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In applied mathematics, '''Tikhonov's theorem on dynamical systems''' is a result on stability of solutions of systems of [[differential equation]]s. It has applications to [[chemical kinetics]].<ref>http://www.math.bme.hu/~jtoth/frk/Roussel.pdf</ref>  The theorem is named after [[Andrey Nikolayevich Tikhonov]].
 
== Statement ==
 
Consider this system of differential equations:
 
: <math>
\begin{align}
\frac{d\mathbf{x}}{dt} & = \mathbf{f}(\mathbf{x},\mathbf{z},t), \\
\mu\frac{d\mathbf{z}}{dt} & = \mathbf{g}(\mathbf{x},\mathbf{z},t).
\end{align}
</math>
 
Taking the limit as <math>\mu\to 0</math>, this becomes the "degenerate system":
 
: <math>
\begin{align}
\frac{d\mathbf{x}}{dt} & = \mathbf{f}(\mathbf{x},\mathbf{z},t), \\
\mathbf{z} & = \varphi(\mathbf{x},t),
\end{align}
</math>
 
where the second equation is the solution of the algebraic equation
 
: <math> \mathbf{g}(\mathbf{x},\mathbf{z},t) = 0. \, </math>
 
Note that there may be more than one such function ''φ''.
 
Tikhonov's theorem states that as <math>\mu\to 0,\,</math> the solution of the system of two differential equations above approaches the solution of the degenerate system if <math>\mathbf{z} = \varphi(\mathbf{x},t)</math> is a stable root of the "adjoined system"
 
: <math> \frac{d\mathbf{z}}{dt} = \mathbf{g}(\mathbf{x},\mathbf{z},t). </math>
 
== References ==
 
{{reflist}}
 
== External links ==
* [http://www.math.bme.hu/~jtoth/frk/Roussel.pdf Singular Perturbation Theory, by Marc Roussel]
 
[[Category:Differential equations]]
[[Category:Singular perturbation theory]]
[[Category:Theorems in dynamical systems]]

Revision as of 08:50, 13 October 2013

In applied mathematics, Tikhonov's theorem on dynamical systems is a result on stability of solutions of systems of differential equations. It has applications to chemical kinetics.[1] The theorem is named after Andrey Nikolayevich Tikhonov.

Statement

Consider this system of differential equations:

dxdt=f(x,z,t),μdzdt=g(x,z,t).

Taking the limit as μ0, this becomes the "degenerate system":

dxdt=f(x,z,t),z=φ(x,t),

where the second equation is the solution of the algebraic equation

g(x,z,t)=0.

Note that there may be more than one such function φ.

Tikhonov's theorem states that as μ0, the solution of the system of two differential equations above approaches the solution of the degenerate system if z=φ(x,t) is a stable root of the "adjoined system"

dzdt=g(x,z,t).

References

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