Hongbo Wang, Hangchen Liu, Yuxin Song, Xuezhi Qin, Yang Li, Kairui Tang, Huanxi Zheng, Wanghuai Xu, Zuankai Wang and Baoping Zhang
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引用次数: 0
摘要
全球对低碳能源不断增长的需求凸显了水能收集的紧迫性。尽管取得了长足的进步,但实现持续和高效的水能收集,特别是从雨水、溪流和河流等丰富、分布和低频的水流中收集水能,仍然是一项重大挑战。在此,受经典水车的启发,我们报告了一种混合的,可旋转的流动水基能量发生器(R-FEG),能够在低频率和高频率下连续有效地收集水能。R-FEG装置由晶体管状多层叶片组成,在低频时利用体积效应收集液固界面处的水动能,在高频时利用对称叶片阵列上的磁转子利用电磁效应收集旋转能量。因此,R-FEG装置能够在大流量范围内自我维持运行,在典型流量为2.0 L min-1时,总功率增强1131.3 μW。此外,R-FEG显示出潜在的多功能性,作为一种不依赖电池的电源解决方案,通过在波动的水流状态下收集水能,用于环境传感和户外电子设备。这项工作为水流能量收集提供了一个有前景的原型,为远程、海上和分布式水能收集应用的可扩展、免维护电力解决方案铺平了新的道路。
A hybrid flowing water-based energy generator inspired by a rotatable waterwheel
The ever-increasing global demand for low-carbon energy underscores the urgency of water energy harvesting. Despite intensive progress, achieving continuous and efficient water energy harvesting—particularly from abundant, distributed, and low-frequency water flows such as rain, streams, and rivers—remains a critical challenge. Herein, inspired by the classical waterwheel that spatially decouples the gravitational force of flowing water into orthogonal directions for continuous rotation, we report a hybrid, rotatable flowing water-based energy generator (R-FEG) capable of continuous and efficient water energy harvesting at both low and high frequencies. The R-FEG device consists of transistor-like multilayer blades to harvest the kinetic energy of water at the liquid–solid interface via the bulk effect which is favorable at low frequency, and a magnetic rotor on a symmetrical blade array to harvest rotational energy via the electromagnetic effect at high frequency. As a result, the R-FEG device enables self-sustained operation in a wide range of flow rates, collectively delivering an enhanced power of 1131.3 μW at a typical flow rate of 2.0 L min−1. Moreover, the R-FEG exhibits potential versatility as a battery-independent power solution for environmental sensing and outdoor electronics by harvesting water energy across fluctuating flow regimes. This work provides a prospective prototype for water flow energy harvesting, paving a new avenue for scalable, maintenance-free power solutions for applications in remote, offshore, and distributed water energy harvesting.
期刊介绍:
Lab on a Chip is the premiere journal that publishes cutting-edge research in the field of miniaturization. By their very nature, microfluidic/nanofluidic/miniaturized systems are at the intersection of disciplines, spanning fundamental research to high-end application, which is reflected by the broad readership of the journal. Lab on a Chip publishes two types of papers on original research: full-length research papers and communications. Papers should demonstrate innovations, which can come from technical advancements or applications addressing pressing needs in globally important areas. The journal also publishes Comments, Reviews, and Perspectives.