利用可变负刚度磁弹簧最大化波能转换器功率提取

Jeff Grasberger, Jonathan Bird, R. Coe, G. Bacelli, Carlos A. Michelén Ströfer, Alex Hagmüller
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摘要

复杂共轭阻抗匹配是波能转换器设计中的一个关键概念。将功率输出(PTO)系统的阻抗与波能转换器(WEC)阻抗的复杂共轭相匹配,可以确保从WEC体运动中有效地将能量转换为电能。在低频波中,阻抗匹配通常需要负PTO刚度。本文将介绍一种可调刚度磁扭转弹簧,并对其进行建模,以了解其改善WEC性能的潜力。该弹簧具有提供负刚度的能力,允许PTO阻抗在低频时更紧密地匹配WEC阻抗的复杂共轭。弹簧还支持可调的刚度值,这意味着它可以根据传入的波浪条件进行调整。在正常工作区域以外的波浪条件下,弹簧的可调性可以减少PTO系统其余部分的压力,而不会牺牲电力输出。本文通过考察由此产生的年平均电功率和容量系数,对可调磁弹簧的效应进行了建模和探讨。研究表明,可调谐磁弹簧在保持较高平均电功率的同时,具有显著提高容量因子的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maximizing Wave Energy Converter Power Extraction by Utilizing a Variable Negative Stiffness Magnetic Spring
Complex conjugate impedance matching is a key concept for wave energy converter design. Matching the impedance of the power take-off (PTO) system to the complex conjugate of the wave energy converter's (WEC) impedance ensures efficient transfer of energy from the WEC body motion to electrical power. In low frequency waves, impedance matching often requires a negative PTO stiffness. In this paper, an adjustable stiffness magnetic torsion spring will be presented and modeled to understand its potential to improve WEC performance. The spring has the ability to provide a negative stiffness, allowing the PTO impedance to more closely match the complex conjugate of the WEC impedance at low frequencies. The spring also supports an adjustable stiffness value, meaning it can be tuned according to the incoming wave conditions. The spring's tunability may put less stress on the rest of the PTO system in wave conditions outside its normal operation zone without sacrificing electrical power output. The adjustable magnetic spring's effects are modeled and explored in this paper by examining the resultant average annual electrical power and capacity factor. The study suggests that the tunable magnetic spring has the potential to significantly improve capacity factor while maintaining a high average electrical power.
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