Class 8 Science Chapter 5 Exploring Forces (New Course)

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March 27, 2026

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Class 8 Science Chapter 5 Exploring Forces (New Course)

This quiz on Chapter 5: Exploring Forces for Class 8 Science assesses students’ understanding of the fundamental concepts of force, including different types such as gravitational, frictional, magnetic, and applied forces. It evaluates their knowledge of how forces affect the motion and shape of objects, the difference between balanced and unbalanced forces, and the application of the laws of motion in everyday life. The quiz encourages students to connect theoretical concepts with real-world examples, analyze situations scientifically, and demonstrate their reasoning and problem-solving skills related to forces.

1 / 100

Topic/Sub Topic: What Is a Force?

1. A car moving at a constant speed of $10 \, \text{m/s}$ suddenly changes its direction by $90^\circ$ without any change in speed. Which of the following is true about the force acting on the car?

2 / 100

Topic/Sub Topic: What Is a Force?

2. A ball is rolling on a frictionless surface at $4 \, \text{m/s}$. A constant force of $2 \, \text{N}$ is applied in the direction opposite to its motion for $3 \, \text{s}$. What happens to the ball after the force is applied?

3 / 100

Topic/Sub Topic: What Is a Force?

3. What is the SI unit of force and its symbol?

4 / 100

Topic/Sub Topic: What Is a Force?

4. Which of the following best describes a force in science?

5 / 100

Topic/Sub Topic: Types of force: Push and pull.

5. Which of the following actions involves a pull force?

6 / 100

Topic/Sub Topic: Types of force: Push and pull.

6. What is a force?

7 / 100

Topic/Sub Topic: Types of force: Push and pull.

7. When two objects interact through a push or pull, what is required for a force to act between them?

8 / 100

Topic/Sub Topic: Types of force: Push and pull.

8. A moving ball is hit by a cricket bat. Which of the following effects can this force produce?

9 / 100

Topic/Sub Topic: Examples of force in daily life: Moving a box, pedaling a bicycle.

9. Which of the following is NOT an effect of applying force on an object?

10 / 100

Topic/Sub Topic: Examples of force in daily life: Moving a box, pedaling a bicycle.

10. (A) A bicycle slows down when brakes are applied because a force opposes its motion.
(R) Force can change the speed of a moving object.

11 / 100

Topic/Sub Topic: Examples of force in daily life: Moving a box, pedaling a bicycle.

11. What is the SI unit of force?

12 / 100

Topic/Sub Topic: Examples of force in daily life: Moving a box, pedaling a bicycle.

12. What is the scientific definition of force?

13 / 100

Topic/Sub Topic: What Can a Force Do to the Bodies on Which It Is Applied?

13. An object is observed to remain at rest on a table. Which of the following statements best explains this observation?

14 / 100

Topic/Sub Topic: What Can a Force Do to the Bodies on Which It Is Applied?

14. How does applying force affect the direction of a moving object?

15 / 100

Topic/Sub Topic: What Can a Force Do to the Bodies on Which It Is Applied?

15. What effect can a force have on the shape of an object?

16 / 100

Topic/Sub Topic: What Can a Force Do to the Bodies on Which It Is Applied?

16. (A) A force applied to a stationary object will always cause it to move in the direction of the applied force.

(R) Force is required to change the state of rest or motion of an object, according to Newton's First Law of Motion.

17 / 100

Topic/Sub Topic: Effect of force: Changing speed, direction, or shape.

17. (A) A fielder stopping a cricket ball changes its speed but not its direction.
(R) When a force is applied opposite to the direction of motion, it decreases the speed of the object.

18 / 100

Topic/Sub Topic: Effect of force: Changing speed, direction, or shape.

18. Which of the following scenarios demonstrates a change in shape due to the application of force?

19 / 100

Topic/Sub Topic: Effect of force: Changing speed, direction, or shape.

19. What is the effect of applying a force on an inflated balloon?

20 / 100

Topic/Sub Topic: Effect of force: Changing speed, direction, or shape.

20. (A) A force can change the speed of a moving object.
(R) Applying brakes on a bicycle slows it down by reducing its speed.

21 / 100

Topic/Sub Topic: Examples: Stopping a bicycle, changing direction of a moving ball.

21. (A) A force can change the direction of motion of a moving object.
(R) When a fielder stops a moving ball, the force applied changes its speed.

22 / 100

Topic/Sub Topic: Examples: Stopping a bicycle, changing direction of a moving ball.

22. A moving tennis ball is hit by a racket. What is the primary effect of this action?

23 / 100

Topic/Sub Topic: Examples: Stopping a bicycle, changing direction of a moving ball.

23. A football player kicks a stationary ball northwards with a force of 50 N. At the same time, another player applies a westward force of 30 N on the same ball. What will be the approximate net effect on the ball's motion?

24 / 100

Topic/Sub Topic: Examples: Stopping a bicycle, changing direction of a moving ball.

24. What can a force do to a stationary object?

25 / 100

Topic/Sub Topic: Are Forces an Interaction Between Two or More Objects?

25. (A) A force cannot exist if only one object is present.
(R) Forces arise due to interaction between at least two objects.

26 / 100

Topic/Sub Topic: Are Forces an Interaction Between Two or More Objects?

26. What is the SI unit of force and its symbol?

27 / 100

Topic/Sub Topic: Are Forces an Interaction Between Two or More Objects?

27. Two identical magnets are suspended near each other such that they repel with a force of 0.5 N each. What happens to the forces if one magnet is replaced with a stronger magnet that would normally exert 1 N repulsive force when paired with the original magnet?

28 / 100

Topic/Sub Topic: Are Forces an Interaction Between Two or More Objects?

28. (A) When a book is placed on a table, the table exerts an equal and opposite force on the book.
(R) According to Newton's third law, every action has an equal and opposite reaction.

29 / 100

Topic/Sub Topic: Balanced and unbalanced forces.

29. (A) An object at rest implies that no forces are acting on it.
(R) Balanced forces result in no change in the state of motion of an object.

30 / 100

Topic/Sub Topic: Balanced and unbalanced forces.

30. Which scenario describes a force resulting from interaction between two objects?

31 / 100

Topic/Sub Topic: Balanced and unbalanced forces.

31. What is the SI unit of force?

32 / 100

Topic/Sub Topic: Balanced and unbalanced forces.

32. Which of the following situations involves an interaction between two objects resulting in a force?

33 / 100

Topic/Sub Topic: SI unit of force: Newton (N).

33. A man pushes a wall but it does not move. What is the reaction force acting on the man?

34 / 100

Topic/Sub Topic: SI unit of force: Newton (N).

34. Which of the following forces does NOT require contact between objects?

35 / 100

Topic/Sub Topic: SI unit of force: Newton (N).

35. Which of the following statements correctly defines a force?

36 / 100

Topic/Sub Topic: SI unit of force: Newton (N).

36. An object weighs 50 N in air and 30 N when submerged in water. What is the buoyant force acting on the object?

37 / 100

Topic/Sub Topic: Example: Hand pushing a table, both objects experiencing force.

37. A book is placed on a table. If the table suddenly disappears, what happens to the force exerted by the book on the table and vice versa?

38 / 100

Topic/Sub Topic: Example: Hand pushing a table, both objects experiencing force.

38. While swimming, you push water backward with your hands. How does this enable you to move forward?

39 / 100

Topic/Sub Topic: Example: Hand pushing a table, both objects experiencing force.

39. (A) When a book is placed on a table, the table exerts an equal and opposite force on the book to prevent it from falling.
(R) According to Newton's Third Law of Motion, for every action, there is an equal and opposite reaction.

40 / 100

Topic/Sub Topic: Example: Hand pushing a table, both objects experiencing force.

40. (A) A force can exist without any interaction between two objects.
(R) Forces arise only when two objects interact with each other.

41 / 100

Topic/Sub Topic: What Are the Different Types of Forces?

41. What is the SI unit of weight, which is a measure of gravitational force?

42 / 100

Topic/Sub Topic: What Are the Different Types of Forces?

42. What is the SI unit of weight, which results from the gravitational force exerted by Earth?

43 / 100

Topic/Sub Topic: What Are the Different Types of Forces?

43. Which of the following is an example of a non-contact force?

44 / 100

Topic/Sub Topic: What Are the Different Types of Forces?

44. (A) Magnetic force is an example of a contact force.
(R) Contact forces require physical interaction between objects.

45 / 100

Topic/Sub Topic: Contact Forces:

45. A rugby player pushes a sled weighing 50 kg with a force of 200 N on a rough surface where the coefficient of friction is 0.3. What net force acts on the sled?

46 / 100

Topic/Sub Topic: Contact Forces:

46. Which of the following is an example of muscular force?

47 / 100

Topic/Sub Topic: Contact Forces:

47. A ball is rolling on a smooth floor. What happens to the ball over time, and what force is primarily responsible for this?

48 / 100

Topic/Sub Topic: Contact Forces:

48. Two charges $q_1 = +4 \, \mu\text{C}$ and $q_2 = -2 \, \mu\text{C}$ are placed 3 cm apart in air. Calculate the magnitude of the electrostatic force between them. (Use Coulomb's constant $k = 9 \times 10^9 \, \text{N·m}^2/\text{C}^2$)

49 / 100

Topic/Sub Topic: Muscular force: Force caused by muscle action.

49. Compare the muscular force involved in a human lifting a 10 kg weight versus a fish swimming in water. What key difference exists in how muscular force is applied in these two scenarios?

50 / 100

Topic/Sub Topic: Muscular force: Force caused by muscle action.

50. Which activity does NOT involve muscular force?

51 / 100

Topic/Sub Topic: Muscular force: Force caused by muscle action.

51. How does muscular force help in digestion?

52 / 100

Topic/Sub Topic: Muscular force: Force caused by muscle action.

52. Which of the following physiological processes is primarily driven by muscular force and involves rhythmic contractions to ensure the survival of an organism?

53 / 100

Topic/Sub Topic: Friction: Force opposing motion between two surfaces.

53. (A) Aeroplanes are designed with streamlined shapes to reduce the frictional force due to air resistance.
(R) Friction due to air acts in the same direction as the motion of the aeroplane.

54 / 100

Topic/Sub Topic: Friction: Force opposing motion between two surfaces.

54. A block of wood is placed on a rough horizontal surface. If the coefficient of static friction between the block and the surface is 0.4, what minimum force must be applied to start moving the block if its weight is 50 N?

55 / 100

Topic/Sub Topic: Friction: Force opposing motion between two surfaces.

55. What is the force called that opposes the motion or attempted motion of an object over a surface?

56 / 100

Topic/Sub Topic: Friction: Force opposing motion between two surfaces.

56. (A) Friction reduces the speed of a moving object on a rough surface.
(R) Rough surfaces have more irregularities which increase the interlocking between surfaces, causing greater friction.

57 / 100

Topic/Sub Topic: Non-contact Forces:

57. Which of the following is an example of a non-contact force?

58 / 100

Topic/Sub Topic: Non-contact Forces:

58. An astronaut on the Moon drops a hammer and a feather simultaneously from the same height. Considering Earth's gravity is about 6 times stronger than Moon's gravity, which statement accurately compares this scenario with the same experiment performed on Earth?

59 / 100

Topic/Sub Topic: Non-contact Forces:

59. After rubbing a plastic scale vigorously with polythene and bringing it close to small pieces of paper, what occurs?

60 / 100

Topic/Sub Topic: Non-contact Forces:

60. (A) A magnet can attract an iron nail from a distance without touching it, demonstrating that magnetic force is a non-contact force.
(R) Gravitational force is also a non-contact force as the Earth attracts objects towards itself without physical contact.

61 / 100

Topic/Sub Topic: Magnetic force: Attraction or repulsion between magnets.

61. (A) When two magnets are placed such that their like poles face each other, they repel.
(R) Like poles of magnets exert a non-contact repulsive force on each other.

62 / 100

Topic/Sub Topic: Magnetic force: Attraction or repulsion between magnets.

62. In an experiment with ring magnets, if you reverse the poles of both magnets so unlike poles face each other, what will happen?

63 / 100

Topic/Sub Topic: Magnetic force: Attraction or repulsion between magnets.

63. What happens when two magnets are placed such that their like poles face each other?

64 / 100

Topic/Sub Topic: Magnetic force: Attraction or repulsion between magnets.

64. What happens when like poles of two magnets are brought close to each other?

65 / 100

Topic/Sub Topic: Electrostatic force: Force between charged objects.

65. Two positively charged balloons are hung close to each other. What will happen to them?

66 / 100

Topic/Sub Topic: Electrostatic force: Force between charged objects.

66. A positively charged glass rod attracts a small metallic ball suspended by an insulating thread. The metal ball could be:

67 / 100

Topic/Sub Topic: Electrostatic force: Force between charged objects.

67. (A) A charged balloon repels another similarly charged balloon.
(R) Like charges attract each other.

68 / 100

Topic/Sub Topic: Electrostatic force: Force between charged objects.

68. Two balloons are rubbed with a woollen cloth and repel each other. What does this indicate?

69 / 100

Topic/Sub Topic: Gravitational force: Force of attraction between Earth and objects.

69. Which of these scenarios correctly demonstrates the nature of gravitational force?

70 / 100

Topic/Sub Topic: Gravitational force: Force of attraction between Earth and objects.

70. A spring balance shows a reading of 49 N when an object is hung from it on Earth. If the same setup is taken to Mars, what would be the approximate reading on the spring balance? (Use the planetary weight data from the table)

71 / 100

Topic/Sub Topic: Gravitational force: Force of attraction between Earth and objects.

71. What is the SI unit of weight?

72 / 100

Topic/Sub Topic: Gravitational force: Force of attraction between Earth and objects.

72. An object weighs 25.4 N on Jupiter. What would be its weight on Earth if it has a mass of 1 kg?

73 / 100

Topic/Sub Topic: Weight and Its Measurement

73. (A) The weight of an object is measured in newtons (N).
(R) Weight is the gravitational force acting on an object, and force is measured in newtons.

74 / 100

Topic/Sub Topic: Weight and Its Measurement

74. If a spring balance has 10 divisions between $0 N$ and $1 N$, what is the smallest weight it can measure?

75 / 100

Topic/Sub Topic: Weight and Its Measurement

75. A spring balance shows a stretch corresponding to $7 N$ when an object is hung from it. What is the mass of the object assuming Earth's gravity ($10 N/kg$)?

76 / 100

Topic/Sub Topic: Weight and Its Measurement

76. A spring balance has a range of 0-20 N with 10 divisions between each major mark (1 N difference). What is the smallest weight change this spring balance can accurately measure?

77 / 100

Topic/Sub Topic: Weight measured in newtons (N).

77. An object weighs 38 N when measured on Mars using a spring balance. What would be its mass if measured on Earth where gravitational acceleration is 10 m/s$^2$?

78 / 100

Topic/Sub Topic: Weight measured in newtons (N).

78. (A) The weight of an object measured on Earth would be different when measured on Mars due to the difference in gravitational acceleration.
(R) Weight is directly proportional to the gravitational force acting on the object, which varies with location.

79 / 100

Topic/Sub Topic: Weight measured in newtons (N).

79. An object has a mass of 5 kg. What is its weight on Earth? ($g = 9.8\,m/s^2$)

80 / 100

Topic/Sub Topic: Weight measured in newtons (N).

80. A spring balance shows a reading of 16 N when an object is hung on Earth. What would the same spring balance show if this experiment was conducted on the Moon with the same object?

81 / 100

Topic/Sub Topic: Difference between weight and mass.

81. (A) The weight of an object changes when taken to different planets.
(R) The mass of the object remains constant, but the gravitational force varies on different planets.

82 / 100

Topic/Sub Topic: Difference between weight and mass.

82. An object has a mass of 5 kg. What will be its weight on the Moon where the gravitational force is $\frac{1}{6}$th that of Earth? ($g_{\text{Earth}} = 10 \, \text{m/s}^2$)

83 / 100

Topic/Sub Topic: Difference between weight and mass.

83. (A) The weight of an object on the Moon is less than its weight on Earth because the gravitational pull of the Moon is weaker.
(R) The mass of an object remains constant regardless of its location in the universe.

84 / 100

Topic/Sub Topic: Difference between weight and mass.

84. A bag of rice weighs 5 kg on Earth. If taken to the Moon, what would be its mass and its weight respectively? (Given: Gravitational force on Moon is 1.6 N/kg)

85 / 100

Topic/Sub Topic: Measurement of weight using a spring balance.

85. (A) The weight measured by a spring balance on Earth will be different from its reading on the Moon.
(R) Weight is directly proportional to the gravitational acceleration of the celestial body.

86 / 100

Topic/Sub Topic: Measurement of weight using a spring balance.

86. A spring balance shows a weight of 4.8 N when an object is suspended. How many smaller divisions does the pointer move if each small division corresponds to 0.2 N?

87 / 100

Topic/Sub Topic: Measurement of weight using a spring balance.

87. What is the maximum weight a spring balance with a range of 0 to 10 N can measure?

88 / 100

Topic/Sub Topic: Measurement of weight using a spring balance.

88. If an object weighs 38 N on Mars, what would be its approximate mass in kilograms? (Given: Gravitational acceleration on Mars = 3.8 m/s$^2$)

89 / 100

Topic/Sub Topic: Floating and Sinking

89. How does increasing the density of a liquid affect the buoyant force on an object?

90 / 100

Topic/Sub Topic: Floating and Sinking

90. Three objects of the same size but different weights ($w_1$, $w_2$, $w_3$) are fully submerged in water. Object 1 floats, object 2 remains suspended, and object 3 sinks. What is the correct order of their weights?

91 / 100

Topic/Sub Topic: Floating and Sinking

91. A metal block weighs 50 N in air and 30 N when fully submerged in water. What is the buoyant force acting on the block when it is half-submerged in a liquid with density twice that of water?

92 / 100

Topic/Sub Topic: Floating and Sinking

92. (A) A plastic bottle filled with sand sinks in water.
(R) The weight of the displaced water is less than the weight of the bottle.

93 / 100

Topic/Sub Topic: Upthrust or buoyant force: Upward force exerted by a liquid on an object.

93. (A) A wooden block floats in water because the buoyant force acting on it equals its weight.
(R) According to Archimedes’ Principle, the buoyant force is equal to the weight of the liquid displaced by the object.

94 / 100

Topic/Sub Topic: Upthrust or buoyant force: Upward force exerted by a liquid on an object.

94. (A) A wooden block floats in water because the buoyant force acting on it is equal to its weight.
(R) According to Archimedes' Principle, the buoyant force equals the weight of the liquid displaced by the object.

95 / 100

Topic/Sub Topic: Upthrust or buoyant force: Upward force exerted by a liquid on an object.

95. According to Archimedes' Principle, when will an object float in a liquid?

96 / 100

Topic/Sub Topic: Upthrust or buoyant force: Upward force exerted by a liquid on an object.

96. (A) A mug feels lighter when submerged in water because the liquid exerts an upward buoyant force on it.
(R) Archimedes' Principle states that the buoyant force equals the weight of the displaced liquid.

97 / 100

Topic/Sub Topic: Archimedes' principle: Objects submerged in a fluid experience an upward force equal to the weight of the fluid displaced.

97. If an object floats on water, what can be said about the buoyant force acting on it compared to its weight?

98 / 100

Topic/Sub Topic: Archimedes' principle: Objects submerged in a fluid experience an upward force equal to the weight of the fluid displaced.

98. (A) A plastic bottle floats on water when its lid is closed tightly.
(R) The buoyant force acting on the bottle equals the weight of the displaced water, making it float.

99 / 100

Topic/Sub Topic: Archimedes' principle: Objects submerged in a fluid experience an upward force equal to the weight of the fluid displaced.

99. According to Archimedes' principle, what is the buoyant force acting on an object submerged in a fluid equal to?

100 / 100

Topic/Sub Topic: Archimedes' principle: Objects submerged in a fluid experience an upward force equal to the weight of the fluid displaced.

100. Two objects, A and B, are placed in water. Object A sinks while Object B floats. What can be concluded about their densities?

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