Thermal conductivity of cementitious composites containing microencapsulated phase change materials. (January 2017)
- Record Type:
- Journal Article
- Title:
- Thermal conductivity of cementitious composites containing microencapsulated phase change materials. (January 2017)
- Main Title:
- Thermal conductivity of cementitious composites containing microencapsulated phase change materials
- Authors:
- Ricklefs, Alex
Thiele, Alexander M.
Falzone, Gabriel
Sant, Gaurav
Pilon, Laurent - Abstract:
- Highlights: The thermal conductivity of cementitious composites was measured between 10 and 50 °C. Cement paste and cement mortar embedded with microencapsulated PCM were considered. The thermal conductivity was independent of temperature despite the phase change. Adding PCM microcapsules to cementitious materials reduced their conductivity. The Felske model for three-component composites agreed well with measurements. Abstract: This paper investigates the effects of adding microencapsulated phase change materials (PCM) on the thermal conductivity of cement paste and cement mortar composites. Embedding cementitious composites with microencapsulated PCM has been considered a promising method for increasing the thermal mass of buildings to achieve greater energy efficiency and for reducing the risks of thermal cracking in pavements. Cement paste and cement mortar samples were synthesized with a constant water to cement ratio of 0.45. Both contained microencapsulated PCM with diameter ranging from 17–20 μm, volume fraction up to 30%, and a melting temperature around 24 °C. The cement mortar also contained quartz grains 150–600 μm in diameter such that the sum of the volume fractions of quartz and microencapsulated PCM was fixed at 55%. All samples were aged for more than 28 days. Their effective density and free moisture content were systematically measured. A guarded hot plate apparatus was designed, assembled, and validated according to the ASTM C177-13 to measure theHighlights: The thermal conductivity of cementitious composites was measured between 10 and 50 °C. Cement paste and cement mortar embedded with microencapsulated PCM were considered. The thermal conductivity was independent of temperature despite the phase change. Adding PCM microcapsules to cementitious materials reduced their conductivity. The Felske model for three-component composites agreed well with measurements. Abstract: This paper investigates the effects of adding microencapsulated phase change materials (PCM) on the thermal conductivity of cement paste and cement mortar composites. Embedding cementitious composites with microencapsulated PCM has been considered a promising method for increasing the thermal mass of buildings to achieve greater energy efficiency and for reducing the risks of thermal cracking in pavements. Cement paste and cement mortar samples were synthesized with a constant water to cement ratio of 0.45. Both contained microencapsulated PCM with diameter ranging from 17–20 μm, volume fraction up to 30%, and a melting temperature around 24 °C. The cement mortar also contained quartz grains 150–600 μm in diameter such that the sum of the volume fractions of quartz and microencapsulated PCM was fixed at 55%. All samples were aged for more than 28 days. Their effective density and free moisture content were systematically measured. A guarded hot plate apparatus was designed, assembled, and validated according to the ASTM C177-13 to measure the effective thermal conductivity of the aged specimens of cement paste and cement mortar without and with microencapsulated PCM. Measurements were performed between 10 and 40 °C, encompassing the entire PCM phase change temperature window. The effective thermal conductivity of both the cement paste and the cement mortar composites was found to be nearly independent of temperature in the range considered. It also decreased as the volume fraction of microencapsulated PCM increased. Finally, excellent agreement was obtained between experimental data and the effective medium approximation derived by Felske (2004) for core–shell–matrix composites. These results can be used to design cementitious composite materials containing microencapsulated PCMs for energy efficient buildings and crack-resistant pavements. … (more)
- Is Part Of:
- International journal of heat and mass transfer. Volume 104(2017:Jan.)
- Journal:
- International journal of heat and mass transfer
- Issue:
- Volume 104(2017:Jan.)
- Issue Display:
- Volume 104 (2017)
- Year:
- 2017
- Volume:
- 104
- Issue Sort Value:
- 2017-0104-0000-0000
- Page Start:
- 71
- Page End:
- 82
- Publication Date:
- 2017-01
- Subjects:
- Thermal conductivity -- Phase change materials -- Microencapsulated -- Cement -- Mortar -- Core–shell–matrix composites
Heat -- Transmission -- Periodicals
Mass transfer -- Periodicals
Chaleur -- Transmission -- Périodiques
Transfert de masse -- Périodiques
Electronic journals
621.4022 - Journal URLs:
- http://www.sciencedirect.com/science/journal/00179310 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.ijheatmasstransfer.2016.08.013 ↗
- Languages:
- English
- ISSNs:
- 0017-9310
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4542.280000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 8226.xml