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Karnataka Board PUCPUC Science 2nd PUC Class 12

Magnetic Flux

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Estimated time: 12 minutes
CISCE: Class 12

Introduction

Imagine holding a wire loop near a bar magnet. The more magnetic field lines that pierce through the loop, the stronger the effect on any current induced in it.

The physical quantity that measures this piercing of magnetic field through a surface is called magnetic flux.

CISCE: Class 12

Definition: Magnetic Flux

Magnetic flux linked with any surface is equal to the total number of magnetic lines of force passing normally through it.

Magnetic flux (ΦB) is the measure of magnetic field lines passing through a surface.

CISCE: Class 12

Formula: Magnetic Flux Through a Flat Surface

For a uniform magnetic field and a plane surface,

\[{\Phi_B=\vec{B}\cdot\vec{A}=BA\cos\theta}\]

Where:

Symbol Meaning
ΦB Magnetic flux
\[\vec B\] Magnetic field
\[\vec A\] Area vector of the surface
A Area of the surface
θ Angle between \[\vec B\] and \[\vec A\]
CISCE: Class 12

Formula: Magnetic Flux Through a Non-uniform Field or Curved Surface

For a non-uniform magnetic field or a curved surface, divide the surface into very small area elements \[d\vec A\].

\[{\Phi_B=\int\vec{B}\cdot d\vec{A}}\]

CISCE: Class 12

Formula: Magnetic Flux Through a Coil

For a coil of N turns, when every turn contributes equally,

\[{\Phi=NBA\cos\theta}\]

This is the magnetic flux linkage of the coil.

CISCE: Class 12

Unit and Nature of Magnetic Flux

Property Magnetic Flux
Symbol ΦB
SI unit weber (Wb)
Equivalent unit 1 Wb = 1 T⋅m2
Also equivalent to 1 Wb = 1 V⋅s
Nature Scalar quantity
Dimensional formula [ML2T−2A−1]
CISCE: Class 12

Maximum, Zero and Negative Flux

Orientation of magnetic field Value of flux
Magnetic field parallel to the area vector Maximum positive flux: ΦB = BA
Magnetic field at an angle θ to the area vector ΦB = BA cos ⁡θ
Magnetic field perpendicular to the area vector Zero flux: ΦB = 0
Magnetic field opposite to the area vector Negative flux: ΦB = −BA
 

Key point: Flux is maximum when the magnetic field is perpendicular to the plane of the surface. Flux is zero when the magnetic field is parallel to the plane of the surface.

CISCE: Class 12

Factors Affecting Magnetic Flux

Magnetic flux increases when:

  • Magnetic field B increases: A stronger magnetic field means more field lines per unit area.
  • Area A increases: A larger surface allows more field lines to pass through it.
  • Orientation changes: Flux depends on cos ⁡θ.
CISCE: Class 12

Magnetic Flux and Electromagnetic Induction

A change in magnetic flux is associated with electromagnetic induction.

ε = −N\[\frac {dΦ_B}{dt}\]
Important: It is the change in magnetic flux (dΦB/dt),  and not magnetic flux itself, that induces an emf.
CISCE: Class 12

Net Flux Through a Closed Surface

For a closed surface, the net magnetic flux is always zero.

  • \[{\oint\vec{B}\cdot d\vec{A}=0}\]

This is Gauss's Law for Magnetism.

Magnetic field lines form closed loops; therefore, the number of field lines entering a closed surface equals the number leaving it.

CISCE: Class 12

Example 1

A rectangular loop of area 0.020 m2 is placed perpendicular to a uniform magnetic field of 5 T. Find the magnetic flux.

  • ΦB = BA cos ⁡θ
  • ΦB = (5)(0.020) cos ⁡0°
  • ΦB = 0.10 Wb
CISCE: Class 12

Example 2

A circular loop of area 0.020 m2 is placed in a magnetic field of 1 T. The magnetic field makes an angle of 60° with the normal to the loop. Find the magnetic flux.

  • ΦB = BA cos ⁡θ
  • ΦB = (1)(0.020) cos ⁡60°
  • ΦB = 0.010 Wb

Shaalaa.com | Electromagnetic Induction part 2 (Flux)

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