Zhigang Liu, Chuan Jin, Sunwei Li, Wei Li, Jiayao Wang
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The vibrations of the flexible cylinder predicted by the revised wake oscillator are compared to the measurements taken from an experiment reported in the literature. The comparison indicates that increasing polynomial coefficients generally reduce VIV dominant mode numbers. In addition, increasing the polynomial order aligns the dominant mode more closely with experimental data, although this effect diminishes when the polynomial order exceeds 4. It is argued that the gradual change in phase differences along the cylinder induced by increasing either polynomial coefficient or maximum order could be the reason. The present study sheds light into the mechanism for the damping effect observed in hydrodynamic forces observed in VIVs and lays the foundation for suggesting an optimal formulation of the damping terms as 0.45q2+0.6q−0.3 compared to the conventional formulation of 0.3q2−0.3.","PeriodicalId":509470,"journal":{"name":"Physics of Fluids","volume":"15 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Improvement for modeling the damping of the wake oscillator based on the Van der Pol scheme\",\"authors\":\"Zhigang Liu, Chuan Jin, Sunwei Li, Wei Li, Jiayao Wang\",\"doi\":\"10.1063/5.0214541\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Given the importance of risers and umbilical cables in the exploitation of deep-sea resources, the vortex induced vibration (VIV) of long flexible cylinders has been systematically studied, and it is acknowledged that the wake oscillator is a satisfactory tool in practically predicting the VIV for offshore engineering applications. 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It is argued that the gradual change in phase differences along the cylinder induced by increasing either polynomial coefficient or maximum order could be the reason. 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引用次数: 0
摘要
鉴于立管和脐带缆在深海资源开发中的重要性,人们对长柔性圆柱体的涡流诱导振动(VIV)进行了系统研究,并公认唤醒振荡器是近海工程应用中实际预测 VIV 的理想工具。本研究以具有不同阻尼项公式的传统唤醒振荡器为基础,系统地探讨了 Van der Pol 型唤醒振荡器中多项式阻尼项的系数和最大阶数的影响。更具体地说,二阶多项式的系数被调整为在合理范围内变化,多项式阶数也从传统的 2-4、6 和 8 提高到了 2-4、6 和 8。修正后的唤醒振荡器预测的柔性圆柱体振动与文献中报道的实验测量结果进行了比较。比较结果表明,增加多项式系数通常会减少 VIV 主导模态数。此外,增加多项式阶数可使主模式与实验数据更加接近,但当多项式阶数超过 4 时,这种效果会减弱。有观点认为,增加多项式系数或最大阶数可能会引起沿圆柱体相位差的逐渐变化。本研究揭示了在 VIV 中观察到的流体动力的阻尼效应机制,并为提出阻尼项的最佳公式 0.45q2+0.6q-0.3 而不是传统公式 0.3q2-0.3 奠定了基础。
Improvement for modeling the damping of the wake oscillator based on the Van der Pol scheme
Given the importance of risers and umbilical cables in the exploitation of deep-sea resources, the vortex induced vibration (VIV) of long flexible cylinders has been systematically studied, and it is acknowledged that the wake oscillator is a satisfactory tool in practically predicting the VIV for offshore engineering applications. Based on the conventional wake oscillator with different damping term formulations, the present study systematically explores the influences of the coefficients and the maximum order of a polynomial damping term within the Van der Pol type wake oscillator. More specifically, the coefficients of the second-order polynomial are adjusted to vary inside a reasonable range, and the polynomial order is increased from the conventional specification of 2–4, 6, and 8. The vibrations of the flexible cylinder predicted by the revised wake oscillator are compared to the measurements taken from an experiment reported in the literature. The comparison indicates that increasing polynomial coefficients generally reduce VIV dominant mode numbers. In addition, increasing the polynomial order aligns the dominant mode more closely with experimental data, although this effect diminishes when the polynomial order exceeds 4. It is argued that the gradual change in phase differences along the cylinder induced by increasing either polynomial coefficient or maximum order could be the reason. The present study sheds light into the mechanism for the damping effect observed in hydrodynamic forces observed in VIVs and lays the foundation for suggesting an optimal formulation of the damping terms as 0.45q2+0.6q−0.3 compared to the conventional formulation of 0.3q2−0.3.