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Measurements of static and dynamic mooring line damping and their importance for floating WEC devices

机译:静态和动态系泊绳阻尼的测量及其对浮动WEC设备的重要性

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The dynamic response of the mooring line will be a dominant factor to consider in their use for the station keeping of a wave energy converter (WEC). Due to the relatively small size of WECs and their being moored in relatively shallow waters the effect of waves, tide and current can be of greater significance than for other floating offshore systems. Axial line stretching and high-frequency 'top-end' dynamics can importantly modify damping and top-end loading.rnIf a 'farm' of devices is to be considered then limitations in sea space may necessitate that the devices be relatively densely packed. This will mean that the 'footprint' of the mooring should be constrained, to ensure that the moorings from each device do not interfere and this will have great significance for the loading experienced by the line. One must also consider how the mooring system might change the response of the WEC and so alter its ability to extract power from the waves. Unlike a typical offshore system, the design of moorings for a WEC device must consider reliability and survivability, and the need to ensure efficient energy conversion.rnThe design and operation of a chain mooring for a WEC is considered here. Generic experimental measurements of mooring line damping were conducted in the Heriot-Watt University wave basin at a scale of 1:10. The measurements were conducted on a single mooring line for surge motions and include the study of axial stretching and high top-end dynamics. The laboratory procedures were designed to resemble tests undertaken earlier at 'full' scale in 24 m water depth. The measurements were also compared with numerical studies. The experimental findings for WEC devices, supports the conclusion that dynamic mooring line motion will be an important variable, needing to be considered carefully within the design.
机译:系泊缆的动态响应将是在将其用于波能转换器(WEC)的站点保持时要考虑的主要因素。由于WEC的尺寸较小,并且将它们停泊在相对较浅的水中,因此波浪,潮汐和海流的影响比其他浮动海上系统的影响更大。轴向拉伸和高频“高端”动力学可以显着改变阻尼和高端负载。如果要考虑设备的“农场”,那么海洋空间的限制可能要求设备相对密集地包装。这意味着应限制系泊设备的“足迹”,以确保来自每个设备的系泊设备不会干扰,这对于线路承受的负载将具有重要意义。还必须考虑系泊系统如何改变WEC的响应,从而改变其从海浪中提取能量的能力。与典型的海上系统系统不同,WEC设备的系泊设备设计必须考虑可靠性和生存能力,以及确保有效的能量转换的需求。此处考虑WEC的链式系泊设备的设计和操作。系泊绳阻尼的一般实验测量是在Heriot-Watt大学波浪盆地中进行的,比例为1:10。这些测量是在一条单一的系泊缆线上进行浪涌运动的,其中包括对轴向拉伸和高端动态的研究。实验室程序的设计类似于早期在24 m水深中“全”规模进行的测试。还将测量结果与数值研究进行比较。 WEC设备的实验结果支持以下结论:动态系泊绳运动将是一个重要的变量,需要在设计中仔细考虑。

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