Q.Use
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Start your 14-day free trial to unlock the full solution →Inside a bar magnet, the auxiliary field opposes the magnetization, so its lines go from N to S (like in free space), but the magnetic flux density is continuous and must form closed loops, so inside the magnet runs from S to N — opposite to .
The key to this problem is to stop thinking of as "just in a material" and instead treat it as a separate field defined by . Inside a permanent magnet, the magnetization is fixed and points from the S pole to the N pole (i.e., from south to north inside the magnet). That single fact, combined with Ampere's law for and the continuity of , forces the two fields to point in opposite directions inside the bar.
Let’s walk through it.
- Ampere’s law for tells us the direction of outside the magnet. In free space (outside the magnet), , so . The familiar picture of a bar magnet’s external field shows lines emerging from the N pole and entering the S pole. Since and are parallel in free space, the external lines also go from N to S. Now apply Ampere’s law for :
Inside the bar magnet there are no free currents, so the circulation of around any closed loop is zero. Take a loop that goes partly outside (where points N→S) and partly inside. For the line integral to vanish, the inside contribution must oppose the outside contribution. The only way is for inside to point from N to S as well — same direction as outside.
A common mistake is to think must reverse inside because does. But is not ; its circulation depends only on free currents, which are absent here. So is continuous in direction across the boundary (no surface free current), and points N→S everywhere.
- Continuity of forces the inside direction of to be opposite to . The magnetic flux density obeys , meaning its field lines form closed loops — they never start or end. Outside the magnet, goes from N to S (same as ). To close the loop, the lines that enter the S pole from outside must continue through the interior and emerge from the N pole. That means inside the magnet, must point from S to N. …
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