氧化铜纳米颗粒增强无机相变材料热性能的实验研究

Reji Kumar, M. Samykano, A. Pandey, Z. Said, K. Kadirgama, V. Tyagi
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引用次数: 7

摘要

由于当前的环境灾难和能源危机,政府和行业转向可持续、可再生和清洁能源。这种情况促使人们从所有可用的资源中收集能量。相变材料(PCM)是一种潜热储存(LHS)物质,已被证明是一种有潜力的热能储存技术。然而,相变材料的缺点是导热系数较低,传热和蓄热能力较小。本研究分析了十二烷基苯磺酸钠(SDBS)将六种不同质量浓度(0.1%、0.5%、1.0%、2.0%、3.0%和5.0%)的氧化铜(CuO)纳米颗粒分散到水合盐PCM中的可行性和增强导热性。采用两步法对纳米颗粒和PCM进行分散。研究工作的主要目的是表征已开发的CuO增强盐水合物PCM的元素映射、化学稳定性、热稳定性和导热性。傅里叶变换红外光谱(FT-IR)表明,CuO纳米颗粒集成良好,不与纳米颗粒发生化学反应,PCM意味着化学稳定。热重分析(TGA)结果表明,制备的复合盐水合物PCM在474℃时热稳定。此外,3.0wt%的CuO纳米颗粒分散在盐水合物PCM中的导热系数提高了87.39%。因此,新开发的纳米复合PCM是中低温太阳能TES应用的潜在材料。
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Experimental Investigations on Thermal Properties of Copper (II) Oxide Nanoparticles Enhanced Inorganic Phase Change Materials for Solar Thermal Energy Storage Applications
Due to the current environmental catastrophe and energy crises, the government and industries shift towards sustainable, renewable, and clean energy sources. This circumstance motivates the harvesting of energy from all available sources. Phase change materials (PCM) are latent heat storage (LHS) substances and have been proven one of the potential techniques for thermal energy storage (TES). However, PCMs possess some disadvantages lies lower thermal conductivity, due to that the heat transfer and heat storage capacity are less. In this present work, feasibility and thermal conductivity enhancement of dispersing Copper (II) Oxide (CuO) nanoparticles in six various weight concentrations (0.1%, 0.5%, 1.0%, 2.0%, 3.0%, and 5.0%) into the salt hydrate PCM with Sodium dodecylbenzene sulfonate (SDBS) were analyzed. A two-step method is adopted for dispersing nanoparticles and PCM. The key objective of the research work is to characterize the elemental mapping, chemical stability, thermal stability, and thermal conductivity of developed CuO enhanced salt hydrate PCM. The Fourier transform infrared (FT-IR) spectroscopy shows the CuO nanoparticles integrated well, and no chemical reaction occurs with nanoparticles, and PCM means chemically stable. The thermogravimetric analysis (TGA) reveals that prepared composite salt hydrate PCM are thermally stable up to 474°C. Furthermore, the thermal conductivity was enhanced by 87.39% during the dispersion of 3.0wt%CuO nanoparticles into salt hydrate PCM. Thus, the newly developed nanocomposite PCM is potential material for medium and low-temperature solar TES applications.
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