Talk:Helmholtz decomposition/Archive 1

Something's wrong here. As ${\displaystyle {\mathcal {G}}}$  is defined in the article on the Newtonian potential operator, ${\displaystyle {\mathcal {G}}(\nabla \times \mathbf {F} )}$  is a scalar field. How can you take the curl of it! --unsigned anon

I guess that in the formula

${\displaystyle \mathbf {F} =-\nabla \,{\mathcal {G}}(\nabla \cdot \mathbf {F} )+\nabla \times {\mathcal {G}}(\nabla \times \mathbf {F} )}$ 

the quantity ${\displaystyle \nabla \times \mathbf {F} }$  is a vector, therefore, the quantity ${\displaystyle {\mathcal {G}}(\nabla \times \mathbf {F} )}$  is also a vector (applied componentwise to the components of ${\displaystyle \nabla \times \mathbf {F} }$ ). Oleg Alexandrov (talk) 04:32, 1 December 2007 (UTC)

I just removed the following sentence from the lead:

If ${\displaystyle \mathbf {F} }$  does not extend to infinity, but ends at a boundary, then its normal component at the boundary must be specified in addition to ${\displaystyle \varphi }$  and ${\displaystyle \mathbf {A} }$  in order for ${\displaystyle \mathbf {F} }$  to be unique.

This doesn't quite make sense: ${\displaystyle \mathbf {F} }$  is a given. It isn't "unique", it's specified --- it's an assumption. On the other hand, there isn't a unique scalar potential ${\displaystyle \phi }$  or vector potential ${\displaystyle \mathbf {A} }$ . Modulo constants and potential fields, though, there is uniqueness. Or, in the case of a compactly supported ${\displaystyle \mathbf {F} }$ , one can specify BCs for ${\displaystyle \phi }$  and ${\displaystyle \mathbf {A} }$  as an alternative. Is this what you're thinking? Lunch (talk) 20:37, 18 June 2008 (UTC)