使用基于功率输出的主动机械运动整流器的波能转换器的电势

IF 9 1区 工程技术 Q1 ENERGY & FUELS
Lisheng Yang , Jianuo Huang , Steven J. Spencer , Xiaofan Li , Jia Mi , Giorgio Bacelli , Muhammad Hajj , Lei Zuo
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引用次数: 0

摘要

对于波浪能转换器(WECs)来说,功率输出(PTO)的设计过去都是为了提高效率。最近,pto的控制执行能力得到了更多的重视。主动机械运动整流器(AMMR)就是这样一种平衡效率和可控性的设计。然而,由于主动离合器的切换所带来的固有非线性,使得PTO所能达到的最优功率难以评估。本文介绍了一种可在可控时间内逼近最优功率的功率评估方法。通过使控制作为时间的多项式函数与状态无关,探索了更大的控制空间。周期状态在对称切换格式下解析求解,得到幂函数的多项式系数解析表达式,大大加快了优化过程。这种新方法还可以基于PTO传动系统和发电机的线性建模直接评估电力输出。完整的WEC模型包括振荡浪涌襟翼、AMMR PTO和可控负载的发电机,用等效电路表示,以分析设备在规则波下的各种机械和电气响应。采用粒子群算法求出功率势上界的最优多项式系数。研究发现,对于襟翼结构,AMMR PTO在谐振周期附近比传统PTO增加10 - 30%的电功率,其中运动整流是最有益的。在小型PTO样机上进行了硬件在环测试,并对发电机进行了阻尼控制。实验结果表明,与传统的机械PTO相比,功率提高了10 - 120%。这表明AMMR PTO在无功功率不可用时特别有用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrical power potential of a wave energy converter using an active mechanical motion rectifier based power take-off
For wave energy converters (WECs), power take-off (PTO) design used to be all about increasing efficiency. Recently, more emphasis has been placed on the control execution capabilities of PTOs. The active mechanical motion rectifier (AMMR) is such a design that balances efficiency and controllability. However, the intrinsic nonlinearity brought by switching of its active clutches makes it difficult to evaluate the optimal power the PTO can achieve. This paper introduces a power evaluation method that can approximate the optimal power within tractable time. A larger control space is explored by making the control state-independent as a polynomial function of time. Periodical states are solved analytically under a symmetric switching scheme, leading to an analytical expression of the power in terms of the polynomial coefficients, which significantly speeds up the optimization process. This new method also enables the direct evaluation of electrical power output based on a linear modelling of the PTO drivetrain and the generator. A complete WEC model including an oscillating surge flap, the AMMR PTO, and a generator with a controllable load is represented as an equivalent circuit to analyze various mechanical and electrical responses of the device under regular waves. Particle swarm optimization is employed to find the optimal polynomial coefficients leading to the upper bound power potential. It is found that for the flap structure, an AMMR PTO increases electrical power by 10–30 % over a conventional PTO near the resonance period, where motion rectification is the most beneficial. Hardware-in-loop tests were performed on a small-scale PTO prototype, with damping control of the generator. Experimental results show 10–120 % power enhancement compared to a conventional mechanical PTO. This suggests the AMMR PTO can be particularly useful when reactive power is not available.
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来源期刊
Renewable Energy
Renewable Energy 工程技术-能源与燃料
CiteScore
18.40
自引率
9.20%
发文量
1955
审稿时长
6.6 months
期刊介绍: Renewable Energy journal is dedicated to advancing knowledge and disseminating insights on various topics and technologies within renewable energy systems and components. Our mission is to support researchers, engineers, economists, manufacturers, NGOs, associations, and societies in staying updated on new developments in their respective fields and applying alternative energy solutions to current practices. As an international, multidisciplinary journal in renewable energy engineering and research, we strive to be a premier peer-reviewed platform and a trusted source of original research and reviews in the field of renewable energy. Join us in our endeavor to drive innovation and progress in sustainable energy solutions.
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