基于压电织物的能量收集“三维编织间隔”

S. Anand, N. Soin, T. Shah, E. Siores
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引用次数: 7

摘要

聚偏氟乙烯(PVDF)的压电效应在四十多年前就被发现了,从那时起,人们就开展了大量的工作,旨在生产高p相纤维并将其集成到织物结构中以用于能量收集。然而,在基于柔性聚合物材料(如PVDF)的“真正的压电织物结构”的生产领域所做的工作很少。在这项工作中,我们展示了基于全纤维压电织物的“三维针织间隔”技术作为发电机和能量收集器。该针织单结构压电发电机由高p相(~80%)压电PVDF单丝作为间隔纱,在镀银(Ag)聚酰胺多长丝层之间相互连接,作为上下电极。在0.02-0.10 MPa的冲击压力范围内,这种新颖独特的纺织结构提供了1.105.10 gWcm-2的输出功率密度,因此比现有的二维编织和非织造压电结构提供了更高的功率输出和效率。这种柔软、灵活、全纤维的发电机具有高能效、机械耐用性和舒适性,对各种潜在应用非常有吸引力,如可穿戴电子系统和从环境环境或人类运动中充电的能量采集器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy harvesting “3-D knitted spacer” based piezoelectric textiles
The piezoelectric effect in Poly(vinylidene fluoride), PVDF, was discovered over four decades ago and since then, significant work has been carried out aiming at the production of high p-phase fibres and their integration into fabric structures for energy harvesting. However, little work has been done in the area of production of “true piezoelectric fabric structures” based on flexible polymeric materials such as PVDF. In this work, we demonstrate “3-D knitted spacer” technology based all-fibre piezoelectric fabrics as power generators and energy harvesters. The knitted single-structure piezoelectric generator consists of high p-phase (~80%) piezoelectric PVDF monofilaments as the spacer yarn interconnected between silver (Ag) coated polyamide multifilament yarn layers acting as the top and bottom electrodes. The novel and unique textile structure provides an output power density in the range of 1.105.10 gWcm-2 at applied impact pressures in the range of 0.02-0.10 MPa, thus providing significantly higher power outputs and efficiencies over the existing 2-D woven and nonwoven piezoelectric structures. The high energy efficiency, mechanical durability and comfort of the soft, flexible and all-fibre based power generator is highly attractive for a variety of potential applications such as wearable electronic systems and energy harvesters charged from ambient environment or by human movement.
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