Mathematics-Online lexicon: Integral Theorem of Gauss

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	Mathematics-Online lexicon:
	Integral Theorem of Gauss

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Let $U \subseteq \mathbb{R}^3$ be a region which is the interior of a closed surface . Assume that is smooth except for a finite number of smooth curves. Denote by the unit normal pointing outward. Let $\Phi$ be a continuous differentiable vector field defined on an open set containing and Then

$\displaystyle \iiint\limits_{U} \operatorname{div} \Phi \,dU = \iint\limits_{S} \Phi \cdot n d\sigma \, ,$

i.e. the triple integral of the divergence of $\Phi$ coincides with the flux of $\Phi$ through Note that it is geometrically clear what is meant by outward for the unit normal.

A version of Gauss' theorem with respect to a more general boundary is as follows.

Let $U \subseteq \mathbb{R}^3$ be a bounded open set whose boundary consists of a finite number of surfaces $S_1, \ldots , S_m$ . Supoose that these surfaces are oriented such that their unit normal vectors point outward. Let $\Phi$ be a continuous differentiable vector field defined on an open set containing and its boundary. Then

$\displaystyle \iiint\limits_{U} \operatorname{div} \Phi \,dU = \iint\limits_{S... ...i \cdot n_1 d\sigma + \ldots + \iint\limits_{S_m} \Phi \cdot n_m d\sigma \, .$

()

Annotation:

Beweis: Gauß'scher Integralsatz (german)

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automatically generated 7/ 5/2005