相变材料 (PCM) 生物炭复合材料在净零建筑环境应用中的实验研究

Mohamed Katish , Stephen Allen , Adam Squires , Veronica Ferrandiz-Mas
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引用次数: 0

摘要

本研究提出了一种新颖且可持续的方法,利用真空浸渍生物炭将十八烷相变材料(PCM)融入砂浆和石膏等传统建筑材料中。通过优化浸渍条件,PCM-生物炭复合材料的 PCM 含量达到 62.21%,差示扫描量热仪(DSC)测得的潜热能量约为 116.7 J.g-1。热重分析 (TGA) 证实了该复合材料在高温下的稳定性,而加速 DSC 则验证了其相变能力和超过 300 次循环的稳定性。通过扫描电子显微镜 (SEM)、小角 X 射线散射 (SAXS)、X 射线衍射 (XRD) 和固态质子核磁共振 (1H NMR) 进行的表征验证了 PCM 在生物炭孔隙中的保留情况,并揭示了 PCM 与生物炭之间的相互作用。此外,生物炭的非胶凝性也得到了证实。工作性测试表明,随着砂浆中 PCM 生物炭含量的增加,稠度也会降低。当 PCM 生物炭的砂替代率为 40%时,28 天后的抗压强度最初会降低 45.50%,但 120 天后会提高到 43 兆帕。石膏样品在改造应用中保持了足够的强度(2 兆帕),这表明 PCM 生物炭复合材料具有增强建筑材料热能储存的潜力,从而支持净零建筑目标的实现。
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Experimental study of phase change material (PCM) biochar composite for net-zero built environment applications
This study presents a novel and sustainable method for integrating octadecane phase change material (PCM) into traditional building materials like mortar and gypsum using vacuum-impregnated biochar. Optimising the impregnation conditions resulted in a PCM-biochar composite with 62.21 % PCM loading and a latent heat energy of approximately 116.7 J.g−1, as measured by Differential Scanning Calorimetry (DSC). Thermogravimetric Analysis (TGA) confirmed the composite’s stability at high temperatures, while accelerated DSC validated its phase change capability and stability over 300 cycles. Characterisation via Scanning Electron Microscopy (SEM), Small-Angle X-ray Scattering (SAXS), X-ray Diffraction (XRD), and Solid-State Proton Nuclear Magnetic Resonance (1H NMR) verifies PCM retention within biochar pores and reveals interactions between PCM and biochar. Additionally, the non-pozzolanic nature of biochar is confirmed. Workability tests show reduced consistency with increased PCM-biochar content in mortar. At 40 % sand replacement rate with PCM-biochar, the compressive strength initially decreases by 45.50 % after 28 days, but it improves to 43 MPa after 120 days. Gypsum samples retain adequate strength for retrofitting applications (2 MPa), demonstrating the potential of PCM-biochar composites to enhance thermal energy storage in building materials, thereby supporting Net-zero building objectives.
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