Hyper-chaos control synchronization for a fractional-order Cattaneo-Christov heat flux hybrid model with an optimal control approach

被引:0
作者
R. Surendar
M. Muthtamilselvan
Qasem M. Al-Mdallal
机构
[1] SRM Institute of Science and Technology,Faculty of Engineering and Technology
[2] Bharathiar University,Department of Mathematics
[3] United Arab Emirates University,Department of Mathematical Sciences
来源
Nonlinear Dynamics | 2024年 / 112卷
关键词
Cattaneo-Christov heat flux model; Fractional calculus; Optimal control; Synchronization; Hyper-chaotic system;
D O I
暂无
中图分类号
学科分类号
摘要
The Cattaneo-Christov heat flux (CCHF) model is a Lorenz-type hyper-chaotic nonlinear physical hybrid model represented as a system of partial differential equations. The truncated Galerkin technique and similarity transformation are used in this study to transmute the governing continuity, energy and momentum equations into non-linear ordinary differential equations based on Fourier modes. Furthermore, the nondimensional features of the heat transfer fluids, along with the thermophysical attributes of the hybrid nanofluids, are considered external stochastic disturbances within the nonlinear complex system. The investigation of the Cattaneo-Christov hybrid model employs a time operator of Caputo-type derivatives. The study explores hyper-chaos, bifurcation, synchronization, and analytical solutions to manage the hyper-chaos within the fractional-order hybrid nonlinear system. This study has been designated as an innovative contribution because it investigates optimal control formulations, stability analysis, and numerical solutions for the fractional-order CCHF hybrid model for the first time. Finally, computational findings show that the proposed control technique is efficient and applicable in stabilizing fractional-order heat flux hybrid systems.
引用
收藏
页码:8617 / 8635
页数:18
相关论文
共 122 条
[1]  
Wallace D(2014)Thermodynamics as control theory Entropy 16 699-725
[2]  
Yang F(2021)Characteristics analysis of the fractional-order chaotic memristive circuit based on Chua’s circuit Mobile Netw. Appl. 26 1862-1870
[3]  
Li P(2022)Fractional order Lorenz based physics informed Sarfima-Narx model to monitor and mitigate megacities air pollution Chaos Solitons Fractals 161 112-375
[4]  
Bukhari AH(2021)Synchronization of fractional order chaotic system of Sprott circuit using fractional active fault tolerant controller Int. J. Dyn. Control 9 1695-1702
[5]  
Raja MAZ(2021)Chaos control for a fractional-order jerk system via time delay feedback controller and mixed controller Fractal Fract. 5 257-486
[6]  
Shoaib M(2022)Rich complex dynamics in new fractional-order hyperchaotic systems using a modified Caputo operator based on the extended gamma function Partial Differ. Equ. Appl. Math. 6 100458-975
[7]  
Kiani AK(2009)On frame indifferent formulation of the Maxwell-Cattaneo model of finite-speed heat conduction Mech. Res. Commun. 36 481-14
[8]  
Tabasi M(2020)Hybrid dusty fluid flow through a Cattaneo-Christov heat flux model Phys. A 551 123-2999
[9]  
Balochian S(2021)Multiple slips impact in the MHD hybrid nanofluid flow with Cattaneo-Christov heat flux and autocatalytic chemical reaction Sci. Rep. 11 1-539
[10]  
Xu C(2020)Flow of nanofluid with Cattaneo-Christov heat flux model Appl. Nanosci. 10 2989-753