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Effect of blade flutter and electrical loading on small wind turbine noise

机译:叶片颤振和电负载对小风轮机噪声的影响

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The effect of blade flutter and electrical loading on the sound level of two different size wind turbines was investigated at the Conservation and Production Research Laboratory near Bushland, TX. Data were collected on two blade designs tested on a wind turbine rated at 1 kW, and there also was a third blade tested on an improved version of the same wind turbine. The 1 kW wind turbines were used for off-grid water pumping. If the 1 kW wind turbines were electrically loaded, the start of blade flutter was delayed from 700 to 900 rpm when the blade length was reduced 9.2%, and no blade flutter occurred when the shorter fiberglass blades were stiffened. However, if there was no electrical load (e.g. offline), the shorter stiffer blades would start to flutter at 1050 rpm. For the 10 kW wind turbine, two blade designs were tested for off-grid water pumping, and a third blade design was tested on a utility grid-tie system. The original blades fluttered when the 10 kW off-grid wind turbine was offline at a rotor speed of 260 rpm, but the second blade design (different airfoil) appeared to never flutter at any rotor speed when offline. For the 10 kW wind turbine, the sound emission of the second blade design was approximately the same as that of the third blade design - both had lower sound emissions than the original blade design. Blade flutter increased the average sound power level on the 1 kW wind turbine 15-20 dB and on the 10 kW wind turbine 5-7 dB. A procedure was developed which allowed the best blade design for sound emission to be identified even though the microphone measurement position varied (due to different tower heights) and electrical loading was different (on-grid, off-grid, or offline). This paper should be of help to design engineers interested in designing wind turbines with a lower sound emission, and test engineers collecting and analyzing sound level data of existing wind turbines. This paper may also help in the validation of computer codes that are used to predict whether blade flutter will occur on large MW size wind turbines.
机译:在德克萨斯州布什兰市附近的自然保护和生产研究实验室研究了叶片颤振和电负载对两种不同尺寸的风力发电机的声级的影响。收集了在额定功率为1 kW的风力涡轮机上测试的两种叶片设计的数据,并且在同一风力涡轮机的改进版本上还测试了第三个叶片。 1 kW风力涡轮机用于离网抽水。如果对1 kW风力涡轮机进行电力加载,则当叶片长度减少9.2%时,叶片颤动的开始会从700 rpm延迟到900 rpm,并且当较短的玻璃纤维叶片变硬时,不会发生叶片颤动。但是,如果没有电力负载(例如离线),则较短的较硬的刀片将开始以1050 rpm的速度颤动。对于10 kW风力涡轮机,测试了两种叶片设计的离网水泵,并在公用电网并网系统上测试了第三种叶片​​设计。当10 kW离网型风力发电机在脱机状态下以260 rpm的转速脱机时,原始叶片会颤动,但是第二种叶片设计(不同的翼型)在脱机时似乎不会以任何转子速度颤动。对于10 kW风力涡轮机,第二种叶片设计的声音排放与第三种叶片​​设计的声音排放大致相同-两者的声音排放均低于原始叶片设计。叶片颤动将1 kW风力发电机的平均声功率提高了15-20 dB,将10 kW风力发电机的平均声功率提高了5-7 dB。开发了一种程序,即使麦克风测量位置发生变化(由于塔架高度不同)并且电气负载不同(并网,离网或离线),也可以确定用于声音发射的最佳叶片设计。本文对有兴趣设计噪声较低的风力涡轮机的设计工程师以及测试工程师收集和分析现有风力涡轮机的声级数据有帮助。本文还可能有助于验证用于预测大型兆瓦级风力涡轮机是否会发生叶片颤振的计算机代码。

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