JP © 1 2 3 NEWTON’S THIRD LAW : “ACTION AND REACTION ARE ALWAYS EQUAL AND OPPOSITE” “IF A BODY A EXERTS A FORCE ON BODY B, THEN B EXERTS AN EQUAL AND.

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Presentation transcript:

JP © 1

2

3 NEWTON’S THIRD LAW : “ACTION AND REACTION ARE ALWAYS EQUAL AND OPPOSITE” “IF A BODY A EXERTS A FORCE ON BODY B, THEN B EXERTS AN EQUAL AND OPPOSITELY DIRECTED FORCE ON A”A”

JP © 4 I’LL PULL HIM devishly clever WELL ACTION AND REACTION ARE ALWAYS EQUAL AND OPPOSITE!!

JP © 5 WELL ACTION AND REACTION ARE ALWAYS EQUAL AND OPPOSITE!! ACTION AND REACTION ARE ALWAYS EQUAL AND OPPOSITE!! SO WHY DOES THE GIRL MOVE FASTER?

JP © 6 NEWTON’S THIRD LAW PAIRS THEY ARE EQUAL IN MAGNITUDE THEY ARE OPPOSITE IN DIRECTION THEY ACT ON DIFFERENT BODIES

JP © 7 The 2 forces act along the same line SIMILARITIES The 2 forces act for the same length of time The 2 forces are the same size Both forces are of the same type DIFFERENCES The 2 forces act on different bodies The 2 forces are in opposite directions NEWTON’S THIRD LAW PAIRS

JP © 8 THE CLUB EXERTS A FORCE F ON THE BALL FF THE BALL EXERTS AN EQUAL AND OPPOSITE FORCE F ON THE CLUB

JP © 9 Drawing Free-Body Diagrams Free-body diagrams are used to show the relative magnitude and direction of all forces acting upon an object in a given situation. The size of an arrow in a free-body diagram is reflective of the magnitude of the force. The direction of the arrow reveals the direction in which the force is acting. Each force arrow in the diagram is labeled to indicate the exact type of force. A free-body diagram singles out a body from its neighbours and shows the forces, including reactive forces acting on it.

JP © 10 Tug assisting a ship Free body diagram for the ship SHIP Pull from tug Thrust from engines weight Upthrust [buoyancy] Friction

JP © 11 EXAMPLE 1 - A LIFT ACCELERATING UPWARDS a = 20 ms -2 If g = 10 ms -2, what “g force” does the passenger experience? The forces experienced by the passenger are her weight, mg and the normal reaction force R. mg R The resultant upward force which gives her the same acceleration as the lift is R – mg. Apply F = ma R – mg = ma Hence the forces she “feels”, R = ma + mg The “g force” is the ratio of this force to her weight.

JP © 12 EXAMPLE 2 - A HOVERING HELICOPTER A helicopter hovers and supports its weight of 1000 kg by imparting a downward velocity,v, to all the air below its rotors. The rotors have a diameter of 6m. If the density of the air is 1.2 kg m -3 and g = 9.81 ms -1, find a value for v. v 3m The force produced in moving the air downwards has an equal and opposite reaction force, R, which supports the weight of the helicopter, Mg. Mg R The force produced in moving the air downwards is given by: but v is constant, so Mass of air moved per second = π x 3 2 x 1.2 x v v = 18.1 m s -1