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Bibliographic Details
Main Author: Ferrari, Federico
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2404.15536
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author Ferrari, Federico
author_facet Ferrari, Federico
contents We investigate the effect of axial compression on the optimal design of columns, for the maximization of the fundamental vibration frequency. The compression may be due to a force at the columns' tip or to a load distributed along its axis, which may act either independently or simultaneously. We discuss the influence of these contributions on the optimality conditions, and show how the optimal beam design, and the corresponding frequency gain drastically change with the level of compression. We also discuss the indirect effect of frequency optimization on the critical load factors for the tip ($λ_{P}$) and distributed ($λ_{Q}$) loads. Finally, we provide some quantitative results for the optimal design problem parametrized by the triple ($λ_{P}$, $λ_{Q}$, $Ω^{2}$) of buckling and dynamic eigenvalues.
format Preprint
id arxiv_https___arxiv_org_abs_2404_15536
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimal sizing of 1D vibrating columns accounting for axial compression and self-weight
Ferrari, Federico
Classical Physics
We investigate the effect of axial compression on the optimal design of columns, for the maximization of the fundamental vibration frequency. The compression may be due to a force at the columns' tip or to a load distributed along its axis, which may act either independently or simultaneously. We discuss the influence of these contributions on the optimality conditions, and show how the optimal beam design, and the corresponding frequency gain drastically change with the level of compression. We also discuss the indirect effect of frequency optimization on the critical load factors for the tip ($λ_{P}$) and distributed ($λ_{Q}$) loads. Finally, we provide some quantitative results for the optimal design problem parametrized by the triple ($λ_{P}$, $λ_{Q}$, $Ω^{2}$) of buckling and dynamic eigenvalues.
title Optimal sizing of 1D vibrating columns accounting for axial compression and self-weight
topic Classical Physics
url https://arxiv.org/abs/2404.15536