On the soliton solutions for an intrinsic fractional discrete nonlinear electrical transmission line

被引:39
作者
Fendzi-Donfack, Emmanuel [1 ,2 ]
Nguenang, Jean Pierre [2 ]
Nana, Laurent [2 ]
机构
[1] Univ Yaounde I, Higher Teachers Training Coll, Dept Phys, Nonlinear Phys & Complex Syst Grp, POB 47, Yaounde, Cameroon
[2] Univ Douala, Fac Sci, Grp Nonlinear Phys & Complex Syst, Pure Phys Lab,Dept Phys, POB 24157, Douala, Cameroon
关键词
Traveling waves; Intrinsic fractional discrete nonlinear electrical transmission lattice; Fractional complex transform; Kudryashov method; Riccati equation; Jacobi elliptical functions method; The Weierstrass elliptic function expansion method; Modified Riemann-Liouville derivatives; Fractional partial differential equation; Fixed points; GENERALIZED (G'/G)-EXPANSION METHOD; MODULATIONAL INSTABILITY; MULTIWAVE SOLUTIONS; LATTICE SOLITONS; EXPANSION METHOD; EQUATION; DYNAMICS; WAVES;
D O I
10.1007/s11071-021-06300-x
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This paper focuses on finding soliton solutions for an intrinsic fractional discrete nonlinear electrical transmission lattice. Our investigation is based on the fact that for a realistic system, the electrical characteristics of a capacitor (and an inductor via skin effect) should include a fractional-order time derivative. In this respect for the model under consideration, we derive a fractional nonlinear partial differential equation for the voltage dynamics by applying the Kirchhoff's laws. It is realized that the behavior of new soliton solutions obtained is influenced by the fractional-order time derivative as well as the coupling values. The fractional order also modifies the propagation velocity of the voltage wave notwithstanding their structure and tends to set up localized structure for low coupling parameter values. However, for a high value of the coupling parameter, the fractional order is less seen on the shapes of the new solitary solutions that are analytically derived. Several methods such as the Kudryashov method, the (G'/G)-expansion method, the Jacobi elliptical functions method and the Weierstrass elliptic function expansion method led us to derive these solitary solutions while using the modified Riemann-Liouville derivatives in addition to the fractional complex transform. An insight into the overall dynamics of our network is provided through the analysis of the phase portraits.
引用
收藏
页码:691 / 704
页数:14
相关论文
共 66 条
[31]   Modulational instability and stimulated Raman scattering in normally dispersive highly birefringent fibers [J].
Millot, G ;
Dinda, PT ;
Seve, E ;
Wabnitz, S .
OPTICAL FIBER TECHNOLOGY, 2001, 7 (03) :170-205
[32]   Dynamics and synchronization analysis of coupled fractional-order nonlinear electromechanical systems [J].
Ngueuteu, G. S. Mbouna ;
Woafo, P. .
MECHANICS RESEARCH COMMUNICATIONS, 2012, 46 :20-25
[33]   Solitonlike excitations in a one-dimensional electrical transmission line [J].
Pelap, FB ;
Faye, MM .
JOURNAL OF MATHEMATICAL PHYSICS, 2005, 46 (03)
[34]   A fractional-order model for the novel coronavirus (COVID-19) outbreak [J].
Rajagopal, Karthikeyan ;
Hasanzadeh, Navid ;
Parastesh, Fatemeh ;
Hamarash, Ibrahim Ismael ;
Jafari, Sajad ;
Hussain, Iqtadar .
NONLINEAR DYNAMICS, 2020, 101 (01) :711-718
[35]   A new operational matrix for solving fractional-order differential equations [J].
Saadatmandi, Abbas ;
Dehghan, Mehdi .
COMPUTERS & MATHEMATICS WITH APPLICATIONS, 2010, 59 (03) :1326-1336
[36]   Solitonic Ionic Currents Along Microtubules [J].
Sataric, M. V. ;
Sekulic, D. ;
Zivanov, M. .
JOURNAL OF COMPUTATIONAL AND THEORETICAL NANOSCIENCE, 2010, 7 (11) :2281-2290
[37]   Modelling of lossy coils using fractional derivatives [J].
Schafer, Ingo ;
Kruger, Klaus .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2008, 41 (04)
[38]   New soliton solutions for a discrete electrical lattice using the Jacobi elliptical function method [J].
Tala-Tebue, E. ;
Djoufack, Z. I. ;
Yamgoue, S. B. ;
Kenfack-Jiotsa, A. ;
Kofane, T. C. .
CHINESE JOURNAL OF PHYSICS, 2018, 56 (03) :1010-1020
[39]   Envelope periodic solutions for a discrete network with the Jacobi elliptic functions and the alternative (G′/G)-expansion method including the generalized Riccati equation [J].
Tala-Tebue, E. ;
Tsobgni-Fozap, D. C. ;
Kenfack-Jiotsa, A. ;
Kofane, T. C. .
EUROPEAN PHYSICAL JOURNAL PLUS, 2014, 129 (06)
[40]  
Tala-Tebue E, 2013, J Mod Phys, V04, P746