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arxiv: 1404.2088 · v1 · pith:ZQOWUIDYnew · submitted 2014-04-08 · 🌊 nlin.PS · math-ph· math.AP· math.DG· math.MP· nlin.SI

Integrable Motion of Curves in Self-Consistent Potentials : Relation to Spin Systems and Soliton Equations

classification 🌊 nlin.PS math-phmath.APmath.DGmath.MPnlin.SI
keywords equationsspinconsistentcurvespotentialsselfsolitongeneralized
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Motion of curves and surfaces in $\R^3$ lead to nonlinear evolution equations which are often integrable. They are also intimately connected to the dynamics of spin chains in the continuum limit and integrable soliton systems through geometric and gauge symmetric connections/equivalence. Here we point out the fact that a more general situation in which the curves evolve in the presence of additional self consistent vector potentials can lead to interesting generalized spin systems with self consistent potentials or soliton equations with self consistent potentials. We obtain the general form of the evolution equations of underlying curves and report specific examples of generalized spin chains and soliton equations. These include principal chiral model and various Myrzakulov spin equations in (1+1) dimensions and their geometrically equivalent generalized nonlinear Schr\"odinger (NLS) family of equations, including Hirota-Maxwell-Bloch equations, all in the presence of self consistent potential fields. The associated gauge equivalent Lax pairs are also presented to confirm their integrability.

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  1. Integrable Motion of Curves, Spin Equation and Camassa-Holm Equation

    nlin.SI 2019-07 unverdicted novelty 3.0

    Establishes geometrical equivalence between the Camassa-Holm equation and the M-CIV equation via curve motion and demonstrates gauge equivalence between them.