Dynamic Loading on Turbofan Blades Due to Bird-Strike

Author:

Sinha Sunil K.,Turner Kevin E.1,Jain Nitesh2

Affiliation:

1. GE Aviation, M.D.: G-36, General Electric, 1 Neumann Way, Cincinnati, OH 45215

2. Bangalore Engineering Center, JFWTC, Whitefield Road, Bangalore-560066, Karnataka, India

Abstract

In the present paper, a hydrodynamic bird material model made up of water and air mixture is developed, which produces good correlation with the measured strain-gauge test data in a panel test. This parametric bird projectile model is used to generate the time-history of the transient dynamic loads on the turbofan engine blades for different size birds impacting at varying span locations of the fan blade. The problem is formulated in 3D vector dynamics equations using a nonlinear trajectory analysis approach. The analytical derivation captures the physics of the slicing process by considering the incoming bird in the shape of a cylindrical impactor as it comes into contact with the rotating fan blades modeled as a pretwisted plate with a camber. The contact-impact dynamic loading on the airfoil produced during the bird-strike is determined by solving the coupled nonlinear dynamical equations governing the movement of the bird-slice in time-domain using a sixth-order Runge-Kutta technique. The analytically predicted family of load time-history curves enables the blade designer to readily identify the critical impact location for peak dynamic loading condition during the bird-ingestion tests mandated for certification by the regulatory agencies.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference43 articles.

1. Code of Federal Regulations: Aeronautics and Space, 1990, Art. 33.76, Vol. 14, Office of the Federal Register, National Archives and Record Administration, Washington, DC.

2. Bird-Strike Simulation for Certification of the Boeing 787 Composite Moveable Trailing Edge;Georgiadis;Compos. Struct.

3. Simulation of Bird Strikes on Turbine Engines;Niering;ASME J. Eng. Gas Turbines Power

4. Nonlinear Finite-Element Analysis to Predict Fan Blade Damage Soft Body Impact;Martin;J. Propul.

5. Fan Blade Bird-Strike Analysis and Design;Vasco

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