Publication:
Investigation of physico-mechanical, thermal properties and solar thermoregulation performance of shape-stable attapulgite based composite phase change material in foam concrete

dc.contributor.authorGencel O., Ustaoglu A., Benli A., Hekimoğlu G., Sarı A., Erdogmus E., Sutcu M., Kaplan G., Yavuz Bayraktar O.
dc.contributor.authorGencel, O, Ustaoglu, A, Benli, A, Hekimoglu, G, Sari, A, Erdogmus, E, Sutcu, M, Kaplan, G, Bayraktar, OY
dc.date.accessioned2023-05-09T11:37:36Z
dc.date.available2023-05-09T11:37:36Z
dc.date.issued2022-04-01
dc.date.issued2022.01.01
dc.description.abstractThermal energy storage (TES) by means of phase change materials (PCM) is of great concern to decrease heating and cooling loads. In building envelopes, one of the most efficient TES methods is integration of PCMs with construction materials for preventing temperature fluctuations by taking advantage of energy storage/release feature of PCMs. Aim of this research was to develop novel foam concretes containing shape-stable attapulgite (ATP) based composite PCM as TES material. Shape-stable ATP/Capric-Myristic acid eutectic mix composite (ATP/C-M) was incorporated into foam concrete at three different ratios (15, 30 and 45 wt%) and characterized. Impacts of ATP/C-M inclusion on physico-mechanic and TES characteristics of foam concretes including composite PCM (FCPCM) were worked systematically. DSC results showed that ATP/C-M composite melts at 22.12 °C with latent heat storage capacity of 74.97 J/g, whereas FCPCM-45 melts at 21.05 °C with latent heat storage ability of 10.98 J/g. Inclusion of ATP/C-M instead of silica sand decreased flow diameter of foam concretes. Compared to reference mixture FCPCM-0, compressive strengths of FCPCM-15, FCPCM-30 and FCPCM-45 samples were reduced in the range of 11–46% while reduction in flexural strength was found to be about 35–57% at 28th day. All FCPCM samples showed lower thermal conductivity values than the specified value and could be defined as better insulation materials. Solar thermoregulation performances of foam concretes containing ATP/C-M were comparatively tested in laboratory and also actual ambient conditions. Results showed that foam concretes with acceptable mechanical properties can be used for internal temperature controlling and energy saving in buildings.
dc.identifier.doi10.1016/j.solener.2022.02.042
dc.identifier.eissn1471-1257
dc.identifier.endpage62
dc.identifier.issn0038-092X
dc.identifier.scopus2-s2.0-85125585021
dc.identifier.startpage51
dc.identifier.urihttps://hdl.handle.net/20.500.12597/11988
dc.identifier.volume236
dc.identifier.wosWOS:000792758500004
dc.relation.ispartofSolar Energy
dc.relation.ispartofSOLAR ENERGY
dc.rightsfalse
dc.subjectAttapulgite | Carbon emission | Energy saving | Foam concrete | Phase change material | Thermal energy storage
dc.titleInvestigation of physico-mechanical, thermal properties and solar thermoregulation performance of shape-stable attapulgite based composite phase change material in foam concrete
dc.titleInvestigation of physico-mechanical, thermal properties and solar thermoregulation performance of shape-stable attapulgite based composite phase change material in foam concrete
dc.typeArticle
dspace.entity.typePublication
oaire.citation.volume236
relation.isScopusOfPublication954c713e-fe4a-4b04-8553-5623232e3243
relation.isScopusOfPublication.latestForDiscovery954c713e-fe4a-4b04-8553-5623232e3243
relation.isWosOfPublication2ee954e6-b39e-4350-9c6a-566de0d3e8f8
relation.isWosOfPublication.latestForDiscovery2ee954e6-b39e-4350-9c6a-566de0d3e8f8

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