Class 8 Science Chapter 4 Electricity: Magnetic and Heating Effects (New Course)

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March 27, 2026

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Class 8 Science Chapter 4 Electricity: Magnetic and Heating Effects (New Course)

This quiz on Chapter 4 – Electricity: Magnetic and Heating Effects for Class 8 Science aims to evaluate students’ understanding of how electric current can produce both magnetic and heating effects. It covers key concepts such as the generation of magnetic fields around current-carrying conductors, the principles of electromagnets, and the practical uses of magnetic effects in daily life. Additionally, the quiz assesses knowledge of the heating effect of electric current, including its role in devices like electric bulbs, heaters, and fuses. Students will be tested on their ability to explain these phenomena, understand their applications, and connect theoretical concepts with real-world examples.

1 / 100

Topic/Sub Topic: Does an Electric Current Have a Magnetic Effect?

1. What happens to the compass needle when an electric current flows through a nearby wire?

2 / 100

Topic/Sub Topic: Does an Electric Current Have a Magnetic Effect?

2. In Oersted's experiment, if the compass needle deflects maximally when placed at a certain angle to the current-carrying wire, what would happen if the current direction is reversed?

3 / 100

Topic/Sub Topic: Does an Electric Current Have a Magnetic Effect?

3. What happens to the magnetic property of an electromagnet when the electric current is turned off?

4 / 100

Topic/Sub Topic: Does an Electric Current Have a Magnetic Effect?

4. (A) An electric current flowing through a wire deflects a nearby compass needle.
(R) A current-carrying conductor produces a magnetic field around it.

5 / 100

Topic/Sub Topic: Discovery by Hans Christian Oersted (1820)

5. (A) A compass needle deflects when an electric current flows through a nearby wire.
(R) An electric current produces a magnetic field around the conductor, which affects the compass needle.

6 / 100

Topic/Sub Topic: Discovery by Hans Christian Oersted (1820)

6. What did Hans Christian Oersted observe in his 1820 experiment?

7 / 100

Topic/Sub Topic: Discovery by Hans Christian Oersted (1820)

7. An electromagnet with an iron core produces a magnetic field of 0.8 T when a current of 4 A flows through its solenoid. If the current is doubled and the number of turns in the solenoid is tripled, what will be the new magnetic field strength? Assume no saturation occurs in the iron core.

8 / 100

Topic/Sub Topic: Discovery by Hans Christian Oersted (1820)

8. (A) The deflection of a compass needle when an electric current flows through a nearby wire proves that the current-carrying wire produces a magnetic field.
(R) A magnetic field only exists in the presence of a permanent magnet.

9 / 100

Topic/Sub Topic: Magnetic field around a current-carrying wire

9. In the experiment with a compass needle placed near a current-carrying wire, what happens to the needle when the circuit is switched 'ON' and 'OFF' multiple times?

10 / 100

Topic/Sub Topic: Magnetic field around a current-carrying wire

10. What happens to a compass needle when electric current flows through a nearby wire?

11 / 100

Topic/Sub Topic: Magnetic field around a current-carrying wire

11. What happens to the compass needle when an electric current flows through a nearby wire?

12 / 100

Topic/Sub Topic: Magnetic field around a current-carrying wire

12. (A) A compass needle deflects when placed near a current-carrying wire.
(R) An electric current produces a magnetic field around the conductor, which interacts with the magnetic compass.

13 / 100

Topic/Sub Topic: Compass needle deflection when current flows

13. A compass needle deflects to the east when placed below a current-carrying wire. If the direction of the current is reversed, what will be the new deflection of the compass needle?

14 / 100

Topic/Sub Topic: Compass needle deflection when current flows

14. If the direction of the current in the wire is reversed, what happens to the deflection of the compass needle?

15 / 100

Topic/Sub Topic: Compass needle deflection when current flows

15. If a current flows vertically upwards through a wire, what will be the direction of the magnetic field at a point located east of the wire?

16 / 100

Topic/Sub Topic: Compass needle deflection when current flows

16. (A) A compass needle deflects when placed near a current-carrying wire.
(R) The current produces a magnetic field that interacts with the compass needle.

17 / 100

Topic/Sub Topic: Applications of magnetic effect (e.g., electromagnets, motors)

17. An electromagnet is constructed with 100 turns of wire and a single cell. If the number of turns is doubled and two cells are connected in series to the same setup, what will be the effect on the magnetic field strength?

18 / 100

Topic/Sub Topic: Applications of magnetic effect (e.g., electromagnets, motors)

18. (A) An electromagnet loses its magnetism when the electric current is switched off.
(R) The magnetic field produced by an electromagnet is temporary and exists only as long as current flows through the coil.

19 / 100

Topic/Sub Topic: Applications of magnetic effect (e.g., electromagnets, motors)

19. An electromagnet is made using a wooden core instead of an iron core. How does this affect its performance compared to an iron-core electromagnet under the same conditions?

20 / 100

Topic/Sub Topic: Applications of magnetic effect (e.g., electromagnets, motors)

20. Which of the following changes will increase the strength of an electromagnet?

21 / 100

Topic/Sub Topic: Electromagnets

21. Why do the iron paper clips fall off the electromagnet when the circuit is opened?

22 / 100

Topic/Sub Topic: Electromagnets

22. (A) The strength of an electromagnet can be increased by increasing the number of turns in the coil or the current flowing through it.
(R) The magnetic field produced by a current-carrying coil is directly proportional to both the number of turns and the current.

23 / 100

Topic/Sub Topic: Electromagnets

23. What happens when an electric current is passed through a coil wound around an iron nail?

24 / 100

Topic/Sub Topic: Electromagnets

24. Which of the following actions will NOT increase the strength of an electromagnet?

25 / 100

Topic/Sub Topic: Lifting electromagnets

25. What happens when an electric current is passed through a coil with an iron core?

26 / 100

Topic/Sub Topic: Lifting electromagnets

26. How can the lifting capacity of an electromagnet be controlled in industrial applications?

27 / 100

Topic/Sub Topic: Lifting electromagnets

27. How can you determine the polarity of an electromagnet?

28 / 100

Topic/Sub Topic: Lifting electromagnets

28. (A) The lifting capacity of an electromagnet decreases if the number of turns in the coil is reduced while keeping the current constant.
(R) The magnetic field strength of an electromagnet is directly proportional to the number of turns in the coil.

29 / 100

Topic/Sub Topic: Does a Current Carrying Wire Get Hot?

29. (A) A nichrome wire heats up when current is passed through it.
(R) Nichrome has high resistance, causing electrical energy to convert into heat energy.

30 / 100

Topic/Sub Topic: Does a Current Carrying Wire Get Hot?

30. In Activity 4.5, if you repeat the experiment with a battery of 2 cells instead of 1 cell for the same duration, what will happen to the heating of the nichrome wire?

31 / 100

Topic/Sub Topic: Does a Current Carrying Wire Get Hot?

31. An electric current flows through a nichrome wire for a short time. What happens to the wire?

32 / 100

Topic/Sub Topic: Does a Current Carrying Wire Get Hot?

32. An electric iron uses a heating element made of nichrome. Why is nichrome preferred over copper for such applications?

33 / 100

Topic/Sub Topic: Heating Effect of Electric Current

33. Which household appliance works on the principle of the heating effect of electric current?

34 / 100

Topic/Sub Topic: Heating Effect of Electric Current

34. Two wires of the same length and thickness, one made of copper and the other of nichrome, are connected to identical batteries. Which wire will heat up more and why?

35 / 100

Topic/Sub Topic: Heating Effect of Electric Current

35. Which of the following factors does NOT affect the heat generated in a current-carrying wire?

36 / 100

Topic/Sub Topic: Heating Effect of Electric Current

36. (A) A nichrome wire heats up more than a copper wire when the same current is passed through both.
(R) Nichrome has higher resistance compared to copper for wires of the same size and length.

37 / 100

Topic/Sub Topic: Resistance of conductors and its effect on heating

37. What happens to the heat produced in a wire when the current flowing through it increases?

38 / 100

Topic/Sub Topic: Resistance of conductors and its effect on heating

38. (A) A thicker copper wire will produce less heat than a thinner nichrome wire for the same current and length.
(R) The resistance of a conductor is inversely proportional to its cross-sectional area.

39 / 100

Topic/Sub Topic: Resistance of conductors and its effect on heating

39. If the length of a resistor wire is doubled while keeping its cross-sectional area and material the same, how does the heat produced change when the same current flows through it?

40 / 100

Topic/Sub Topic: Resistance of conductors and its effect on heating

40. A copper wire and a nichrome wire of the same length and thickness are connected separately to the same voltage source. Which wire will get hotter and why?

41 / 100

Topic/Sub Topic: Nichrome wire and its heating properties

41. Why is nichrome preferred over copper for heating elements in electric irons?

42 / 100

Topic/Sub Topic: Nichrome wire and its heating properties

42. An electric heater uses nichrome wire. If the current passing through the wire is reduced to half its original value, how does the heat produced change for the same duration?

43 / 100

Topic/Sub Topic: Nichrome wire and its heating properties

43. Why is nichrome wire commonly used in heating devices instead of copper wire of the same dimensions?

44 / 100

Topic/Sub Topic: Nichrome wire and its heating properties

44. If the number of cells in a circuit is increased from one to two, what happens to the heating in the nichrome wire?

45 / 100

Topic/Sub Topic: Applications of the heating effect (e.g., electric iron, room heaters)

45. (A) In household appliances like electric irons and heaters, the heating element is made of nichrome wire instead of copper wire.
(R) Nichrome has a higher resistivity compared to copper, leading to greater heat generation for the same current.

46 / 100

Topic/Sub Topic: Applications of the heating effect (e.g., electric iron, room heaters)

46. The amount of heat produced in a wire carrying current depends on all the following factors except:

47 / 100

Topic/Sub Topic: Applications of the heating effect (e.g., electric iron, room heaters)

47. A household electric heater has a nichrome heating element with resistance R. If the voltage across the heater is doubled while keeping the resistance constant, how does the heat produced per second change?

48 / 100

Topic/Sub Topic: Applications of the heating effect (e.g., electric iron, room heaters)

48. Why should one avoid using damaged wires in heating appliances?

49 / 100

Topic/Sub Topic: How Does a Battery Generate Electricity?

49. What is a key advantage of rechargeable batteries over single-use dry cells?

50 / 100

Topic/Sub Topic: How Does a Battery Generate Electricity?

50. Why are lithium-ion (Li-ion) batteries widely used in modern devices?

51 / 100

Topic/Sub Topic: How Does a Battery Generate Electricity?

51. In a Voltaic cell, what is the role of the electrolyte?

52 / 100

Topic/Sub Topic: How Does a Battery Generate Electricity?

52. (A) A Voltaic cell uses a liquid electrolyte, while a dry cell uses a paste-like electrolyte.
(R) Dry cells are more portable than Voltaic cells because they do not contain any liquid that can spill.

53 / 100

Topic/Sub Topic: Voltaic cell

53. (A) In a voltaic cell, copper acts as the positive electrode when paired with zinc because it has a higher reduction potential.
(R) The standard reduction potential of copper ($+0.34$ V) is greater than that of zinc ($-0.76$ V), making it more likely to gain electrons.

54 / 100

Topic/Sub Topic: Voltaic cell

54. A student constructs two voltaic cells: Cell A with aluminum/copper electrodes and Cell B with magnesium/copper electrodes, both using the same electrolyte. Which cell will theoretically produce a higher voltage and why?

55 / 100

Topic/Sub Topic: Voltaic cell

55. What are the two essential components of a Voltaic cell?

56 / 100

Topic/Sub Topic: Voltaic cell

56. Which chemical reaction occurs in a Voltaic cell with zinc and copper electrodes?

57 / 100

Topic/Sub Topic: Dry cells

57. Why is a dry cell called   'dry' ?

58 / 100

Topic/Sub Topic: Dry cells

58. Which of the following batteries is widely used today due to its rechargeable nature?

59 / 100

Topic/Sub Topic: Dry cells

59. (A) The zinc container in a dry cell acts as the negative terminal because it loses electrons during the chemical reaction.
(R) In a dry cell, the carbon rod is the positive terminal as it accepts electrons from the electrolyte.

60 / 100

Topic/Sub Topic: Dry cells

60. Why are dry cells considered single-use batteries?

61 / 100

Topic/Sub Topic: Rechargeable batteries

61. Which material is commonly used as the anode in lithium-ion (Li-ion) batteries?

62 / 100

Topic/Sub Topic: Rechargeable batteries

62. (A) Lithium-ion batteries are the most common type of rechargeable battery today because they use easily accessible and abundant materials.
(R) Lithium and cobalt, used in Li-ion batteries, are mined and processed in limited parts of the world, making their supply a strategic concern for many countries.

63 / 100

Topic/Sub Topic: Rechargeable batteries

63. (A) Lithium-ion batteries are the most commonly used rechargeable batteries today.
(R) Lithium-ion batteries use special metals like lithium and cobalt, which are mined in limited parts of the world.

64 / 100

Topic/Sub Topic: Rechargeable batteries

64. Which type of rechargeable battery is most commonly found in modern devices like smartphones and laptops?

65 / 100

Topic/Sub Topic: Voltaic (Galvanic) cells

65. Why does a voltaic cell eventually stop producing electricity?

66 / 100

Topic/Sub Topic: Voltaic (Galvanic) cells

66. What is the purpose of using lemon juice in the lemon battery experiment?

67 / 100

Topic/Sub Topic: Voltaic (Galvanic) cells

67. Which of the following metals commonly acts as the positive electrode in a Voltaic cell?

68 / 100

Topic/Sub Topic: Voltaic (Galvanic) cells

68. (A) A Voltaic cell generates electricity through chemical reactions between electrodes and electrolyte.
(R) The electrolyte in a Voltaic cell allows the flow of ions, completing the circuit and enabling current to flow.

69 / 100

Topic/Sub Topic: Dry cells and rechargeable batteries

69. What is the role of the zinc container in a dry cell?

70 / 100

Topic/Sub Topic: Dry cells and rechargeable batteries

70. In a dry cell, the zinc container acts as the negative terminal. What happens to the zinc chemically during the cell's operation?

71 / 100

Topic/Sub Topic: Dry cells and rechargeable batteries

71. What is the negative terminal of a dry cell?

72 / 100

Topic/Sub Topic: Dry cells and rechargeable batteries

72. What is the state of the electrolyte in a dry cell?

73 / 100

Topic/Sub Topic: Working principle and structure of dry cells

73. Why are dry cells considered convenient for everyday use?

74 / 100

Topic/Sub Topic: Working principle and structure of dry cells

74. (A) The zinc container in a dry cell acts as the negative terminal because it donates electrons during the chemical reaction.
(R) Zinc is more reactive than carbon, causing it to lose electrons and serve as the negative terminal.

75 / 100

Topic/Sub Topic: Working principle and structure of dry cells

75. Which component acts as the positive terminal in a dry cell?

76 / 100

Topic/Sub Topic: Working principle and structure of dry cells

76. What is the role of the paste-like substance inside a dry cell?

77 / 100

Topic/Sub Topic: Electrodes and electrolyte in Voltaic cells

77. When does a Voltaic cell stop producing electricity?

78 / 100

Topic/Sub Topic: Electrodes and electrolyte in Voltaic cells

78. In a Voltaic cell using zinc and copper electrodes with dilute sulfuric acid as the electrolyte, which of the following correctly describes the flow of electrons and the chemical changes occurring at the electrodes?

79 / 100

Topic/Sub Topic: Electrodes and electrolyte in Voltaic cells

79. When constructing a lemon cell using copper and iron electrodes, why does the LED glow when connected properly, and what role does the lemon juice play?

80 / 100

Topic/Sub Topic: Electrodes and electrolyte in Voltaic cells

80. In a Voltaic cell, what is the role of the zinc electrode?

81 / 100

Topic/Sub Topic: Applications of Voltaic cells

81. In a zinc-copper voltaic cell, if the mass of the zinc electrode decreases by 1.30 grams over time, how many coulombs of charge have passed through the circuit? (Given: Molar mass of Zn = 65.38 g/mol, Faraday's constant = 96,485 C/mol)

82 / 100

Topic/Sub Topic: Applications of Voltaic cells

82. In emergency lighting systems, why are Voltaic cells preferred over other power sources?

83 / 100

Topic/Sub Topic: Applications of Voltaic cells

83. (A) Rechargeable batteries can be used indefinitely without any degradation in performance.
(R) Rechargeable batteries undergo reversible chemical reactions during charging and discharging cycles.

84 / 100

Topic/Sub Topic: Applications of Voltaic cells

84. (A) A Voltaic cell cannot be recharged once its chemicals are depleted.
(R) The chemical reaction in a Voltaic cell is irreversible, leading to the depletion of reactants over time.

85 / 100

Topic/Sub Topic: Construction and working of dry cells

85. What is the negative terminal in a dry cell?

86 / 100

Topic/Sub Topic: Construction and working of dry cells

86. (A) The zinc container in a dry cell acts as the negative terminal.
(R) Zinc loses electrons during the chemical reaction, making it the anode.

87 / 100

Topic/Sub Topic: Construction and working of dry cells

87. What is the role of the zinc container in a dry cell?

88 / 100

Topic/Sub Topic: Construction and working of dry cells

88. (A) In a dry cell, the zinc container acts as the negative terminal.
(R) Zinc is more reactive and gets oxidized during the chemical reaction in the dry cell.

89 / 100

Topic/Sub Topic: Usage in daily life (e.g., flashlights, toys)

89. (A) The zinc container in a dry cell loses mass over time as the battery discharges.
(R) Zinc undergoes oxidation to form $\text{Zn}^{2+}$ ions during the chemical reaction in a dry cell.

90 / 100

Topic/Sub Topic: Usage in daily life (e.g., flashlights, toys)

90. Which of the following devices most commonly uses a dry cell battery?

91 / 100

Topic/Sub Topic: Usage in daily life (e.g., flashlights, toys)

91. Why is it important to recycle used batteries?

92 / 100

Topic/Sub Topic: Usage in daily life (e.g., flashlights, toys)

92. (A) Dry cells are commonly used in flashlights and toys because they are lightweight and portable.
(R) Dry cells convert chemical energy into electrical energy through redox reactions.

93 / 100

Topic/Sub Topic: Working principle of rechargeable batteries

93. (A) Solid-state batteries are safer and charge faster than traditional lithium-ion batteries because they replace liquid electrolytes with solid materials.
(R) Solid-state batteries eliminate the risk of leakage and thermal runaway associated with liquid electrolytes.

94 / 100

Topic/Sub Topic: Working principle of rechargeable batteries

94. A lithium-ion battery operates by moving lithium ions from the negative electrode to the positive electrode during discharge and vice versa during charging. If a device using such a battery consumes 2000 mAh of charge during use, and the battery has a capacity of 4000 mAh, how many full charge cycles can the battery undergo before its capacity degrades to 80% of its original capacity, assuming each cycle reduces the capacity by 1%?

95 / 100

Topic/Sub Topic: Working principle of rechargeable batteries

95. (A) Rechargeable batteries like lithium-ion batteries can be recharged and reused multiple times.
(R) Rechargeable batteries rely on reversible chemical reactions that allow them to restore their energy when charged.

96 / 100

Topic/Sub Topic: Working principle of rechargeable batteries

96. Solid-state batteries are considered the next big leap in battery technology. What is one key advantage of solid-state batteries over traditional lithium-ion batteries?

97 / 100

Topic/Sub Topic: Types of rechargeable batteries (e.g., lithium-ion, lead-acid)

97. Why should old rechargeable batteries be recycled instead of thrown in regular garbage?

98 / 100

Topic/Sub Topic: Types of rechargeable batteries (e.g., lithium-ion, lead-acid)

98. (A) Lithium-ion batteries are widely used in modern electronic devices because they have high energy density.
(R) High energy density allows lithium-ion batteries to store more energy per unit mass compared to other rechargeable batteries.

99 / 100

Topic/Sub Topic: Types of rechargeable batteries (e.g., lithium-ion, lead-acid)

99. How do solid-state batteries differ from current lithium-ion batteries?

100 / 100

Topic/Sub Topic: Types of rechargeable batteries (e.g., lithium-ion, lead-acid)

100. Why is recycling old rechargeable batteries important for the environment?

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