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Definition
2.1.1 What is inertia? 2.1.2 Relation between inertia and mass 2.1.3 Situation involving inertia 2.1.4 Ways to reduce negative effects of inertia
INERTIA ,[object Object],Newton’s first law of motion  Newton;s first law states that, “Every object continues in its state of rest or uniform motion unless it is acted upon by an external force.”
[object Object],[object Object],[object Object],Relation between inertia and mass  “ The larger the mass, the larger the inertia”
SITUATIONS INVOLVING INERTIA SITUATION EXPLANATION ,[object Object],[object Object],[object Object],[object Object],[object Object]
SITUATION EXPLANATION ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],Ways to Reduce Negative Effects of Inertia
Safety belt Prevent driver from thrown forward due to inertia. Safety Airbag To prevent the driver from hitting the steering wheel or dashboard during a collision.
 
m 1  =0.02 kg v 2 = 2ms -1 m 2  = 1000 kg m 1  = 1000 kg v 2  = 80 ms -1 v 1  = 100 ms -1 v 1 = 2ms -1 m 2  = 0.05  kg
MOMENTUM ,[object Object],[object Object],[object Object],[object Object],Is a product of mass and velocity Momentum, p = mass × velocity p = mv Unit: kgms -1  // Ns (vector quantity)
Principle of conservation of momentum states that  in the absence of an external force, the total momentum of a system remains unchanged . PRINCIPLE OF CONSERVATION OF MOMENTUM
[object Object]
[object Object],[object Object],[object Object],[object Object]
ELASTIC COLLISION INELASTIC COLLISION Both objects move independently at their respective velocities after the collision. The two objects combine and move together with a common velocity after the collision. Momentum is conserved Momentum is conserved.
ELASTIC COLLISION Total Momentum Before = Total momentum After m 1 u 1  + m 2 u 2  = m 1 v 1  + m 2 v 2
INELASTIC COLLISION Total Momentum Before = Total Momentum After m 1 u 1  + m 2 u 2  = (m 1  + m 2 ) v
EXPLOSIONS Before explosion  both object stick together and  at rest After collision , both object move at  opposite direction .
EXPLOSION Total Momentum Before collision= Total Momentum After collision 0 = m 1 v 1  + m 2 v 2 m 1 v 1  = - m 2 v 2 negative sign means opposite direction
[object Object],[object Object],[object Object],[object Object]
EXERCISE 1 ,[object Object]
EXERCISE 2 ,[object Object],[object Object],[object Object],[object Object],[object Object],A B A B
EXERCISE 3 ,[object Object]
EXERCISE 4 ,[object Object]

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Chapter 2: Forces and motion

  • 1.  
  • 3. 2.1.1 What is inertia? 2.1.2 Relation between inertia and mass 2.1.3 Situation involving inertia 2.1.4 Ways to reduce negative effects of inertia
  • 4.
  • 5.
  • 6.
  • 7.
  • 8.
  • 9. Safety belt Prevent driver from thrown forward due to inertia. Safety Airbag To prevent the driver from hitting the steering wheel or dashboard during a collision.
  • 10.  
  • 11. m 1 =0.02 kg v 2 = 2ms -1 m 2 = 1000 kg m 1 = 1000 kg v 2 = 80 ms -1 v 1 = 100 ms -1 v 1 = 2ms -1 m 2 = 0.05 kg
  • 12.
  • 13. Principle of conservation of momentum states that in the absence of an external force, the total momentum of a system remains unchanged . PRINCIPLE OF CONSERVATION OF MOMENTUM
  • 14.
  • 15.
  • 16. ELASTIC COLLISION INELASTIC COLLISION Both objects move independently at their respective velocities after the collision. The two objects combine and move together with a common velocity after the collision. Momentum is conserved Momentum is conserved.
  • 17. ELASTIC COLLISION Total Momentum Before = Total momentum After m 1 u 1 + m 2 u 2 = m 1 v 1 + m 2 v 2
  • 18. INELASTIC COLLISION Total Momentum Before = Total Momentum After m 1 u 1 + m 2 u 2 = (m 1 + m 2 ) v
  • 19. EXPLOSIONS Before explosion both object stick together and at rest After collision , both object move at opposite direction .
  • 20. EXPLOSION Total Momentum Before collision= Total Momentum After collision 0 = m 1 v 1 + m 2 v 2 m 1 v 1 = - m 2 v 2 negative sign means opposite direction
  • 21.
  • 22.
  • 23.
  • 24.
  • 25.