Inertial torques acting on a spinning paraboloid

Numerous gyroscopic devices consist of rotating components that manifest gyroscopic effects, i.e., the action of unexplainable inertial torques. The rotating objects in engineering can be designed as a disk, cylinder, rotor, circular cone, sphere, paraboloid, etc. Known theories express gyroscopic e...

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Main Authors: R. Usubamatov, A. Arzybaev
Format: Article
Language:English
Published: AIP Publishing LLC 2020-05-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5145389
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spelling doaj-7980edb8b1904a15aa25047d22bc95f32020-11-25T02:49:28ZengAIP Publishing LLCAIP Advances2158-32262020-05-01105055124055124-810.1063/1.5145389Inertial torques acting on a spinning paraboloidR. Usubamatov0A. Arzybaev1Department of Automation and Robotics, Kyrgyz State Technical University after I. Razzakov, 720044 Bishkek, KyrgyzstanDepartment of Information Technology, Kyrgyz State Technical University after I. Razzakov, 720044 Bishkek, KyrgyzstanNumerous gyroscopic devices consist of rotating components that manifest gyroscopic effects, i.e., the action of unexplainable inertial torques. The rotating objects in engineering can be designed as a disk, cylinder, rotor, circular cone, sphere, paraboloid, etc. Known theories express gyroscopic effects by a simplified mathematical model based only on the principle of the change in the angular momentum for the spinning disk. New research in the area of the gyroscope theory has shown that the physics of inertial torques is more complex than that presented in known publications. Spinning objects generate a system of interrelated inertial torques based on the action of centrifugal, common inertial, and Coriolis forces, as well as the change in the angular momentum. The action of inertial torques manifests resistance and precession torques, which is known as gyroscopic effects. These inertial torques constitute the fundamental principles of the gyroscope theory. The rotating objects of complex designs demonstrate the action of inertial torques, in which mathematical models are different from the models of the spinning disk. The novelty of the work is analytical solutions for the inertial torques generated by the rotating mass of the spinning paraboloid that is new in the dynamics of rotating objects.http://dx.doi.org/10.1063/1.5145389
collection DOAJ
language English
format Article
sources DOAJ
author R. Usubamatov
A. Arzybaev
spellingShingle R. Usubamatov
A. Arzybaev
Inertial torques acting on a spinning paraboloid
AIP Advances
author_facet R. Usubamatov
A. Arzybaev
author_sort R. Usubamatov
title Inertial torques acting on a spinning paraboloid
title_short Inertial torques acting on a spinning paraboloid
title_full Inertial torques acting on a spinning paraboloid
title_fullStr Inertial torques acting on a spinning paraboloid
title_full_unstemmed Inertial torques acting on a spinning paraboloid
title_sort inertial torques acting on a spinning paraboloid
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2020-05-01
description Numerous gyroscopic devices consist of rotating components that manifest gyroscopic effects, i.e., the action of unexplainable inertial torques. The rotating objects in engineering can be designed as a disk, cylinder, rotor, circular cone, sphere, paraboloid, etc. Known theories express gyroscopic effects by a simplified mathematical model based only on the principle of the change in the angular momentum for the spinning disk. New research in the area of the gyroscope theory has shown that the physics of inertial torques is more complex than that presented in known publications. Spinning objects generate a system of interrelated inertial torques based on the action of centrifugal, common inertial, and Coriolis forces, as well as the change in the angular momentum. The action of inertial torques manifests resistance and precession torques, which is known as gyroscopic effects. These inertial torques constitute the fundamental principles of the gyroscope theory. The rotating objects of complex designs demonstrate the action of inertial torques, in which mathematical models are different from the models of the spinning disk. The novelty of the work is analytical solutions for the inertial torques generated by the rotating mass of the spinning paraboloid that is new in the dynamics of rotating objects.
url http://dx.doi.org/10.1063/1.5145389
work_keys_str_mv AT rusubamatov inertialtorquesactingonaspinningparaboloid
AT aarzybaev inertialtorquesactingonaspinningparaboloid
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