Design and analysis of an ocean current turbine performance assessment system

James H. VanZwieten, M. Young, K. V. von Ellenrieder
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引用次数: 9

Abstract

To quantify the performance of experimental ocean current turbines (OCTs) during offshore testing, important performance metrics are presented along with a proposed sensor suite and the mathematical relationships that can be used to calculate them. A numerical simulation of an OCT and numeric models of the selected sensors are utilized to synthesize measurements which are used to calculate relative free stream flow velocity, electric power output, total system efficiency, shaft power, and rotor efficiency. By evaluating the calculated performance metrics, both with and without sensor limitations, the impact of the sensor limitations on the calculated performance metrics are evaluated. The impact of averaging times on the repeatability of performance calculations are also evaluated for several operating conditions to guide offshore testing requirements. It is found that for a 2 m significant wave height the selected sensor system increases the standard deviation of the calculated performance metrics for 1 min averages and an operating depth of 10 m by 5-20%. For a depth of 20 m the OCT performance is more consistent and the sensors increase the variability of the calculated performance metrics by between 30-50% for 1 min averages. For the same significant wave height and a depth of 10 m the standard deviation of the 1 min averaged sensor measured system and rotor efficiencies for are shown to range from 0.9 and 3.3% of their mean value. However this can be decreased to a 0.13 and 0.52% if the operating depth is decreased to 10 m and the averaging time is increased to 10 min.
海流涡轮性能评估系统的设计与分析
为了在海上测试期间量化实验洋流涡轮机(oct)的性能,提出了重要的性能指标,以及可用于计算它们的传感器套件和数学关系。利用OCT的数值模拟和所选传感器的数值模型进行综合测量,用于计算相对自由流流速、电力输出、系统总效率、轴功率和转子效率。通过评估计算出的性能指标,包括有和没有传感器限制,评估传感器限制对计算出的性能指标的影响。在几种作业条件下,还评估了平均时间对性能计算可重复性的影响,以指导海上测试要求。研究发现,对于2米的有效波高,所选择的传感器系统使1分钟平均值和10米工作深度计算的性能指标的标准偏差增加了5-20%。对于20米的深度,OCT性能更加一致,传感器在平均1分钟内将计算的性能指标的可变性增加了30-50%。对于相同的显著波高和10米的深度,1分钟平均传感器测量系统和转子效率的标准偏差显示为其平均值的0.9和3.3%。然而,如果作业深度减少到10米,平均时间增加到10分钟,这可以降低到0.13和0.52%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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