增强氧化亚铜纳米流体的导热性和稳定性:核糖介导的单步化学合成用于太阳能

D. Krishna Bhat , S. Pavan Kumar , U. Sandhya Shenoy
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引用次数: 0

摘要

随着温度的升高,光伏板的效率可能会降低,这促使人们对旨在最大化功率输出的热管理策略进行了广泛的研究。近年来,人们对利用纳米流体来提高光伏热电发电机(PV-TEG)系统的冷却效率越来越感兴趣,而不是传统的水冷却。这强调了研究创新合成方法以提高纳米流体的导热性和稳定性的潜力。我们采用一种简单直接的方法合成氧化亚铜纳米流体。这种基于溶液的技术将氧化亚铜颗粒的形成限制在纳米尺度上,使用十六烷基溴化铵作为封盖剂。我们的研究深入研究了各种参数对纳米颗粒在由1:1的水和乙二醇混合物组成的基础流体中形成和分散的影响。由此产生的纳米流体表现出牛顿行为,并表现出9个月的显著稳定性,同时导热系数显著增加,最高可达3.59 W m-1 K-1。事实证明,这种细致的方法不仅简单可靠,而且有效地快速合成了高度稳定的牛顿纳米流体,克服了传统两步法的复杂性,可以推广到其他金属氧化物纳米流体。除了它的经济吸引力,纳米流体的改进的热性能和稳定性使其适合各种需要高效传热的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhancing the thermal conductivity and stability of cuprous oxide nanofluids: Ribose-mediated single step chemical synthesis for solar energy applications

Enhancing the thermal conductivity and stability of cuprous oxide nanofluids: Ribose-mediated single step chemical synthesis for solar energy applications
The efficiency of photovoltaic (PV) panels can be compromised by rising temperatures, prompting extensive research into thermal management strategies aimed at maximizing power output. Recently, there has been growing interest in using nanofluids to enhance the cooling efficiency of photovoltaic thermoelectric generator (PV-TEG) systems compared to conventional water cooling. This underscores the potential of investigating innovative synthetic methods to improve the thermal conductivity and stability of nanofluids. We employed a simple straightforward method to synthesize cuprous oxide nanofluid. This solution-based technique constrains formation of cuprous oxide particles to the nanoscale dimensions using cetylammonium bromide as capping agent. Our investigation delved into the impact of various parameters on the formation and dispersion of nanoparticles within a base fluid comprised of a 1:1 mixture of water and ethylene glycol. The resulting nanofluid exhibited Newtonian behaviour and demonstrated remarkable stability of 9 months, accompanied by a notable increase in thermal conductivity upto 3.59 W m-1 K-1. This meticulous approach has proven to be not only straightforward and dependable but also efficient for the rapid synthesis of highly stable Newtonian nanofluids overcoming the complexities associated with traditional two-step processes and could be extended to other metal oxide nanofluids. Beyond its economic appeal, the nanofluid's improved thermal properties and stability position it for diverse applications requiring efficient heat transfer.
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