A 3D Theodorsen-based rotor blade flutter model using normal modes

Approved for public release; distribution is unlimited === This thesis presents a fully coupled, quasi-3D analysis of rotor blade flutter that can accommodate forward flight conditions. The rotor blade is modeled as a uniform beam, taking the average characteristics of a real blade between 20% and 9...

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Main Author: Rauchenstein, Werner J.
Other Authors: Wood, E. Roberts
Published: Monterey, California. Naval Postgraduate School 2012
Online Access:http://hdl.handle.net/10945/4580
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spelling ndltd-nps.edu-oai-calhoun.nps.edu-10945-45802015-02-13T03:56:24Z A 3D Theodorsen-based rotor blade flutter model using normal modes Rauchenstein, Werner J. Wood, E. Roberts Couch, Mark A. Approved for public release; distribution is unlimited This thesis presents a fully coupled, quasi-3D analysis of rotor blade flutter that can accommodate forward flight conditions. The rotor blade is modeled as a uniform beam, taking the average characteristics of a real blade between 20% and 90% of its length. Applying Rayleigh's method, the first few bending and torsion normal mode shapes and natural frequencies are determined, and then adjusted for the rotating case. With this data, force and moment equations of motion are developed using Lagrange's equation along with a normal mode analysis. Theodorsen coefficients are calculated over a range of forward velocities (input as reduced frequencies) for a specified number of elements along the blade model. Incorporating these coefficients into the equations of motion, a square matrix is generated from which complex eigenvalues can be derived. These eigenvalues provide the aeroelastic natural frequencies and damping coefficients for each coupled mode. The forward velocity at which one of the modes produces a positive damping coefficient gives the value of reduced frequency for the flutter point. The resulting forward speed and blade tip speed can then be determined. 2012-03-14T17:42:21Z 2012-03-14T17:42:21Z 2002-09 Thesis http://hdl.handle.net/10945/4580 This publication is a work of the U.S. Government as defined in Title 17, United States Code, Section 101. As such, it is in the public domain, and under the provisions of Title 17, United States Code, Section 105, it may not be copyrighted. Monterey, California. Naval Postgraduate School
collection NDLTD
sources NDLTD
description Approved for public release; distribution is unlimited === This thesis presents a fully coupled, quasi-3D analysis of rotor blade flutter that can accommodate forward flight conditions. The rotor blade is modeled as a uniform beam, taking the average characteristics of a real blade between 20% and 90% of its length. Applying Rayleigh's method, the first few bending and torsion normal mode shapes and natural frequencies are determined, and then adjusted for the rotating case. With this data, force and moment equations of motion are developed using Lagrange's equation along with a normal mode analysis. Theodorsen coefficients are calculated over a range of forward velocities (input as reduced frequencies) for a specified number of elements along the blade model. Incorporating these coefficients into the equations of motion, a square matrix is generated from which complex eigenvalues can be derived. These eigenvalues provide the aeroelastic natural frequencies and damping coefficients for each coupled mode. The forward velocity at which one of the modes produces a positive damping coefficient gives the value of reduced frequency for the flutter point. The resulting forward speed and blade tip speed can then be determined.
author2 Wood, E. Roberts
author_facet Wood, E. Roberts
Rauchenstein, Werner J.
author Rauchenstein, Werner J.
spellingShingle Rauchenstein, Werner J.
A 3D Theodorsen-based rotor blade flutter model using normal modes
author_sort Rauchenstein, Werner J.
title A 3D Theodorsen-based rotor blade flutter model using normal modes
title_short A 3D Theodorsen-based rotor blade flutter model using normal modes
title_full A 3D Theodorsen-based rotor blade flutter model using normal modes
title_fullStr A 3D Theodorsen-based rotor blade flutter model using normal modes
title_full_unstemmed A 3D Theodorsen-based rotor blade flutter model using normal modes
title_sort 3d theodorsen-based rotor blade flutter model using normal modes
publisher Monterey, California. Naval Postgraduate School
publishDate 2012
url http://hdl.handle.net/10945/4580
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