海浪能量转换系统实时混合测试的实验研究

IF 7.9 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Open Journal of Industry Applications Pub Date : 2022-02-07 DOI:10.1109/OJIA.2022.3148388
Ali S. Haider;Ted K. A. Brekken;Ryan G. Coe;Giorgio Bacelli;Alan McCall
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引用次数: 3

摘要

不断增长的波浪能部门需要在波浪能系统的开发阶段进行高效和灵活的测试。实时混合测试是一种很有前途的波能转换系统加速测试技术。本文介绍了俄勒冈州立大学华莱士能源系统和可再生能源设施(WESRF)开发波浪能系统混合测试平台的实验研究。波浪能量转换系统被分解为数字(即虚拟)和物理(即硬件)组件。数值组件包括软件组件,例如用于波能转换器(WEC)的控制算法和用于电力电子转换器的控制器以及用于WEC装置流体动力学的数值模型。硬件包括海浪模拟器试验台、动力输出(PTO)机构、电力电子设备和仪器。数值组件在实时目标机中实现,并与实验系统接口。针对以永磁同步发电机(PMSG)为动力输出系统的单自由度起伏非线性WEC模型,给出了非线性模型预测控制(NMPC)的实例研究。现场定向控制(FOC)算法使用三相集成智能电源(IIP)模块转换器控制PMSG-PTO的生成。提供了所提出的混合测试装置的演示。
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On Real-Time Hybrid Testing of Ocean Wave Energy Conversion Systems: An Experimental Study
The growing wave energy sector requires an efficient and flexible testing process for the development phase of wave energy systems. Real-time hybrid testing is a promising technique for the accelerated testing of wave energy conversion systems. This article presents an experimental study on developing a hybrid testing platform for wave energy systems at the Wallace Energy System and Renewables Facility (WESRF) at Oregon State University. The wave energy conversion system is broken down into numeric (i.e., virtual) and physical (i.e., hardware) components. The numeric component involves software components such as the control algorithm for Wave Energy Converter (WEC) and controller for the power electronic converters and numerical models for the WEC device hydrodynamics. The hardware involves an ocean wave emulator testbed, Power Take-Off (PTO) mechanism, power electronics, and instrumentation. The numeric components are implemented in a real-time target machine and are interfaced with the experimental system. A case study implementation of Nonlinear Model Predictive Control (NMPC) is presented for a single degree of freedom heaving nonlinear WEC model with a Permanent Magnet Synchronous Generator (PMSG) as a PTO system. A Field-Oriented Control (FOC) algorithm controls the PMSG-PTO generation using a three-phase Integrated Intelligent Power (IIP) module converter. A demonstration of the proposed hybrid testing setup is provided.
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