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Recent Advances and Developments in Phase Change Materials in High-Temperature Building Envelopes: A Review of Solutions and Challenges

Farhan Lafta RashidPetroleum Engineering Department, College of Engineering, University of Kerbala, Karbala 56001, IraqAnmar DulaimiCollege of Engineering, University of Warith Al-Anbiyaa, Karbala 56001, IraqWadhah Amer HatemTechnical Institute of Baquba, Middle Technical University, Baquba 32001, IraqMudhar A. Al‐ObaidiTechnical Institute of Baquba, Middle Technical University, Baquba 32001, IraqArman AmeenDepartment of Building Engineering, Energy Systems and Sustainability Science, University of Gävle, 801 76 Gävle, SwedenMuhammad Asmail EleiwiElectromechanical Engineering Department, College of Engineering, University of Samarra, Samarra 34010, IraqSarah Abbas JawadDepartment of Energy Engineering, College of Engineering-Al-Musayab, University of Babylon, Babylon 51002, IraqLuís Filipe Almeida BernardoDepartment of Civil Engineering and Architecture, University of Beira Interior, GeoBioTec-UBI, 6201-001 Covilhã, PortugalJong Wan HuDepartment of Civil and Environmental Engineering, Incheon National University, Incheon 22022, Republic of Korea
2024en
ABI

Аннотация

The use of phase change materials (PCMs) has become an increasingly common way to reduce a building’s energy usage when added to the building envelope. This developing technology has demonstrated improvements in thermal comfort and energy efficiency, making it a viable building energy solution. The current study intends to provide a comprehensive review of the published studies on the utilization of PCMs in various constructions of energy-efficient roofs, walls, and ceilings. The research question holds massive potential to unlock pioneering solutions for maximizing the usefulness of PCMs in reducing cooling demands, especially in challenging high-temperature environments. Several issues with PCMs have been revealed, the most significant of which is their reduced effectiveness during the day due to high summer temperatures, preventing them from crystallizing at night. However, this review investigates how PCMs can delay the peak temperature time, reducing the number of hours during which the indoor temperature exceeds the thermal comfort range. Additionally, the utilization of PCMs can improve the building’s energy efficiency by mitigating the need for cooling systems during peak hours. Thus, selecting the right PCM for high temperatures is both critical and challenging. Insulation density, specific heat, and thermal conductivity all play a role in heat transfer under extreme conditions. This study introduces several quantification techniques and paves the way for future advancements to accommodate practical and technical solutions related to PCM usage in building materials.

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