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首页> 外文期刊>Journal of turbomachinery >Effect of Blade Skew Strategies on the Operating Range and Aeroacoustic Performance of the Wells Turbine
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Effect of Blade Skew Strategies on the Operating Range and Aeroacoustic Performance of the Wells Turbine

机译:叶片偏斜策略对水轮机工作范围和空气声学性能的影响

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One of the most intensively studied principles of harnessing the energy from ocean waves is the oscillating water column (OWC) device. The OWC converts the motion of the water waves into a bidirectional air flow, which in turn drives an air turbine. The bidirectional axial Wells turbine as a candidate for OWC power takeoff systems was the object of considerable research conducted in the last decades. The vast majority of the investigations focused on the aerodynamic performance. However, aiming at minimizing the overall environmental impact of this technology requires a new effort to reduce the aeroacoustic noise associated with a Wells turbine's operation. As for other turbomachinery, rotor blade skew is hypothesized to affect aeroacoustic noise sources favorably. Because of the unique symmetry of the blade shape of any Wells turbine, skew here means an inclination of the stagger line exclusively in circumferential direction and hence incorporates a combination of blade sweep and dihedral. Based on a blade element momentum theory, a new blade design methodology for a Wells turbine with skewed blades is established. Then, the effect of blade skew is assessed systematically by numerical simulations and experiments. As compared to a state-of-the-art rotor with straight blades, optimal backward/forward blade skew from hub to tip delays the onset of stall and increases the range of unstalled operation by approximately 5% in terms of static pressure head. As a Wells turbine in an OWC power plant operates cyclically along its characteristic, any extension of stall-free operating range has the potential of improving the energy yield. The flow-generated sound in unstalled operation was decreased up to 3 dB by optimal backward/forward blade skew. However, the predominate noise benefit in terms of equivalent sound power along complete operating cycles is due to the extended operating range without excessive sound due to stall.
机译:振荡水柱(OWC)装置是利用海浪能量进行最深入研究的原理之一。 OWC将水波的运动转换为双向气流,进而驱动空气涡轮机。双向轴向Wells涡轮机作为OWC动力输出系统的候选产品是最近几十年来进行的大量研究的目标。绝大多数研究集中在空气动力学性能上。但是,要最大程度地降低此技术的整体环境影响,就需要做出新的努力来减少与Wells涡轮机运行相关的空气声噪声。对于其他涡轮机械,假设转子叶片偏斜会有利地影响空气声噪声源。由于任何Wells涡轮机叶片形状的独特对称性,此处的偏斜意味着交错线仅在圆周方向上倾斜,因此将叶片扫掠和二面体结合在一起。基于叶片单元动量理论,建立了具有倾斜叶片的韦尔斯涡轮机的新叶片设计方法。然后,通过数值模拟和实验系统地评估了叶片偏斜的影响。与最先进的带有直叶片的转子相比,从轮毂到叶尖的最佳后/前叶片偏斜延迟了失速的发生,就静压压头而言,失速运行的范围增加了大约5%。由于OWC电厂中的Wells涡轮机沿其特性循环运行,因此任何无停顿运行范围的扩展都可能会提高发电量。通过最佳的后退/前退叶片偏斜,在非驻车状态下,气流产生的声音降低了3 dB。但是,就整个工作周期而言,在等效声功率方面,主要的噪声优势是由于扩展了工作范围而没有因失速而产生的过多声音。

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