Prediction of clamped-clamped elastic panel motion under influence of shock-wave turbulent boundary layer interactions using WMLES with a 3D aeroelastic solver

被引:0
作者
Johnson, Chelsea [1 ]
Serafim, Luisa Piccolo [2 ]
Oefelein, Joseph C. [1 ]
Dowell, Earl H. [2 ]
机构
[1] Georgia Inst Technol, Atlanta, GA 30332 USA
[2] Duke Univ, Durham, NC 27708 USA
关键词
Shock-wave boundary layer interaction; Fluid-structure interaction; Flexible panel; Wall-modeled large eddy simulation; Aeroelastic model; Impinging shock; LARGE-EDDY SIMULATION; SUBGRID-SCALE MODEL; DIRECT NUMERICAL-SIMULATION; KINETIC-ENERGY; SCHEMES; FORMULATION; ENTROPY; FLOWS;
D O I
10.1016/j.jfluidstructs.2025.104281
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A loosely coupled approach for the prediction of fluid-structure interactions is investigated for a high Reynolds number flow with a shock-wave impinging on a thin flexible panel. The fluid domain is solved using a wall-modeled large eddy simulation (LES), and the resulting time-resolved flowfields are provided as input to a theoretical-computational aeroelastic solver. The computational study mimics the flow and structural conditions of an existing experiment such that the panel displacements can be compared. The approach shows an improvement over an existing theoretical-computational model. For example, predictions of the maximum static deformation, which is a key metric, are shown to be within 10% of the experimental result. Predictions of the time-dependent oscillations of the panel show sensitivity to the coherence length provided to the aeroelastic solver, as noted by Freydin et al. The discrepancy in the magnitude of predicted time-dependent panel oscillations and those observed in the experiment is hypothesized to be due to the lack of instantaneous coupling present in the method, or possibly due to variability in the static pressure of the wind tunnel throughout the run.
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页数:20
相关论文
共 42 条
[1]  
Babinsky H., 2011, Shock Wave-Boundary-Layer Interactions
[2]  
Center N.D.F.R., 2004, The X-15, P1
[3]  
Cummings R.M., 2018, Paper 2018-5205
[4]   Experiments on the Interaction of a Fast-Moving Shock with an Elastic Panel [J].
Daub, Dennis ;
Willems, Sebastian ;
Guelhan, Ali .
AIAA JOURNAL, 2016, 54 (02) :670-678
[5]   A NUMERICAL STUDY OF 3 DIMENSIONAL TURBULENT CHANNEL FLOW AT LARGE REYNOLDS NUMBERS [J].
DEARDORFF, JW .
JOURNAL OF FLUID MECHANICS, 1970, 41 :453-+
[6]   TOWARD THE LARGE-EDDY SIMULATION OF COMPRESSIBLE TURBULENT FLOWS [J].
ERLEBACHER, G ;
HUSSAINI, MY ;
SPEZIALE, CG ;
ZANG, TA .
JOURNAL OF FLUID MECHANICS, 1992, 238 :155-185
[7]   Response of a plate with piezoelectric elements to turbulent pressure fluctuation in supersonic flow [J].
Freydin, Maxim ;
Dowell, Earl H. ;
Varigonda, Santosh Vaibhav ;
Narayanaswamy, Venkateswaran .
JOURNAL OF FLUIDS AND STRUCTURES, 2022, 114
[8]   Fully Coupled Nonlinear Aerothermoelastic Computational Model of a Plate in Hypersonic Flow [J].
Freydin, Maxim ;
Dowell, Earl H. .
AIAA JOURNAL, 2021, 59 (07) :2725-2736
[9]   Nonlinear Theoretical Aeroelastic Model of a Plate: Free to Fixed In-Plane Boundaries [J].
Freydin, Maxim ;
Dowell, Earl H. .
AIAA JOURNAL, 2021, 59 (02) :658-672
[10]   Nonlinear dynamics and flutter of plate and cavity in response to supersonic wind tunnel start [J].
Freydin, Maxim ;
Dowell, Earl H. ;
Spottswood, S. Michael ;
Perez, Ricardo A. .
NONLINEAR DYNAMICS, 2021, 103 (04) :3019-3036