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I () \gamma, , \mathbf{r}_0  , () , ( )

\mathbf B (\mathbf{r}_0)
= {\mu_0 \over 4\pi}
\int\limits_\gamma 
\frac{I[d\mathbf{r} \times (\mathbf{r} - \mathbf{r}_0)]}{|\mathbf r_0 - \mathbf r|^3}
= {\mu_0 \over 4\pi}
\int\limits_\gamma 
\frac{I[d\mathbf{r} \times \mathbf {e_{r,r_o}}]}{(\mathbf r_0 - \mathbf r)^2}
,

, r - \gamma, dr - , ( ); \mu_0 - ( ); \mathbf {e_{r,r_o}} - , .

  • \gamma , . , , , ( ).
  • ( ) ( , ), I . ( ).


, , :

d \vec B = {\mu_0 \over 4\pi} \frac{I[\vec r \times d \vec r]}{r^3} = \frac{I}{10^7} \frac{[\vec r \times d \vec r]}{r^3},

\vec r - I, r - \vec r, d \vec B - , d \vec r.

d\mathbf B , d\mathbf l \equiv d\mathbf r \mathbf{r}-\mathbf{r}_0. : d\mathbf B, . d\mathbf B ( )

dB = {\mu_0 \over 4\pi}\frac{I dl\sin\alpha}{r^2}

( )

\mathbf A(\mathbf r_0) = {\mu_0 \over 4\pi} \int\limits_\gamma \frac{I(\mathbf r)\mathbf{dl}}{|\mathbf r_0 - \mathbf r|}

[]

, , j, ( ):

\mathbf B (\mathbf{r}_0) = {\mu_0 \over 4\pi} \int \frac{[\ \mathbf{j} dV,\ \mathbf{r}_0 - \mathbf{r}\ ]}{|\mathbf r_0 - \mathbf r |^3},

j = j(r), dV - , ( , j0), r - ( dV).

:

\mathbf A(\mathbf r_0)
= {\mu_0 \over 4\pi}
\int \frac{\mathbf j(\mathbf r) dV}
{|\mathbf r_0 - \mathbf r|}.

[]

, , - , , -. , .. , , , , .

- ( ) ,

 \oint\limits_S \mathbf B \cdot d\mathbf S = 0

- ( )

 \oint\limits_{\partial S} \mathbf B \cdot d\mathbf l = \mu_0 I = \mu_0 \int\limits_S \mathbf j \cdot d \mathbf S

- ( , ). ( -) .

:

\mathrm{div}\mathbf{B} = 0
\mathrm{rot} \mathbf B=\mu_0\mathbf{j},

j ( , \mu_0 \frac{4\pi}{c}).

[]

    . 0, ( )

\operatorname{rot}\,\mathbf B = \frac{4\pi}{c} \mathbf j
\operatorname{div}\,\mathbf B = 0
\operatorname{rot}\,\mathbf E = 0
\operatorname{div}\,\mathbf E = 4\pi \rho

\mathbf j  . . ( ):

\mathbf B = \operatorname{rot}\,\mathbf A

:

\operatorname{div}\,\mathbf A = 0

, :

\Delta \mathbf A = - \frac{4\pi}{c}\mathbf j

, :

\mathbf A(\mathbf r_0) = \frac{1}{c} \int \frac{\mathbf j(\mathbf r)}{|\mathbf r - \mathbf r_0|} dV

( )

\mathbf B = \operatorname{rot}\,\mathbf A = 
\frac{1}{c} \int \left[ \nabla \frac{1}{|\mathbf r - \mathbf r_0|} , \mathbf j(\mathbf r) \right] dV =
=
\frac{1}{c} \int\limits_\gamma \frac{[\mathbf j(\mathbf r),\mathbf{r} - \mathbf{r}_0]}{|\mathbf r - \mathbf{r}_0 |^3} dV

    . , , . ,

\mathbf j dV = I \mathbf{dl}

    .

[]

( ) N, I. , .

d \vec B = \frac{\mu_0}{4 \pi} \frac{I[\vec r \times d \vec r]}{r^3}

d B = \frac{\mu_0}{4 \pi} \frac{dr \sin \alpha}{r^2},

r - , - , \alpha - \vec r d \vec r ( ), , 90^\circ.

B = \frac{\mu_0}{4 \pi} \frac{I}{r^2} \int dr,

\int dr = 2 \pi r - ,

B = \mu_0 \frac{I}{2 r}

N ,

B = \mu_0 \frac{I N}{2 r}

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