用于高能效空气推进的离子风力放大器:原型设计、开发和评估

IF 5.3 Q2 ENGINEERING, ENVIRONMENTAL Cleaner Engineering and Technology Pub Date : 2024-02-04 DOI:10.1016/j.clet.2024.100728
Donato Rubinetti , Kamran Iranshahi , Daniel Onwude , Julien Reymond , Amirmohammad Rajabi , Lei Xie , Bart Nicolaï , Thijs Defraeye
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引用次数: 0

摘要

电流体动力(EHD)过程产生的离子风有望以最小的功率产生高效气流。然而,实际应用一直受限于相对较低的流速。本研究介绍了一种新型原型装置,旨在利用科恩达效应放大离子风产生的流速。这种可扩展的装置具有独特的针电极配置、优化的几何形状和操作参数,可提高流速并降低电能消耗。实验研究采用两种地面电极配置作为集流器,以评估扩展风道设置中的流速剖面。分析结果表明,在气流速率和效率方面,杆式集热器布置略优于板式集热器。值得注意的是,在 30 千伏电压下,输入能量小于 2 瓦时,流量可达 7.5 立方米/小时;在 15-20 千伏的最佳电压范围内,流量为 5 立方米/小时,所需能量约为 0.5 瓦。研究结果表明,减少针发射器的数量对气流速率的影响相对较小,这表明有机会设计出使用更少针头的更高效设备。为了补充实验结果,我们利用基于计算流体动力学(CFD)的数字镜像对流场模式进行了深入研究。使用 CFD 模型证实,我们的设备可以将流速提高约三倍。这项研究成果对开发下一代离子风力发电机,尤其是可持续流体流动工程具有深远影响。通过证实基于离子风的放大气流的有效性,我们为这项技术在各行各业的清洁生产实践中做出贡献提供了一条清晰的道路。在需要精确气流控制的应用领域,如数据中心、洁净室、消毒或干燥过程中,离子风放大器显示出潜力,在这些应用中,去除多余热量或保持特定条件至关重要。
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Ionic wind amplifier for energy-efficient air propulsion: Prototype design, development, and evaluation

Ionic wind, produced by electrohydrodynamic (EHD) processes, holds promise for efficient airflow generation using minimal power. However, practical applications have been limited by relatively low flow rates. This study introduces a novel prototype device designed to amplify ionic wind-generated flow rates by leveraging the Coanda effect. This scalable device features a unique needle electrode configuration, optimized geometry, and operating parameters to enhance flow rates and reduce electrical energy consumption. The experimental investigation encompasses two ground electrode configurations as collectors to evaluate velocity profiles within an extended wind channel setup. The analysis revealed that the rod collector arrangement slightly outperformed the plate collector regarding airflow rate and efficiency. Notably, a flow rate of up to 7.5 m3 h-1 was attained with an energy input of less than 2 W at 30 kV and a flow rate of 5 m3 h-1 within the optimal voltage range of 15–20 kV, requiring around 0.5 W. The findings indicate that a decrease in the number of needle emitters has a relatively negligible impact on the airflow rate, suggesting an opportunity to design more efficient devices with fewer needles. To complement the experimental results, a computational fluid dynamics (CFD)--based digital mirror was utilized to obtain deeper insights into the flow field patterns. The use of the CFD model confirmed that our device can increase flow rates by a factor of around three. The findings of this research have far-reaching implications for developing next-generation ionic wind generators, particularly in sustainable fluid flow engineering. By confirming the effectiveness of amplified ionic wind-based airflow, we provide a clear path for this technology to contribute to cleaner production practices across various industries. Ionic wind amplifiers show potential in applications requiring precise airflow control, such as data centers, cleanrooms, sterilization, or drying processes, where removing excess heat or maintaining specific conditions is essential.

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来源期刊
Cleaner Engineering and Technology
Cleaner Engineering and Technology Engineering-Engineering (miscellaneous)
CiteScore
9.80
自引率
0.00%
发文量
218
审稿时长
21 weeks
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