9702_w21_qp_23
A paper of Physics, 9702
Questions:
6
Year:
2021
Paper:
2
Variant:
3

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Define velocity. A remote-controlled toy aircraft is flying horizontally in a wind. shows the velocity vectors, to scale, of the wind and of the aircraft in still air. 54° wind velocity 23 m s–1 aircraft velocity in still air 42 m s–1 north The velocity of the aircraft in still air is 42 m s–1 to the north. The velocity of the wind is 23 m s–1 in a direction of 54° east of south. Determine the magnitude of the resultant velocity of the aircraft. magnitude of velocity = m s–1 The engine of the aircraft in stops. The aircraft then glides towards the ground with a constant velocity at an angle θ to the horizontal, as illustrated in . aircraft, weight 46 N glide path of aircraft horizontal 280 m X Y θ (not to scale) The aircraft has a weight of 46 N and travels a distance of 280 m from point X to point Y. The change in gravitational potential energy of the aircraft for its movement from X to Y is 6100 J. Assume that there is now no wind. Calculate angle θ. θ = ° Calculate the magnitude of the force acting on the aircraft due to air resistance. force = N The aircraft in travels from X to Y in a time of 14 s. shows that, as the aircraft travels from X to Y, it moves directly towards an observer who is standing on the ground. aircraft observer ground 280 m X Y (not to scale) The aircraft emits sound as it travels from X to Y. The observer hears sound of frequency 450 Hz. The speed of the sound in the air is 340 m s–1. Calculate the frequency of the sound that is emitted by the aircraft. frequency = Hz
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