Electromagnetic Induction
Class 12 Physics • CBSE 2025-26 Syllabus
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Key Concepts and Tricks
+Master these fundamental concepts of electromagnetic induction. Understanding magnetic flux, Faraday's laws, Lenz's law, and inductance is crucial for solving EMI problems effectively.
Magnetic Flux
Φ = B·A = BA cos θ. Total number of magnetic field lines passing through a surface. Scalar quantity. Unit: Weber (Wb). Maximum when B ⊥ A (θ = 0°), zero when B || A (θ = 90°).
Electromagnetic Induction
Phenomenon of generating EMF/current due to changing magnetic flux. Discovered by Faraday and Henry. Forms basis of generators, transformers, and induction motors.
Faraday's Laws
First Law: EMF induced when flux changes. Second Law: ε = -dΦ/dt. Magnitude of induced EMF equals rate of change of magnetic flux. For N turns: ε = -N dΦ/dt.
Lenz's Law
Direction of induced EMF/current opposes the change causing it. Consequence of energy conservation. Represented by negative sign in Faraday's law. Prevents perpetual motion.
Motional EMF
ε = BLv. EMF induced in conductor moving through magnetic field. Due to Lorentz force on charge carriers. Direction given by Fleming's right-hand rule. Basis of generators.
Fleming's Right Hand Rule
Thumb: direction of motion, First finger: magnetic field direction, Middle finger: induced current direction. Used to find direction of induced current in moving conductors.
Self Inductance
L = Φ/I. Flux linkage per unit current in same coil. Opposes change in current (electrical inertia). Unit: Henry (H). For solenoid: L = μ₀n²Al.
Mutual Inductance
M = Φ₂/I₁. Flux in one coil due to current in another. M₁₂ = M₂₁ (reciprocity theorem). Used in transformers and coupled circuits. K = M/√(L₁L₂) is coupling coefficient.
Eddy Currents
Circular currents induced in conductors by changing flux. Cause energy loss (I²R heating). Reduced by laminations. Used in electromagnetic braking and induction heating.
Energy in Magnetic Field
U = ½LI². Energy stored when current is established in inductor. Work done against back EMF. Magnetic energy density: u = B²/2μ₀. Analogous to kinetic energy.
Important Formulas
+Complete collection of essential formulas for Electromagnetic Induction. Each formula includes clear mathematical expressions rendered with MathJax and simple explanations in everyday language.
| Formula Name | Mathematical Expression | Meaning in Simple Words |
|---|---|---|
| Magnetic Flux | $\Phi = \vec{B} \cdot \vec{A} = BA \cos \theta$ | Total magnetic field lines passing through area A at angle θ |
| Faraday's Second Law | $\varepsilon = -\frac{d\Phi}{dt}$ | Induced EMF equals negative rate of change of magnetic flux |
| EMF in N-turn Coil | $\varepsilon = -N \frac{d\Phi}{dt}$ | EMF in coil with N turns (flux linkage = NΦ) |
| Motional EMF | $\varepsilon = BLv$ | EMF induced in conductor of length L moving with velocity v in field B |
| Rotating Rod EMF | $\varepsilon = \frac{1}{2}B\omega l^2$ | EMF across rod of length l rotating with angular velocity ω |
| Self Inductance | $L = \frac{\Phi}{I}$ | Flux linkage per unit current in the same coil |
| Self Inductance of Solenoid | $L = \mu_0 n^2 A l = \frac{\mu_0 N^2 A}{l}$ | Self inductance of solenoid (n = turns per unit length) |
| Mutual Inductance | $M = \frac{\Phi_2}{I_1} = \frac{\Phi_1}{I_2}$ | Flux in one coil per unit current in another coil |
| Induced EMF (Mutual) | $\varepsilon_2 = -M \frac{dI_1}{dt}$ | EMF induced in secondary coil due to changing current in primary |
| Energy Stored in Inductor | $U = \frac{1}{2}LI^2$ | Magnetic energy stored when current I flows through inductor L |
| Coupling Coefficient | $K = \frac{M}{\sqrt{L_1 L_2}}$ | Measure of magnetic coupling between two coils (0 ≤ K ≤ 1) |
| Magnetic Energy Density | $u = \frac{B^2}{2\mu_0}$ | Energy stored per unit volume in magnetic field |
| Back EMF in Inductor | $\varepsilon = -L \frac{dI}{dt}$ | Self-induced EMF that opposes change in current |
| AC Generator EMF | $\varepsilon = NBA\omega \sin(\omega t)$ | EMF in rotating coil (N turns, area A, angular frequency ω) |
Step-by-Step Problem Solving Rules
+Follow these systematic steps to solve any electromagnetic induction problem with confidence. These rules will guide you through flux calculations, motional EMF, and inductance problems.
Identify Problem Type
Determine if it's flux change, motional EMF, self/mutual inductance, or energy problem
Draw Clear Diagram
Show magnetic field directions, conductor motion, and current directions clearly
Apply Lenz's Law
Determine direction of induced current using the principle that it opposes the change
Choose Appropriate Formula
Select correct formula: Faraday's law, motional EMF, or inductance formulas
Identify What's Changing
For flux problems, determine if B, A, or θ is changing with time
Apply Mathematical Formula
Use ε = -dΦ/dt carefully, paying attention to signs and directions
Verify Results
Check units, directions, and verify using energy conservation or physical reasoning
Common Mistakes Students Make
+Learn from these typical errors in electromagnetic induction problems. Understanding these common pitfalls will help you avoid them and improve your accuracy significantly.
| Common Mistake | How to Avoid It |
|---|---|
| Forgetting negative sign in Faraday's law | Remember Lenz's law - induced EMF opposes the change causing it |
| Wrong direction of induced current | Use Fleming's right-hand rule consistently for motional EMF problems |
| Confusing self inductance and mutual inductance | Self: same coil (L = Φ/I), Mutual: different coils (M = Φ₂/I₁) |
| Incorrect application of motional EMF formula | Use ε = BLv only when B ⊥ v ⊥ L (all three perpendicular) |
| Wrong interpretation of Lenz's law | Induced effect opposes the CHANGE, not the original cause itself |
| Mixing up flux and flux linkage | Flux linkage = N × flux. Use NΦ for multi-turn coils |
| Using wrong energy formula for inductors | Inductors: U = ½LI², Capacitors: U = ½CV². Don't confuse them |
| Incorrect sign convention in mutual inductance | Be consistent with current and flux directions when applying M = Φ₂/I₁ |
Comprehensive Cheat Sheet for Revision
+🎯 THE ULTIMATE one-stop reference for Electromagnetic Induction! This comprehensive cheat sheet contains everything you need for exam success. Master this and ACE your physics exam!
📊 Fundamental Constants & Typical Values
⚡ Formula Quick Reference by Topic
Flux and EMF
Motional EMF
Inductance
🎯 Memory Aids & Mnemonics
Index: Magnetic field
Middle: Current (THuM-IM)"
Mutual = Multiple coils"
Capacitors store ½CV²"
