Electricity Class 10

Master Electricity Class 10 with comprehensive NCERT Solutions, Practice Questions, MCQs, Sample Papers, Case Based Questions, and Video lessons.

NCERT Solutions

Electricity Class 10 – NCERT Solutions

Each question below opens its complete step-by-step Teachoo solution.

NCERT Questions

22 questions

NCERT Question 1 (MCQ)

A piece of wire of resistance R is cut into five equal parts. These parts are then connected in parallel. If the equivalent resistance of this combination is R′, then the ratio R/R′ is –
(a) 1/25 (b) 1/5 (c) 5 (d) 25

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NCERT Question 2 (MCQ)

Which of the following terms does not represent electrical power in a circuit?
(a) I
2
R (b) IR
2
(c) VI (d) V
2
/R

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NCERT Question 3 (MCQ)

An electric bulb is rated 220 V and 100 W. When it is operated on 110 V, the power consumed will be –
(a) 100 W (b) 75 W (c) 50 W (d) 25 W

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NCERT Question 4 (MCQ)

Two conducting wires of the same material and of equal lengths and equal diameters are first connected in series and then parallel in a circuit across the same potential difference. The ratio of heat produced in series and parallel combinations would be –
(a) 1:2 (b) 2:1 (c) 1:4 (d) 4:1

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NCERT Question 5

How is a voltmeter connected in the circuit to measure the potential difference between two points?

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NCERT Question 6

A copper wire has a diameter 0.5 mm and resistivity of 1.6 × 10–8 Ω m. What will be the length of this wire to make its resistance 10 Ω? How much does the resistance change if the diameter is doubled?

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NCERT Question 7

The values of current I flowing in a given resistor for the corresponding values of potential difference V across the resistor are given below –
I (amperes) 0.5 1.0 2.0 3.0 4.0
V (volts) 1.6 3.4 6.7 10.2 13.2
Plot a graph between V and I and calculate the resistance of that resistor.

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NCERT Question 8

When a 12 V battery is connected across an unknown resistor, there is a current of 2.5 mA in the circuit. Find the value of the resistance of the resistor.

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NCERT Question 9

A battery of 9 V is connected in series with resistors of 0.2 Ω, 0.3 Ω, 0.4 Ω , 0.5 Ω and 12 Ω, respectively. How much current would flow through the 12 Ω resistor?

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NCERT Question 10

How many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line?

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NCERT Question 11

Show how you would connect three resistors, each of resistance 6 Ω, so that the combination has a resistance of (i) 9 Ω, (ii) 4 Ω.
Note:-
If all 3 resistance were different, we would have 8 cases check
Q4 Page 216

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NCERT Question 12

Several electric bulbs designed to be used on a 220 V electric supply line, are rated 10 W. How many lamps can be connected in parallel with each other across the two wires of 220 V line if the maximum allowable current is 5 A?

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NCERT Question 13

A hot plate of an electric oven connected to a 220 V line has two resistance coils A and B, each of 24 Ω resistance, which may be used separately, in series, or in parallel. What are the currents in the three cases?

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NCERT Question 14

Compare the power used in the 2 Ω resistor in each of the following circuits:
(i) a 6 V battery in series with 1 Ω and 2 Ω resistors, and (ii) a 4 V battery in parallel
with 12 Ω and 2 Ω resistors.

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NCERT Question 15

Two lamps, one rated 100 W at 220 V, and the other 60 W at 220 V, are connected in parallel to electric mains supply. What current is drawn from the line if the supply voltage is 220 V?

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NCERT Question 16

Which uses more energy, a 250 W TV set in 1 hr, or a 1200 W toaster in 10 minutes?

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NCERT Question 17

An electric heater of resistance 8 Ω draws 15 A from the service mains 2 hours. Calculate the rate at which heat is developed in the heater.

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NCERT Question 18 (a)

Why is the tungsten used almost exclusively for filament of electric lamps?

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NCERT Question 18 (b)

Why are the conductors of electric heating devices, such as bread-toasters

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NCERT Question 18 (c)

Why is the series arrangement not used for domestic circuits?

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NCERT Question 18 (d)

How does the resistance of a wire vary with its area of cross-section?

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NCERT Question 18 (e)

Why are copper and aluminium wires usually employed for electricity
transmission?

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Questions from Inside the chapter

23 questions

Question 3 Page 200

Calculate the number of electrons constituting one coulomb of charge.

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Question 1 Page 202

Name a device that helps to maintain a potential difference across a conductor.

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Question 2 Page 202

What is meant by saying that the potential difference between two points is 1 V?

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Question 3 Page 202

How much energy is given to each coulomb of charge passing through a 6 V battery?

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Question 1 Page 209

On what factors does the resistance of a conductor depend?

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Question 2 Page 209

Will current flow more easily through a thick wire or a thin wire of the same material, when connected to the same source? Why?

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Question 3 Page 209

Let the resistance of an electrical component remains constant while the potential difference across the two ends of the component decreases to half of its former value. What change will occur in the current through it?

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Question 4 Page 209

Why are the coils of electric toasters and electric irons made of an alloy rather than a pure metal?

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Question 5 Page 209

Use the data in Table 12.2 to answer the following –
(a) Which among iron and mercury is a better conductor?
(b) Which material is the best conductor?

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Question 1 Page 213

Draw a schematic diagram of a circuit consisting of a battery of three cells of 2V each , a 5Ω resistor, an 8 Ω resistor, and a 12 Ω resistor. And a plug key, all connected in series.

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Question 2 Page 213

Redraw the circuit of Question 1, putting in an ammeter to measure the current through the resistors and a voltmeter to measure the potential difference across the 12 Ω resistor. What would be the readings in the ammeter and the voltmeter?

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Question 1 Page 216

Judge the equivalent resistance when the following are connected in parallel –
(a) 1 Ω and 10
6
Ω,
(b) 1 Ω and 10
3
Ω, and 10
6
Ω.

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Question 2 Page 216

An electric lamp of 100 Ω, a toaster of resistance 50 Ω, and a water filter of resistance 500 Ω are connected in parallel to a 220 V source. What is the resistance of an electric iron connected to the same source that takes as much current as all three appliances, and what is the current through it?

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Question 3 Page 216

What are the advantages of connecting electrical devices in parallel with the battery instead of connecting them in series?

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Question 4 Page 216

How can three resistors of resistances 2 Ω, 3 Ω, and 6 Ω be connected to give a total resistance of (a) 4 Ω, (b) 1 Ω?

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Question 5 Page 216

What is (a) the highest, (b) the lowest total resistance that can be secured by combinations of four coils of resistance 4 Ω, 8 Ω, 12 Ω, 24 Ω?

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Question 1 Page 218

Why does the cord of an electric heater not glow while the heating element does ?

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Question 2 Page 218

Compute the heat generated while transferring 96000 coulomb of charge in one hour through a potential difference of 50 V

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Question 3 Page 218

An electric iron of resistance 20 Ω takes a current of 5 A. Calculate the heat developed in 30 s.

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Question 1 Page 220

What determines the rate at which energy is delivered by a current?

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Question 2 Page 220

An electric motor takes 5 A from a 220 V line. Determine the power of the motor and the energy consumed in 2 h

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Examples from NCERT Book

13 questions

Example 12.1

A current of 0.5 A is drawn by a filament of an electric bulb for 10 minutes. Find the amount of electric charge that flows through circuit.

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Example 12.2

How much work is done in moving a charge of 2 C across two points
having a potential difference 12 V?

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Example 12.3

(a) How much current will an electric bulb draw from a 220 V source, if the resistance of the bulb filament is 1200 Ω? (b) How much current will an electric heater coil draw from a 220 V source, if the resistance of the heater coil is 100 Ω?

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Example 12.4

The potential difference between the terminals of an electric heater is 60 V when it draws a current of 4 A from the source. What current will the heater draw if the potential difference is increased to 120 V?

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Example 12.5

Resistance of metal wire of length 1 m is 26 Ω at 20°C. If the diameter of the wire is 0.3 mm, what will be the resistivity of the metal at that temperature? Using Table 12.2, predict the material of the wire.

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Example 12.6

A wire of given material having length l and area of cross-section A
has a resistance of 4 Ω. What would be the resistance of another wire
of the same material having length l/2 and area of cross-section 2A?

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Example 12.7

An electric lamp, whose resistance is 20 Ω, and a conductor of 4 Ω
resistance are connected to a 6 V battery (Fig. 12.9). Calculate
(a) the total resistance of the circuit,
(b) the current through the circuit, and
(c) the potential difference across the electric lamp and conductor.

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Example 12.8

In the circuit diagram given in Fig. 12.10, suppose the resistors R
1
,
R
2
and R
3
have the values 5 Ω, 10 Ω, 30 Ω, respectively, which have
been connected to a battery of 12 V. Calculate
(a) the current through each resistor,
(b) the total current in the circuit, and
(c) the total circuit resistance.

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Example 12.9

If in Fig. 12.12, R
1
= 10 Ω, R
2
= 40 Ω, R
3
= 30 Ω, R
4
= 20 Ω, R
5
= 60 Ω,
and a 12 V battery is connected to the arrangement. Calculate
(a) the total resistance in the circuit, and
(b) the total current flowing in the circuit.

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Example 12.10

An electric iron consumes energy at a rate of 840 W when heating is at the maximum rate and 360 W when the heating is at minimum. The voltage is 220 V. What are the current and the resistance in each case?

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Example 12.11

100 J of heat is produced each second in a 4 Ω resistance. Find the
potential difference across the resistor.

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Example 12.12

An electric bulb is connected to a 220 V generator. The current is 0.50 A. What is the power of the bulb?

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Example 12.13

An electric refrigerator rated 400 W operates 8 hour/day. What is
the cost of the energy to operate it for 30 days at Rs 3.00 per kW h?

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Why Learn This With Teachoo?

Electricity introduces the quantities and laws required to understand electric circuits. Students study current, potential difference, resistance, combinations of resistors, electrical heating, power and energy.

This is one of the most numerical chapters in Class 10 Science. Students must know the meaning of every quantity, select the correct equation and maintain consistent SI units. Formula memorisation without circuit understanding leads to avoidable errors.

Electric current and potential difference

Electric current is the rate of flow of electric charge:

[
I=\frac{Q}{t}
]

Its SI unit is the ampere. An ammeter measures current and is connected in series.

Potential difference is the work done per unit charge in moving a charge between two points:

[
V=\frac{W}{Q}
]

Its SI unit is the volt. A voltmeter measures potential difference and is connected in parallel.

Ohm’s law, resistance and resistivity

At constant temperature, current through a conductor is directly proportional to the potential difference across it:

[
V=IR
]

Resistance depends on the length, cross-sectional area, material and temperature of a conductor. Resistivity is a property of the material and is expressed through:

[
R=\rho\frac{l}{A}
]

Students must distinguish resistance from resistivity and understand the information represented by a current–voltage graph.

Combination of resistors

For resistors connected in series, the same current passes through every resistor and the equivalent resistance is the sum of individual resistances.

For resistors connected in parallel, the potential difference is the same across each branch and the reciprocal of equivalent resistance equals the sum of the reciprocals of individual resistances.

Students learn why household appliances are connected in parallel rather than series.

Heating effect, power and electrical energy

Joule’s law of heating is represented by:

[
H=I^2Rt
]

The chapter connects this effect with heaters, irons, bulbs and electric fuses. Electrical power is the rate at which electrical energy is consumed:

[
P=VI=I^2R=\frac{V^2}{R}
]

The commercial unit of electrical energy is the kilowatt-hour, commonly called one unit of electricity.

Learn Electricity with Teachoo

Teachoo provides detailed Class 10 Electricity notes, formulas, circuit explanations, NCERT Solutions and solved numericals. Each numerical identifies the known values, selects a formula, converts units and interprets the final answer.

Students can practise NCERT examples, in-text questions, exercise questions, Teachoo Questions, case-based MCQs, assertion–reason questions, Exemplar MCQs and previous-year questions organised by marks.

How should you prepare Electricity?

Create a formula sheet containing the meaning and SI unit of each symbol. Practise series and parallel circuits separately before attempting mixed questions. Convert centimetres to metres, square millimetres to square metres, minutes to seconds and kilowatt-hours to joules carefully.

Frequently Asked Questions

What is electric current?

Electric current is the amount of electric charge flowing through a cross-section of a conductor per unit time.

What is the difference between resistance and resistivity?

Resistance depends on the material as well as the conductor’s dimensions. Resistivity is a characteristic property of the material at a given temperature.

Why are domestic appliances connected in parallel?

Parallel connection gives every appliance the same supply voltage and allows each appliance to operate independently.

What is one unit of electrical energy?

One unit is one kilowatt-hour, equal to 3.6 million joules.

Does Teachoo provide step-by-step Electricity numericals?

Yes. Teachoo provides solved numericals on Ohm’s law, resistivity, resistor combinations, heating, power, energy and electricity consumption.