在人工智能和太阳能系统的帮助下,探索用于冷却板的生物合成纳米颗粒的可扩展性和商业可行性

Faisal Khan, Munawar Nawab Karimi, Osama Khan
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引用次数: 3

摘要

近年来,生物合成纳米颗粒的环保和可持续性使人们对其在各种应用中的应用越来越感兴趣。这项研究考察了使用生物材料制造纳米颗粒的情况,这些纳米颗粒已被证明可以提高医疗设备的效率和性能,如放射治疗癌症治疗机、血液冷却系统、实验室应用、CT扫描仪和MRI机。该研究的重点是纳米颗粒的生产和对其物理特性的评估,如稳定性、生物相容性以及光学和热性能。人工智能物联网系统可用于优化太阳能冷却板系统的性能和能效。研究结果表明,由于其特殊的特性,生物合成的纳米颗粒在提高太阳能设备的效率方面具有巨大的潜力。在这项研究中,我们研究了用于太阳能应用设备的氧化铜、氧化铝、氧化铈和氧化石墨烯纳米材料的生物合成。此外,纳米颗粒表现出增强的光学和热性能,使其成为太阳能集热器和光伏电池的理想用途。该研究还表明,生物合成的纳米颗粒具有高度的稳定性和生物相容性,这使其适合用于医疗和生物医学应用。与没有纳米颗粒的膜相比,将氧化石墨烯纳米颗粒掺入膜中可将能量转换效率提高15%。废弃纳米颗粒可进一步用于癌症治疗、药物运输和其他医疗程序。总的来说,研究结果表明,通过提高太阳能设备的性能,使其更可持续、更环保,生物合成的纳米颗粒有可能彻底改变生物医学行业。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the scalability and commercial viability of biosynthesized nanoparticles for cooling panels with the help of Artificial Intelligence and solar energy systems

In recent years, the eco-friendly and sustainable nature of biosynthesized nanoparticles has led to increasing interest in their use in a variety of applications. This study examines the use of biomaterials to create nanoparticles that have been shown to improve the efficiency and performance of medical devices such as radiation therapy cancer treatment machines, blood cooling systems, laboratory applications, CT scanners, and MRI machines. The study focuses on the production of the nanoparticles and the assessment of their physical characteristics, such as stability, biocompatibility, and optical and thermal properties. AI-IoT (Artificial Intelligence-Internet of Things) systems can be used to optimize the performance and energy efficiency of solar cooling panel systems. The findings indicate that because of their special characteristics, biosynthesized nanoparticles have a tremendous potential to enhance the efficiency of solar equipment. In this investigation, we investigate the biosynthesis of copper oxide, aluminum oxide, cerium oxide, and graphene oxide nanomaterials for use in solar application equipment. Furthermore, the nanoparticles exhibit enhanced optical and thermal properties, making them ideal for use in solar thermal collectors and photovoltaic cells. The study also demonstrates that the biosynthesized nanoparticles have a high degree of stability and biocompatibility, which makes them suitable for use in medical and biomedical applications. Incorporating graphene oxide nanoparticles into films increased the energy conversion efficiency by 15% compared to films without nanoparticles. The waste nanoparticles can be further used for cancer therapy, medication transport, and other medicinal procedures. Overall, the findings suggest that biosynthesized nanoparticles have the potential to revolutionize the biomedical industry by improving the performance of solar equipment and making it more sustainable and eco-friendlier.

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