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Harvesting of Electrical Energy from a Backpack Using Piezoelectric Shoulder Straps

机译:使用压电肩带从背包中收集电能

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Over the past few decades the use of portable and wearable electronics has grown steadily. These devices are becoming increasingly more powerful, however, the gains that have been made in the device performance has resulted in the need for significantly higher power to operate the electronics. This issue has been further complicated due to the stagnate growth of battery technology over the past decade. In order to increase the life of these electronics, researchers have begun investigating methods of generating energy from ambient sources such that the life of the electronics can be prolonged. Recent developments in the field have led to the design of a number of mechanisms that can be used to generate electrical energy, from a variety of sources including thermal, solar, strain, inertia, etc. Many of these energy sources are available for use with humans, but their use must be carefully considered such that parasitic effects that could disrupt the user's gait or endurance are avoided. These issues have arisen from previous attempts to integrate power harvesting mechanisms into a shoe such that the energy released during a heal strike could be harvested. This study develops a novel energy harvesting backpack that can generate electrical energy from the differential forces between the wearer and the pack. The goal of this system is to make the energy harvesting device transparent to the wearer such that his or her endurance and dexterity is not compromised. This will be accomplished by replacing the traditional strap of the backpack with one made of the piezoelectric polymer polyvinylidene fluoride (PVDF). Piezoelectric materials have a structure such that an applied electrical potential results in a mechanical strain. Conversely, an applied stress results in the generation of an electrical charge, which makes the material useful for power harvesting applications. PVDF is highly flexible and has a high strength allowing it to effectively act as the load bearing member. In order to preserve the performance of the backpack and user, the design of the pack will be held as close to existing systems as possible. This paper develops a theoretical model of the piezoelectric strap and uses experimental testing to identify its performance in this application.
机译:在过去的几十年中,便携式和可穿戴电子设备的使用稳步增长。这些设备变得越来越强大,但是,在设备性能方面取得的进步导致需要更高功率来操作电子设备。由于过去十年中电池技术的停滞发展,这个问题变得更加复杂。为了增加这些电子设备的寿命,研究人员已经开始研究从周围环境产生能量的方法,从而可以延长电子设备的寿命。该领域的最新发展导致设计了许多可用于产生电能的机构,这些机构包括热能,太阳能,应变,惯性等多种来源。这些能源中有许多可用于人体,但必须仔细考虑其使用方式,以避免可能破坏使用者步态或耐力的寄生效应。这些问题源于先前尝试将能量收集机构集成到鞋子中,以便可以收集在strike愈过程中释放的能量。这项研究开发了一种新型的能量收集背包,该背包可以通过穿着者和背包之间的不同力产生电能。该系统的目的是使能量收集装置对佩戴者透明,从而不会损害其耐力和灵活性。这可以通过用压电聚合物聚偏二氟乙烯(PVDF)制成的背包代替传统的背包带来实现。压电材料具有这样的结构,使得施加的电势导致机械应变。相反,施加的应力导致电荷的产生,这使该材料可用于功率收集应用。 PVDF具有很高的柔韧性,并且具有很高的强度,因此可以有效地用作承重构件。为了保持背包和使用者的性能,背包的设计应尽可能靠近现有系统放置。本文开发了压电表带的理论模型,并通过实验测试来确定其在该应用中的性能。

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