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  • Rathgeber, Christoph
  • Schmit, Henri
  • Hennemann, Peter
  • Hiebler, Stefan

Abstract

Phase change materials (PCM) with a transition temperature around 45°C can be used in various applications, e.g. as intermediate storages for heat pumps in space heating systems, for the thermal protection of battery systems or to increase the efficiency of dishwashers by preheating water. At that temperature level, typical PCMs are either salt hydrates or organic materials like paraffins and fatty acids. Salt hydrates usually provide higher volumetric enthalpy changes, whereas for organic PCMs, corrosion is generally less problematic. Organic hydrates combine the advantages of salt hydrates and organic PCMs. For the diol pinacone, the existence of a hexahydrate with a melting temperature around 45°C and a high melting enthalpy of about 300J/g was reported in literature. To investigate the applicability of pinacone hexahydrate as a PCM, we conducted a detailed calorimetric characterisation of its phase change. DSC and T-History measurements were performed to determine the enthalpy curves for melting and crystallisation. We measured an enthalpy change of (340±17)J/g ((332±17)kJ/l) between 32°C and 47°C, which is a suitable operating temperature range. In addition, enthalpy changes within 15K around the phase change of PCMs with similar melting temperatures (docosane, lauric acid, zinc nitrate tetrahydrate) were measured and confirmed the promising properties of pinacone hexahydrate for compact thermal energy storage.

Suggested Citation

  • Rathgeber, Christoph & Schmit, Henri & Hennemann, Peter & Hiebler, Stefan, 2014. "Investigation of pinacone hexahydrate as phase change material for thermal energy storage around 45°C," Applied Energy, Elsevier, vol. 136(C), pages 7-13.
  • Handle: RePEc:eee:appene:v:136:y:2014:i:c:p:7-13
    DOI: 10.1016/j.apenergy.2014.09.034
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    References listed on IDEAS

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    1. Oró, E. & de Gracia, A. & Castell, A. & Farid, M.M. & Cabeza, L.F., 2012. "Review on phase change materials (PCMs) for cold thermal energy storage applications," Applied Energy, Elsevier, vol. 99(C), pages 513-533.
    2. Lazaro, Ana & Peñalosa, Conchita & Solé, Aran & Diarce, Gonzalo & Haussmann, Thomas & Fois, Magali & Zalba, Belén & Gshwander, Stefan & Cabeza, Luisa F., 2013. "Intercomparative tests on phase change materials characterisation with differential scanning calorimeter," Applied Energy, Elsevier, vol. 109(C), pages 415-420.
    3. 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.
    4. Solé, Aran & Miró, Laia & Barreneche, Camila & Martorell, Ingrid & Cabeza, Luisa F., 2013. "Review of the T-history method to determine thermophysical properties of phase change materials (PCM)," Renewable and Sustainable Energy Reviews, Elsevier, vol. 26(C), pages 425-436.
    5. Jankowski, Nicholas R. & McCluskey, F. Patrick, 2014. "A review of phase change materials for vehicle component thermal buffering," Applied Energy, Elsevier, vol. 113(C), pages 1525-1561.
    6. Rao, Zhonghao & Wang, Shuangfeng & Peng, Feifei, 2012. "Self diffusion of the nano-encapsulated phase change materials: A molecular dynamics study," Applied Energy, Elsevier, vol. 100(C), pages 303-308.
    7. Xiao, X. & Zhang, P. & Li, M., 2013. "Preparation and thermal characterization of paraffin/metal foam composite phase change material," Applied Energy, Elsevier, vol. 112(C), pages 1357-1366.
    8. 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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    1. Zhang, Suling & Wu, Wei & Wang, Shuangfeng, 2018. "Experimental investigations of Alum/expanded graphite composite phase change material for thermal energy storage and its compatibility with metals," Energy, Elsevier, vol. 161(C), pages 508-516.

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