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Journal ArticleDOI

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

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

A review on phase change material (PCM) for sustainable passive cooling in building envelopes

TL;DR: In this article, a comprehensive list of different organic, inorganic and eutectic phase change materials appropriate for passive cooling in buildings is reviewed, and full-scale testing and numerical modeling are found to be the most popular investigative methods used for experimental and theoretical analysis of PCMs.
Journal ArticleDOI

Developments in organic solid–liquid phase change materials and their applications in thermal energy storage

TL;DR: In this paper, a review of organic phase change materials (PCMs) is presented, focusing on three aspects: the materials, encapsulation and applications of organic PCMs, and providing an insight on the recent developments in applications of these materials.
Journal ArticleDOI

Phase change materials (PCM) for cooling applications in buildings: A review

TL;DR: In this article, the authors present an overview of different phase change materials (PCM) applications in buildings for reducing cooling loads under different climate conditions, and the factors affecting the successful and the effective use of the PCM.
Journal ArticleDOI

Phase change materials and thermal energy storage for buildings

TL;DR: In this paper, a review of thermal energy storage (TES) in buildings using sensible, latent heat and thermochemical energy storage is presented, showing that sustainable heating and cooling with TES in buildings can be achieved through passive systems in building envelopes, phase change materials (PCM) in active systems, sorption systems, and seasonal storage.
References
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Journal ArticleDOI

Development of phase change materials based microencapsulated technology for buildings: a review

TL;DR: In this paper, an overview of the previous research work on microencapsulation technology for thermal energy storage incorporating the phase change materials (PCMs) in the building applications, along with few useful conclusive remarks concluded from the available literature.
Journal ArticleDOI

Microencapsulated PCM thermal-energy storage system

TL;DR: In this paper, a microencapsulated phase change material (PCM) for solar thermal-energy storage capacities has been investigated in terms of encapsulation efficiency and energy storage and release capacity.
Journal ArticleDOI

Performance enhancement in latent heat thermal storage system: A review

TL;DR: In this article, the influence of enhancement techniques on the thermal response of the PCM in terms of phase change rate and amount of latent heat stored/retrieved has been addressed as a main aspect.
Journal ArticleDOI

Polyethylene glycol (PEG)/diatomite composite as a novel form-stable phase change material for thermal energy storage

TL;DR: In this paper, the authors deal with the preparation, characterization and determination of thermal energy storage properties of polyethylene glycol (PEG)/diatomite composite as a novel form-stable composite phase change material (PCM).
Journal ArticleDOI

Micro-encapsulated phase-change materials integrated into construction materials

TL;DR: In this article, the authors describe the work done at Fraunhofer ISE within a German government-funded project over the last 5 years, extending from building simulations to first measurements of full-size rooms equipped with PCM.
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