Phase-change materials must now be used during construction to reduce greenhouse gas emissions and boost energy efficiency. Considering concrete makes up the majority of construction materials worldwide, incorporating PCMs into concrete can greatly increase a structure's energy efficiency. There has been a growing interest in phase change materials (PCMs) in recent years. By utilizing the appropriate PCM and integration approach, the majority of issues associated with utilizing PCM in concrete may be resolved. In this work, Thermal Storage Light Weight Aggregate (TSLWA) was produced by incorporating pumice stone into Paraffin wax. The concrete cube were cast with different replacement ratios of TSLWA with LWA such as 0%, 25%, 50%, 75%, and 100%. The study revealed that increasing PCM content reduced water absorption, with the control sample absorbing 8.5% water compared to only 1.8% for the 100% PCM sample. Compressive strength decreased with higher PCM percentages, with the 100% PCM sample showing significant reduction, emphasizing the need for a balance between thermal properties and structural integrity. Thermal analysis showed that paraffin wax exhibited thermal transitions around 50 degrees C, demonstrating stable thermal behavior up to 300 degrees C. Microstructural examination revealed altered bonding strength due to paraffin wax-filled aggregates, and leakage tests highlighted the effectiveness of epoxy resin coatings in reducing water seepage. Overall, PCM-impregnated pumice concrete improves moisture resistance and thermal performance, offering a promising solution for sustainable construction, though careful consideration of PCM concentration is needed to maintain mechanical strength.
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Adesina Adeyemi, 2019, Renewable Energy and Environmental Sustainability, V4, DOI 10.1051/rees/2019006
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Szent Istvan Univ, Mech Engn Doctoral Sch, Pater K U 1, H-2100 Godollo, Hungary
Szent Istvan Univ, Fac Mech Engn, Dept Bldg Serv & Environm Engn, Pater K U 1, H-2100 Godollo, Hungary
Univ Misan, Dept Mech Engn, Fac Engn, Al Amarah City 62001, Misan Province, IraqSzent Istvan Univ, Mech Engn Doctoral Sch, Pater K U 1, H-2100 Godollo, Hungary
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Lebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, LebanonLebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
Faraj, Khaireldin
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Khaled, Mahmoud
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Faraj, Jalal
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Int Univ Beirut, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
Lebanese Univ, Fac Technol, Saida, LebanonLebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
Faraj, Jalal
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Hachem, Farouk
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Lebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, LebanonLebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
机构:
Szent Istvan Univ, Mech Engn Doctoral Sch, Pater K U 1, H-2100 Godollo, Hungary
Szent Istvan Univ, Fac Mech Engn, Dept Bldg Serv & Environm Engn, Pater K U 1, H-2100 Godollo, Hungary
Univ Misan, Dept Mech Engn, Fac Engn, Al Amarah City 62001, Misan Province, IraqSzent Istvan Univ, Mech Engn Doctoral Sch, Pater K U 1, H-2100 Godollo, Hungary
机构:
Lebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, LebanonLebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
Faraj, Khaireldin
;
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Khaled, Mahmoud
;
Faraj, Jalal
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Int Univ Beirut, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
Lebanese Univ, Fac Technol, Saida, LebanonLebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon
Faraj, Jalal
;
Hachem, Farouk
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h-index: 0
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Lebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, LebanonLebanese Int Univ, Energy & Thermofluid Grp, POB 146404, Beirut, Lebanon