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Photo-thermal conversion properties of hybrid CuO-MWCNT/H2O nanofluids for direct solar thermal energy harvest

机译:杂交CuO-MWCNT / H2O纳米流体直接太阳能热能收获的光热转换性能

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Water-based hybrid nanofluids with CuO and multi-walled carbon nanotube (MWCNT) were prepared and well dispersed. The optical absorption properties and photo-thermal conversion performance of hybrid CuO-MWCNT/H2O nanofluids at different concentration mixing ratios (CMRs) were experimentally tested and compared to evaluate the solar thermal energy harvest capability. The mixture of CuO-MWCNT nanofluids significantly enhanced solar energy spectral absorption as compared with individual CuO or MWCNT nanofluids, and the extinction coefficients of hybrid nanofluids were mostly equal to the sum of individual components. At appropriate CuO/MWCNT CMRs, the solar weighted absorption fractions of hybrid nanofluids are almost 100% at an optical penetration distance of 1 cm. Besides, the photo-thermal conversion performance of hybrid nanofluids was largely superior to individual nanofluids but highly dependent on the CMR, and an excessive addition of individual component could lower the performance. At a CuO/MWCNT CMR of 0.15 wt%/0.005 wt %, a maximum terminal temperature rise of 14.1 degrees C was achieved with respect to DI water after a light irradiation time duration of 45 min. The coexistence and interaction of CuO nanoparticles and MWCNT fibers in the aqueous suspension at evaluated temperatures were took into account to explain the optical absorption behavior and then the photo-thermal conversion properties. This study suggests that hybrid CuO-MWCNT/H2O nanofluids at appropriate CMRs provide a potential alternative in direct solar thermal energy harvest.
机译:制备水基杂交纳米流体和多壁碳纳米管(MWCNT)并良好分散。实验测试并比较不同浓度混合比(CMRS)以不同浓度混合比(CMRS)的杂化CuO-MWCNT / H2O纳米流体的光学吸收性能和光热转换性能,以评价太阳能热能收获能力。与单独的CuO或MWCNT纳米流体相比,CuO-MWCNT纳米流体的混合物显着增强了太阳能谱吸收,并且杂交纳米流体的消光系数大多等于单个组分的总和。在适当的CuO / MWCNT CMR时,杂交纳米流体的太阳加权吸收级分几乎100%在1cm的光学穿透距离处。此外,杂种纳米流体的光热转换性能大大于单个纳米流体,但高度依赖于CMR,并且过量添加单个组分可降低性能。在0.15wt%/ 0.005wt%的CuO / MWCNT CMR时,在45分钟为45分钟后,相对于DI水实现了14.1℃的最大末端温度升高。考虑了CuO纳米粒子和MWCNT纤维在水悬浮液中的共存和相互作用以解释光学吸收行为,然后是光热转化性能。该研究表明,在适当的CMRS下杂交CuO-MWCNT / H2O纳米流体提供直接太阳能热能收获的潜在替代品。

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