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Journal ArticleDOI

Phase change materials integrated in building walls: A state of the art review

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TLDR
In this article, an extensive review on the incorporation of PCM into construction materials and elements by direct incorporation, immersion, encapsulation, shape-stabilization and form-stable composite PCMs is presented.
Abstract
The building sector is the dominant energy consumer with a total 30% share of the overall energy consumption and accounts for one-third of the greenhouse gas emissions around the world. Moreover, in recent years the energy demands for buildings have increased very rapidly due to increase in the growth rate of population and improvement in living standards of people. Furthermore, fossil fuels will continue to dominate the world's primary energy by 2030. Thus, the increase in energy demand, shortage of fossil fuels and environmental concerns has provided impetus to the development of sustainable building and renewable energy resources. Thermal energy storage is an efficient method for applying to building envelopes to improve the energy efficiency of buildings. This, in turn, reduces the environmental impact related to energy usage. The combination of construction materials and PCM is an efficient way to increase the thermal energy storage capacity of construction elements. Therefore, an extensive review on the incorporation of PCM into construction materials and elements by direct incorporation, immersion, encapsulation, shape-stabilization and form-stable composite PCMs is presented. For the first time, the differentiation between shape-stabilized and form-stable composite PCM has been made. Moreover, various construction materials such as diatomite, expanded perlite and graphite, etc. which are used as supports for form-stable composite PCM along with their worldwide availability are extensively discussed. One of the main aims of this review paper is to focus on the test methods which are used to determine the chemical compatibility, thermal properties, thermal stability and thermal conductivity of the PCM. Hence, the details related to calibration, sample preparation, test cell and analysis of test results are comprehensively covered. Finally, because of the renewed interest in integration of PCM in wallboards and concrete, an up-to-date review with focus on PCM enhanced wallboard and concrete for building applications is added.

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Citations
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Journal ArticleDOI

Enhanced thermal properties of novel shape-stabilized PEG composite phase change materials with radial mesoporous silica sphere for thermal energy storage

TL;DR: The DSC results indicated that the PEG/RMS ss-CPCM was a promising candidate for building thermal energy storage applications due to its large latent heat, suitable phase change temperature, good thermal reliability, as well as the excellent chemical compatibility and thermal stability.
Journal ArticleDOI

Phase change materials and energy efficiency of buildings: A review of knowledge

TL;DR: In this article, the connections between phase change materials (PCM) and energy efficiency and energy poverty are presented, and an exhaustive description of the PCM application in buildings, more specifically in walls, floors, ceilings and glazed areas, are also presented.
Journal ArticleDOI

A review on macro-encapsulated phase change material for building envelope applications

TL;DR: A comprehensive overview of macro-encapsulated PCM and its integration into building envelopes is provided and a number of important issues have seldom been addressed such as material selection and PCM melting processes at a component level, and optimal locations at a system level.
Journal ArticleDOI

Paraffin/diatomite/multi-wall carbon nanotubes composite phase change material tailor-made for thermal energy storage cement-based composites

TL;DR: In this paper, a paraffin/diatomite/MWCNTs composite PCM was designed for further applications in producing thermal energy storage cement-based composites.
Journal ArticleDOI

Thermal performance of buildings integrated with phase change materials to reduce heat stress risks during extreme heatwave events

TL;DR: In this paper, the authors investigated the potential applications of PCMs to be integrated into buildings to reduce heat stress risks during extreme heatwave periods through numerical simulations and showed that PCM refurbishment can effectively reduce the indoor heat stress risk, indicating a significant advantage in improving the occupant health and comfort.
References
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Journal ArticleDOI

A review on buildings energy consumption information

TL;DR: In this article, the authors analyzed available information concerning energy consumption in buildings, and particularly related to HVAC systems, and compared different types of building types and end uses in different countries.
Journal ArticleDOI

Review on thermal energy storage with phase change materials and applications

TL;DR: The use of a latent heat storage system using phase change materials (PCMs) is an effective way of storing thermal energy and has the advantages of high energy storage density and the isothermal nature of the storage process.
Journal ArticleDOI

Review on thermal energy storage with phase change: materials, heat transfer analysis and applications

TL;DR: In this paper, a review of the history of thermal energy storage with solid-liquid phase change has been carried out and three aspects have been the focus of this review: materials, heat transfer and applications.
Book

Concrete: Microstructure, Properties, and Materials

TL;DR: Concrete: Microstructure, Properties, and Materials as mentioned in this paper provides complete details on the microstructure-property relationship approach to provide scientific explanation for the strength and durability of concrete.
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