Published January 1, 2017 | Version v1
Journal article

PCM thermal storage design in buildings: Experimental studies and applications to solaria in cold climates

  • 1. University of Palermo, Dept. of Energy, Information Engineering and Mathematical Models (Italy)
  • 2. Concordia University, Dept. of Building, Civil and Environmental Engineering (Canada)

Description

Highlights: • This paper analyzes the performance of a building-integrated thermal storage system. • A wall opposing a glazed surface serves as phase change materials thermal storage. • The study is based on both experimental and simulation studies. • Heat is stored and released up to 6–8 h after solar irradiation. • Yearly heating requirements are reduced by 17% in a cold climate. - Abstract: As energy availability and demand often do not match, thermal energy storage plays a crucial role to take advantage of solar radiation in buildings: in particular, latent heat storage via phase-change material is particularly attractive due to its ability to provide high energy storage density. This paper analyzes the performance of a building-integrated thermal storage system to increase the energy performances of solaria in a cold climate. A wall opposing a highly glazed façade (south oriented) is used as thermal storage with phase change materials embedded in the wall. The study is based on both experimental and simulation studies. The concept considered is particularly suited to retrofits in a solarium since the PCM can be added as layers facing the large window on the vertical wall directly opposite. Results indicate that this PCM thermal storage system is effective during the whole year in a cold climate. The thermal storage allows solar radiation to be stored and released up to 6–8 h after solar irradiation: this has effects on both the reduction of daily temperature swings (up to 10 °C) and heating requirements (more than 17% on a yearly base). Coupling of the thermal storage system with natural ventilation is important during mid-seasons and summer to improve the PCM charge-discharge cycles and to reduce overheating. Results also show that cooling is less important than heating, reaching up to 20% of the overall annual energy requirements for the city of Montreal, Canada. Moreover, the phase change temperature range of the material used (18–24 °C) is below typical summer temperature levels in solaria, but the increase in thermal capacity of the room alone can reduce annual cooling requirements by up to 50%.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.apenergy.2016.10.046

Additional details

Identifiers

DOI
10.1016/j.apenergy.2016.10.046;
PII
S0306-2619(16)31489-1;

Publishing Information

Journal Title
Applied Energy
Journal Volume
185
Journal Issue
Part 1
Journal Page Range
p. 95-106
ISSN
0306-2619
CODEN
APENDX

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
48072908
Subject category
S42: ENGINEERING; S61: RADIATION PROTECTION AND DOSIMETRY;
Descriptors DEI
BUILDINGS; COOLING; IRRADIATION; LATENT HEAT STORAGE; PERFORMANCE; PHASE CHANGE MATERIALS; SIMULATION; SOLAR RADIATION
Descriptors DEC
ENERGY STORAGE; HEAT STORAGE; MATERIALS; RADIATIONS; STELLAR RADIATION; STORAGE

Optional Information

Copyright
Copyright (c) 2016 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.