Chapter in a nutshell: Ohm's law ($V=IR$) links voltage, current and resistance; resistors combine in series/parallel. Electrical power ($P=VI$) and energy ($E=Pt$, billed in kWh) run our homes, protected by fuses and earthing. A current creates a magnetic field (basis of the motor, Fleming's left hand), and a changing field induces a current (electromagnetic induction, the generator, Fleming's right hand).
1. Electric Current, Charge & Potential Difference
- Current (I): rate of flow of charge, $I=\dfrac{Q}{t}$; SI unit ampere (A). Conventional current flows from + to −.
- Charge (Q): $Q=It$; unit coulomb (C).
- Potential difference (V): work done per unit charge between two points, $V=\dfrac{W}{Q}$; unit volt (V).
2. Ohm's Law & Resistance
$$V = IR \qquad (\text{temperature constant})$$- Resistance (R): opposition to current; unit ohm (Ω).
- Factors: $R=\dfrac{\rho l}{A}$ → R ∝ length (l), R ∝ 1/area (A), depends on material (resistivity ρ) and increases with temperature (for metals).
- Resistivity (ρ): resistance of a unit cube of material; unit Ω m. Good conductors have low ρ.
3. Combination of Resistors
| Series | Parallel | |
|---|---|---|
| Equivalent R | $R_s=R_1+R_2+\dots$ | $\dfrac{1}{R_p}=\dfrac{1}{R_1}+\dfrac{1}{R_2}+\dots$ |
| Current | same through each | divides between branches |
| Voltage | divides across each | same across each |
| Use | — | household appliances |
4. EMF, Terminal Voltage & Internal Resistance
- EMF (ε): energy given by the cell per unit charge (measured on open circuit).
- Internal resistance (r): resistance of the cell's electrolyte.
- Terminal voltage: $V = \varepsilon - Ir$ (less than EMF when current flows).
5. Electrical Power & Energy
$$P = VI = I^2R = \frac{V^2}{R}, \qquad E = P\,t = VIt$$- Power unit watt (W); energy SI unit joule.
- Commercial unit: kilowatt-hour (kWh) = energy used by a 1 kW appliance in 1 h $= 3.6\times10^{6}$ J ("1 unit").
- Heating effect (Joule's law): $H = I^2Rt$ — basis of heaters, bulbs, fuses.
6. Household Electricity & Safety
- Three wires: Live (L, brown), Neutral (N, blue), Earth (E, green/yellow). Supply ≈ 220 V AC, 50 Hz.
- Fuse / MCB: a thin wire of low-melting alloy placed in the live wire; melts/trips if current exceeds a safe value (protects against short-circuit/overload).
- Earthing: connects the metal body of an appliance to the ground; if the live wire touches the body, current flows safely to earth (or blows the fuse) → prevents shock.
- Appliances are connected in parallel (same voltage, independent on/off, one failing doesn't stop others).
- Overloading (too many appliances) and short-circuiting (live touching neutral) cause excessive current → fire risk → fuse protects.
7. Magnetic Effect of Current (→ the Motor)
- Oersted's experiment: a current-carrying wire deflects a nearby compass → a current produces a magnetic field around it.
- Field of a straight wire = concentric circles (right-hand thumb rule); a solenoid behaves like a bar magnet and forms an electromagnet (strength ↑ with current, turns, soft-iron core).
- Force on a current-carrying conductor in a field — Fleming's Left-Hand Rule (thumb = thrust/force, forefinger = field, centre finger = current). This is the principle of the electric motor (electrical → mechanical energy; uses a split-ring commutator for continuous rotation).
8. Electromagnetic Induction (→ the Generator)
- Faraday's laws: a changing magnetic flux through a coil induces an EMF; the induced EMF ∝ rate of change of flux.
- Lenz's law: the induced current opposes the change causing it (conservation of energy).
- Fleming's Right-Hand Rule gives the direction of the induced current → principle of the generator/dynamo (mechanical → electrical energy). AC generator uses slip rings; DC uses a split-ring commutator.
- Transformer (AC only): changes voltage via $\dfrac{V_s}{V_p}=\dfrac{N_s}{N_p}$; step-up (more secondary turns) for transmission, step-down for use. Works on mutual induction.
9. Worked Numerical Examples (ICSE pattern)
Q1. A 6 V battery drives 2 A through a resistor. Find R. Solution: $R=V/I=6/2=\mathbf{3\ \Omega}$.Q2. Three resistors 2 Ω, 3 Ω, 5 Ω in series across 20 V. Find total R and current. Solution: $R_s=2+3+5=10\ \Omega$; $I=V/R=20/10=\mathbf{2\ A}$.
Q3. Two resistors 6 Ω and 3 Ω in parallel. Find the equivalent resistance. Solution: $\dfrac1{R_p}=\dfrac16+\dfrac13=\dfrac12\Rightarrow R_p=\mathbf{2\ \Omega}$.
Q4. An electric bulb is rated 60 W, 220 V. Find its resistance and the current it draws. Solution: $R=\dfrac{V^2}{P}=\dfrac{220^2}{60}=\mathbf{807\ \Omega}$; $I=\dfrac{P}{V}=\dfrac{60}{220}=\mathbf{0.27\ A}$.
Q5. A 1500 W heater runs 4 h daily. Energy used in 30 days (kWh) and cost at ₹5/unit? Solution: daily $=1.5\times4=6$ kWh; 30 days $=180$ kWh; cost $=180\times5=\mathbf{₹900}$.
Q6. A cell of EMF 2 V and internal resistance 0.5 Ω drives 2 A. Find the terminal voltage. Solution: $V=\varepsilon-Ir=2-(2\times0.5)=\mathbf{1\ V}$.
10. Key Terms — Quick Glossary
| Term | One-line definition |
|---|---|
| Current | rate of flow of charge ($I=Q/t$), unit A. |
| Potential difference | work per unit charge ($V=W/Q$), unit V. |
| Resistance | opposition to current ($R=V/I$), unit Ω. |
| Resistivity | resistance of a unit cube; unit Ω m. |
| EMF | energy per unit charge supplied by a cell. |
| Power | rate of using electrical energy ($P=VI$). |
| kWh | commercial unit of energy = $3.6\times10^6$ J. |
| Fuse | low-melting wire in the live wire; melts on overload. |
| Earthing | connecting an appliance's body to ground for safety. |
| Electromagnetic induction | EMF induced by a changing magnetic flux. |
11. Common Mistakes to Avoid
- Putting the fuse in the neutral wire — it must be in the live wire.
- Mixing up series (same current) and parallel (same voltage).
- Confusing Left-hand rule (motor/force) with Right-hand rule (generator/induced current).
- Treating kW and kWh as the same — kW is power, kWh is energy.
- Forgetting internal resistance: terminal voltage $V=\varepsilon-Ir$, not ε.
- Saying a transformer works on DC — it needs AC (changing flux).
12. Likely Exam Questions (with crisp answers)
- State Ohm's law. → $V=IR$ at constant temperature.
- On what factors does the resistance of a wire depend? → Length, area of cross-section, material (resistivity), temperature.
- Why are household appliances connected in parallel? → Same voltage to each; independent switching; one failing doesn't affect others.
- Why is a fuse placed in the live wire? → So that on overload it disconnects the live supply, making the appliance safe.
- What is earthing and why is it done? → Connecting the metal body to earth; provides a safe path for leakage current to prevent shock.
- State the three equivalent expressions for electrical power. → $P=VI=I^2R=V^2/R$.
- Define 1 kWh. → Energy used by a 1 kW device in 1 hour ($=3.6\times10^6$ J).
- State Fleming's Left-Hand Rule and its use. → Thumb=force, forefinger=field, centre finger=current; gives force direction in a motor.
- State Fleming's Right-Hand Rule and its use. → Gives induced-current direction in a generator.
- Differentiate a motor and a generator. → Motor: electrical→mechanical (force on current); generator: mechanical→electrical (induced EMF).
- What is electromagnetic induction? → Production of an EMF by a changing magnetic flux.
- Why can't a transformer work on DC? → DC gives steady flux (no change) so no EMF is induced in the secondary.
- Name the energy change in an electric heater / electric motor. → Electrical→heat / electrical→mechanical.
- State Joule's law of heating. → $H=I^2Rt$.
13. AC vs DC
| Direct Current (DC) | Alternating Current (AC) |
|---|---|
| flows one direction | reverses direction periodically (50 Hz in India) |
| from cells/batteries | from generators/mains |
| cannot be stepped up/down easily | easily transformed (long-distance transmission) |
14. Electromagnet vs Permanent Magnet
| Electromagnet | Permanent magnet |
|---|---|
| magnetism only while current flows | magnetism is permanent |
| strength variable (current, turns, core) | fixed strength |
| polarity reversible | fixed polarity |
| soft-iron core | hard steel |
15. Parts of a Motor & Generator
- DC motor: armature coil, field magnet, split-ring commutator (reverses current each half-turn for continuous rotation), brushes. Converts electrical → mechanical energy.
- AC generator (dynamo): armature coil rotated in a magnetic field, slip rings + brushes. A changing flux induces an alternating EMF. Converts mechanical → electrical energy.
16. More Worked Numericals
Q7. A current of 0.5 A flows for 4 minutes. Find the charge. Solution: $Q=It=0.5\times240=\mathbf{120\ C}$.Q8. Find the heat produced in a 10 Ω resistor carrying 2 A for 5 minutes. Solution: $H=I^2Rt=2^2\times10\times300=\mathbf{12000\ J}$.
Q9. Resistors 4 Ω and 12 Ω are in parallel, then in series with 2 Ω across 12 V. Find current from the source. Solution: parallel $=\dfrac{4\times12}{16}=3\ \Omega$; total $=3+2=5\ \Omega$; $I=12/5=\mathbf{2.4\ A}$.
Q10. A transformer has 100 primary turns and 500 secondary turns; input 220 V. Find output voltage (ideal). Solution: $V_s=V_p\dfrac{N_s}{N_p}=220\times\dfrac{500}{100}=\mathbf{1100\ V}$ (step-up).
Q11. An appliance uses 5 A at 220 V. Its power? Solution: $P=VI=220\times5=\mathbf{1100\ W}$.
17. More Exam Questions (with crisp answers)
- Why is AC preferred for transmission? → It can be stepped up by transformers, reducing $I^2R$ line losses.
- State Oersted's discovery. → A current-carrying conductor produces a magnetic field around it.
- How can the strength of an electromagnet be increased? → More turns, larger current, a soft-iron core.
- Why is soft iron used as the core of an electromagnet? → It is easily magnetised and loses magnetism quickly when current stops.
- State Lenz's law. → The induced current opposes the change in flux that produces it (energy conservation).
- What is the function of a commutator in a DC motor? → To reverse the current in the coil every half rotation so it keeps turning the same way.
- Why does a fuse wire have a low melting point and high resistance? → So it heats up and melts quickly when the current exceeds the safe limit.
- Name three safety devices in house wiring. → Fuse/MCB, earthing, and switches in the live wire.