Methods of fluid-structure coupling in frequency and time domains using linearized aerodynamics for turbomachinery

被引:19
作者
Tran, DM [1 ]
Liauzun, C [1 ]
Labaste, C [1 ]
机构
[1] Off Natl Etud & Rech Aerosp, Struct Dynam & Coupled Syst Dept, F-92322 Chatillon, France
关键词
D O I
10.1016/S0889-9746(03)00068-9
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Two methods of fluid-structure coupling for turbomachinery are presented, the first one in the frequency domain and the second in both frequency and time domains. In both methods, the structure and the fluid are assumed to have circumferential cyclic symmetric properties and the unsteady aerodynamic forces are assumed to be linear in terms of the structural displacements. The motion equation of the reference sector in the travelling wave coordinates is projected on the complex eigenmodes for each phase number. The generalized unsteady aerodynamic forces are computed by solving the Euler equations and by assuming the structural motion to be harmonic with a constant phase angle between two adjacent sectors. In the frequency domain, the complex, nonlinear eigenvalue problem for the aeroelastic stability analysis is solved iteratively either by the double scanning method or by using Karpel's minimum state smoothing of the aerodynamic coefficient matrix. In the time domain, Karpel's smoothing method is used to obtain an approximation of the generalized unsteady aerodynamic forces by means of auxiliary state variables. These coupling methods are tested on a compressor blade row and the good agreement obtained between their results and those of the direct coupling method shows that the proposed numerical methods, already used in aircraft applications, are adapted to turbomachinery. (C) 2003 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1161 / 1180
页数:20
相关论文
共 50 条
[21]   Parallel methods for fluid-structure interaction [J].
Jenssen, CB ;
Kvamsdal, T ;
Okstad, KM ;
Amundsen, J .
APPLIED PARALLEL COMPUTING: LARGE SCALE SCIENTIFIC AND INDUSTRIAL PROBLEMS, 1998, 1541 :263-274
[22]   DECOUPLING METHODS FOR FLUID-STRUCTURE INTERACTION WITH LOCAL TIME-STEPPING [J].
Kunwar, Hemanta ;
Lee, Hyesuk .
INTERNATIONAL JOURNAL OF NUMERICAL ANALYSIS AND MODELING, 2025, 22 (01) :71-95
[23]   Transient fluid-structure coupling for simulation of a trileaflet heart valve using weak coupling [J].
Morsi, Yos S. ;
Yang, William W. ;
Wong, Cynthia S. ;
Das, Subrat .
JOURNAL OF ARTIFICIAL ORGANS, 2007, 10 (02) :96-103
[24]   Immersed Methods for Fluid-Structure Interaction [J].
Griffith, Boyce E. ;
Patankar, Neelesh A. .
ANNUAL REVIEW OF FLUID MECHANICS, VOL 52, 2020, 52 :421-448
[25]   Aeroelastic simulations of isolated rotors using weak fluid-structure coupling [J].
Dietz, M. ;
Kessler, M. ;
Kraemer, E. .
HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING '06, 2007, :407-420
[26]   A Newton method using exact jacobians for solving fluid-structure coupling [J].
Fernández, MA ;
Moubachir, M .
COMPUTERS & STRUCTURES, 2005, 83 (2-3) :127-142
[27]   Trimmed simulation of a complete helicopter configuration using fluid-structure coupling [J].
Dietz, M. ;
Kessler, M. ;
Kraemer, E. .
HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING '07, 2008, :487-+
[28]   THERMAL FLUID-STRUCTURE COUPLING FOR ATMOSPHERIC ENTRIES [J].
Joshi, Ojas ;
Leyland, Penelope .
PROCEEDINGS OF THE ASME/JSME 8TH THERMAL ENGINEERING JOINT CONFERENCE 2011, VOL 1 PTS A AND B, 2011, :215-223
[29]   Fluid-structure interaction coupling CFD and FEA [J].
Marriott, Douglas .
PROGRESS IN COMPUTATIONAL FLUID DYNAMICS, 2014, 14 (01) :57-64
[30]   Fluid-structure coupling kinetic analysis of propellers [J].
Zheng, Zhiguo ;
Zhao Deyou ;
Wang Gaozhang .
Dalian Ligong Daxue Xuebao/Journal of Dalian University of Technology, 1996, 36 (02)