This work presents a robust method that minimises the impact of user-selected parameter on the identification of generic models to study the coherent dynamics in turbulent flows. The objective is to gain insight into the flow dynamics from a data-driven reduced order model (ROM) that is developed from measurement data of the respective flow. For an efficient separation of the coherent dynamics, spectral proper orthogonal decomposition (SPOD) is used, projecting the flow field onto a low-dimensional subspace, so that the dominating dynamics can be represented with a minimal number of modes. A function library is defined using polynomial combinations of the temporal modal coefficients to describe the flow dynamics with a system of nonlinear ordinary differential equations. The most important library functions are identified in a two-stage cross-validation procedure (conservative and restrictive sparsification) and combined in the final model. In the first stage, the process uses a simple approximation of the derivative to match the model with the data. This stage delivers a reduced set of possible library function candidates for the model. In the second, more complex stage, the model of the entire flow is integrated over a short time and compared with the progression of the measured data. This restrictive stage allows a robust identification of nonlinearities and modal interactions in the data and their representation in the model. The method is demonstrated using data from particle image velocimetry (PIV) measurements of a circular cylinder undergoing vortex-induced vibration (VIV) at Re=4000\documentclass[12pt]{minimal}
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\begin{document}$$\mathrm{Re}=4000$$\end{document}. It delivers a reduced order model that reproduces the average dynamics of the flow and reveals the interaction of coexisting flow dynamics by the model structure.
机构:
School of Aerospace Engineering, Tsinghua University, Beijing,100084, ChinaSchool of Aerospace Engineering, Tsinghua University, Beijing,100084, China
Han, Peng
Huang, Qiaogao
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School of Marine Science and Technology, Northwestern Polytechnical University, Xi'an,710072, ChinaSchool of Aerospace Engineering, Tsinghua University, Beijing,100084, China
Huang, Qiaogao
Qin, Denghui
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College of Engineering, Peking University, Beijing,100871, ChinaSchool of Aerospace Engineering, Tsinghua University, Beijing,100084, China
Qin, Denghui
Pan, Guang
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School of Marine Science and Technology, Northwestern Polytechnical University, Xi'an,710072, ChinaSchool of Aerospace Engineering, Tsinghua University, Beijing,100084, China
机构:
Anhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
Swansea Univ, Zienkiewicz Inst Modelling Data & AI, Fac Sci & Engn, Swansea SA1 8EN, WalesAnhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
Zhu, Chuanhua
Xiao, Dunhui
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Tongji Univ, Sch Math Sci, Key Lab Intelligent Comp & Applicat, Minist Educ, Shanghai 200092, Peoples R China
Tongji Univ, State Key Lab Disaster Reduct Civil Engn, Shanghai 200092, Peoples R ChinaAnhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
Xiao, Dunhui
Fu, Jinlong
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机构:
Swansea Univ, Zienkiewicz Inst Modelling Data & AI, Fac Sci & Engn, Swansea SA1 8EN, Wales
Queen Mary Univ London, Fac Sci & Engn, Dept Mech Engn, London E1 4NS, EnglandAnhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
Fu, Jinlong
Feng, Yuntian
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机构:
Swansea Univ, Zienkiewicz Inst Modelling Data & AI, Fac Sci & Engn, Swansea SA1 8EN, WalesAnhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
Feng, Yuntian
Fu, Rui
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Swansea Univ, Zienkiewicz Inst Modelling Data & AI, Fac Sci & Engn, Swansea SA1 8EN, WalesAnhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
Fu, Rui
Wang, Jinsheng
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机构:
Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, EnglandAnhui Jianzhu Univ, Sch Environm & Energy Engn, Hefei 230601, Peoples R China
机构:
Univ Fed Rio de Janeiro, Ave Moniz Aragao 360, BR-21941594 Rio De Janeiro, RJ, BrazilUniv Fed Rio de Janeiro, Ave Moniz Aragao 360, BR-21941594 Rio De Janeiro, RJ, Brazil
Honigbaum, Jacques
Rochinha, Fernando Alves
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Univ Fed Rio de Janeiro, Ave Moniz Aragao 360, BR-21941594 Rio De Janeiro, RJ, BrazilUniv Fed Rio de Janeiro, Ave Moniz Aragao 360, BR-21941594 Rio De Janeiro, RJ, Brazil