DINNO-CROR

Design of innovative CROR blade and pylon

 Coordinatore NUMERICAL MECHANICS APPLICATIONS INTERNATIONAL SA 

 Organization address address: CHAUSSEE DE LA HULPE 187-189
city: BRUXELLES
postcode: 1170

contact info
Titolo: Prof.
Nome: Charles
Cognome: Hirsch
Email: send email
Telefono: 32475840282

 Nazionalità Coordinatore Belgium [BE]
 Totale costo 409˙930 €
 EC contributo 305˙867 €
 Programma FP7-JTI
Specific Programme "Cooperation": Joint Technology Initiatives
 Code Call SP1-JTI-CS-2009-01
 Funding Scheme JTI-CS
 Anno di inizio 2010
 Periodo (anno-mese-giorno) 2010-01-01   -   2012-01-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    NUMERICAL MECHANICS APPLICATIONS INTERNATIONAL SA

 Organization address address: CHAUSSEE DE LA HULPE 187-189
city: BRUXELLES
postcode: 1170

contact info
Titolo: Prof.
Nome: Charles
Cognome: Hirsch
Email: send email
Telefono: 32475840282

BE (BRUXELLES) coordinator 155˙867.00
2    INSTITUT VON KARMAN DE DYNAMIQUE DES FLUIDES

 Organization address address: CHAUSSEE DE WATERLOO 72
city: RHODE SAINT GENESE
postcode: 1640

contact info
Titolo: Prof.
Nome: Jerome
Cognome: Anthoine
Email: send email
Telefono: 322399615

BE (RHODE SAINT GENESE) participant 150˙000.00

Mappa


 Word cloud

Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.

acoustic    modeled    blade    innovative    cfd    pylon    caa    relies    cror    extended    nlh    noise    rotor    blades    wake    surface    experimental    boundary    dinno    front    actuators    sources    numerical    facility    impedance    tested   

 Obiettivo del progetto (Objective)

'To fulfill the SFWA objectives of reduced engine noise, a major effort is required towards innovative noise control methodologies and improved predictive capability of the CFD/CAA software systems. The present project combines an experimental investigation of two, low TRL flow/noise control options, associated with an innovative and highly efficient numerical CFD/CAA approach. On the experimental side, the first noise control method, based on porous treatment of the blades, will be tested in an anechoic facility. The associated acoustic impedance will be determined as input for the CFD/CAA approach. The second concept relies on active blade surface to control the front rotor wake by actuators on the front rotor blade, possibly DBD plasma actuators. The wake characteristics behind the actuated blades will be tested in a cascade facility. On the numerical side, the DINNO-CROR proposal is based on an advanced new approach for the CFD determination of the noise sources and on the acoustic analogy for far-field noise propagation. While the CAA approach relies on a time domain formulation of the FW-H equations, the critical issue remains to deliver fast and accurate unsteady CFD-solutions for prediction of the noise sources. The DINNO-CROR project will apply the nonlinear harmonic method (NLH) which allows a gain in CPU compared to current CFD methodologies, of close to three orders of magnitude. This method has been largely validated and applied on multistage turbines and compressors, and its extension to CROR’s has recently been initiated. In the present project it will be further extended to include the physics of the investigated noise control systems. In TASK 2, the NLH methodology will be extended to model the interaction of the rotor with the pylon. For Concept 1, the boundary layer absorption will be modeled by introducing an impedance boundary conditions on the pylon; while for Concept 2, the non-radial pylon will be modeled directly as a solid surface.'

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