USING MACHINE LEARNING TO IDENTIFY IMPORTANT PARAMETERS FOR FLOW-INDUCED VIBRATION

被引:0
|
作者
Ma, Leixin [1 ]
Resvanis, Themistocles L. [1 ]
Vandiver, J. Kim [1 ]
机构
[1] MIT, 77 Massachusetts Ave, Cambridge, MA 02139 USA
关键词
Flexible riser; Flow induced vibration; Feature selection; Machine learning; VORTEX-INDUCED VIBRATION; LONG;
D O I
暂无
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Vortex-induced vibration (VIV) of long flexible cylinders in deep water involves a large number of physical variables, such as Strouhal number, Reynolds number, mass ratio, damping parameter etc. Among all the variables, it is essential to identify the most important parameters for robust VIV response prediction. In this paper, machine learning techniques were applied to iteratively reduce the dimension of VIV related parameters. The crossflow vibration amplitude was chosen as the prediction target. A neural network was used to build nonlinear mappings between a set of up to seventeen input parameters and the predicted crossflow vibration amplitude. The data used in this study came from 38-meter-long bare cylinders of 30 and 80 mm diameters, which were tested in uniform and sheared flows at Marintek in 2011. A baseline prediction using the full set of seventeen parameters gave a prediction error of 12%. The objective was then to determine the minimum number of input parameters that would yield approximately the same level of prediction accuracy as the baseline prediction. Feature selection techniques including both forward greedy feature selection and combinatorial search were implemented in a neural network model with two hidden layers. A prediction error of 13% was achieved using only six of the original seventeen input parameters. The results provide insight as to those parameters which are truly important in the prediction of the VIV of flexible cylinders. It was also shown that the coupling between inline and crossflow vibration has significant influence. It was also confirmed that Reynolds number and the damping parameter, c*, are important for predicting the crossflow response amplitude of long flexible cylinders. While shear parameter was not helpful for response amplitude prediction.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] FLOW-INDUCED VIBRATION OF A CONTROL VALVE IN A CAVITATING FLOW
    Watanabe, Masanobu
    Nishino, Koji
    Kitajima, Yasumi
    Yonekura, Kazuyoshi
    Hagiwara, Tsuyoshi
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE 2009, VOL 4, 2010, : 239 - 246
  • [22] Material Fatigue due to flow-induced acoustic Resonance Operational Vibration Analysis to identify the Cause
    Bosnjak, Ana
    Biegner, Andre
    SCHWINGUNGSANALYSE AND IDENTIFIKATION: MIT FACHAUSSTELLUNG, 2010, 2093 : 213 - 222
  • [23] ANALYSIS OF FLOW-INDUCED VIBRATION USING THE VORTICITY TRANSPORT-EQUATION
    MARN, J
    CATTON, I
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1993, 115 (03): : 485 - 492
  • [24] Heat transfer enhancement using flow-induced vibration of a microfin array
    Go, JS
    Kim, SJ
    Lim, G
    Yun, H
    Lee, J
    Song, I
    Pak, YE
    SENSORS AND ACTUATORS A-PHYSICAL, 2001, 90 (03) : 232 - 239
  • [25] Passive control of flow-induced vibration of a sphere using a trip wire
    Sareen, Anchal
    Hourigan, Kerry
    Thompson, Mark C.
    JOURNAL OF FLUIDS AND STRUCTURES, 2024, 124
  • [26] Control of flow-induced vibration of a circular cylinder using a splitter plate
    Zeng, Lingwei
    Zhao, Fuwang
    Wang, Hanfeng
    Liu, Yang
    Tang, Hui
    PHYSICS OF FLUIDS, 2023, 35 (08)
  • [27] Coupled response of flow-induced vibration and flow-induced rotation of a circular cylinder with a triangular fairing
    Zhu, Hongjun
    Hao, Hongtao
    Liu, Bin
    Li, Yingmei
    PHYSICS OF FLUIDS, 2024, 36 (07)
  • [28] Optimal control of flow-induced vibration of pipeline
    Biswas, SK
    Ahmed, NU
    DYNAMICS AND CONTROL, 2001, 11 (02) : 187 - 201
  • [29] Flow-induced vibration of a steam control valve
    Yonezawa, Koichi
    Ogawa, Ryohei
    Ogi, Kanako
    Takino, Tomofumi
    Tsujimoto, Yoshinobu
    Endo, Takahide
    Tezuka, Kenichi
    Morita, Ryo
    Inada, Fumio
    JOURNAL OF FLUIDS AND STRUCTURES, 2012, 35 : 76 - 88
  • [30] A numerical study of flow-induced cable vibration
    Hsu, CT
    Kwan, MK
    Chang, CC
    FLOW-INDUCED VIBRATION, 2000, : 265 - 272