Coordinatore | DEUTSCHES ZENTRUM FUER LUFT - UND RAUMFAHRT EV
Organization address
address: Linder Hoehe contact info |
Nazionalità Coordinatore | Germany [DE] |
Totale costo | 7˙078˙825 € |
EC contributo | 4˙992˙335 € |
Programma | FP7-TRANSPORT
Specific Programme "Cooperation": Transport (including Aeronautics) |
Code Call | FP7-AAT-2008-RTD-1 |
Funding Scheme | CP-FP |
Anno di inizio | 2009 |
Periodo (anno-mese-giorno) | 2009-03-01 - 2013-06-30 |
# | ||||
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1 |
DEUTSCHES ZENTRUM FUER LUFT - UND RAUMFAHRT EV
Organization address
address: Linder Hoehe contact info |
DE (KOELN) | coordinator | 958˙663.00 |
2 |
EUROPEAN TRANSONIC WINDTUNNEL GMBH
Organization address
address: Ernst Mach Strasse contact info |
DE (KOELN) | participant | 760˙715.00 |
3 |
OFFICE NATIONAL D'ETUDES ET DE RECHERCHES AEROSPATIALES
Organization address
address: Avenue de la Division Leclerc 29 contact info |
FR (CHATILLON) | participant | 497˙008.00 |
4 |
TOTALFORSVARETS FORSKNINGSINSTITUT
Organization address
address: Gullfossgatan 6 contact info |
SE (STOCKHOLM) | participant | 476˙625.00 |
5 |
CENTRO ITALIANO RICERCHE AEROSPAZIALI SCPA
Organization address
address: Via Maiorise 1 contact info |
IT (CAPUA - CASERTA) | participant | 365˙944.00 |
6 |
IBK-INNOVATION GMBH & CO. KG
Organization address
address: REHDORFER STRASSE 4 contact info |
DE (NUERNBERG) | participant | 288˙400.00 |
7 |
AIRBUS OPERATIONS GMBH
Organization address
address: Kreetslag 10 contact info |
DE (HAMBURG) | participant | 274˙625.00 |
8 |
STICHTING NATIONAAL LUCHT- EN RUIMTEVAARTLABORATORIUM
Organization address
address: Anthony Fokkerweg 2 contact info |
NL (AMSTERDAM) | participant | 245˙250.00 |
9 |
TECHNISCHE UNIVERSITAT BRAUNSCHWEIG
Organization address
address: POCKELSSTRASSE 14 contact info |
DE (BRAUNSCHWEIG) | participant | 157˙477.00 |
10 |
DASSAULT AVIATION SA
Organization address
address: Rond-Point des Champs-Elysees - Marcel Dassault 9 contact info |
FR (PARIS) | participant | 134˙000.00 |
11 |
AIRBUS OPERATIONS SAS
Organization address
address: ROUTE DE BAYONNE 316 contact info |
FR (TOULOUSE) | participant | 126˙086.00 |
12 |
FEDERAL STATE UNITARY ENTERPRISE THE CENTRAL AEROHYDRODYNAMIC INSTITUTE NAMED AFTER PROF. N.E. ZHUKOVSKY
Organization address
address: Zhukovsky str 1 contact info |
RU (ZHUKOVSKY) | participant | 116˙250.00 |
13 |
AIRBUS DEFENCE AND SPACE SA
Organization address
address: Avenida de Aragon 404 contact info |
ES (MADRID) | participant | 99˙500.00 |
14 |
PIAGGIO AERO INDUSTRIES SPA
Organization address
address: Viale Castro Pretorio 116 contact info |
IT (ROMA) | participant | 93˙512.00 |
15 |
INSTITUTO NACIONAL DE TECNICA AEROESPACIAL
Organization address
address: Carretera de Ajalvir, Km. 4 contact info |
ES (TORREJON DE ARDOZ - MADRID) | participant | 85˙759.00 |
16 |
UNIVERSITA DEGLI STUDI DI NAPOLI FEDERICO II.
Organization address
address: Corso Umberto I 40 contact info |
IT (NAPOLI) | participant | 83˙112.00 |
17 |
DR. DZIOMBA BERNHARD - DZIOMBA AERONAUTICAL CONSULTING
Organization address
address: Meyersweg 9 contact info |
DE (WEYHE) | participant | 80˙000.00 |
18 |
ASCO INDUSTRIES N.V.
Organization address
address: WEIVELDLAAN 2 contact info |
BE (ZAVENTEM) | participant | 59˙409.00 |
19 |
UNIVERSITA DEGLI STUDI DI PADOVA
Organization address
address: VIA 8 FEBBRAIO 2 contact info |
IT (PADOVA) | participant | 50˙250.00 |
20 |
AIRCRAFT DEVELOPMENT AND SYSTEMS ENGINEERING (ADSE) B.V.
Organization address
address: SCORPIUS 90 contact info |
NL (HOOFDDORP) | participant | 39˙750.00 |
21 | IBK INGENIEURBUERO HAUPTSITZ | DE | participant | 0.00 |
Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.
'DeSiReH focus on both, the numerical design tools and the experimental measurement techniques for cryogenic conditions, with the objective to improve the industrial design process for laminar wings in terms of product quality, efficiency, and development cost reduction. The work focuses on the design of high lift devices. DeSiReH addresses the following quantified objectives which will make a significant contribution to meeting Vision 2020 goals: 1) Reduction of industrial A/C development costs by 5% by reduced and more efficient Wind Tunnel Testing 2) Decrease time-to-market by 5% by improved aerodynamic design turn-around time 3) Improve industrial High-Lift design process efficiency by 15% 4) Reduce A/C drag by 5% by enabling NLF though compatible High-Lift-Design To accomplish these objectives the project is planned for a period of 4 years and a budget of 7.6 Mio. Euro. The consortium consists of 6 industry partner, 7 research establishments, 3 universities, 2 small and medium-sized enterprise and the European Transonic Wind tunnel (ETW). Existing and validated high-fidelity numerical tools are composed to an efficient High-Lift design and optimization process chain in WP1. The strategies and tools developed are applied in WP 2 to the aerodynamic design of a high lift system for the future pointing HARLS wing (High Aspect Ratio Low Sweep) with the constraint to maintain Natural Lamiar Flow at cruise to the best possible extend. WP 3 focuses on the improvement of the experimental measurement technique for cryogenic testing. The objectives here are to enhance the measurement accuracy of the results and to generate the capability to apply different important techniques (e.g. transition measurement & deformation measurement). These techniques are finally applied in the ETW at High-Reynolds-Numbers on the HARLS model equipped with the High-Lift-System, designed in WP2. The final assessment of DeSiReH results is done in WP4 by assessing the numerical'
Scientists are developing numerical methods and experimental techniques to streamline the design of future aircraft wings. Significant reductions in cost and time are expected to provide a competitive boost to the aircraft industry.
High-lift devices maximise the lift of aircraft, dependent in a complex way on wing shape, angle and speed of flight. As engines continue to become more powerful and aircraft loads and speed increase, high-lift devices have become a necessity for keeping take-off and landing within reasonable speed limits. High-lift systems also play a critical role in overall flight performance. Small changes in lift and drag facilitated by such systems can yield major increases in payload capabilities.
The aerodynamic design of high-lift systems has become an integral part of aircraft design. European scientists aiming to improve the process initiated the 'Design, simulation and flight Reynolds number testing for advanced high-lift solutions' (Desireh) project. The EU-funded consortium consists of six industry partners, seven research establishments, three universities, two small and medium-sized enterprises (SMEs) and the European Transonic Windtunnel (ETW).
Together, the partners are developing numerical tools and experimental measurement techniques for very cold (cryogenic) conditions to enhance the industrial design of laminar wings for high-lift capability. In particular, scientists are working toward development of a high-lift system for the future generation Natural Laminar Flow (NLF) High Aspect Ratio Low Sweep (HARLS) wing that has an optimal wing shape for maintaining laminar flow and thus reducing drag.
Scientists have developed algorithms to optimise all phases of flight (take-off, cruising and landing) simultaneously rather than individually, an important step toward a more balanced design process. In addition, they are accelerating the numerical simulation process that will significantly decrease design time given the huge computational load of the complex models. An optimal high-lift wing design has been selected for optimisation and testing. Finally, improvements in the particle image velocimetry (PIV) technique used to measure air flow have been achieved and measurement techniques have been verified for use without modification in wind tunnel tests.
The last project phase will be devoted to final optimisations of numerical algorithms and wing design and subsequent wind tunnel testing. Desireh accomplishments are expected to have an important impact on the aircraft design sector by decreasing industrial development costs and time-to-market while enhancing laminar wing performance.