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首页> 外文期刊>IEEE Journal of Oceanic Engineering >Experimental Confirmation of Nonlinear-Model- Predictive Control Applied Offline to a Permanent Magnet Linear Generator for Ocean-Wave Energy Conversion
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Experimental Confirmation of Nonlinear-Model- Predictive Control Applied Offline to a Permanent Magnet Linear Generator for Ocean-Wave Energy Conversion

机译:离线应用到永磁直线发电机进行海浪能量转换的非线性模型预测控制的实验确认

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To further maximize power absorption in both regular and irregular ocean wave environments, nonlinear-model-predictive control (NMPC) was applied to a model-scale point absorber developed at the University of California Berkeley, Berkeley, CA, USA. The NMPC strategy requires a power-takeoff (PTO) unit that could be turned on and off, as the generator would be inactive for up to 60% of the wave period. To confirm the effectiveness of this NMPC strategy, an in-house-designed permanent magnet linear generator (PMLG) was chosen as the PTO. The time-varying performance of the PMLG was first characterized by dry-bench tests, using mechanical relays to control the electromagnetic conversion process. The on/off sequencing of the PMLG was tested under regular and irregular wave excitation to validate NMPC simulations using control inputs obtained from running the choice optimizer offline. Experimental results indicate that successful implementation was achieved and absorbed power using NMPC was up to 50% greater than the passive system, which utilized no controller. Previous investigations into MPC applied to wave energy converters have lacked the experimental results to confirm the reported gains in power absorption. However, after considering the PMLG mechanical-to-electrical conversion efficiency, the electrical power output was not consistently maximized. To improve output power, a mathematical relation between the efficiency and damping magnitude of the PMLG was inserted in the system model to maximize the electrical power output through continued use of NMPC which helps separate this work from previous investigators. Of significance, results from latter simulations provided a damping time series that was active over a larger portion of the wave period requiring the actuation of the applied electrical load, rather than on/off control.
机译:为了进一步在规则和不规则海浪环境中最大程度地吸收功率,将非线性模型预测控制(NMPC)应用于在美国加利福尼亚伯克利的加利福尼亚大学伯克利分校开发的模型规模点吸收器。 NMPC策略需要一个可以打开和关闭的功率输出(PTO)单元,因为在长达60%的波浪周期内,发电机将处于非活动状态。为了确认此NMPC策略的有效性,选择了内部设计的永磁线性发电机(PMLG)作为PTO。 PMLG的时变性能首先通过干式试验表征,该试验使用机械继电器控制电磁转换过程。在规则和不规则波激励下测试了PMLG的开/关序列,以使用从离线运行选择优化器获得的控制输入来验证NMPC仿真。实验结果表明,成功实现后,使用NMPC的吸收功率比不使用控制器的无源系统高出50%。以前对应用于波能转换器的MPC的研究尚缺乏实验结果来证实所报告的功率吸收增益。但是,在考虑了PMLG的机械-电气转换效率之后,电力输出并没有始终如一地最大化。为了提高输出功率,在系统模型中插入了PMLG效率和阻尼幅度之间的数学关系,以通过继续使用NMPC来最大化电功率输出,这有助于将这项工作与以前的研究人员区分开。重要的是,后面的模拟结果提供了一个阻尼时间序列,该阻尼时间序列在整个波浪周期的大部分时间内都处于活动状态,需要激活所施加的电负载,而不是进行开/关控制。

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