Steel and Composite Structures
Volume 51, Number 4, 2024, pages 457-471
DOI: 10.12989/scs.2024.51.4.457
Parametric resonance of a spinning graphene-based composite shaft considering the gyroscopic effect
Neda Asadi, Hadi Arvin, Yaghoub Tadi Beni and Krzysztof Kamil Zur
Abstract
In this research, for the first time the instability boundaries for a spinning shaft reinforced with graphene
nanoplatelets undergone the principle parametric resonance are determined and examined taking into account the gyroscopic
effect. In this respect, the extracted equations of motion in our previous research (Ref. Asadi et al. (2023)) are implemented and
efficiently upgraded. In the upgraded discretized equations the effect of the Rayleigh's damping and the varying spinning speed
is included that leads to a different dynamical discretized governing equations. The previous research was about the free
vibration analysis of spinning graphene-based shafts examined by an eigen-value problem analysis; while, in the current
research an advanced mechanical analysis is addressed in details for the first time that is the dynamics instability of the
aforementioned shaft subjected to the principal parametric resonance. The spinning speed of the shaft is considered to be varied
harmonically as a function of time. Rayleigh's damping effect is applied to the governing equations in order to regard the energy
loss of the system. Resorting to Bolotin
Key Words
Bolotin's route; Floquet theory; graphene nanoplatelets; gyroscopic influence; principle parametric resonance; spinning shafts
Address
Neda Asadi:Faculty of Engineering, Shahrekord University, Shahrekord, Iran
Hadi Arvin and Yaghoub Tadi Beni:1)Faculty of Engineering, Shahrekord University, Shahrekord, Iran
2)Nanotechnology Research Institute, Shahrekord University, Shahrekord, Iran
Krzysztof Kamil Zur:Faculty of Mechanical Engineering, Bialystok University of Technology, Bialystok 15-351, Poland