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水平轴潮流涡轮机在高强度均匀湍流下的谱特性
Spectral behavior of a horizontal axis tidal turbine in elevated levels of homogeneous turbulence
| 作者 | Mohd Hanzl · Arindam Banerj |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 380 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | Role of elevated turbulence on turbine [spectral response](https://www.sciencedirect.com/topics/engineering/spectral-response "Learn more about spectral response from ScienceDirect's AI-generated Topic Pages") is studied experimentally |
语言:
中文摘要
摘要 潮流涡轮机在较高水平的自由来流湍流中运行。来流湍流影响涡轮机的性能和载荷,并导致传递至电网的功率波动,因而需要昂贵的同步装置。考虑湍流参数在产生涡轮机输出波动中的作用,对于此类设备的优化设计至关重要。本文开展了一项详细的实验研究,以分析一台1:20缩尺比涡轮机在高强度湍流条件下的功率和推力波动,并将其结果与准层流低湍流来流条件进行对比。特别地,我们考察了湍流强度、积分长度尺度、周期性结构以及叶尖速比对涡轮机谱响应的影响。研究发现,涡轮机的功率和推力谱存在低频、中频和高频三个不同的区域,其差异主要体现在低频和中频区域,且随来流条件而变化。当来流由准层流向高湍流过渡时,中频区域的衰减更为陡峭,其中功率谱由f−2变为f−11/3,推力谱由f−1变为f−8/3。来流中较大的积分长度尺度将衰减区域延伸至更低频率。然而,与推力谱不同,功率谱在较高叶尖速比下表现出从f−5/3到f−8/3的转变,并额外出现f−11/3的区域。涡轮机显示出周期性结构影响的显著特征,这些结构不仅增加了波动幅度,还可能显著增强叶片的疲劳载荷,尤其是低频周期性结构的影响更为突出。最后,本研究展示了现有涡轮机谱模型在两种不同积分长度尺度工况(Lu << D 和 Lu ~ D)及多种叶尖速比下的适用性。
English Abstract
Abstract Tidal turbines operate in elevated levels of freestream turbulence. The inflow turbulence affects the turbine performance and loading and drives the power fluctuations transmitted to the grid, necessitating costly synchronizers . Accounting for the role of turbulence parameters in generating turbine output fluctuations is vital for the optimal design of these devices. A detailed experimental campaign was conducted to study the power and thrust fluctuations of a 1:20 scaled turbine subjected to elevated turbulence; the results are compared to quasi-laminar low turbulence inflow conditions. In particular, we examine the effects of turbulence intensity , integral length scale , periodic structures, and tip-speed ratios on the turbine spectral response . Three distinct regimes of low, intermediate, and high frequency for the turbine power and thrust spectra are found, with differences mostly arising in the low and intermediate regions depending on the inflow condition. A transition from quasi-laminar to elevated turbulence inflow resulted in a steeper decay in the intermediate region, with f −2 to f −11/3 for turbine power and f −1 to f −8/3 for thrust. A larger integral length scale in the inflow extends the decay region to lower frequencies. However, unlike thrust, the power spectra exhibit a transition from f −5/3 to f −8/3 with an additional f −11/3 region at higher tip-speed ratios. The turbine indicates strong signatures of the impact of periodic structures, which not only increases the fluctuations but can significantly enhance the fatigue loading of the blades, particularly for low-frequency periodic structures. Lastly, the study demonstrates the use of existing turbine spectral models for two different integral length scale regimes ( L u < < D and L u ~ D ) at varied tip-speed ratios.
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SunView 深度解读
该潮汐轮机频谱研究对阳光电源储能系统具有重要借鉴价值。研究揭示的湍流致功率波动机制与ST系列PCS面临的新能源并网波动抑制需求高度契合。文中f^-11/3至f^-8/3频谱衰减特性可指导PowerTitan储能系统的功率平滑算法优化,特别是针对低频周期性扰动的滤波策略设计。湍流积分尺度对频谱影响的分析方法,可应用于GFM控制策略中电网扰动特征识别,提升VSG虚拟惯量响应精度。建议将频域分析方法集成至iSolarCloud平台,实现储能系统疲劳载荷预测性维护,延长PCS功率器件寿命。