Optical characterization of alumina darkened with boron carbide inclusions for solar energy applications

IF 6.3 2区 材料科学 Q2 ENERGY & FUELS Solar Energy Materials and Solar Cells Pub Date : 2025-04-08 DOI:10.1016/j.solmat.2025.113619
Simone Failla , Elisa Sani , Diletta Sciti
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Abstract

Dark colored Al2O3-B4C composites with 5–50 vol% B4C additions were consolidated by hot pressing. The optical properties were investigated to evaluate new potential applications as solar receivers in concentrating solar power. The thermal emittance was estimated from 400 to 1700 K, as well as the opto-thermal efficiency when these materials are used as solar radiation absorbers in concentrating solar plants, for three exemplifying values of solar concentration ratio C, representative of different solar plants architectures. Efficiency values for the composites was increased by four times with respect to conventional white Al2O3 (for instance, at 800 K and C = 3000 we found 0.88 versus 0.20, at 1300 K 0.83 vs. 0.19) and remarkably, were also higher that the most advanced solar absorber currently in use in solar plants, namely SiC (efficiency 0.84 or 0.81 in the mentioned cases). Complementarily, the effect of B4C on compaction behavior, microstructure and mechanical properties of the composites was also investigated. The addition of 50 vol% B4C significantly increased hardness and toughness compared to pure alumina, which could be of interest for structural applications, among others.
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碳化硼包裹体暗化氧化铝在太阳能应用中的光学特性
采用热压法对添加5-50 vol% B4C的深色Al2O3-B4C复合材料进行固结。研究了该材料的光学特性,以评估其作为聚光太阳能接收器的潜在应用。在聚光太阳能电站中,这些材料作为太阳辐射吸收剂使用时,其热发射度在400 ~ 1700 K之间,光热效率在400 ~ 1700 K之间,以三个太阳能聚光比C为例值,代表了不同的太阳能电站结构。复合材料的效率值比传统的白色Al2O3提高了四倍(例如,在800 K和C = 3000时,我们发现0.88比0.20,在1300 K时,我们发现0.83比0.19),值得注意的是,它也高于目前在太阳能发电厂使用的最先进的太阳能吸收剂,即SiC(效率0.84或0.81)。此外,还研究了B4C对复合材料的压实性能、微观结构和力学性能的影响。与纯氧化铝相比,添加50 vol% B4C显著提高了硬度和韧性,这可能对结构应用等感兴趣。
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来源期刊
Solar Energy Materials and Solar Cells
Solar Energy Materials and Solar Cells 工程技术-材料科学:综合
CiteScore
12.60
自引率
11.60%
发文量
513
审稿时长
47 days
期刊介绍: Solar Energy Materials & Solar Cells is intended as a vehicle for the dissemination of research results on materials science and technology related to photovoltaic, photothermal and photoelectrochemical solar energy conversion. Materials science is taken in the broadest possible sense and encompasses physics, chemistry, optics, materials fabrication and analysis for all types of materials.
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