Magnetic Flux
Magnetic flux through a surface measures how many magnetic field lines thread that surface. Formally, , and for a uniform field and flat surface, . Its SI unit is the weber (Wb), where . A crucial law is Gauss's law for magnetism: the net flux through any closed surface is always zero (), which is the mathematical statement that isolated magnetic poles (monopoles) do not exist. Magnetic flux is the essential bridge from magnetostatics to electromagnetic induction (Faraday's law ), the very next unit in JEE Main and NEET Physics.
- Flux through a surface:
- Uniform field, flat surface: , where is the angle between and the surface normal
- SI unit: weber (Wb);
- CGS unit: maxwell (Mx);
- Flux linkage: (for a coil of turns)
- Gauss's law for magnetism: (always, for any closed surface)
- Faraday's law (used in EMI): induced EMF
1. Definition of Magnetic Flux
Magnetic flux through a surface is the "amount of " passing through that surface, weighted by the projection onto the surface's normal:
where is an element of surface area with direction along the local outward (or chosen) normal. For a uniform field over a flat surface:
Here is the angle between and the surface normal . Special cases:
- (, i.e., perpendicular to the surface): (maximum).
- ( lies in the surface, parallel to it): (no field lines cross).
- ( opposite to ): (sign of flux depends on chosen normal direction).
2. Units of Magnetic Flux
| System | Unit | Equivalence |
|---|---|---|
| SI | weber (Wb) | |
| CGS | maxwell (Mx) |
Because is defined as flux per unit area, the SI unit of magnetic field, the tesla, is . Historically, is even called "magnetic flux density".
3. Flux Linkage
For a coil of turns, each turn is threaded by the same flux . The total "linked flux" is:
Flux linkage is what appears in Faraday's law when the coil has more than one turn:
This " factor" is why transformer secondaries and multi-turn induction coils generate much larger EMFs than single-loop devices.
4. Gauss's Law for Magnetism
The magnetic flux through any closed surface is always zero:
Physical meaning
Because magnetic field lines always form closed loops (they have no beginning or end), whatever flux enters a closed surface must also leave it. Equivalently: isolated magnetic poles do not exist. You cannot cut a magnet to obtain a pure north or south pole - each piece is a complete dipole with both poles.
Contrast with the electrostatic case: - Gauss's law for electricity is non-zero because isolated electric charges (monopoles) do exist. Gauss's law for magnetism has zero on the right side because magnetic monopoles have never been observed.
Area ; .
(i) Coil perpendicular to field means is along the normal, : .
(ii) If the plane makes with , then the normal makes with : .
(iii) Coil parallel to field: lies in the plane, : .
By Gauss's law for magnetism, the net flux through any closed surface is zero. No calculation needed.
Check: Flux entering the left face: . Flux leaving the right face: same, . Flux through the top, bottom, front, back faces: zero (field lies in those planes). Net: . ✓
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Flux linkage .
5. Bridge to Electromagnetic Induction
Magnetic flux is the central quantity in the next unit, EMI. The key result there:
Faraday's law: (for a single loop) or (for -turn coil).
An EMF is induced whenever through a circuit changes - by moving the coil, changing , rotating the coil, or deforming the loop. The minus sign is Lenz's law: the induced current opposes the change in flux.
Common Mistakes to Avoid
- Confusing the angle in : is the angle between and the surface normal, not between and the plane of the surface. If the problem says "coil's plane makes angle with the field", the angle to use is .
- Thinking flux depends on the shape of the surface for a fixed boundary loop: it does not. All surfaces spanning the same loop enclose the same flux (a consequence of ).
- Setting Gauss's law for magnetism to something other than zero: the right side is always zero, regardless of what magnets, currents, or fields exist inside.
- Confusing (through a surface) with (flux linkage, for turns): only the linkage appears in Faraday's law for multi-turn coils.
- Forgetting the sign of flux: it depends on the chosen direction of ; the sign of the induced EMF ties to this convention.
- Using webers as an SI unit of field: weber is the unit of flux; is the unit of field.
Frequently Asked Questions
Q1. What is magnetic flux?
Magnetic flux through a surface is the total "amount of magnetic field" passing through it, defined as . For uniform and a flat surface, , with the angle between and the surface normal. It measures how many field lines thread the surface.
Q2. What is the SI unit of magnetic flux?
The weber (Wb), where . In CGS the unit is the maxwell; .
Q3. What is Gauss's law for magnetism?
for any closed surface. The total magnetic flux out of a closed surface is always zero because magnetic field lines are closed loops - every line entering must leave. Equivalently, isolated magnetic charges (monopoles) do not exist.
Q4. Why is the total magnetic flux through any closed surface zero?
Because magnetic field lines form closed loops (they have no start or end), any line entering a closed surface must also exit. There are no "sources" (isolated north poles) or "sinks" (isolated south poles) of . This is why Gauss's law for magnetism has zero on the right, unlike Gauss's law for electricity.
Q5. What is the difference between magnetic flux and magnetic flux density?
Magnetic flux is the total flux through a surface, measured in webers. Magnetic flux density (also called magnetic induction, or just magnetic field) is flux per unit area, measured in . The two are related by .
Q6. What is flux linkage?
Flux linkage is the total flux linked with a coil of turns, since each turn is threaded by the same . It is the quantity that appears in Faraday's law for multi-turn coils: .
Q7. How is magnetic flux related to induced EMF?
Via Faraday's law: (single loop) or (-turn coil). A changing magnetic flux through a circuit induces an EMF whose direction (by Lenz's law) opposes the change. This is covered in the electromagnetic induction unit.
Q8. Does the shape of a surface spanning a loop affect the flux through it?
No. Because (Gauss's law for magnetism), the flux through any two surfaces sharing the same boundary loop is the same. You can choose whatever surface is easiest to integrate over - flat, curved, hemispherical - and get the same answer.
Q9. Can magnetic flux be negative?
Yes, depending on the choice of surface normal. If has a component opposite to , the flux is negative. The sign is a bookkeeping convention that becomes physically meaningful in Faraday's law, where it determines the direction of the induced current.
Previous year questions on Magnetic Flux
5 questions from past papers, each with a step-by-step solution.
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