Design and performance analysis of portable solar powered cooler for vaccine storage

IF 3.5 3区 工程技术 Q3 ENERGY & FUELS Energy Science & Engineering Pub Date : 2024-10-31 DOI:10.1002/ese3.1915
Vicent Marwa, Thomas Kivevele, Baraka Kichonge, Juma Selemani
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Abstract

The efficacy of vaccine storage is significantly impacted by temperature fluctuations within the cooler, often exacerbated by using phase change materials in existing cooler designs for remote areas. These materials can undergo uneven melting and phase separation, leading to temperature instability and vaccine potency loss. In response to this challenge, the present study introduces a novel design of a portable, locally-made solar-powered cooler optimized for longer storage periods. The cooler's performance in terms of temperature distribution, airflow dynamics, and the coefficient of performance (COP) is meticulously examined through computational fluid dynamics (CFD) simulations. The simulated results were validated using experimental data from the open literature, ensuring accuracy and reliability. The findings indicate that the developed cooler achieves significant improvements over traditional models. For instance, the current model reaches a temperature of +12°C in just 84 min, compared to 208 min, as reported in the literature results. Moreover, the current model reaches a temperature of −12°C in 195 min and it has energy efficient with a COP of 4.5. Statistical analysis further confirms the reliability of the simulation results, with root mean square and mean absolute percentage errors of 6.587 and 24.2%, respectively. Additionally, a comparative study of five insulative materials highlights polyurethane (Po) as the top performer, with a heat transfer performance of 14.3%, followed by feather fiber (Fe) (18.7%), fly ash (Fl) (19.8%), fiberglass (Fi) (21.9%), and coconut fiber (Co) (25.9%). Notably, net present value (NPV) of $689.336 and $448.01 was obtained for economic analysis of the current model over the existing model, showing the feasibility of the study. Hence, the cooler's effectiveness in storing vaccines in isolated regions exceeds that of conventional models, providing a hopeful solution to tackle vital challenges in vaccine distribution and preservation.

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用于疫苗储存的便携式太阳能冷却器的设计和性能分析
疫苗储存的效果受到冷却器内温度波动的严重影响,而在偏远地区现有的冷却器设计中使用相变材料往往会加剧这种影响。这些材料会发生不均匀的熔化和相分离,从而导致温度不稳定和疫苗效力下降。为了应对这一挑战,本研究引入了一种新型设计,即本地制造的便携式太阳能冷却器,该冷却器经过优化,可用于较长时间的储存。通过计算流体动力学(CFD)模拟,对冷却器在温度分布、气流动力学和性能系数(COP)方面的性能进行了细致的研究。模拟结果利用公开文献中的实验数据进行了验证,确保了结果的准确性和可靠性。研究结果表明,与传统模型相比,所开发的冷却器实现了显著改进。例如,与文献报道的 208 分钟相比,目前的模型只需 84 分钟就能达到 +12°C 的温度。此外,当前的冷却器在 195 分钟内就能达到 -12°C 的温度,其能效 COP 为 4.5。统计分析进一步证实了模拟结果的可靠性,均方根误差和平均绝对百分比误差分别为 6.587% 和 24.2%。此外,对五种保温材料的比较研究表明,聚氨酯(Po)的传热性能最高,为 14.3%,其次是羽毛纤维(Fe)(18.7%)、粉煤灰(Fl)(19.8%)、玻璃纤维(Fi)(21.9%)和椰子纤维(Co)(25.9%)。值得注意的是,与现有模型相比,当前模型的经济分析净现值(NPV)分别为 689.336 美元和 448.01 美元,显示了研究的可行性。因此,冷却器在偏远地区储存疫苗的有效性超过了传统模式,为应对疫苗分发和保存方面的重大挑战提供了一个充满希望的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Energy Science & Engineering
Energy Science & Engineering Engineering-Safety, Risk, Reliability and Quality
CiteScore
6.80
自引率
7.90%
发文量
298
审稿时长
11 weeks
期刊介绍: Energy Science & Engineering is a peer reviewed, open access journal dedicated to fundamental and applied research on energy and supply and use. Published as a co-operative venture of Wiley and SCI (Society of Chemical Industry), the journal offers authors a fast route to publication and the ability to share their research with the widest possible audience of scientists, professionals and other interested people across the globe. Securing an affordable and low carbon energy supply is a critical challenge of the 21st century and the solutions will require collaboration between scientists and engineers worldwide. This new journal aims to facilitate collaboration and spark innovation in energy research and development. Due to the importance of this topic to society and economic development the journal will give priority to quality research papers that are accessible to a broad readership and discuss sustainable, state-of-the art approaches to shaping the future of energy. This multidisciplinary journal will appeal to all researchers and professionals working in any area of energy in academia, industry or government, including scientists, engineers, consultants, policy-makers, government officials, economists and corporate organisations.
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