首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >WHISTLING OF PIPES WITH NARROW CORRUGATIONS. SCALE MODEL TESTS AND CONSEQUENCES FOR CARCASS DESIGN
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WHISTLING OF PIPES WITH NARROW CORRUGATIONS. SCALE MODEL TESTS AND CONSEQUENCES FOR CARCASS DESIGN

机译:吹口哨时出现狭窄现象。车身设计的规模模型测试和结果

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Pipes for gas production and transport with a corrugated inner surface, as used in flexible pipes, can be subject to Flow-Induced Pulsations when the flow velocity is larger than a certain velocity. This onset velocity is dependent on the geometry of the corrugations, the operational conditions and the geometry of the topside and subsea piping. In this paper, small-scale tests performed on corrugated tubes are reported. The tested geometries include both "classical" profiles, similar to the inner profile of agraff flexible risers, and profiles with less typical variations, such as narrower and/or deeper cavities, or irregular pitch. These tests were performed in order to evaluate the validity of a prediction model developed earlier for the onset of pulsations, for corrugated pipes with these kinds of atypical variations, which are found on a new type of carcass designs. The mechanism of Flow-Induced Pulsations in corrugated pipes is discussed, as well as the principle of the prediction model. The experimental results show that the validity of the model remains reasonable in most cases, except when the cavities are very narrow. In this case, the model becomes overly conservative. This limitation can be attributed to the fact that, for very narrow cavities, the cavity opening becomes too small compared to the boundary-layer momentum thickness, effectively destroying any instability of the shear layer. Furthermore, the shift towards higher frequencies of the acoustic source term due to narrower cavities, and the possible coupling with higher acoustic modes, is considered. The results of the analysis are used to evaluate the onset velocity and whistling behavior of a newly developed carcass design of flexible risers. A previous analysis has indicated that the particular geometry profile of the new design improves the whistling behavior by pushing the onset velocity outside the typical operational envelope of flexible risers. The analysis confirms that the new design will be less prone to whistling than flexible risers with classical agraff carcasses.
机译:当挠性管中使用的气体生产和运输用内表面呈波纹状的管,当流速大于一定速度时,可能会受到流致脉动。该开始速度取决于波纹的几何形状,操作条件以及顶侧和海底管道的几何形状。本文报道了在波纹管上进行的小规模测试。所测试的几何形状既包括“经典”轮廓,类似于接枝挠性立管的内部轮廓,又包括具有较小典型变化的轮廓,例如更窄和/或更深的空腔,或不规则的间距。进行这些测试是为了评估较早开发的针对脉动发生的预测模型的有效性,该预测模型适用于在新型type体设计中发现的具有此类非典型变化的波纹管。讨论了波纹管内流动引起脉动的机理,以及预测模型的原理。实验结果表明,该模型的有效性在大多数情况下仍然是合理的,除非空腔非常狭窄。在这种情况下,模型变得过于保守。该限制可归因于以下事实:对于非常狭窄的空腔,与边界层动量厚度相比,空腔的开口变得太小,从而有效地破坏了剪切层的任何不稳定性。此外,考虑到由于更窄的空腔而导致的声源项向更高频率的偏移,以及可能与更高声模式的耦合。分析结果用于评估新开发的柔性立管胎体设计的起步速度和呼啸行为。先前的分析表明,新设计的特定几何轮廓通过将开始速度推到柔性立管的典型操作范围之外来改善了吹口哨行为。分析证实,新设计比带有经典嫁接尸体的柔性立管更不容易吹哨。

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