Nonlinear dynamics of spinning fluid-conveying pipes with structural damping: stability analysis and post-instability behavior

Fuente: arXiv
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Autores principales: Fasihi, Ali, Kudra, Grzegorz, Tehrani, Maryam Ghandchi, Awrejcewicz, Jan
Formato: Preprint
Publicado: 2024
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author Fasihi, Ali
Kudra, Grzegorz
Tehrani, Maryam Ghandchi
Awrejcewicz, Jan
author_facet Fasihi, Ali
Kudra, Grzegorz
Tehrani, Maryam Ghandchi
Awrejcewicz, Jan
contents Nonlinear dynamics of fluid conveying pipe, rotating with constant velocity about its longitudinal axis is analyzed. Considering boundary conditions and internal damping, the nonlinear equation of motion is derived, and it is discretized via the Galerkin method. Afterward, the stability of the system is investigated by characterizing the eigenvalues under the action of two control parameters: rotational speed and flow velocity. Then using direct numerical simulation, instability and stability regions are distinguished in a map as the control parameters vary. It is shown that due to the presence of internal damping in the system, both rotational speed and flow velocity determine the critical speeds. Post-instability behavior is characterized by non-zero equilibrium points, representing deflection in the rotating frame, which correspond to forward whirling motion in the inertial frame. Finally, Hencky Bar-chain Model was employed to verify the results.
format Preprint
id arxiv_https___arxiv_org_abs_2410_23237
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nonlinear dynamics of spinning fluid-conveying pipes with structural damping: stability analysis and post-instability behavior
Fasihi, Ali
Kudra, Grzegorz
Tehrani, Maryam Ghandchi
Awrejcewicz, Jan
Chaotic Dynamics
Nonlinear dynamics of fluid conveying pipe, rotating with constant velocity about its longitudinal axis is analyzed. Considering boundary conditions and internal damping, the nonlinear equation of motion is derived, and it is discretized via the Galerkin method. Afterward, the stability of the system is investigated by characterizing the eigenvalues under the action of two control parameters: rotational speed and flow velocity. Then using direct numerical simulation, instability and stability regions are distinguished in a map as the control parameters vary. It is shown that due to the presence of internal damping in the system, both rotational speed and flow velocity determine the critical speeds. Post-instability behavior is characterized by non-zero equilibrium points, representing deflection in the rotating frame, which correspond to forward whirling motion in the inertial frame. Finally, Hencky Bar-chain Model was employed to verify the results.
title Nonlinear dynamics of spinning fluid-conveying pipes with structural damping: stability analysis and post-instability behavior
topic Chaotic Dynamics
url https://arxiv.org/abs/2410.23237