Question #95890
A jet airliner moving initially at 521 mph
(with respect to the ground) to the east moves
into a region where the wind is blowing at
434 mph in a direction 22◦
north of east.
What is the new speed of the aircraft with
respect to the ground?
Answer in units of mph.
1
Expert's answer
2019-10-07T10:41:20-0400

The angle between two vectors is


θ=22°\theta=22\degree

The new velocity of the aircraft with respect to the ground


V=va+vw\bold{V=v_a+v_w}

The new speed of the aircraft with respect to the ground:


V=va2+vw2+2vavwcos22°V=\sqrt{v_a^2+v_w^2+2v_av_w\cos{22\degree}}

V=5212+4342+2(521)(434)cos22°=938 mphV=\sqrt{521^2+434^2+2(521)(434)\cos{22\degree}}=938\ mph



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