波浪能转换器系统性能评价数值模拟方法的基准

IF 4.4 2区 工程技术 Q1 ENGINEERING, OCEAN
Jian Tan , Ryan G. Coe , George Lavidas
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引用次数: 0

摘要

不同的数值模拟方法被用于评估波浪能转换器的各种性能指标,包括功率性能、结构载荷、能量平准化成本等。基于模型保真度,常用的数值模拟方法可分为线性建模、弱非线性建模和全非线性建模。每种方法的精度和计算效率不同,适用于WEC设计的不同阶段。然而,建模方法的选择可能会显著影响评估结果。例如,在某些操作条件下,简化的线性模型可能会低估结构载荷或高估能源产量,从而可能导致成本效益较低的设计。鉴于这些模型的广泛应用,了解它们在绩效评估中带来的不确定性是至关重要的。这项工作致力于对不同的基于线性势流的数值模型进行基准测试,以评估WECs的系统性能。本文考虑了三种具有代表性的数值模拟方法,包括线性频域建模、统计线性化谱域建模和基于康明斯方程的非线性时域建模。本文以一种通用的点吸收体WEC作为研究参考,并考虑了不同海域的情况。利用数值模型对动力性能、年发电量、容量系数、能源平准化成本和PTO疲劳载荷等关键性能指标进行了预测。通过比较结果,本工作确定了与评估WEC性能的不同建模方法相关的不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Benchmark of numerical modeling approaches on the systematic performance evaluation of wave energy converters
Different numerical modeling methods have been developed and applied to evaluate a variety of performance indicators of wave energy converters (WECs), including the power performance, structural loads, levelized cost of energy, etc. Based on the modeling fidelity, the commonly used numerical modeling approaches can be classified as linear modeling, weakly nonlinear modeling and fully nonlinear modeling approaches. Each method differs in accuracy and computational efficiency, making them suitable for different stages of WEC design. However, the selection of modeling approach could significantly impact evaluation outcomes. For instance, simplified linear models may underestimate structural loads or overestimate energy production in some operational conditions, potentially leading to less cost-effective designs. Given the widespread utilization of these models, it is essential to understand the uncertainties brought by them in performance evaluations. This work is dedicated to benchmarking different linear-potential-flow-based numerical models for evaluating the systematic performance of WECs. Three representative numerical modeling approaches are considered in this work, including linear frequency-domain modeling, statistically linearized spectral-domain modeling and Cummins equation-based nonlinear time-domain modeling. A generic point absorber WEC is considered as the research reference in this work, and different sea sites are taken into account. The numerical models are utilized to predict critical performance indicators, including power performance, the annual energy production, the capacity factor, the levelized cost of energy and the PTO fatigue loads. By comparing the results, this work identifies the uncertainties associated with different modeling approaches in evaluating WEC performance.
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来源期刊
Applied Ocean Research
Applied Ocean Research 地学-工程:大洋
CiteScore
8.70
自引率
7.00%
发文量
316
审稿时长
59 days
期刊介绍: The aim of Applied Ocean Research is to encourage the submission of papers that advance the state of knowledge in a range of topics relevant to ocean engineering.
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