时变质量摆的分式研究

IF 2.8 4区 工程技术 Q1 ACOUSTICS
D. Baleanu, A. Jajarmi, Ozlem Defterli, Rania Wannan, S. Sajjadi, Jihad H. Asad
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引用次数: 0

摘要

本文的目的是研究质量随时间呈指数递减的单摆运动的动力学特性。为了检验这个有趣的系统,我们首先得到了运动的经典拉格朗日方程和欧拉-拉格朗日方程。然后利用非整数阶导数算子构造了广义拉格朗日算子。推导了相应的非整数欧拉-拉格朗日方程,并对不同非整数阶的近似结果进行了模拟。仿真结果表明,质量随时间变化的摆摆运动表现出振荡和非振荡两种有趣的动力学行为,其运动性质取决于非整数阶导数的阶数;他们还证明,利用分数拉格朗日方法产生了一个既有效又灵活的模型,显示了所研究的物理系统的各种特性。这种方法在理解复杂现象方面具有显著的优势,这是通过经典拉格朗日方法无法实现的。实际上,系统特性,如超调、稳定时间和峰值时间,在分数阶情况下通过改变α值而变化。当α趋于1时,相应的分数阶模型恢复了经典公式,但它们的输出规格完全不同。这些成功的成果展示了物理系统的多种特性,增强了所提出方案对复杂动力学建模的适应性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fractional investigation of time-dependent mass pendulum
In this paper, we aim to study the dynamical behaviour of the motion for a simple pendulum with a mass decreasing exponentially in time. To examine this interesting system, we firstly obtain the classical Lagrangian and the Euler-Lagrange equation of the motion accordingly. Later, the generalized Lagrangian is constructed via non-integer order derivative operators. The corresponding non-integer Euler-Lagrange equation is derived, and the calculated approximate results are simulated with respect to different non-integer orders. Simulation results show that the motion of the pendulum with time-dependent mass exhibits interesting dynamical behaviours, such as oscillatory and non-oscillatory motions, and the nature of the motion depends on the order of non-integer derivative; they also demonstrate that utilizing the fractional Lagrangian approach yields a model that is both valid and flexible, displaying various properties of the physical system under investigation. This approach provides a significant advantage in understanding complex phenomena, which cannot be achieved through classical Lagrangian methods. Indeed, the system characteristics, such as overshoot, settling time, and peak time, vary in the fractional case by changing the value of α. Also, the classical formulation is recovered by the corresponding fractional model when α tends to 1, while their output specifications are completely different. These successful achievements demonstrate diverse properties of physical systems, enhancing the adaptability and effectiveness of the proposed scheme for modelling complex dynamics.
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来源期刊
CiteScore
4.90
自引率
4.30%
发文量
98
审稿时长
15 weeks
期刊介绍: Journal of Low Frequency Noise, Vibration & Active Control is a peer-reviewed, open access journal, bringing together material which otherwise would be scattered. The journal is the cornerstone of the creation of a unified corpus of knowledge on the subject.
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