Baghbani Kordmahale Sina, Do Jitae, Chang Kuang-An, Kameoka Jun
Department of Electrical and Computer Engineering, Texas A&M University, College Station, TX 77853, USA.
Department of Ocean Engineering, Texas A&M University, College Station, TX 77843, USA.
Micromachines (Basel). 2021 Oct 18;12(10):1269. doi: 10.3390/mi12101269.
An open-water wave energy converter (OWEC) made of a new soft platform has been developed by combining piezoelectric macro-fiber composites (MFCs) and a low-cost elastomer. In the past decades, numerous types of water wave energy conversion platform have been developed and investigated, from buoys to overtopping devices. These harvesters mainly use electromagnetic-based generators, and they have faced challenges such as their enormous size, high deployment and maintenance costs, and negative effects on the environment. These problems hinder their practicality and competitiveness. In this paper, a soft open-water wave energy converter is introduced which integrates piezoelectric MFCs and bubble wrap into an elastomer sheet. The performance of the OWEC was investigated in a wave flume as a floatable structure. The maximum 29.7 µW energy harvested from the small OWEC represents a promising energy conversion performance at low frequencies (<2 Hz). The elastomer was able to protect the MFCs and internal electrical connections without any degradation during the experiment. In addition, the OWEC is a foldable structure, which can reduce the deployment costs in real-world applications. The combination of no maintenance, low fabrication cost, low deployment cost, and moderate energy harvesting capability may advance the OWEC platform to its real-world applications.
通过将压电宏观纤维复合材料(MFC)与低成本弹性体相结合,开发出了一种由新型软质平台制成的开放式水波能量转换器(OWEC)。在过去几十年中,已经开发并研究了多种类型的水波能量转换平台,从浮标到越浪装置。这些能量采集器主要使用基于电磁的发电机,并且面临着诸如尺寸巨大、部署和维护成本高昂以及对环境产生负面影响等挑战。这些问题阻碍了它们的实用性和竞争力。本文介绍了一种软质开放式水波能量转换器,它将压电MFC和气泡膜集成到弹性体片材中。作为一种可漂浮结构,在波浪水槽中对OWEC的性能进行了研究。从小型OWEC采集到的最大能量为29.7微瓦,这在低频(<2赫兹)下展现出了有前景的能量转换性能。在实验过程中,弹性体能够保护MFC和内部电气连接,且不会有任何性能退化。此外,OWEC是一种可折叠结构,这可以降低在实际应用中的部署成本。无需维护、制造成本低、部署成本低以及适度的能量采集能力相结合,可能会推动OWEC平台走向实际应用。