Vertical Aerospace Ltd
Vertical Aerospace Ltd
2 Projects, page 1 of 1
assignment_turned_in Project2023 - 2026Partners:Imperial College London, Rolls-Royce (United Kingdom), Rolls-Royce (United Kingdom), Vertical Aerospace Ltd, Rolls-Royce Plc (UK) +1 partnersImperial College London,Rolls-Royce (United Kingdom),Rolls-Royce (United Kingdom),Vertical Aerospace Ltd,Rolls-Royce Plc (UK),Vertical Aerospace LtdFunder: UK Research and Innovation Project Code: EP/W032236/1Funder Contribution: 500,651 GBPThe UK is a world leader in the design, manufacture, and support of high-value aeronautic structures such as wings and jet engines. The UK's technology strategy is to reduce aeronautic structure weight by 35% by 2035 compared to 2019. Lighter structures are prone to complex nonlinear phenomena which cannot be identified and characterised using current ground vibration tests (GVTs). Building on recent advances in control-based continuation and nonlinear modal analysis, this project will develop a general and systematic GVT method that can overcome this issue. The method will be demonstrated on two academic benchmark structures before being tested on a full-scale aircraft structure thanks to an international collaboration with ONERA. The project will not only unlock the rigorous characterization of modal properties of nonlinear structures but will also bridge the gap currently preventing the development and validation of nonlinear models.
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For further information contact us at helpdesk@openaire.euassignment_turned_in Project2023 - 2026Partners:Hoare Lea (United Kingdom), University of Lyon System, Deutsche WindGuard, STFC - Laboratories, University of Lyon +18 partnersHoare Lea (United Kingdom),University of Lyon System,Deutsche WindGuard,STFC - Laboratories,University of Lyon,STFC - LABORATORIES,Science and Technology Facilities Council,DOWTY PROPELLERS,Embraer (Brazil),Siemens Gamesa,Hoare Lea Ltd,University of Bristol,EMBRAER S.A.,University of Bristol,United States Air Force Research Laboratory,General Electric (United Kingdom),Vertical Aerospace Ltd,Siemens Gamesa,US Air Force Research Laboratory,DOWTY PROPELLERS,Vertical Aerospace Ltd,Hoare Lea Ltd,Deutsche WindGuardFunder: UK Research and Innovation Project Code: EP/X019284/1Funder Contribution: 684,477 GBPIt is well established that long-term exposure to aircraft and wind turbine noise is responsible for many physiological and psychological effects. According to the recent studies, noise not only creates a nuisance by affecting amenity, quality of life, productivity, and learning, but it also increases the risk of hospital admissions and mortality due to strokes, coronary heart disease, and cardiovascular disease. The World Health Organization estimated in 2011 that up to 1.6 million healthy life years are lost annually in the western European countries because of exposure to high levels of noise. The noise is also acknowledged by governments as a limit to both airline fleet growth, acceptability of Urban Air Mobility, operation and expansion of wind turbines, with direct consequences to the UK economy. With regards to aerodynamic noise, aerofoil noise is perhaps one of the most important sources of noise in many applications. While aerofoils are designed to achieve maximum aerodynamic performance by operating at high angles of attack, they become inevitably more susceptible to flow separation and stall due to changing inflow conditions (gusts, wind shear, wake interaction). Separation and stall can lead to a drastic reduction in aerodynamic performance and significantly increased aerodynamic noise. In applications involving rotating blades, the near-stall operation of blades, when subjected to highly dynamic inflows, gives rise to an even more complex phenomenon, known as dynamic stall. While the very recent research into the aerodynamics of dynamic stall has shown the complexity of the problem, the understanding of dynamic stall noise generation has remained stagnant due to long-standing challenges in experimental, numerical and analytical methods. This collaborative project, which includes contributions from strong industrial and academic advisory boards, aims to develop new understanding of dynamic stall flow and noise and develop techniques to control dynamic stall noise. The team will make use of the state-of-the-art experimental rigs, dedicated to aeroacoustics of dynamic stall and GPU-accelerated high-fidelity CFD tools to generate unprecedented amount of flow and noise data for pitching aerofoils over a wide range of operating conditions (flow velocity, pitching frequency/amplitude, etc.). The data will then be used to identify flow mechanisms that contribute to the different aerofoil noise sources at high angles of attack, including aerofoil unsteady loading and flow quadrupole sources, and detailed categorisation of dynamic stall regimes. A set of new frequency- and time-domain analytical tools will also be developed for the prediction of dynamic stall noise at different dynamic stall regimes, informed by high-fidelity experimental and numerical datasets. This project will bring about a step change in our understanding of noise from pitching aerofoils over a wide range of operations and pave the way to more accurate noise predictions and development of potential noise mitigation strategies.
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