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Calibrating wave resource assessments through application of the triple collocation technique

机译:通过使用三重搭配技术校准波浪资源评估

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摘要

Numerical wave models are often used to hindcast wave conditions and predict the theoretical energy production from wave energy conversion (WEC) devices. It is widely acknowledged that numerical model suffer from bias's and uncertainties which ultimately affect the final predictions of WEC power. In this case study, a Simulating WAves Nearshore (SWAN) hindcast, based on the ECMWF wave and FNMOC wind boundary conditions, is used to predict sea states off the Canadian west coast and the triple collocation technique is applied to quantify the model result bias's, and systematic and random errors. To analyze the error and calibrate the results from the hindcast, two in-situ collocated wave measurement devices are deployed; A TriAxys wave measurement buoy and a Nortek AWAC. The triple collocation technique is used to compare the significant wave height and energy period parameters over a threemonth period, from October to December 2014. The triple collocation technique assumes linear relationship between the measured value and true value, and outputs the bias, calibration slope and the measurement random error. This study implements two previously utilized calibration regimes, a single value and monthly calibration regime, as well as presenting two novel methods to improve the impact of the calibration; a bivariate calibration and a spectral calibration. The two standard calibration techniques resulted in negligible improvements in data correlation. The spectral method suffered from high computational cost and only 3.4% improvement in significant wave height correlation. The bivariate calibration regime, following the International Electrotechnical Commission (IEC) wave resource histogram parameters, resulted in 5% and 26% improvements in the significant wave height and energy period correlations respectively. Calibration of the SWAN hindcast reduced the gross wave energy transport values by 900 MWh, yet the final WEC production estimates only varied by 1.5 MWh but greatly improved their time-series correlation. It is shown that the triple collocation technique, under the bivariate distribution regime, provides a more realistic presentation of future WEC power production and eliminates known short-comings of numerical model outputs. (C) 2016 Elsevier Ltd. All rights reserved.
机译:数值波浪模型通常用于后向波浪条件,并预测波浪能转换(WEC)设备产生的理论能量。众所周知,数值模型存在偏差和不确定性,最终会影响WEC功率的最终预测。在本案例研究中,基于ECMWF波浪和FNMOC风边界条件的模拟近岸波浪(SWAN)后兆被用于预测加拿大西海岸的海况,并采用三重搭配技术来量化模型结果偏差的大小,以及系统性和随机性错误。为了分析误差并校准后验结果,部署了两个原位并置波测量设备。 TriAxys波浪测量浮标和Nortek AWAC。三重搭配技术用于比较2014年10月至2014年12月这三个月期间的重要波高和能量周期参数。三重搭配技术假设测量值与真实值之间呈线性关系,并输出偏差,校准斜率和测量随机误差。这项研究实现了两个以前使用的校准方案,即单值校准和每月校准方案,并提出了两种新颖的方法来改善校准的影响。双变量校准和光谱校准。两种标准的校准技术导致数据相关性的改善可忽略不计。频谱法的计算成本很高,并且波高相关性仅提高了3.4%。遵循国际电工委员会(IEC)波浪资源直方图参数的双变量标定机制分别使有效波高和能量周期相关性分别提高了5%和26%。 SWAN后播的标定使总波浪能量传输值减少了900 MWh,但最终的WEC产量估计值仅相差1.5 MWh,但大大改善了它们的时间序列相关性。结果表明,在双变量分配机制下,三重配置技术可以更真实地表示未来的WEC电力生产,并消除了数值模型输出的已知缺点。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Renewable energy》 |2017年第ptaa期|166-179|共14页
  • 作者单位

    Univ Victoria, Inst Integrated Energy Syst, West Coast Wave Initiat, Victoria, BC, Canada;

    Univ Victoria, Inst Integrated Energy Syst, West Coast Wave Initiat, Victoria, BC, Canada;

    Univ Victoria, Inst Integrated Energy Syst, West Coast Wave Initiat, Victoria, BC, Canada;

    Univ Victoria, Inst Integrated Energy Syst, West Coast Wave Initiat, Victoria, BC, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Wave resource assessment; Triple collocation; Wave measurements; Wave buoy; SWAN; AWAC;

    机译:波浪资源评估;三重搭配;波浪测量;波浪浮标;SWAN;AWAC;
  • 入库时间 2022-08-18 00:25:12

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